This is a Validated Antibody Database (VAD) review about mouse Cd4, based on 1403 published articles (read how Labome selects the articles), using Cd4 antibody in all methods. It is aimed to help Labome visitors find the most suited Cd4 antibody. Please note the number of articles fluctuates since newly identified citations are added and citations for discontinued catalog numbers are removed regularly.
Cd4 synonym: L3T4; Ly-4

others
  • flow cytometry; mouse; loading ...; fig 1b
Cd4 antibody (Biolegend, RM 4-5) was used in flow cytometry on mouse samples (fig 1b). JCI Insight (2019) ncbi
  • flow cytometry; mouse; 1:200; loading ...; fig 3b
Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig 3b). Nat Commun (2019) ncbi
  • flow cytometry; mouse; fig 3a
Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 3a). Nature (2019) ncbi
BioLegend
rat monoclonal (H129.19)
  • flow cytometry; mouse; 1:1000; loading ...; fig 2d
BioLegend Cd4 antibody (BioLegend, H129.19) was used in flow cytometry on mouse samples at 1:1000 (fig 2d). Mol Psychiatry (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2a
BioLegend Cd4 antibody (BioLegend, 100447) was used in flow cytometry on mouse samples (fig s2a). iScience (2021) ncbi
rat monoclonal (RM4-5)
  • other; mouse; loading ...
BioLegend Cd4 antibody (BioLegend, 100561) was used in other on mouse samples . Nat Commun (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples at 1:200. J Immunother Cancer (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2b
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 2b). Int J Mol Sci (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3b
BioLegend Cd4 antibody (Biolegend, 100412) was used in flow cytometry on mouse samples (fig 3b). Signal Transduct Target Ther (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:1000; loading ...; fig s2d
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples at 1:1000 (fig s2d). Sci Adv (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, 100404) was used in flow cytometry on mouse samples . Immunity (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:1000; fig s6g
BioLegend Cd4 antibody (Biolegend, 100516) was used in flow cytometry on mouse samples at 1:1000 (fig s6g). Nat Commun (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200
BioLegend Cd4 antibody (BioLegend, 100536) was used in flow cytometry on mouse samples at 1:200. Nat Commun (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 6a
BioLegend Cd4 antibody (Biolegend, 100426) was used in flow cytometry on mouse samples (fig 6a). Cell Death Dis (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples . Am J Physiol Endocrinol Metab (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5i
BioLegend Cd4 antibody (BioLegend, 100551) was used in flow cytometry on mouse samples (fig 5i). Nat Commun (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 3
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 3). PLoS Pathog (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 0.5 mg/ml; loading ...; fig 2e
BioLegend Cd4 antibody (BioLegend, 100406) was used in flow cytometry on mouse samples at 0.5 mg/ml (fig 2e). Sci Rep (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5b, 5h
BioLegend Cd4 antibody (Biolegend, 100406) was used in flow cytometry on mouse samples (fig 5b, 5h). J Immunother Cancer (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5f
BioLegend Cd4 antibody (BioLegend, 100 531) was used in flow cytometry on mouse samples (fig 5f). Adv Sci (Weinh) (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples . Front Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples at 1:200. Cancer Res (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples at 1:200. Cancer Res (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1a, s2b
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig s1a, s2b). Int J Mol Sci (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...
BioLegend Cd4 antibody (Biolegend, 100506) was used in flow cytometry on mouse samples . Cancer Cell (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; fig s7h
BioLegend Cd4 antibody (Biolegend, 100428) was used in flow cytometry on mouse samples at 1:100 (fig s7h). Cell Rep (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...
BioLegend Cd4 antibody (Biolegend, 100512) was used in flow cytometry on mouse samples at 1:400. Nat Commun (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3c, 4a
BioLegend Cd4 antibody (BioLegend, 100405) was used in flow cytometry on mouse samples (fig 3c, 4a). Cell Death Discov (2021) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; 1:1000; loading ...; fig 6a
BioLegend Cd4 antibody (Biolegend, H129.19) was used in flow cytometry on mouse samples at 1:1000 (fig 6a). Acta Neuropathol Commun (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2e
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 2e). Animals (Basel) (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...
BioLegend Cd4 antibody (BioLegend, 100546) was used in flow cytometry on mouse samples . Int J Mol Sci (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3b
BioLegend Cd4 antibody (Biolegend, 100509) was used in flow cytometry on mouse samples (fig 3b). Int J Mol Sci (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 6a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 6a). BMC Cancer (2021) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; 1:100; loading ...; fig 5c
BioLegend Cd4 antibody (BioLegend, 116008) was used in flow cytometry on mouse samples at 1:100 (fig 5c). iScience (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig s22b
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:100 (fig s22b). Nat Commun (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5d
BioLegend Cd4 antibody (BioLegend, 100408) was used in flow cytometry on mouse samples (fig 5d). Am J Cancer Res (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4b
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 4b). Front Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3b
BioLegend Cd4 antibody (Biolegend, 100438) was used in flow cytometry on mouse samples (fig 3b). Mol Cancer (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, 100407) was used in flow cytometry on mouse samples (fig 2a). Transl Oncol (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:1000; loading ...; fig e6a
BioLegend Cd4 antibody (Biolegend, 100516) was used in flow cytometry on mouse samples at 1:1000 (fig e6a). Nat Cancer (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 6e
BioLegend Cd4 antibody (Biolegend, 100428) was used in flow cytometry on mouse samples at 1:100 (fig 6e). Front Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s3
BioLegend Cd4 antibody (Biolegend, 100449) was used in flow cytometry on mouse samples (fig s3). J Clin Invest (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1s2a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 1s2a). elife (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 6d
BioLegend Cd4 antibody (BioLegend, 100430) was used in flow cytometry on mouse samples at 1:100 (fig 6d). Cell Prolif (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 2s3e
BioLegend Cd4 antibody (BioLegend, 100427) was used in flow cytometry on mouse samples at 1:100 (fig 2s3e). elife (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 5a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:100 (fig 5a). Nat Commun (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2c
BioLegend Cd4 antibody (BioLegend, 100552) was used in flow cytometry on mouse samples (fig 2c). Mucosal Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2c
BioLegend Cd4 antibody (BioLegend, 100437) was used in flow cytometry on mouse samples (fig 2c). Mucosal Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:1000; loading ...; fig s4a
BioLegend Cd4 antibody (BioLegend, 100423) was used in flow cytometry on mouse samples at 1:1000 (fig s4a). Nat Commun (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2a, 5b, 5f
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig s2a, 5b, 5f). Front Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; fig 1b
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig 1b). Front Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • immunocytochemistry; human; 1:100; loading ...; fig 6a
BioLegend Cd4 antibody (BioLegend, 100446) was used in immunocytochemistry on human samples at 1:100 (fig 6a). Nat Cancer (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human; loading ...
BioLegend Cd4 antibody (Biolegend, 100552) was used in flow cytometry on human samples . J Immunother Cancer (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3h
BioLegend Cd4 antibody (Biolegend, 100449) was used in flow cytometry on mouse samples (fig 3h). Cell (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, 100548) was used in flow cytometry on mouse samples (fig 2a). Cell Rep (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2a, s2b, s2c
BioLegend Cd4 antibody (Biolegend, 100422) was used in flow cytometry on mouse samples (fig s2a, s2b, s2c). Proc Natl Acad Sci U S A (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 7b
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig 7b). Front Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
BioLegend Cd4 antibody (BioLegend, 100425) was used in flow cytometry on mouse samples . Br J Cancer (2021) ncbi
rat monoclonal (RM4-5)
  • mass cytometry; mouse; loading ...
BioLegend Cd4 antibody (BioLegend, 100506) was used in mass cytometry on mouse samples . Br J Cancer (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 6f
BioLegend Cd4 antibody (Biolegend, 100,510) was used in flow cytometry on mouse samples (fig 6f). Am J Cancer Res (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200
BioLegend Cd4 antibody (Biolegend, 100540) was used in flow cytometry on mouse samples at 1:200. Commun Biol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...
BioLegend Cd4 antibody (BioLegend, 100433) was used in flow cytometry on mouse samples at 1:100. Nat Commun (2021) ncbi
rat monoclonal (RM4-5)
  • mass cytometry; mouse; loading ...; fig s3
BioLegend Cd4 antibody (Biolegend, 100561) was used in mass cytometry on mouse samples (fig s3). EMBO J (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...
BioLegend Cd4 antibody (Biolegend, 100548) was used in flow cytometry on mouse samples . Cell Rep Med (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1b
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 1b). JCI Insight (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5b
BioLegend Cd4 antibody (Biolegend, 100406) was used in flow cytometry on mouse samples (fig 5b). Front Immunol (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig s1
BioLegend Cd4 antibody (BioLegend, 100563) was used in flow cytometry on mouse samples at 1:200 (fig s1). Nat Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:50; fig 7
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples at 1:50 (fig 7). Adv Sci (Weinh) (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...
BioLegend Cd4 antibody (BioLegend, 100550) was used in flow cytometry on mouse samples at 1:200. Nature (2021) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; 1:400; loading ...
BioLegend Cd4 antibody (BioLegend, 130308) was used in flow cytometry on mouse samples at 1:400. Nature (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:400; loading ...
BioLegend Cd4 antibody (BioLegend, 100412) was used in flow cytometry on mouse samples at 1:400. Nature (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...
BioLegend Cd4 antibody (Biolegend, 100516) was used in flow cytometry on mouse samples at 1:200. Nature (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 7a
BioLegend Cd4 antibody (BioLegend, 100407) was used in flow cytometry on mouse samples (fig 7a). Neoplasia (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig 3a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples at 1:100 (fig 3a). Science (2021) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; 5 mg/ml; loading ...; fig 3e
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in immunohistochemistry - frozen section on mouse samples at 5 mg/ml (fig 3e). Science (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 2a). elife (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1). Aging Cell (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s5e
BioLegend Cd4 antibody (Biolegend, 100540) was used in flow cytometry on mouse samples (fig s5e). Nat Commun (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:250; loading ...; fig s8b
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:250 (fig s8b). Nat Commun (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig s2-1c
BioLegend Cd4 antibody (Biolegend, 100411) was used in flow cytometry on mouse samples at 1:100 (fig s2-1c). elife (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 2g
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:100 (fig 2g). Nature (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:400; loading ...; fig 2b
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:400 (fig 2b). elife (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5d
BioLegend Cd4 antibody (BioLegend, 100548) was used in flow cytometry on mouse samples (fig 5d). Cancer Res (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples . elife (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:100. elife (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1f
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1f). Proc Natl Acad Sci U S A (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3f
BioLegend Cd4 antibody (Biolegend, 100455) was used in flow cytometry on mouse samples (fig 3f). Nat Commun (2020) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; loading ...; fig 1c
BioLegend Cd4 antibody (Biolegend, 100506) was used in immunohistochemistry on mouse samples (fig 1c). Cell (2020) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; loading ...
BioLegend Cd4 antibody (BioLegend, 100449) was used in immunohistochemistry on mouse samples . Cell (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:250; loading ...; fig 4g
  • immunohistochemistry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, 100510) was used in flow cytometry on mouse samples at 1:250 (fig 4g) and in immunohistochemistry on mouse samples (fig 2a). elife (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:250; loading ...; fig 4g
  • immunohistochemistry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, 100433) was used in flow cytometry on mouse samples at 1:250 (fig 4g) and in immunohistochemistry on mouse samples (fig 2a). elife (2020) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; loading ...
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in immunohistochemistry on mouse samples . elife (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1s1a
BioLegend Cd4 antibody (Biolegend, 100422) was used in flow cytometry on mouse samples (fig 1s1a). elife (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1d
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1d). Am J Transplant (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1s3, 4c
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 1s3, 4c). elife (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples . J Immunother Cancer (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4d
BioLegend Cd4 antibody (Biolegend, 100566) was used in flow cytometry on mouse samples (fig 4d). elife (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig 2a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples at 1:100 (fig 2a). elife (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:500; fig 1j
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples at 1:500 (fig 1j). J Allergy Clin Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; human; 1:75; loading ...
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on human samples at 1:75. Nature (2020) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; fig 4h
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in immunohistochemistry on mouse samples (fig 4h). Nat Commun (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 2a). BMC Immunol (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3b, 3e
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 3b, 3e). World J Gastroenterol (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400-1:800; loading ...; fig 3a
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples at 1:400-1:800 (fig 3a). elife (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s17
BioLegend Cd4 antibody (BioLegend, 100425) was used in flow cytometry on mouse samples (fig s17). Nat Commun (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig s3d
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples at 1:100 (fig s3d). Commun Biol (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a, 5d
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 1a, 5d). BMC Biol (2020) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; loading ...; fig 5a
BioLegend Cd4 antibody (BioLegend, 130308) was used in flow cytometry on mouse samples (fig 5a). Oncoimmunology (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 7b
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 7b). PLoS Pathog (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s3b
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig s3b). Sci Adv (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1c
BioLegend Cd4 antibody (Biolegend, 100428) was used in flow cytometry on mouse samples (fig 1c). Cell Rep (2020) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; 1:200; loading ...; fig 3d
BioLegend Cd4 antibody (Biolegend, 100505) was used in immunohistochemistry - frozen section on mouse samples at 1:200 (fig 3d). elife (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, 100537) was used in flow cytometry on mouse samples at 1:200 (fig 2a). Nat Commun (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 5 ug/ml; loading ...; fig 2j, 3a, s3a, s12r
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 5 ug/ml (fig 2j, 3a, s3a, s12r). Science (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4b, 4c, 4d
BioLegend Cd4 antibody (Biolegend, 100432) was used in flow cytometry on mouse samples (fig 4b, 4c, 4d). Front Cell Neurosci (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...; fig s4, s6
BioLegend Cd4 antibody (BioLegend, 100546) was used in flow cytometry on mouse samples at 1:400 (fig s4, s6). Nat Commun (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s1). elife (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s3a, s3b, s3c, s4a
BioLegend Cd4 antibody (BioLegend, 100516) was used in flow cytometry on mouse samples (fig s3a, s3b, s3c, s4a). Cancers (Basel) (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig 3a
BioLegend Cd4 antibody (BioLegend, 100510) was used in flow cytometry on mouse samples at 1:200 (fig 3a). Nat Commun (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2c
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 2c). Front Immunol (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig s8, s17b
BioLegend Cd4 antibody (Biolegend, 100512) was used in flow cytometry on mouse samples at 1:100 (fig s8, s17b). Nat Commun (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 6c, s6b
BioLegend Cd4 antibody (Biolegend, 100566) was used in flow cytometry on mouse samples (fig 6c, s6b). Nat Commun (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 6b
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 6b). elife (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s16c
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig s16c). Nat Commun (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s16a
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s16a). Nat Commun (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:150; loading ...; fig s5a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples at 1:150 (fig s5a). Mol Ther Methods Clin Dev (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 7b
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 7b). elife (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig s19d
BioLegend Cd4 antibody (Biolegend, 100449) was used in flow cytometry on mouse samples at 1:100 (fig s19d). Nat Commun (2020) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig s19a
BioLegend Cd4 antibody (Biolegend, 116011) was used in flow cytometry on mouse samples (fig s19a). Nat Commun (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1a, s4e
BioLegend Cd4 antibody (Biolegend, GK 1.5) was used in flow cytometry on mouse samples (fig s1a, s4e). J Neuroinflammation (2020) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 5f
BioLegend Cd4 antibody (BioLegend, 100559) was used in immunohistochemistry - frozen section on mouse samples (fig 5f). Cell (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s12a
BioLegend Cd4 antibody (Biolegend, 100412) was used in flow cytometry on mouse samples (fig s12a). Nat Commun (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 4s1
BioLegend Cd4 antibody (BioLegend, 100433) was used in flow cytometry on mouse samples at 1:200 (fig 4s1). elife (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig s1). Sci Adv (2019) ncbi
rat monoclonal (RM4-5)
  • mass cytometry; mouse; 3 ug/ml; loading ...; fig 5d
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in mass cytometry on mouse samples at 3 ug/ml (fig 5d). Science (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2d
BioLegend Cd4 antibody (Biolegend, 100552) was used in flow cytometry on mouse samples (fig 2d). Cell Rep (2019) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 4d
BioLegend Cd4 antibody (Biolegend, RM4-4) was used in flow cytometry on mouse samples (fig 4d). BMC Immunol (2019) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; 1:400; fig s4a
BioLegend Cd4 antibody (Biolegend, RM4-4) was used in flow cytometry on mouse samples at 1:400 (fig s4a). Cell Rep (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:70; loading ...; fig 3g
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples at 1:70 (fig 3g). Cancer Sci (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig e2a, e5h
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig e2a, e5h). Nature (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a, 2f
BioLegend Cd4 antibody (BioLegend, 100432) was used in flow cytometry on mouse samples (fig 2a, 2f). J Exp Med (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3a
BioLegend Cd4 antibody (BioLegend, 100548) was used in flow cytometry on mouse samples (fig 3a). Science (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig e3d
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig e3d). Nature (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, 100552) was used in flow cytometry on mouse samples at 1:100 (fig 2a). elife (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig e10
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig e10). Nature (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (BioLegend, 100407) was used in flow cytometry on mouse samples (fig 2a). Cell Rep (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (BioLegend, 100536) was used in flow cytometry on mouse samples (fig 2a). Cell Rep (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2c
BioLegend Cd4 antibody (Biolegend, 100559) was used in flow cytometry on mouse samples (fig s2c). Cell (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; fig 4d
BioLegend Cd4 antibody (Biolegend, 100540) was used in flow cytometry on mouse samples at 1:400 (fig 4d). Nat Commun (2019) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 3a, 3e, 4a
BioLegend Cd4 antibody (BioLegend, RM 4-4) was used in flow cytometry on mouse samples (fig 3a, 3e, 4a). J Clin Invest (2019) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 1d
BioLegend Cd4 antibody (Biolegend, 100536) was used in immunohistochemistry - frozen section on mouse samples (fig 1d). Cell (2019) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig s1b
BioLegend Cd4 antibody (Biolegend, 116008) was used in flow cytometry on mouse samples (fig s1b). Cell (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1c
BioLegend Cd4 antibody (BioLegend, 100561) was used in flow cytometry on mouse samples (fig s1c). Cell (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1d
BioLegend Cd4 antibody (Biolegend, 100548) was used in flow cytometry on mouse samples (fig s1d). Cell (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig 3b
BioLegend Cd4 antibody (Biolegend, 100536) was used in flow cytometry on mouse samples at 1:200 (fig 3b). Nat Commun (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 3e
BioLegend Cd4 antibody (BioLegend, 100412) was used in flow cytometry on mouse samples at 1:100 (fig 3e). Nat Commun (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1b
BioLegend Cd4 antibody (Biolegend, RM 4-5) was used in flow cytometry on mouse samples (fig 1b). JCI Insight (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; fig e7b
BioLegend Cd4 antibody (Biolegend, 100411) was used in flow cytometry on mouse samples at 1:100 (fig e7b). Nature (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2e
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 2e). J Clin Invest (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 6b
BioLegend Cd4 antibody (BioLegend, 100408) was used in flow cytometry on mouse samples (fig 6b). Immunity (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig s5a, s6a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig s5a, s6a). Science (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; fig s7e
BioLegend Cd4 antibody (Biolegend, 100428) was used in flow cytometry on mouse samples at 1:100 (fig s7e). Cancer Cell (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s5a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig s5a). Aging Cell (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:2000; loading ...; fig e5c
BioLegend Cd4 antibody (BioLegend, 100516) was used in flow cytometry on mouse samples at 1:2000 (fig e5c). Nature (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1b
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 1b). Nature (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3a, 3b, 4g, s7f
BioLegend Cd4 antibody (BioLegend, 100548) was used in flow cytometry on mouse samples (fig 3a, 3b, 4g, s7f). Immunity (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3a, 3b, 4g, s7f
BioLegend Cd4 antibody (BioLegend, 100412) was used in flow cytometry on mouse samples (fig 3a, 3b, 4g, s7f). Immunity (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 3a). Proc Natl Acad Sci U S A (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 1a). Sci Rep (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1e
BioLegend Cd4 antibody (Biolegend, 100421) was used in flow cytometry on mouse samples (fig s1e). Cell (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3b
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 3b). Front Immunol (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s7
BioLegend Cd4 antibody (Biolegend, 100423) was used in flow cytometry on mouse samples (fig s7). Sci Rep (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig 1d, 2a
BioLegend Cd4 antibody (Biolegend, 100543) was used in flow cytometry on mouse samples at 1:100 (fig 1d, 2a). Nat Commun (2019) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig s6k
BioLegend Cd4 antibody (Biolegend, 116007) was used in flow cytometry on mouse samples (fig s6k). Cell (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; human; loading ...; fig s7a
BioLegend Cd4 antibody (Biolegend, 100455) was used in flow cytometry on human samples (fig s7a). Cell (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s6d
BioLegend Cd4 antibody (Biolegend, 100447) was used in flow cytometry on mouse samples (fig s6d). Cell (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 2a). J Clin Invest (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig s2o
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples at 1:100 (fig s2o). Nature (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s7c
BioLegend Cd4 antibody (BioLegend, 100527) was used in flow cytometry on mouse samples (fig s7c). Cell Metab (2019) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 3s1b
BioLegend Cd4 antibody (BioLegend, 116014) was used in flow cytometry on mouse samples (fig 3s1b). elife (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s6d
BioLegend Cd4 antibody (Biolegend, 100552) was used in flow cytometry on mouse samples (fig s6d). Cell (2019) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 3e
BioLegend Cd4 antibody (Biolegend, GK 1.5) was used in immunohistochemistry - frozen section on mouse samples (fig 3e). Cell (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s4c
BioLegend Cd4 antibody (Biolegend, 100536) was used in flow cytometry on mouse samples (fig s4c). Cell Rep (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 6s1
BioLegend Cd4 antibody (Biolegend, 100414) was used in flow cytometry on mouse samples at 1:100 (fig 6s1). elife (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 2e
BioLegend Cd4 antibody (BioLegend, 100411) was used in flow cytometry on mouse samples at 1:200 (fig 2e). elife (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:50; loading ...; fig s3d
BioLegend Cd4 antibody (BioLegend, 100510) was used in flow cytometry on mouse samples at 1:50 (fig s3d). Cell (2019) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 3b
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in immunohistochemistry - frozen section on mouse samples (fig 3b). J Exp Med (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4b
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 4b). J Exp Med (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, 100432) was used in flow cytometry on mouse samples (fig 2a). Immunity (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3f
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 3f). J Immunol (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4f
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 4f). Nature (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig e1b, e1c, e1d
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig e1b, e1c, e1d). Nature (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2c, 2d
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 2c, 2d). Front Immunol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3e
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 3e). Int J Cancer (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s5b
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig s5b). Science (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3a
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 3a). Nature (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2a
BioLegend Cd4 antibody (Biolegend, GK15) was used in flow cytometry on mouse samples (fig 2a). Nature (2019) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 6g
BioLegend Cd4 antibody (Biolegend, 100402) was used in immunohistochemistry - paraffin section on mouse samples (fig 6g). Cell Rep (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, 100526) was used in flow cytometry on mouse samples (fig 2a). Cell Rep (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3b
BioLegend Cd4 antibody (Biolegend, 100531) was used in flow cytometry on mouse samples (fig 3b). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4a
BioLegend Cd4 antibody (BioLegend, 100510) was used in flow cytometry on mouse samples (fig 4a). J Cyst Fibros (2019) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 3a, 3f, s2b
BioLegend Cd4 antibody (BioLegend, RM4-4) was used in flow cytometry on mouse samples (fig 3a, 3f, s2b). JCI Insight (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1c
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1c). Proc Natl Acad Sci U S A (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1c
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 1c). Transl Oncol (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a, 2c
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1a, 2c). Proc Natl Acad Sci U S A (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig s2a). PLoS ONE (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1a). J Exp Med (2018) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig s6d
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in immunohistochemistry - paraffin section on mouse samples (fig s6d). Cell Metab (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 2a). J Clin Invest (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 4a). J Neuroinflammation (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 2.5 ug/ml; loading ...; fig s4
BioLegend Cd4 antibody (Biolegend, 100429) was used in flow cytometry on mouse samples at 2.5 ug/ml (fig s4). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1e
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1e). J Neuroinflammation (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...; fig 1c
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples at 1:400 (fig 1c). J Exp Med (2018) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; 0.2 mg/ml; loading ...; fig 3e
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in immunohistochemistry on mouse samples at 0.2 mg/ml (fig 3e). Nat Commun (2018) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 1b
BioLegend Cd4 antibody (Biolegend, 116011) was used in flow cytometry on mouse samples (fig 1b). Immunity (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig e8a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig e8a). Nature (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2a
BioLegend Cd4 antibody (Biolegend, 100434) was used in flow cytometry on mouse samples (fig s2a). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3c
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 3c). J Exp Med (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human; loading ...; fig s1a
BioLegend Cd4 antibody (Biolegend, 100546) was used in flow cytometry on human samples (fig s1a). Immunity (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s19
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig s19). J Clin Invest (2018) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; loading ...; fig 3e
BioLegend Cd4 antibody (Biolegend, 100406) was used in immunohistochemistry on mouse samples (fig 3e). J Clin Invest (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig e4b
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig e4b). Nature (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1a
  • western blot; mouse; fig 1a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1a) and in western blot on mouse samples (fig 1a). J Exp Med (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3g
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 3g). Nat Med (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:150; loading ...; fig s3a
BioLegend Cd4 antibody (BioLegend, 100429) was used in flow cytometry on mouse samples at 1:150 (fig s3a). Nat Commun (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2f
BioLegend Cd4 antibody (BioLegend, 100424) was used in flow cytometry on mouse samples (fig 2f). Nat Immunol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1e
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 1e). Oncoimmunology (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (BioLegend, 100528) was used in flow cytometry on mouse samples (fig 2a). PLoS Pathog (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 2a). Eur J Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1f
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1f). Cell Rep (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s11
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig s11). Oncoimmunology (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1b
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 1b). Front Immunol (2018) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig s1a
BioLegend Cd4 antibody (Biolegend, 116005) was used in flow cytometry on mouse samples (fig s1a). Cell (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s12a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig s12a). Science (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:300; loading ...; fig s1a
BioLegend Cd4 antibody (BioLegend, 100547) was used in flow cytometry on mouse samples at 1:300 (fig s1a). PLoS Biol (2018) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; 2.5 mg/ml; loading ...; fig s5c
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in immunohistochemistry - frozen section on mouse samples at 2.5 mg/ml (fig s5c). J Cell Biol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5c
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 5c). Cell Metab (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s4a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig s4a). J Cell Biol (2018) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; 1:500; loading ...; fig 3c
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in immunohistochemistry - frozen section on mouse samples at 1:500 (fig 3c). Nat Commun (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 5a). J Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig s2). Front Microbiol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 9a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 9a). J Exp Med (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 1a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples at 1:100 (fig 1a). Nat Immunol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 1a). Proc Natl Acad Sci U S A (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s3a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig s3a). J Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2a
BioLegend Cd4 antibody (BioLegend, 100540) was used in flow cytometry on mouse samples (fig 2a). Cell (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s4
BioLegend Cd4 antibody (BioLegend, 100434) was used in flow cytometry on mouse samples (fig s4). J Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3c
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 3c). Science (2018) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; 1:100; loading ...; fig 3a
BioLegend Cd4 antibody (Biolegend, 116014) was used in flow cytometry on mouse samples at 1:100 (fig 3a). Development (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (Biolegend, 100447) was used in flow cytometry on mouse samples (fig 2a). J Immunol (2018) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 5b
BioLegend Cd4 antibody (Biolegend, RM4-4) was used in flow cytometry on mouse samples (fig 5b). J Virol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 9f
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 9f). J Exp Med (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 1a). J Exp Med (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:1000; loading ...; fig s4b
BioLegend Cd4 antibody (BioLegend, 100422) was used in flow cytometry on mouse samples at 1:1000 (fig s4b). J Clin Invest (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2a
BioLegend Cd4 antibody (BioLegend, 100451) was used in flow cytometry on mouse samples (fig 2a). Cell (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5d
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 5d). Nat Immunol (2018) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; loading ...; fig s5
BioLegend Cd4 antibody (BioLegend, H129.19) was used in flow cytometry on mouse samples (fig s5). Nat Commun (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s5b
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig s5b). Proc Natl Acad Sci U S A (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3f
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 3f). Science (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5a
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 5a). Eur J Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1k
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1k). J Exp Med (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1b
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1b). J Immunol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4b
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 4b). J Immunol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig s2a). Science (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s11
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s11). Science (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 4a). Front Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s10e
BioLegend Cd4 antibody (BioLegend, 100510) was used in flow cytometry on mouse samples (fig s10e). Nature (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 2). Exp Neurol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 2d
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig 2d). Nat Commun (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s2
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig s2). J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s4a
BioLegend Cd4 antibody (BioLegend, 100411) was used in flow cytometry on mouse samples (fig s4a). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 1a). Nature (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1f
BioLegend Cd4 antibody (Biolegend, 100412) was used in flow cytometry on mouse samples (fig 1f). Sci Rep (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to study the involvement of RANKL in decidual M2 macrophage polarization, BioLegend Cd4 antibody (Biolegend, 100405) was used in flow cytometry on mouse samples . Cell Death Dis (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1d
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 1d). Eur J Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s5d
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig s5d). Nature (2017) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 1b
BioLegend Cd4 antibody (BioLegend, RM4-4) was used in flow cytometry on mouse samples (fig 1b). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1f
BioLegend Cd4 antibody (BioLegend, 100531) was used in flow cytometry on mouse samples (fig 1f). J Clin Invest (2017) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; 1:200; loading ...; fig s7c
BioLegend Cd4 antibody (Biolegend, 116006) was used in flow cytometry on mouse samples at 1:200 (fig s7c). Nat Cell Biol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig s1d
BioLegend Cd4 antibody (BioLegend, 100428) was used in flow cytometry on mouse samples at 1:200 (fig s1d). Leukemia (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4c
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 4c). Nature (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...; fig s1a
BioLegend Cd4 antibody (Biolegend, RM4−5) was used in flow cytometry on mouse samples at 1:400 (fig s1a). Nat Commun (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1b
In order to study the role of lysine acetyltransferase GCN5 in iNKT cell development and its mechanism, BioLegend Cd4 antibody (BioLegend, 100433) was used in flow cytometry on mouse samples (fig 1b). Cell Rep (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s4a
In order to evaluate mouse models of hepacivirus infection, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig s4a). Science (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s4a
In order to evaluate mouse models of hepacivirus infection, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s4a). Science (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2k
In order to investigate the role of dopamine in B cell maturation in germinal centres, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig s2k). Nature (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 4a). Cancer Res (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3h
In order to characterize the regulatory T cells expressing T-bet transcriptional factor, BioLegend Cd4 antibody (Biolegend, 100548) was used in flow cytometry on mouse samples (fig 3h). Nature (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig s1a). Eur J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:400; loading ...; fig s3a
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:400 (fig s3a). Nat Commun (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1c
In order to investigate the effect of lymphatic endothelial S1P on mitochondrial function and naive T cell survival, BioLegend Cd4 antibody (Biolegend, RMA4-5) was used in flow cytometry on mouse samples (fig 1c). Nature (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1b
In order to characterize murine monocytes through transcriptome and genome analyses, BioLegend Cd4 antibody (BioLegend, 100411) was used in flow cytometry on mouse samples (fig 1b). Immunity (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2b
In order to investigate the role of the E-Id protein axis in the innate and adaptive lymphoid development, BioLegend Cd4 antibody (BioLegend, 100528) was used in flow cytometry on mouse samples (fig 2b). Immunity (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1h
In order to investigate the role of IL-4Ralpha-mediated macrophage activation promote in lung and liver wound repair, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig s1h). Science (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 1a). J Exp Med (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2a
In order to investigate the role of endothelial TLR4 and the microbiome in cerebral cavernous malformations, BioLegend Cd4 antibody (Biolegend, 100406) was used in flow cytometry on mouse samples (fig s2a). Nature (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1g
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1g). J Allergy Clin Immunol (2018) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig st1a
In order to investigate the similarity between interferon gamma-induced tumor ischemia and physiological blood vessel regression, BioLegend Cd4 antibody (BioLegend, 116006) was used in flow cytometry on mouse samples (fig st1a). Nature (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4e
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 4e). J Exp Med (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4f
In order to study the involvement of endocannabinoid system in intestinal immune homeostasis, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 4f). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1b
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 1b). J Exp Med (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3a
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 3a). Nat Med (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 2a). J Leukoc Biol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1b
In order to explore how the different Fcgamma receptors expressed on dendritic cells affect the initiation of T cell responses, BioLegend Cd4 antibody (biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 1b). J Exp Med (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:250; loading ...; fig 4a
In order to generate a technique for adeno-associated virus-based passive immunization against the effects of methamphetamine, BioLegend Cd4 antibody (BioLegend, 100411) was used in flow cytometry on mouse samples at 1:250 (fig 4a). Sci Rep (2017) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 1i
In order to assess the functionality of aged marginal zone B cells, BioLegend Cd4 antibody (biolegend, RM4?\5) was used in immunohistochemistry - frozen section on mouse samples (fig 1i). Immunology (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s8a
In order to investigate how aging affects transcriptional dynamics in naive and CD4 positive T cells, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig s8a). Science (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
BioLegend Cd4 antibody (BioLegend, CK1.5) was used in flow cytometry on mouse samples (fig 1a). J Exp Med (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...
In order to show that TLR4 signals through the BCR leading to activation of SYK, ERK, and AKT as well as through MYD88 leading to activation of NFkappaB, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples . J Exp Med (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
In order to clarify the mechanisms by which miR-21 contributes to oncogenesis, BioLegend Cd4 antibody (BioLegend, 100405) was used in flow cytometry on mouse samples . Oncogene (2017) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; loading ...
BioLegend Cd4 antibody (BioLegend, H129.19) was used in flow cytometry on mouse samples . J Exp Med (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5c
In order to find that TLR3, 7 and 9 deficiencies on host cells result in complete tumor regression and induction of anti-tumor immunity, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 5c). Nat Commun (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s4a
In order to investigate the use of red blood cells expressing disease-associated autoantigenas a means of inducing antigen-specific tolerance, BioLegend Cd4 antibody (BioLegend, 100516) was used in flow cytometry on mouse samples (fig s4a). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 6e
In order to investigate the role of adiponectin in a mouse model of colitis, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 6e). J Biol Chem (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2h
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s2h). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1b
In order to study anti-cancer immunity after Treg depletion in mice., BioLegend Cd4 antibody (biolegend, 100434) was used in flow cytometry on mouse samples (fig 1b). Immun Inflamm Dis (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 6j
In order to explore the contribution of epithelial cells to systemic sclerosis pathogenesis, BioLegend Cd4 antibody (BioLegend, 100515) was used in flow cytometry on mouse samples (fig 6j). J Exp Med (2017) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 1b
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in immunohistochemistry - frozen section on mouse samples (fig 1b). Immunology (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4d
In order to assess the contributions of single-strand annealing factors HR Rad52 and translesion DNA polymerase q to CSR, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 4d). Nat Commun (2017) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; loading ...; fig 2b
In order to evaluate host immune-mediated cell rejection in a retinal transplantation model, BioLegend Cd4 antibody (Biolegend, 100403) was used in immunohistochemistry on mouse samples (fig 2b). Cell Stem Cell (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3b
In order to explain several useful methods to characterize not only DCs but also other immune cells in steady state and atherosclerotic aorta, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 3b). Methods Mol Biol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s6a
In order to find microenvironmental regulators of metastatic colonization, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s6a). Nature (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2b
In order to assess whether human T-cell leukemia virus type 1 bZIP factor enhances the proliferation of expressing T cells after stimulation via the T-cell receptor, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 2b). PLoS Pathog (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:400; loading ...; fig 5i
In order to explore the role of Axl in promoting a suppressive myeloid microenvironment in response to ionizing radiation therapy in combination with checkpoint immunotherapy, BioLegend Cd4 antibody (Biolegend, 100406) was used in flow cytometry on mouse samples at 1:400 (fig 5i). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s3b
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig s3b). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse
  • flow cytometry; mouse; loading ...; fig 4b
In order to elucidate how P2X7 regulates the contraction of intestinal CD4 positive effector T cells, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in immunohistochemistry - frozen section on mouse samples and in flow cytometry on mouse samples (fig 4b). Mucosal Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3c
In order to determine the effect of a high salt diet on intestinal immunity and the risk of inflammatory bowel disease, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 3c). Oncotarget (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1b
In order to show that parasite-specific CD8 positive T cell-induced fatal vascular breakdown and subsequent neuronal death in an animal model of cerebral malaria, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1b). PLoS Pathog (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1b
In order to find a role for RAB43 in cross-presentation by classical dendritic cells, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1b). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 4a). J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5a
In order to suggest that persistent immune activation causes impairment of lymphocytes to respond to chemotactic stimuli, preventing their trafficking from the blood stream to peripheral organs, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 5a). J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3d
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 3d). Cancer Res (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s2b
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s2b). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1G
In order to study epigenetic heterogeneity in hematopoietic stem cells., BioLegend Cd4 antibody (Biolegend, 100508) was used in flow cytometry on mouse samples (fig 1G). Cell (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4a
In order to explore the role of NR4A3 in CD103+ migratory dendritic cells and CCR7-dependent cell migration, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 4a). J Clin Invest (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1b
In order to study the role of TMEM16F in limiting T cell responses in mice infected with virus, BioLegend Cd4 antibody (BioLegend, 100531) was used in flow cytometry on mouse samples (fig 1b). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:800; loading ...; fig 6c
In order to characterize malaria-induced splenic monocyte-derived dendritic cells, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples at 1:800 (fig 6c). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4b
In order to use MRI to track iron oxide nanoparticles in vivo, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 4b). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 6f
In order to study the contribution of T follicular helper cells to islet autoimmunity, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 6f). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s5b
In order to characterize systemic antimicrobial CD4 positive T cell reactivity, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s5b). Immunology (2017) ncbi
rat monoclonal (H129.19)
  • flow cytometry; human; loading ...; fig 5
BioLegend Cd4 antibody (BioLegend, H129) was used in flow cytometry on human samples (fig 5). Nature (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:50; loading ...; fig s2e
In order to describe how amino acids and Lamtor1 regulate macrophage polarization, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples at 1:50 (fig s2e). Nat Commun (2016) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 2b
In order to study T cell migration in inflammatory demyelinating lesions confined to optic nerves and spinal cord, BioLegend Cd4 antibody (BioLegend, RM4-4) was used in flow cytometry on mouse samples (fig 2b). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1c
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1c). J Exp Med (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 6a
In order to investigate allergic responses to food allergens in WASP-deficient animals, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 6a). J Clin Invest (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 2). Sci Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s9a
In order to develop and characterize a murine model of hepatitis A virus, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig s9a). Science (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4
BioLegend Cd4 antibody (BioLegend, 100516) was used in flow cytometry on mouse samples (fig 4). Front Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig S2
In order to study the effect of IL-10 signaling in infectious neurological diseases, BioLegend Cd4 antibody (BioLegend, clone GK1.5) was used in flow cytometry on mouse samples (fig S2). PLoS ONE (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; rat; fig 6
BioLegend Cd4 antibody (Biolegend, 100421) was used in flow cytometry on rat samples (fig 6). J Neuroinflammation (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
In order to elucidate the role of Tbet in acute lung injury, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 2a). J Leukoc Biol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...
In order to find that leukocyte cell-derived chemotaxin 2 promotes expansion and mobilization of hematopoietic stem cells, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples at 1:200. Nat Commun (2016) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; 1:100; fig 3
BioLegend Cd4 antibody (BioLegend, 130308) was used in flow cytometry on mouse samples at 1:100 (fig 3). Exp Ther Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3a
In order to probe how neutrophil extracellular traps modulate the rheumatoid arthritis-associated autoimmune response, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 3a). Eur J Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; tbl 1
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples at 1:200 (tbl 1). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 3c
In order to test if a combination of LYN and Aire defects result in organ-specific autoimmunity, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 3c). J Clin Invest (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4g
In order to elucidate how Zfp36l1 and Zfp36l2 regulate the thymic beta-Selection checkpoint, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 4g). J Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:50; fig 3
BioLegend Cd4 antibody (Biolegend, 100408) was used in flow cytometry on mouse samples at 1:50 (fig 3). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 8c
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in immunohistochemistry - frozen section on mouse samples (fig 8c). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 2a). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 2i
In order to use Disheveled knockout mice to study the role of Wnt signaling in gastrointestinal homeostasis, BioLegend Cd4 antibody (BioLegend, 100532) was used in immunohistochemistry - frozen section on mouse samples (fig 2i). JCI Insight (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a
BioLegend Cd4 antibody (biolegend, 100510) was used in flow cytometry on mouse samples (fig 1a). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 3e
In order to report that MARCH 8 controls surface expression of major histocompatibility complex class II on thymic epithelial cells, BioLegend Cd4 antibody (BioLegend, RM4-4) was used in flow cytometry on mouse samples (fig 3e). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; fig 3
BioLegend Cd4 antibody (Biolegend, 100531) was used in flow cytometry on mouse samples at 1:200 (fig 3). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...; tbl s2
In order to identify and characterize follicular cytotoxic T cells, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples at 1:400 (tbl s2). Nat Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5d
In order to analyze the effects of beta-lactam-plus-macrolide therapy using a lethal pneumococcal pneumonia mouse infection model, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 5d). Antimicrob Agents Chemother (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4i
In order to study how IL-17 and IFN-gamma control Staphylococcus aureus infection, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 4i). Am J Pathol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 6a
In order to elucidate how hematopoietic ANGPTL4 deficiency increases atherogenesis, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 6a). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5a
In order to examine the impact of emergency granulopoiesis on T and B cell function, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 5a). J Exp Med (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5c
BioLegend Cd4 antibody (Biolegend, 100408) was used in flow cytometry on mouse samples (fig 5c). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1f
In order to explain how glial cells impact ILC3-derived IL-22, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 1f). Nature (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:300; loading ...; fig 4e
In order to investigate the stromal contribution to the microenvironment of tumor-draining lymph nodes, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:300 (fig 4e). Nat Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5b
In order to investigate the role of general control non-derepressible 2 in resolving autoimmune neuroinflammation, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 5b). J Neuroimmunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3a
In order to assess the contribution of interferon-induced transmembrane protein 3 to West Nile virus infection, BioLegend Cd4 antibody (Biolegend, 100437) was used in flow cytometry on mouse samples (fig 3a). J Virol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1a
In order to elucidate the molecular mechanisms that regulate doxorubicin-mediated cell death of myeloid-derived suppressor cells, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig s1a). Oncogene (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1a
In order to compare extravasation of activated CD4+ and CD8+ T cells across primary mouse brain microvascular endothelial cells, BioLegend Cd4 antibody (Biolegend, 100538) was used in flow cytometry on mouse samples (fig 1a). Eur J Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig 2c
In order to find that coagulation factor XII modulates immune responses, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples at 1:200 (fig 2c). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
In order to investigate how dopamine receptor D3 signaling affects the balance of effector T cells, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 2a). J Immunol (2016) ncbi
rat monoclonal (GK1.5)
BioLegend Cd4 antibody (Biolegend, 100424) was used . Sci Rep (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 5). Sci Rep (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 3
BioLegend Cd4 antibody (Biolegend, 100434) was used in flow cytometry on mouse samples (fig 3). J Clin Invest (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 1a
In order to demonstrate that Ndfip1/Ndfip2 regulate cross talk between T-cell receptor and cytokine signaling pathways, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig 1a). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig st1
In order to study how bone marrow endothelial cells regulate bone marrow stem cell maintenance and leukocyte trafficking, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig st1). Nature (2016) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; 1:100; fig 1
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in immunohistochemistry on mouse samples at 1:100 (fig 1). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples . Oncoimmunology (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s3a
In order to report how the parallel networks of necroptosis-induced CXCL1 and Mincle signaling promote pancreatic ductal adenocarcinoma progression, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s3a). Nature (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3c
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 3c). Mucosal Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; fig 2
BioLegend Cd4 antibody (BioLegend, 100528) was used in flow cytometry on mouse samples at 1:100 (fig 2). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s3
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig s3). Oncotarget (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
BioLegend Cd4 antibody (BioLegend, 100510) was used in flow cytometry on mouse samples (fig 2). Mucosal Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a, s5c, s5b
In order to report that the maternal microbiota shapes the offspring's immune system, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 1a, s5c, s5b). Science (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 6
In order to study the requisite for the function of regulatory T cells known as phosphatase PP2A, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 6). Nat Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 7d
In order to observe that Suppressor of Cytokine Signaling 3-deficient bone marrow-derived macrophages display enhanced and prolonged expression of pro-inflammatory M1 cytokines when exposed to glioma tumor cell conditioned medium in vitro, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 7d). Oncotarget (2016) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; loading ...
In order to elucidate the role of B cells in the initiation of central nervous system autoimmunity, BioLegend Cd4 antibody (Biolegend, H129.19) was used in flow cytometry on mouse samples . Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...
In order to elucidate the role of B cells in the initiation of central nervous system autoimmunity, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples . Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 5a). Gastroenterology (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
In order to study how a novel multi-drug metronomic chemotherapy can delay tumor growth in mice significantly, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 5). J Transl Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 5). PLoS ONE (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2a
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 2a). Nucleic Acids Res (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples . Nature (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s13
In order to study the response of intestinal tuft cells to parasites, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s13). Science (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 1). Sci Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5a
In order to discuss models of squamous lung tumors to test therapeutic regimens, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 5a). J Thorac Oncol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1b
In order to show that Bhlhe40 expression marks encephalitogenic T helper cells and that the PTX-IL-1-Bhlhe40 pathway is active in mice with experimental autoimmune encephalomyelitis, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1b). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 2). Sci Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; fig s2
BioLegend Cd4 antibody (Biolegend, 100530) was used in flow cytometry on mouse samples at 1:200 (fig s2). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2c
In order to research the role of Tim-1 and Tim-4 blockade in the atherosclerotic pathogenesis, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s2c). Arterioscler Thromb Vasc Biol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a
In order to test if T regulatory cells from mice lacking both DEF-6 and SWAP-70 have an increased capacity to become effector T regulatory cells due to altered IRF-4 activity, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1a). Arthritis Rheumatol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
In order to examine the effect of 4-methylumbelliferone treatment on experimental autoimmune encephalomyelitis, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 2). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1a
In order to study the effect of atypical protein kinase C i on asymmetric division and CD8(+) T Lymphocyte, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 1a). Sci Rep (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 3
In order to study dendritic cells in Sirt6 knock out mice, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 3). Aging (Albany NY) (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 4). PLoS Pathog (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:400; loading ...; fig 2e
In order to study the role of DCAF1 in T-cell function through p53-dependent and -independent mechanisms, BioLegend Cd4 antibody (BioLegend, 100428) was used in flow cytometry on mouse samples at 1:400 (fig 2e). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
BioLegend Cd4 antibody (biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 2). Theranostics (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to study hepatocellular carcinoma and ectopic lymphoid structures function as microniches for tumor progenitor cells, BioLegend Cd4 antibody (BioLegend, 100536) was used in flow cytometry on mouse samples (fig 2). Nat Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
  • immunohistochemistry; mouse; fig 1
In order to research skin-resident memory T cell homeostasis and lymphoma mediated by hair follicle-derived IL-7 and IL-15, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 1) and in immunohistochemistry on mouse samples (fig 1). Nat Med (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 5). Eur J Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to study the life span of individual memory B cells, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples . J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on human samples . Science (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1c
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1c). Arthritis Rheumatol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s3
In order to determine how induced arthritis can be effectively treated by CTRP6, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig s3). Nat Commun (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s7
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig s7). elife (2015) ncbi
rat monoclonal (RM4-5)
BioLegend Cd4 antibody (BioLegend, 100515) was used . Mol Med Rep (2015) ncbi
rat monoclonal (RM4-5)
  • ELISA; mouse; fig 2
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in ELISA on mouse samples (fig 2). Mucosal Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; fig 1
BioLegend Cd4 antibody (BioLegend, #100506) was used in flow cytometry on mouse samples at 1:100 (fig 1). Exp Ther Med (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
In order to determine if therapeutic antiviral T cells eliminate viral load in the brain of mice persistently infected from birth with lymphocytic choriomeningitis virus without causing blood-brain barrier breakdown or tissue damage, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 2a). J Exp Med (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples . Front Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 10 ug/ml; fig 7a
In order to propose that thymoproteasomes contribute to the positive selection of CD8 positive T cells by preferentially producing low-affinity T-cell receptor ligand peptides, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples at 10 ug/ml (fig 7a). Nat Commun (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
In order to examine the contribution of stromal cells to non-small cell lung cancer, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples (fig 2). PLoS ONE (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s1
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig s1). PLoS ONE (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 6
In order to study CD47 knock out mice infected with Candida albicans, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 6). PLoS ONE (2015) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; fig 4
BioLegend Cd4 antibody (BioLegend, 100534) was used in immunohistochemistry on mouse samples (fig 4). J Virol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, 100531) was used in flow cytometry on mouse samples . J Leukoc Biol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study the effect of ERK1/2 and ERK5 activation on BAFF-induced B cell survival, BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples . J Exp Med (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:300; fig 2
BioLegend Cd4 antibody (Biolegend, 100528) was used in flow cytometry on mouse samples at 1:300 (fig 2). Nat Commun (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 2). J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to elucidate the role of Treg during T. gondii infection, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples . Microbes Infect (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:150
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples at 1:150. PLoS ONE (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 3a). Tuberculosis (Edinb) (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 7d
BioLegend Cd4 antibody (Biolegend, 100548) was used in flow cytometry on mouse samples (fig 7d). Proc Natl Acad Sci U S A (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s4
BioLegend Cd4 antibody (Biolegend, 100408) was used in flow cytometry on mouse samples (fig s4). Proc Natl Acad Sci U S A (2015) ncbi
rat monoclonal (GK1.5)
  • immunocytochemistry; mouse; 1:800
In order to study the role of astroglial cx43 in immune quiescence of the brain, BioLegend Cd4 antibody (Biolegend, 100404) was used in immunocytochemistry on mouse samples at 1:800. J Neurosci (2015) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse
In order to report that AMPK regulates protein phosphatase activity to control the of survival and function of CD8+ T cells, thus regulating immune surveillance of tumors, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in blocking or activating experiments on mouse samples . Oncotarget (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to report that AMPK regulates protein phosphatase activity to control the of survival and function of CD8+ T cells, thus regulating immune surveillance of tumors, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples . Oncotarget (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:8000; fig 4
BioLegend Cd4 antibody (BioLegend, 100515) was used in flow cytometry on mouse samples at 1:8000 (fig 4). Immun Ageing (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:400; fig 1
BioLegend Cd4 antibody (Biolegend, 100422) was used in flow cytometry on mouse samples at 1:400 (fig 1). Nat Commun (2015) ncbi
rat monoclonal (GK1.5)
  • western blot; mouse; 1:100; fig 5,6
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in western blot on mouse samples at 1:100 (fig 5,6). Nat Commun (2015) ncbi
rat monoclonal (H129.19)
  • flow cytometry; rat
BioLegend Cd4 antibody (BioLegend, 130308) was used in flow cytometry on rat samples . Transpl Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, 100539) was used in flow cytometry on mouse samples . Anticancer Res (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200
In order to report that autophaghy regulates NFkapaB activity through A20 sequestration, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples at 1:200. Nat Commun (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples . Sci Rep (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 8f
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 8f). J Virol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3b
In order to investigate the effect of IL-7 and anti-PD-1 treatment in sepsis model followed by Candida albicans infection, BioLegend Cd4 antibody (Biolegend, 100516) was used in flow cytometry on mouse samples (fig 3b). Shock (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 1). Nat Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1e
In order to investigate the role of Jmjd3 in T-cell differentiation, BioLegend Cd4 antibody (biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 1e). Nat Commun (2014) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, Gk1.5) was used in immunohistochemistry - frozen section on mouse samples and in flow cytometry on mouse samples . J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
BioLegend Cd4 antibody (Biolegend, clone RM4-5) was used in flow cytometry on mouse samples (fig 5). Eur J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, 100410) was used in flow cytometry on mouse samples . J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4
BioLegend Cd4 antibody (Biolegend, 100531) was used in flow cytometry on mouse samples (fig 4). EMBO Mol Med (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples . J Clin Invest (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 6a
BioLegend Cd4 antibody (biolegend, 100405) was used in flow cytometry on mouse samples (fig 6a). Appl Microbiol Biotechnol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3a
In order to explore the interaction between IL-2 and IL-7 in CD4 T-cell memory generation, BioLegend Cd4 antibody (biolegend, RM4.5) was used in flow cytometry on mouse samples (fig 3a). Nat Commun (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to examine the role of GPR18 in intestinal intraepithelial lymphocytes, BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples . J Exp Med (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s1
BioLegend Cd4 antibody (BioLegend, 100412) was used in flow cytometry on mouse samples (fig s1). J Cereb Blood Flow Metab (2015) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in immunohistochemistry - frozen section on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (GK1.5)
BioLegend Cd4 antibody (BioLegend, GK1.5) was used . J Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples at 1:200. Cancer Res (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples . Cell Res (2014) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; fig 1
  • flow cytometry; mouse; fig 4
BioLegend Cd4 antibody (Biolegend, RM4.5) was used in immunohistochemistry - frozen section on mouse samples (fig 1) and in flow cytometry on mouse samples (fig 4). Nat Immunol (2014) ncbi
rat monoclonal (RM4-5)
BioLegend Cd4 antibody (Biolegend, RM4-5) was used . PLoS Genet (2014) ncbi
rat monoclonal (GK1.5)
BioLegend Cd4 antibody (Biolegend, 100411) was used . J Mol Cell Cardiol (2014) ncbi
rat monoclonal (GK1.5)
BioLegend Cd4 antibody (BioLegend, GK1.5) was used . Nat Commun (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples at 1:100. Nat Commun (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples . Dis Model Mech (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig e1b
In order to discuss how IgE titers mediate food-induced anaphylaxis, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig e1b). J Allergy Clin Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; 150 ug/mice
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in blocking or activating experiments on mouse samples at 150 ug/mice. PLoS ONE (2014) ncbi
rat monoclonal (GK1.5)
BioLegend Cd4 antibody (BioLegend, GK1.5) was used . J Exp Med (2014) ncbi
rat monoclonal (GK1.5)
BioLegend Cd4 antibody (BioLegend, GK1.5) was used . Cancer Immunol Res (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to investigate incomplete immunity against intracellular pathogens in neonates, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to investigate how Fbw7-mediated GATA3 regulation and CDK2-mediated phosphorylation of Cdc4 phosphodegron regulate differentiation of T-cell lineages, BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples . Mol Cell Biol (2014) ncbi
rat monoclonal (GK1.5)
BioLegend Cd4 antibody (Biolegend, 100412) was used . Proc Natl Acad Sci U S A (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4
In order to investigate how LAPTM5 negatively regulates cell surface T cell receptor expression and T-cell activation, BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 4). Immunol Cell Biol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, GK1.5) was used in flow cytometry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (RM4-4)
  • blocking or activating experiments; mouse; 10 ug/ml
BioLegend Cd4 antibody (Biolegend, RM4-4) was used in blocking or activating experiments on mouse samples at 10 ug/ml. PLoS ONE (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 1a). J Leukoc Biol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples (fig 2). J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples . Eur J Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples . Eur J Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to elucidate the immunological pathways that lead to obesity-associated asthma, BioLegend Cd4 antibody (BioLegend, 100430) was used in flow cytometry on mouse samples . Nat Med (2014) ncbi
rat monoclonal (GK1.5)
BioLegend Cd4 antibody (BioLegend, GK1.5) was used . J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BioLegend Cd4 antibody (BioLegend, RM4-5) was used in flow cytometry on mouse samples . Int Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
BioLegend Cd4 antibody (Biolegend, GK1.5) was used in flow cytometry on mouse samples (fig 1). Scand J Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; fig 9
BioLegend Cd4 antibody (BioLegend, 100434) was used in flow cytometry on mouse samples at 1:200 (fig 9). PLoS ONE (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3
BioLegend Cd4 antibody (Biolegend, RM4-5) was used in flow cytometry on mouse samples (fig 3). PLoS ONE (2013) ncbi
Invitrogen
rat monoclonal (GK1.5)
  • immunocytochemistry; mouse; 1:100; fig 3a
Invitrogen Cd4 antibody (Thermo Fisher Scientific, MA1-146) was used in immunocytochemistry on mouse samples at 1:100 (fig 3a). J Immunother Cancer (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 3a
Invitrogen Cd4 antibody (eBioscience, 11-0041-85) was used in flow cytometry on mouse samples (fig 3a). Theranostics (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s8d
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig s8d). J Immunother Cancer (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig ds1i
Invitrogen Cd4 antibody (Thermo Fisher Scientific, 11-0041-81) was used in flow cytometry on mouse samples (fig ds1i). Cell Rep (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...
Invitrogen Cd4 antibody (eBioscience, 56-0042-82) was used in flow cytometry on mouse samples at 1:400. Nat Commun (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig s5-1c
Invitrogen Cd4 antibody (Thermo Fisher Scientific, 25-0042-82) was used in flow cytometry on mouse samples at 1:100 (fig s5-1c). elife (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3b, 5b
Invitrogen Cd4 antibody (eBioscience, 11-0042-82) was used in flow cytometry on mouse samples (fig 3b, 5b). Mediators Inflamm (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; tbl 2
Invitrogen Cd4 antibody (Thermo Fisher, 48-0042-82) was used in flow cytometry on mouse samples (tbl 2). Int J Mol Sci (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s3
Invitrogen Cd4 antibody (eBioscience, 11-0041-82) was used in flow cytometry on mouse samples (fig s3). Cell Death Dis (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 2s3d
Invitrogen Cd4 antibody (eBioscience, 25-0041-82) was used in flow cytometry on mouse samples at 1:100 (fig 2s3d). elife (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig 2s2c
Invitrogen Cd4 antibody (eBioscience, 11-0042-85) was used in flow cytometry on mouse samples at 1:100 (fig 2s2c). elife (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2c
Invitrogen Cd4 antibody (eBioscience, 47-0042-82) was used in flow cytometry on mouse samples (fig 2c). Mucosal Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s3
Invitrogen Cd4 antibody (Thermo Fisher, GK1.5) was used in flow cytometry on mouse samples (fig s3). Cell Death Dis (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3b
Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 3b). BMC Res Notes (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4d, 4e, 4f
Invitrogen Cd4 antibody (eBioscience, RM4?C5) was used in flow cytometry on mouse samples (fig 4d, 4e, 4f). Arthritis Res Ther (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . J Reprod Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100
Invitrogen Cd4 antibody (Thermo Fisher Scientific, 25-0041-82) was used in flow cytometry on mouse samples at 1:100. elife (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1e
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1e). Aging Cell (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (Invitrogen, GK1.5) was used in flow cytometry on mouse samples (fig 1). Antioxidants (Basel) (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (Invitrogen, GK1.5) was used in flow cytometry on mouse samples (fig 1). Antimicrob Agents Chemother (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (Invitrogen, GK1.5) was used in flow cytometry on mouse samples (fig 1). Antioxidants (Basel) (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (Invitrogen, GK1.5) was used in flow cytometry on mouse samples (fig 1). Aging (Albany NY) (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:50; loading ...; fig s3d
Invitrogen Cd4 antibody (eBioscience, 25-0041-82) was used in flow cytometry on mouse samples at 1:50 (fig s3d). Nature (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples (fig 1). Aging Cell (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (Invitrogen, GK1.5) was used in flow cytometry on mouse samples (fig 1). Aging Cell (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1c
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1c). Mucosal Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s4
Invitrogen Cd4 antibody (Thermo Fisher, GK1.5) was used in flow cytometry on mouse samples (fig s4). Eur J Immunol (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a, 1b
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1a, 1b). BMC Immunol (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4e
Invitrogen Cd4 antibody (e-Bioscence, GK1.5) was used in flow cytometry on mouse samples (fig 4e). elife (2020) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry; mouse; 1:100; loading ...; fig 5e
Invitrogen Cd4 antibody (eBioscience, 14-9766-82) was used in immunohistochemistry on mouse samples at 1:100 (fig 5e). Nat Commun (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human; 1:100; loading ...; fig 6a
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on human samples at 1:100 (fig 6a). Front Immunol (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2b
Invitrogen Cd4 antibody (ThermoFisher, GK1.5) was used in flow cytometry on mouse samples (fig 2b). Blood Adv (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:1000; loading ...; fig 2e, 5f
Invitrogen Cd4 antibody (Thermo Fisher Scientific, 64-0042-82) was used in flow cytometry on mouse samples at 1:1000 (fig 2e, 5f). elife (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:300; loading ...; fig 4e
Invitrogen Cd4 antibody (Invitrogen, 17-0042-82) was used in flow cytometry on mouse samples at 1:300 (fig 4e). Cell Res (2020) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; 1:100; loading ...; fig 2f
Invitrogen Cd4 antibody (eBioscience, 14-0042) was used in immunohistochemistry on mouse samples at 1:100 (fig 2f). Proc Natl Acad Sci U S A (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig 3, 5
Invitrogen Cd4 antibody (Invitrogen, MCD0417) was used in flow cytometry on mouse samples at 1:100 (fig 3, 5). Nat Commun (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:1200; loading ...; fig 1s4a
Invitrogen Cd4 antibody (ThermoFisher, 46-0042-82) was used in flow cytometry on mouse samples at 1:1200 (fig 1s4a). elife (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5a
Invitrogen Cd4 antibody (eBioscience, 11-0041-82) was used in flow cytometry on mouse samples (fig 5a). Aging (Albany NY) (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human; 1:250; loading ...
Invitrogen Cd4 antibody (ThermoFisher, 56-0042-82) was used in flow cytometry on human samples at 1:250. Nature (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2d
Invitrogen Cd4 antibody (ThermoFisher, 47-0042-82) was used in flow cytometry on mouse samples (fig 2d). Cell Rep (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig 5
Invitrogen Cd4 antibody (eBioscience, 12-0042) was used in flow cytometry on mouse samples at 1:100 (fig 5). JCI Insight (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:1000; loading ...; fig 4b
Invitrogen Cd4 antibody (Thermo Fisher, RM4-5) was used in flow cytometry on mouse samples at 1:1000 (fig 4b). Cell Rep (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 5b
Invitrogen Cd4 antibody (eBioscience, 11004181) was used in flow cytometry on mouse samples at 1:200 (fig 5b). Nat Commun (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4d
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 4d). Nature (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s3a
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s3a). Nature (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1g, s3a, s3b, 2c
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1g, s3a, s3b, 2c). Sci Adv (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:250; loading ...; fig 4d
Invitrogen Cd4 antibody (eBioscience, 11-0041-81) was used in flow cytometry on mouse samples at 1:250 (fig 4d). Nat Metab (2019) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry - paraffin section; mouse; 1:200; loading ...; fig 5a
Invitrogen Cd4 antibody (eBioscience, 14-C9766) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 5a). Br J Cancer (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2k
Invitrogen Cd4 antibody (eBioscience, 17-0041-82) was used in flow cytometry on mouse samples (fig s2k). Sci Adv (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1a). J Immunol (2019) ncbi
rat monoclonal (GK1.5)
  • other; mouse; loading ...; fig 2b
Invitrogen Cd4 antibody (Invitrogen, 12-0041-82) was used in other on mouse samples (fig 2b). Int Immunol (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig e3b
Invitrogen Cd4 antibody (Invitrogen, 47-0042-82) was used in flow cytometry on mouse samples at 1:200 (fig e3b). Nature (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:2800; loading ...; fig e3i
Invitrogen Cd4 antibody (eBioscience, 13-0042-85) was used in flow cytometry on mouse samples at 1:2800 (fig e3i). Nature (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 3b
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig 3b). Nat Commun (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 0.5 ug/ml; loading ...; fig 4h
Invitrogen Cd4 antibody (ThermoFisher Scientific, 17-0042-83) was used in flow cytometry on mouse samples at 0.5 ug/ml (fig 4h). Science (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1
Invitrogen Cd4 antibody (eBioscience, 11-C004-C2-C85) was used in flow cytometry on mouse samples (fig s1). Oncoimmunology (2019) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 7e
Invitrogen Cd4 antibody (eBioscience, 4SM94) was used in immunohistochemistry - paraffin section on mouse samples (fig 7e). J Clin Invest (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3a
Invitrogen Cd4 antibody (eBioscience, 17-0042-81) was used in flow cytometry on mouse samples (fig 3a). Front Oncol (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s6b
Invitrogen Cd4 antibody (eBioscience, 11-0042-82) was used in flow cytometry on mouse samples (fig s6b). Cell (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig s8a
Invitrogen Cd4 antibody (eBioscience, 12-0041-82) was used in flow cytometry on mouse samples at 1:200 (fig s8a). Nat Commun (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig s2o
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples at 1:100 (fig s2o). Nature (2019) ncbi
rat monoclonal (RM4-5)
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used . J Exp Med (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2c
Invitrogen Cd4 antibody (Thermo Fisher Scientific, 45-0042-82) was used in flow cytometry on mouse samples (fig 2c). J Clin Invest (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1b
Invitrogen Cd4 antibody (Thermo Fisher Scientific, 12-0041-82) was used in flow cytometry on mouse samples (fig 1b). J Clin Invest (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:1000; loading ...; fig 5a
Invitrogen Cd4 antibody (eBioscience, 12-0041) was used in flow cytometry on mouse samples at 1:1000 (fig 5a). Cell (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2a). Immune Netw (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1c
Invitrogen Cd4 antibody (eBioscience, 48-041-82) was used in flow cytometry on mouse samples (fig 1c). Immunity (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a, 3a, 6c
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1a, 3a, 6c). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...; fig 7f
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples at 1:400 (fig 7f). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1c
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1c). J Exp Med (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 4c
Invitrogen Cd4 antibody (eBioscience, 17-0041-83) was used in flow cytometry on mouse samples at 1:200 (fig 4c). Cell Rep (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2a
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig s2a). Front Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2a
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s2a). Science (2019) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig s4
Invitrogen Cd4 antibody (eBioscience, 4SM95) was used in immunohistochemistry - paraffin section on mouse samples (fig s4). JCI Insight (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s5b
Invitrogen Cd4 antibody (eBioscience, 17-0041-82) was used in flow cytometry on mouse samples (fig s5b). Cell Rep (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 2g
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig 2g). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 6b
Invitrogen Cd4 antibody (eBioscience, 48-0042-82) was used in flow cytometry on mouse samples (fig 6b). Cell Stem Cell (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s7d
Invitrogen Cd4 antibody (eBioscience, 17-0041-81) was used in flow cytometry on mouse samples (fig s7d). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1a
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s1a). Blood (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig ev2c
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig ev2c). EMBO J (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4i
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 4i). J Clin Invest (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2). Sci Rep (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1a). Front Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4b
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 4b). Front Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s3b
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig s3b). Science (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1d
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1d). J Exp Med (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3c
Invitrogen Cd4 antibody (Thermo Fisher Scientific, GK1.5) was used in flow cytometry on mouse samples (fig 3c). Eur J Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 2c
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in immunohistochemistry - frozen section on mouse samples (fig 2c). PLoS ONE (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...; fig 2h
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples at 1:400 (fig 2h). Nat Commun (2018) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; 1:100; loading ...; fig 1c
Invitrogen Cd4 antibody (Thermo Fisher Scientific, 11-0041-82) was used in immunohistochemistry - frozen section on mouse samples at 1:100 (fig 1c). Nat Commun (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5k
  • immunohistochemistry; mouse; loading ...; fig 4d
Invitrogen Cd4 antibody (eBioscience, 14-0041-82) was used in flow cytometry on mouse samples (fig 5k) and in immunohistochemistry on mouse samples (fig 4d). Cancer Res (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4c
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 4c). Front Immunol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:6; loading ...; fig s2a
Invitrogen Cd4 antibody (ThermoFisher, GK1.5) was used in flow cytometry on mouse samples at 1:6 (fig s2a). PLoS Pathog (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig e2c
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig e2c). Nature (2018) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry; mouse; 1:40; loading ...; fig 5a
Invitrogen Cd4 antibody (Thermo Fisher, 4SM95) was used in immunohistochemistry on mouse samples at 1:40 (fig 5a). J Exp Med (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s6a
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s6a). Cancer Res (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4f
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 4f). J Virol (2018) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry - paraffin section; mouse; fig 5c
Invitrogen Cd4 antibody (eBioscience, 14-9766) was used in immunohistochemistry - paraffin section on mouse samples (fig 5c). J Clin Invest (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4a
  • immunohistochemistry; mouse; loading ...; fig 7a
Invitrogen Cd4 antibody (eBioscience, 48-0041-80) was used in flow cytometry on mouse samples (fig 4a) and in immunohistochemistry on mouse samples (fig 7a). J Clin Invest (2018) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry - paraffin section; mouse; 1:600; loading ...; fig s11e
Invitrogen Cd4 antibody (Thermo Fisher, 4SM95) was used in immunohistochemistry - paraffin section on mouse samples at 1:600 (fig s11e). Nat Med (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1a
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig s1a). J Clin Invest (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig 7d
Invitrogen Cd4 antibody (ebioscience, RM4-5) was used in flow cytometry on mouse samples at 1:100 (fig 7d). Nat Commun (2018) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig s1
Invitrogen Cd4 antibody (ebioscience, RM4-4) was used in flow cytometry on mouse samples (fig s1). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4b
Invitrogen Cd4 antibody (Thermo Fisher, RM4-5) was used in flow cytometry on mouse samples (fig 4b). Oncogene (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3a
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 3a). Front Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s4a
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig s4a). PLoS ONE (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3f
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 3f). J Exp Med (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
Invitrogen Cd4 antibody (Thermo Fisher Scientific, GK1.5) was used in flow cytometry on mouse samples (fig 1a). J Immunol (2018) ncbi
rat monoclonal (GK1.5)
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used . J Exp Med (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5c
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 5c). J Exp Med (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3a
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 3a). Front Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2b
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 2b). Front Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4c
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 4c). Cancer Cell (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 8e
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 8e). J Clin Invest (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1f
Invitrogen Cd4 antibody (eBiosciences, 56-0042-82) was used in flow cytometry on mouse samples (fig 1f). Cell (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s2d
Invitrogen Cd4 antibody (eBiosciences, 11-0042-85) was used in flow cytometry on mouse samples (fig s2d). Cell (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2a). Science (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2d
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2d). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human; loading ...; fig 2c
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on human samples (fig 2c). J Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 7a
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 7a). Cell (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s2a
Invitrogen Cd4 antibody (eBioscience, 12-0042-82) was used in flow cytometry on mouse samples (fig s2a). Immunity (2017) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 5c
Invitrogen Cd4 antibody (eBiosciences, RM4-4) was used in flow cytometry on mouse samples (fig 5c). Cell Rep (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2e
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 2e). Cancer Res (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s1). Eur J Immunol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5a
In order to study the induction of CTL tolerance by neoantigens in Langerhans cells, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 5a). J Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5b
  • immunohistochemistry; mouse; loading ...; fig 1c
In order to investigate the involvement of achaete-scute complex homologue 2 in the pathogenesis of Sjogren's syndrome-like disease in the NOD/ShiLtJ mouse, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 5b) and in immunohistochemistry on mouse samples (fig 1c). Immunol Lett (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1b
In order to study the role of lysine acetyltransferase GCN5 in iNKT cell development and its mechanism, Invitrogen Cd4 antibody (eBioscience, 17-0042-82) was used in flow cytometry on mouse samples (fig 1b). Cell Rep (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3d
In order to elucidate the involvement of the IDO-AhR pathway in acute lethal pulmonary inflammation, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 3d). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
In order to investigate the role of type I interferons in diet-induced obesity and insulin resistance, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . Diabetologia (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2g
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 2g). Immunology (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2b
In order to study the effect of human induced pluripotent stem cells-derived mesenchymal stem cells on T cell phenotype after xenotransplantation, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2b). Stem Cells (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human; loading ...; fig 3d
  • flow cytometry; mouse; loading ...; fig 3d
In order to study the effect of human induced pluripotent stem cells-derived mesenchymal stem cells on T cell phenotype after xenotransplantation, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on human samples (fig 3d) and in flow cytometry on mouse samples (fig 3d). Stem Cells (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s6g
In order to study the role of reprogrammed BCAA metabolism in the progression of myeloid leukaemia, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig s6g). Nature (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; tbl s1
In order to elucidate the effect of S100 calcium-binding proteins A8/A9 on thrombocytosis and atherogenesis in diabetes, Invitrogen Cd4 antibody (eBioscience, 11-0042-85) was used in flow cytometry on mouse samples (tbl s1). J Clin Invest (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1
In order to investigate the role of Egr2 and 3 in adaptive immune responses and its mechanism, Invitrogen Cd4 antibody (eBiosciences, 12-0041-81) was used in flow cytometry on mouse samples (fig 1). J Exp Med (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1.4b
In order to investigate the generation of macrophage populations during homeostasis and inflammation, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig s1.4b). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2c
In order to investigate the function of AIM2 inflammasome in influenza-iInduced lung injury and mortality, Invitrogen Cd4 antibody (Thermo, 48-0042-80) was used in flow cytometry on mouse samples (fig s2c). J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
In order to generate and characterize Treg-of-B cells, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1a). Sci Rep (2017) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 5a
  • flow cytometry; mouse; loading ...; fig s1a
In order to study the effects of IL-10R signaling during Plasmodium berghei ANKA-induced experimental cerebral malaria, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in blocking or activating experiments on mouse samples (fig 5a) and in flow cytometry on mouse samples (fig s1a). Infect Immun (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4a
In order to elucidate how schistosome-induced B cells protect against allergic airway inflammation, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 4a). Int J Parasitol (2017) ncbi
rat monoclonal (RM4-4)
  • other; mouse; fig s2a
In order to study intestinal immune responses during acute graft-versus-host disease, Invitrogen Cd4 antibody (eBiosciences, RM 4.4) was used in other on mouse samples (fig s2a). J Clin Invest (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 6b
In order to study intestinal immune responses during acute graft-versus-host disease, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 6b). J Clin Invest (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5d
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 5d). J Exp Med (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 6a
In order to determine the role of RelB in classical dendritic cell and myeloid development, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 6a). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4h
In order to examine the relationships among the B cell receptor, TLR9, and cytokine signals that regulate B cell responses to DNA-containing antigens, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 4h). J Clin Invest (2017) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 3k
In order to explore the role of heterogeneous nuclear ribonucleoprotein I in regulating neonatal immune adaptation, Invitrogen Cd4 antibody (Ebioscience, 14-9766-80) was used in immunohistochemistry - paraffin section on mouse samples (fig 3k). PLoS Genet (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1e
In order to study the role of moesin during the generation of TGF-beta-induced T regulatory cells, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1e). J Clin Invest (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:800; loading ...; fig s1c
In order to report a CD40-dependent mechanism capable of abrogating inducible T regulatory cell induction by dendritic cells, Invitrogen Cd4 antibody (Invitrogen, GK1.5) was used in flow cytometry on mouse samples at 1:800 (fig s1c). Nat Commun (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s4a
In order to investigate the use of red blood cells expressing disease-associated autoantigenas a means of inducing antigen-specific tolerance, Invitrogen Cd4 antibody (eBioscience, 48-0041-82) was used in flow cytometry on mouse samples (fig s4a). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry; mouse; loading ...; fig s7b
In order to investigate the use of red blood cells expressing disease-associated autoantigenas a means of inducing antigen-specific tolerance, Invitrogen Cd4 antibody (eBioscience, 4SM95) was used in immunohistochemistry on mouse samples (fig s7b). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4a
In order to explore the role of Nol3 in myeloproliferative neoplasms, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 4a). J Exp Med (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1d
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1d). J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2b,2c
In order to elucidate the interaction between tumor-associated and -infiltrating lymphocytes in ovarian cancer, Invitrogen Cd4 antibody (eBioscience, 25-0041-82) was used in flow cytometry on mouse samples (fig 2b,2c). Oncoimmunology (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 1b
In order to evaluate the use of a recombinant Newcastle disease virus expressing ICOS ligand to treat cancer, Invitrogen Cd4 antibody (eBioscience, 48-0041) was used in flow cytometry on mouse samples at 1:200 (fig 1b). Nat Commun (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4h
In order to determine the contribution of B cell to obesity-induced insulin resistance, Invitrogen Cd4 antibody (eBiosciences, 17-0041-81) was used in flow cytometry on mouse samples (fig 4h). J Clin Invest (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1d
In order to test the effect of paeoniflorin in experimental autoimmune encephalomyelitis, an animal model for multiple sclerosis, Invitrogen Cd4 antibody (eBioscience, 48-0041) was used in flow cytometry on mouse samples (fig 1d). Sci Rep (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s6a
In order to show a role for Hippo signaling in the epicardium in recruiting T regulatory cells post infarct, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s6a). J Clin Invest (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1a). Blood (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s1b
In order to propose that type 2 immunity is induced by a unique mechanism in the genital tract, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig s1b). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:300; fig s4a
In order to assess the use of anti-CCR4 antibody in a mouse model of renal cell carcinoma, Invitrogen Cd4 antibody (eBioscience, 48-0041) was used in flow cytometry on mouse samples at 1:300 (fig s4a). J Clin Invest (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 3
Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 3). Eur J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2c
In order to evaluate miR-29a in B cells as a potential therapeutic target in arthritis, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2c). Cell Mol Life Sci (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2
In order to examine the role of herpes virus entry mediator in corneal disease during viral infection, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig s2). Invest Ophthalmol Vis Sci (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1g
In order to assess the effects of dietary fiber and short chain fatty acids on the intestinal immune system and microbiota, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1g). J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; 1:100; loading ...; fig 2a
In order to test if intraperitoneal administration of adeno-associated virus produces unique patterns of tissue tropism, Invitrogen Cd4 antibody (eBioscience, 14-0041-82) was used in immunohistochemistry - frozen section on mouse samples at 1:100 (fig 2a). Sci Rep (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2d
In order to establish a method to isolate apoptotic bodies from cultured cells to 99% purity, Invitrogen Cd4 antibody (eBioscience, 25-0042-82) was used in flow cytometry on mouse samples (fig 2d). Sci Rep (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s1
In order to utilize a G2-Gata4Cre;R26REYFP mouse line to track the developmental fate of the G2-Gata4 cell lineage, Invitrogen Cd4 antibody (EBioscience, GK 1.5) was used in flow cytometry on mouse samples (fig s1). Haematologica (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2
In order to characterize conventional and regulatory T cells during pregnancy, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1
In order to examine natural killer T cell development in mice deficient for SLAM family receptors, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1). J Exp Med (2017) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...
In order to determine that NKG2C/E identifies the CD4 T cell effector subset ThCTL that develop in the lung during influenza A virus infection in mice, Invitrogen Cd4 antibody (eBioscience, RM4-4) was used in flow cytometry on mouse samples . J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
In order to determine that NKG2C/E identifies the CD4 T cell effector subset ThCTL that develop in the lung during influenza A virus infection in mice, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1b, 1c
In order to explore the role of PKCalpha-DOCK8-Cdc42 signaling in T cell migration, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1b, 1c). J Exp Med (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig s2a
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples at 1:100 (fig s2a). J Exp Med (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
In order to assess the role of p38 signaling in limiting regulatory T cell induction, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . J Biol Chem (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4a
In order to explore if the anti-diabetic sulphonylurea glibenclamide protects insulin-producing cells against conditions mimicking those expected at the onset of type 1 diabetes, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 4a). PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s3c
In order to discuss how NLRC3 protects against colorectal cancer by modulating mTor signaling, Invitrogen Cd4 antibody (Affymetrix eBioscience, 14-0042-85) was used in flow cytometry on mouse samples (fig s3c). Nature (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to discuss differences in eosinophil degranulation between humans and mice, Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2). Am J Respir Crit Care Med (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
In order to study the role of T cells in the effector phase of antibody-mediated autoimmune dermatoses, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 5). Sci Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s5f
In order to implicate epigenetic modifications in defining microbial community-affiliated functional features of host immune cell lineages, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s5f). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2j
In order to characterize Nlrp2-deficient mice and identify a role for this protein in fertility, Invitrogen Cd4 antibody (eBioscience, 11-0041-82) was used in flow cytometry on mouse samples (fig 2j). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2d
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2d). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1f
In order to find that Tritrichomonas muris contributes to T cell-driven colitis, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 1f). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s9c
In order to explore how apoptotic intestinal epithelial cells are processed and sampled, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s9c). Nature (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5c
In order to investigate strains of Listeria monocytogenes that activate necrosis, apoptosis, or pyroptosis and study the role of CD8 positive T cells in these processes, Invitrogen Cd4 antibody (ebioscience, RM4-5) was used in flow cytometry on mouse samples (fig 5c). Infect Immun (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3D
In order to show that deletion of the gene encoding RAB guanine nucleotide exchange factor 1 in keratinocytes severely impairs epidermal barrier function in mice, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 3D). J Clin Invest (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s6
In order to explore the role of hippocampal T cell infiltration in tau-driven pathophysiology and cognitive impairments, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig s6). Brain (2017) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 4b
In order to find that dendritic cells modulate thymic egress, Invitrogen Cd4 antibody (ebioscience, RM4-4) was used in flow cytometry on mouse samples (fig 4b). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1b
In order to find that dendritic cells modulate thymic egress, Invitrogen Cd4 antibody (ebioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1b). J Exp Med (2016) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 6a
In order to use a humanized mouse model to study Middle East respiratory syndrome coronavirus, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in blocking or activating experiments on mouse samples (fig 6a). J Virol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3h
In order to study the role of miR-7 in acute lung injury, Invitrogen Cd4 antibody (ebioscience, 12-0041-82) was used in flow cytometry on mouse samples (fig 3h). Front Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2a
In order to identify and characterize a Nei endonuclease VIII-like 3 mutation in three siblings from a consanguineous family with autoimmunity, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig s2a). J Clin Invest (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
In order to assess the role of C1q in downregulating allergic inflammation, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples . Mucosal Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...; fig 1a
In order to find genes that alter invariant natural killer T cell development, migration, or function, Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples at 1:400 (fig 1a). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s3
Invitrogen Cd4 antibody (eBioscience, 12-0041-82) was used in flow cytometry on mouse samples (fig s3). Sci Rep (2016) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry - paraffin section; mouse; 1:50; fig 3
Invitrogen Cd4 antibody (eBioscience, 4SM95) was used in immunohistochemistry - paraffin section on mouse samples at 1:50 (fig 3). J Invest Dermatol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1a
Invitrogen Cd4 antibody (eBiosciences, 48-0041-82) was used in flow cytometry on mouse samples (fig s1a). Nat Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 4). PLoS ONE (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3f
In order to investigate how PI3Kgamma regulates macrophage polarization, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 3f). Nature (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a
In order to discuss how Th1-driven inflammation affects Treg homeostasis in atherosclerosis, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1a). Circ Res (2016) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry - paraffin section; mouse; 1:20; loading ...; fig 3b
In order to develop and characterize a murine model of hepatitis A virus, Invitrogen Cd4 antibody (eBiosciences, 14-9766) was used in immunohistochemistry - paraffin section on mouse samples at 1:20 (fig 3b). Science (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1d
In order to elucidate how CD4 positive T cells help regulate blood pressure, Invitrogen Cd4 antibody (Invitrogen, MCD0430) was used in flow cytometry on mouse samples (fig 1d). Nat Biotechnol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a
In order to investigate the contribution of TGF-beta to the eomesodermin-driven CD4 T cell program during viral infection, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1a). J Clin Invest (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; fig 5
Invitrogen Cd4 antibody (eBioscience, 11-0042-81) was used in flow cytometry on mouse samples at 1:400 (fig 5). Exp Ther Med (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; tbl 1
Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples at 1:200 (tbl 1). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5
Invitrogen Cd4 antibody (Ebioscience, 17-0041) was used in flow cytometry on mouse samples (fig 5). BMC Complement Altern Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...
In order to investigate the hierarchical genomic and regulatory states that lead to neutrophil or macrophage specification, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Nature (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1d
In order to identify Matrilin-4 (Matn4) as a negative regulator of the hematopoietic stem cell stress response, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1d). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; fig s4k
In order to investigate the effects of caloric restriction on beige fat, Invitrogen Cd4 antibody (eBioscience, 48-0042) was used in flow cytometry on mouse samples at 1:200 (fig s4k). Cell Metab (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4a
In order to elucidate how Zfp36l1 and Zfp36l2 regulate the thymic beta-Selection checkpoint, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 4a). J Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a
In order to demonstrate that the negative regulation of T cell receptor signaling during natural killer T cell development regulates NKT1 and NKT2 differentiation and survival, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1a). J Exp Med (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 9a
In order to study changes in IL-23 and IL-22 after scratching, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 9a). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2d
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2d). Oncogene (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 7
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 7). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1d
In order to find a role for Car enzymes in regulating mast cell lineage commitment, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1d). J Exp Med (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3b
In order to determine the contribution of lymphatic drainage to tumor inflammation and immunity, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 3b). J Clin Invest (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3a
In order to implement lck-cre transgenic mice to study the role of loxP-targeted genes in T cell development and function, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 3a). J Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s5c
In order to examine the role of BRPF1 during hematopoiesis, Invitrogen Cd4 antibody (eBiosciences, 12-0041-81) was used in flow cytometry on mouse samples (fig s5c). J Clin Invest (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1a
In order to demonstrate that lymphotoxin beta receptor directly controls thymic endothelial cells to guide hematopoietic progenitor cell homing, Invitrogen Cd4 antibody (eBioscience, 25-0041) was used in flow cytometry on mouse samples (fig s1a). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2b
In order to assess how ABCG1 loss in T cells affects atherosclerosis, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 2b). J Clin Invest (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
In order to demonstrate that Blimp-1 controls CD4 T cell exhaustion, Invitrogen Cd4 antibody (Affymetrix eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1a). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s3
In order to investigate osmostress-dependent and -independent functions of Nfat5 in T cells, Invitrogen Cd4 antibody (eBiosciences, 15-0042-83) was used in flow cytometry on mouse samples (fig s3). Immunol Cell Biol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
In order to determine the role of Id3 in germinal center B cells, Invitrogen Cd4 antibody (BD Pharmingen or eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1a). Mol Cell Biol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2a
In order to use knockout mice to determine the role of cereblon in T cells, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig s2a). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3
In order to report that vaccine-induced T regulatory cells aid to control de novo primed autoreactive effector CD8(+) T cells in a diabetes model, Invitrogen Cd4 antibody (eBioscience, 17-0042) was used in flow cytometry on mouse samples (fig 3). Sci Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, 45-0042-82) was used in flow cytometry on mouse samples . Front Cell Neurosci (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3c
In order to propose that the ERK-AP-1 axis is important for translating TCR signal strength into proportional activation of downstream events, Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 3c). elife (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:500; fig st1
Invitrogen Cd4 antibody (eBioscience, 47-0041) was used in flow cytometry on mouse samples at 1:500 (fig st1). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
In order to analyze inhibition of IL-17-mediated colon inflammation and tumorigenesis by ROR-gamma-t ubiquitination by Itch, Invitrogen Cd4 antibody (eBioscience, 11-0041-85) was used in flow cytometry on mouse samples (fig 2). Nat Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig st2
In order to identify the origin of vascular smooth muscle cells and macrophages within atherosclerosis lesions, Invitrogen Cd4 antibody (eBioscience, 17-0042-81) was used in flow cytometry on mouse samples (fig st2). Atherosclerosis (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
Invitrogen Cd4 antibody (eBioscience, 11-0041) was used in flow cytometry on mouse samples (fig 2). Mol Med Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 6g
In order to investigate the contribution of NLRP3 inflammasome activity to the T helper cell 1 response, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 6g). Science (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s4
In order to report the effects of PD-L1 modulation of T cell function in graft-versus-host disease, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s4). J Clin Invest (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 7
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 7). Oncotarget (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1a
Invitrogen Cd4 antibody (eBioscience, RM 4-5) was used in flow cytometry on mouse samples (fig 1a). elife (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2e
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2e). Sci Rep (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
In order to detail how to obtain innate lymphoid cells from isolated common lymphoid progenitors, Invitrogen Cd4 antibody (eBiosciences, 6K1.5) was used in flow cytometry on mouse samples . Bio Protoc (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s1
In order to show that ATG16L1 and NOD2 are required for Bacteroides fragilis-mediated protection from colitis, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s1). Science (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5d
Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 5d). Cancer Res (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3g
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 3g). PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s4
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s4). Sci Rep (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5
In order to study promotion of host immunity and protection against IL-12/23p40-dependent lung injury during hookworm infection by myeloid-restricted AMPK-alpha1, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 5). J Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:66; loading ...; fig 2f
In order to describe the role of mTOR signalling in recruiting pro-tumorigenic myeloid-derived suppressor cells., Invitrogen Cd4 antibody (eBioscience, 17-0041-81) was used in flow cytometry on mouse samples at 1:66 (fig 2f). Nat Cell Biol (2016) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; 1:100; fig s3
In order to characterize dysregulation of neuronal network activity following a stroke due to microglia protecting against brain injury and their selective elimination, Invitrogen Cd4 antibody (eBioscience, 11-0043-82) was used in flow cytometry on mouse samples at 1:100 (fig s3). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5
In order to investigate the effects of IL-1 on hematopoietic stem cells, Invitrogen Cd4 antibody (eBioscience, 16-0041-82) was used in flow cytometry on mouse samples (fig 5). Nat Cell Biol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, 56-0041) was used in flow cytometry on mouse samples . Biol Open (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3
In order to assess mediation by androgen control of autoimmune regulator due to sex bias in CNS autoimmune disease, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 3). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1b
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1b). Eur J Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3c
In order to compare methods of generating tumor lysates/cells used for pulsing dendritic cell vaccines, Invitrogen Cd4 antibody (eBioscience, 45-0042-82) was used in flow cytometry on mouse samples (fig 3c). Oncoimmunology (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4c
In order to assess whether flagellin is useful as an adjuvant for a topical therapeutic vaccine for female genital cancer, Invitrogen Cd4 antibody (eBioscience, 17-0041) was used in flow cytometry on mouse samples (fig 4c). Oncoimmunology (2016) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry; mouse; fig 3
Invitrogen Cd4 antibody (eBioscience, 14-9766) was used in immunohistochemistry on mouse samples (fig 3). Int J Mol Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig 4a
In order to study the virological features of entovirus 71 and host responses resulting from infection, Invitrogen Cd4 antibody (eBioscience, 11-0042) was used in flow cytometry on mouse samples at 1:200 (fig 4a). Mol Med Rep (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 4). PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 6b
In order to propose that neuronal autoimmunity is a pathogenic feature of type 1 diabetes, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples (fig 6b). Diabetes (2016) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry - paraffin section; mouse; 1:200; fig 10
Invitrogen Cd4 antibody (eBioscience, 14-9766-82) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 10). PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 2). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
In order to establish that autophagy is essential for maintenance of a balanced CD4 positive intestinal T cell response, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2). elife (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2b
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 2b). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1). Mucosal Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 4). Sci Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4a
In order to demonstrate that control of acute infection with Trypanosoma cruzi is associated with development of systemic necrotizing vasculitis, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples (fig 4a). Infect Immun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 6
Invitrogen Cd4 antibody (eBioscience, 45-0042-82) was used in flow cytometry on mouse samples (fig 6). Clin Cancer Res (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s21
Invitrogen Cd4 antibody (eBioscience, 53-0041-82) was used in flow cytometry on mouse samples (fig s21). Sci Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1e
In order to report that the majority of microbe-specific naive T cells produced memory cells during infection, Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1e). Science (2016) ncbi
rat monoclonal (RM4-5)
  • blocking or activating experiments; mouse; fig 1
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in blocking or activating experiments on mouse samples (fig 1). Dis Model Mech (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; fig 1
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples at 1:400 (fig 1). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4
In order to test if enforced virus replication occurs in the presence of virus-specific antibodies or virus-specific CD8 positive T cells, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 4). Sci Rep (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, 11-0041-85) was used in flow cytometry on mouse samples . Nature (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
In order to examine the contribution of Foxo1 to activated T cells, Invitrogen Cd4 antibody (eBiocience, RM4-5) was used in flow cytometry on mouse samples (fig 5). Nature (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s5
In order to study cessation of colorectal cancer colonization of the liver by acting on the hepatic microenvironment by IFN-alpha gene/cell therapy, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s5). EMBO Mol Med (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 6
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 6). PLoS Biol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s9
In order to research the connection between oligodendrocyte death and immune-mediated CNS demyelination, Invitrogen Cd4 antibody (eBioscience, 25-0042) was used in flow cytometry on mouse samples (fig s9). Nat Neurosci (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1). J Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
In order to determine the role of dendritic cell actin regulation in immunological synapse formation, stabilization, and function, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . J Leukoc Biol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; human; fig 2
In order to elucidate the contribution of leukemogenic Ras signals, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on human samples (fig 2). Oncogene (2016) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - paraffin section; mouse; fig 6
  • flow cytometry; mouse; fig 6
In order to study the display of embryological defects and neonatal lethality despite normal lymphoid and non-lymphoid organogenesis, Invitrogen Cd4 antibody (Invitrogen Life Technologies, GK1.5) was used in immunohistochemistry - paraffin section on mouse samples (fig 6) and in flow cytometry on mouse samples (fig 6). PLoS ONE (2015) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; fig 5
Invitrogen Cd4 antibody (eBioscience, C14-0041) was used in immunohistochemistry - frozen section on mouse samples (fig 5). PLoS Med (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 7
Invitrogen Cd4 antibody (eBioscience, 45-0042-82) was used in flow cytometry on mouse samples (fig 7). Sci Rep (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; fig s2
Invitrogen Cd4 antibody (eBioscience, 45-0042-82) was used in flow cytometry on mouse samples at 1:200 (fig s2). Nat Commun (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to show that RhoA controls homeostatic proliferation, cytokinesis, survival, and turnover of cDCs, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . J Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
In order to investigate the role of FAT10 in thymic antigen presentation, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1). J Immunol (2015) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 5b
In order to report a role for effector T helper type 2 cells during T cell receptor-independent innate-like immune responses, Invitrogen Cd4 antibody (eBiosciences, RM4-4) was used in flow cytometry on mouse samples (fig 5b). Nat Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5a
In order to report a role for effector T helper type 2 cells during T cell receptor-independent innate-like immune responses, Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 5a). Nat Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1e
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1e). Nat Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
In order to use peptidoglycan mimics to vaccinate against Staphylococcus aureus, Invitrogen Cd4 antibody (eBioscience, 17-0042) was used in flow cytometry on mouse samples (fig 5). PLoS ONE (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to study PI3Kdelta in CD8+ T cells during infection with Listeria monocytogenes, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . J Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
In order to determine the role of Syk in development of obliterative bronchiolitis, Invitrogen Cd4 antibody (EBioscience, GK1.5) was used in flow cytometry on mouse samples . Am J Transplant (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Science (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s4a
In order to test if anti-retroviral natural killer cell functions are inhibited by T regulatory cells during an acute Friend retrovirus infection, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig s4a). Retrovirology (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1). Nat Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1c
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1c). Cancer Res (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2e
In order to assess surface expression of C-type lectin-like receptor 2 on hematopoietic cells from peripheral blood and secondary lymphoid organs, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 2e). Eur J Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, 48-0041-80) was used in flow cytometry on mouse samples . J Vis Exp (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
In order to evaluate as a mucosal vaccine platform against influenza A virus, Invitrogen Cd4 antibody (eBioscience, # 45-0042-80) was used in flow cytometry on mouse samples (fig 5). Front Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; fig 4
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in immunohistochemistry on mouse samples (fig 4). PLoS Pathog (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 2). J Neuroinflammation (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to study mediation of TLR7-dependent inflammation and autoimmunity by B cell autophagy, Invitrogen Cd4 antibody (eBiosciences, 53-0041-80) was used in flow cytometry on mouse samples . Autophagy (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to test if metformin ameliorates ionizing radiation-induced long-term bone marrow injury in a total-body irradiation mouse model, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . Free Radic Biol Med (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1). Nat Commun (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1). Immunity (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 6
In order to study CD47 knock out mice infected with Candida albicans, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples (fig 6). PLoS ONE (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to determine the role of Sirt1 in regulating the expression of tissue-restricted antigens in medullary thymic epithelial cells, Invitrogen Cd4 antibody (Life Technologies, MCD0417) was used in flow cytometry on mouse samples (fig 1). Nat Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - paraffin section; human; fig s8
In order to describe the use of CCR9 expression to create primary gastrointestinal tumors in immunodeficient mice by tail-vein injection, Invitrogen Cd4 antibody (ebiosciences, RM4-5) was used in immunohistochemistry - paraffin section on human samples (fig s8). Nat Biotechnol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s9
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s9). Nature (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 5). Reprod Fertil Dev (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, 47-0042-82) was used in flow cytometry on mouse samples . Cardiovasc Res (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:1000; fig 2
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples at 1:1000 (fig 2). Nat Commun (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
Invitrogen Cd4 antibody (eBioscience, 15-0042-82) was used in flow cytometry on mouse samples (fig 5). PLoS Negl Trop Dis (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 6b
  • immunohistochemistry; mouse; loading ...; fig 3a
In order to determine if specific B cell subsets or if B cell-derived interleukin-10 contributes to tolerance, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 6b) and in immunohistochemistry on mouse samples (fig 3a). Transplantation (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 6
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 6). J Biol Chem (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 3
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 3). PLoS ONE (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4e
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 4e). Sci Transl Med (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 5). PLoS ONE (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 3A
In order to report a B cell-intrinsic role for Rab7, Invitrogen Cd4 antibody (eBioscience, 12-0041) was used in flow cytometry on mouse samples (fig 3A). J Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; fig 2
In order to test if carbon monoxide suppresses chronic inflammation and leads to metabolic disturbances, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples at 1:100 (fig 2). Am J Physiol Endocrinol Metab (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1). PLoS Pathog (2015) ncbi
rat monoclonal (4SM95)
  • immunohistochemistry; mouse; fig 5
Invitrogen Cd4 antibody (eBioscience, 14-9766) was used in immunohistochemistry on mouse samples (fig 5). PLoS ONE (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1). J Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s2
In order to elucidate the function of miR-29a in hematopoietic stem and progenitor cells, Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig s2). Blood (2015) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in immunohistochemistry on mouse samples . Eur J Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s1
In order to test if blocking several checkpoint receptors boosts anti-tumor immunity in a low-dose, lymphodepleting whole body radiation model, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig s1). J Immunother Cancer (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 6
In order to report that GP96 is required for T regulatory cell maintenance and function, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 6). J Clin Invest (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1.0 ug/ml
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples at 1.0 ug/ml. Immunol Cell Biol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; human
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on human samples . J Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 7
Invitrogen Cd4 antibody (eBioscience (Affymetrix), GK1.5) was used in flow cytometry on mouse samples (fig 7). J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Sci Rep (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . J Leukoc Biol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 5). Immunology (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3
In order to show that the PTEN-mTORC2 axis maintains T regulatory cell stability and coordinates their control of effector responses, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 3). Nat Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to identify Cd8 cis-regulatory elements, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . J Leukoc Biol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples . J Am Heart Assoc (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . Mucosal Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5f
In order to investigate the application of intra-dermal mesoporous silica rods in immune modulation., Invitrogen Cd4 antibody (eBioscience, 25-0041) was used in flow cytometry on mouse samples (fig 5f). Nat Biotechnol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to evaluate a model of cerebral malaria pathogenesis and its effect on the blood brain barrier, Invitrogen Cd4 antibody (Life Technologies, RM4-5) was used in flow cytometry on mouse samples . PLoS Pathog (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:1000
In order to investigate the role of Tregs in nerve injury-induced pain hypersensitivity, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples at 1:1000. Cytokine (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1). Immunol Lett (2015) ncbi
rat monoclonal (GK1.5)
In order to examine the role of lymph node stromal cells in immune responses, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used . elife (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Proc Natl Acad Sci U S A (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . J Leukoc Biol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:400
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples at 1:400. Methods Mol Biol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . EMBO J (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
In order to describe a method to engineer the plasma membrane for research or therapy, Invitrogen Cd4 antibody (ebiosciences, clone GK1.5) was used in flow cytometry on mouse samples (fig 2). ACS Chem Biol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (Ebioscience, GK1.5) was used in flow cytometry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; 1:100
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in immunohistochemistry - frozen section on mouse samples at 1:100. PLoS ONE (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4a
In order to investigate the role of DUSP6 in colonic CD4 positive T-cell function, differentiation, and inflammatory profile, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 4a). Mucosal Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, 17-0042) was used in flow cytometry on mouse samples . Cancer Res (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to examine the role of interleukin-4 in relation to eomesodermin within CD8+ T cells, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 4). Nat Med (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples at 1:100. Nat Commun (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3c
In order to test the efficacy of combining different monoclonal antibodies to treat cancer, Invitrogen Cd4 antibody (ebioscience, MA1-146) was used in flow cytometry on mouse samples (fig 3c). Clin Cancer Res (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 4). PLoS ONE (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . Proc Natl Acad Sci U S A (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; human
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on human samples . Cancer Res (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to assess the contribution of Tbx1 to thymus and parathyroid development, Invitrogen Cd4 antibody (Invitrogen, clone RM4-5) was used in flow cytometry on mouse samples . Development (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to investigate the effect of IgM-Fc receptor-ablation on autoimmunity, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Int Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . J Virol (2014) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse
Invitrogen Cd4 antibody (eBioscience, GK 1.5) was used in immunohistochemistry - frozen section on mouse samples . J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study Bacillus Calmette-Guerin DeltaureC::hly and the superior protection against tuberculosis caused by central memory CD4+ T cells, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . J Infect Dis (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
In order to examine the quantitative and temporal requirements of Zap70's function in thymocyte development, Invitrogen Cd4 antibody (eBioscience, M4-5) was used in flow cytometry on mouse samples (fig 5). Nat Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Cancer Res (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . J Exp Med (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to determine if HSPs ameliorate ischemic renal injury in vivo using HSF-1 KO mice, Invitrogen Cd4 antibody (Invitrogen, MCD0428) was used in flow cytometry on mouse samples . Kidney Int (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to investigate the role of thoracic thymus in T cell development and homeostasis, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Eur J Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to investigate the role of thoracic thymus in T cell development and homeostasis, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . Eur J Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . PLoS Pathog (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience Inc., RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 6
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 6). Laryngoscope (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . PLoS Pathog (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Bone (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:1000
In order to demonstrate the heritable downregulation of CD8 during type 2 polarization of murine CD8 positive effector T cells is associated with CpG methylation of the Cd8a locus, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples at 1:1000. Nat Commun (2014) ncbi
rat monoclonal (GK1.5)
  • immunocytochemistry; human; tbl 2
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in immunocytochemistry on human samples (tbl 2). J Clin Invest (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to determine which type of immune cells contributes to the protection from lung cancer development, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples . Cancer Immunol Immunother (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100
In order to study the involvement of endothelium in efficient Treg T cell recruitment in vivo, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples at 1:100. Nat Commun (2014) ncbi
rat monoclonal (4SM95)
  • immunocytochemistry; mouse
Invitrogen Cd4 antibody (eBioscience, 4SM95) was used in immunocytochemistry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s1
Invitrogen Cd4 antibody (Ebioscience, 12-0041) was used in flow cytometry on mouse samples (fig s1). PLoS Pathog (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to characterize the Treg populations the Friend retrovirus mouse model, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . Virol Sin (2014) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse
In order to elucidate how Notch signaling contributes to T cell acute lymphoblastic leukemia using mice, Invitrogen Cd4 antibody (eBioscience, 42-0042-80) was used in immunohistochemistry on mouse samples . PLoS ONE (2013) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100
Invitrogen Cd4 antibody (eBioscience, 11-0041-82) was used in flow cytometry on mouse samples at 1:100. Cell Transplant (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to demonstrate that regulation of encephalitogenic T-cell responses and EAE susceptibility by H2R signaling in CD4(+) T cells is dependent on genetic and environmental interactions, Invitrogen Cd4 antibody (Caltag, MCD0417) was used in flow cytometry on mouse samples . FASEB J (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
  • immunohistochemistry; mouse
Invitrogen Cd4 antibody (ebioscience, GK1.5) was used in flow cytometry on mouse samples and in immunohistochemistry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Br J Cancer (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s1
In order to describe the role of Themis in T cell development, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s1). Nature (2013) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
In order to determine optimal IL-17-inducing conditions using a vaccine and Mycobacterium tuberculosis challenge strategy, Invitrogen Cd4 antibody (Invitrogen, GK1.5) was used in flow cytometry on mouse samples (fig 1). PLoS ONE (2013) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Surg Infect (Larchmt) (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to examine Treg cell control of chronic autoimmunity in a lymphoreplete host, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples (fig 2). J Immunol (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 3). PLoS ONE (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to generate mice that lack IL-21R on B cells, on all T cells, or on CD8(+) T cells alone and examine the effects on systemic lupus erythematosus-like autoimmune disease, Invitrogen Cd4 antibody (Invitrogen, MCD0430) was used in flow cytometry on mouse samples (fig 1). J Immunol (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s1
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s1). Nature (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to elucidate the role of dendritic cells in cancer immunosurveillance failure, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Immunol Cell Biol (2013) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . Stem Cells (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to characterize mice deficient in podoplanin and explore the effect of podoplanin modulation on T cell populations, Invitrogen Cd4 antibody (CALTAG, RM4-5) was used in flow cytometry on mouse samples (fig 2). Immunol Lett (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
In order to characterize Hrh3 polymorphisms between experimental allergic encephalomyelitis-susceptible and resistant mice, Invitrogen Cd4 antibody (Caltag, MCD0417) was used in flow cytometry on mouse samples (fig 5). PLoS ONE (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig S1
In order to investigate the contribution of histamine on the development of experimental allergic encephalomyelitis, Invitrogen Cd4 antibody (Caltag, MCD0417) was used in flow cytometry on mouse samples (fig S1). J Immunol (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4e
In order to generate and characterize Hoxb8-FL cells, Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples (fig 4e). Nat Methods (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2, 3
In order to study locus control regions in T cells, Invitrogen Cd4 antibody (Life Technologies, RM4-5) was used in flow cytometry on mouse samples (fig 2, 3). J Immunol (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to test if a differential composition of immune cells within the central nervous system modulates the age-associated susceptibility to autoimmune disease, Invitrogen Cd4 antibody (Invitrogen, MCD0417) was used in flow cytometry on mouse samples (fig 1). J Neuroinflammation (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s3
In order to determine the contribution of Arg1 to lung inflammation and pathophysiology, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig s3). PLoS ONE (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; fig 2
In order to identify Sox17 as a key regulator of haemogenic endothelial development, Invitrogen Cd4 antibody (Invitrogen, MCD0428) was used in flow cytometry on mouse samples at 1:100 (fig 2). Nat Cell Biol (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to review the role of S1P lyase in T cell-mediated disease, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2013) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; tbl 1
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (tbl 1). PLoS ONE (2013) ncbi
rat monoclonal (GK1.5)
  • other; mouse; fig 5
  • flow cytometry; mouse; fig 5
In order to study the impact of mesenchymal stem cells to experimental allergic encephalomyelitis, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in other on mouse samples (fig 5) and in flow cytometry on mouse samples (fig 5). Front Immunol (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBiosciences, RM4-5) was used in flow cytometry on mouse samples . FASEB J (2013) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to investigate the role of BTB-ZF factors in lymphoid effector programs, Invitrogen Cd4 antibody (e-Bioscience, GK1.5) was used in flow cytometry on mouse samples . Nature (2012) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; fig 2c
In order to investigate the role of BTB-ZF factors in lymphoid effector programs, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in immunohistochemistry - frozen section on mouse samples (fig 2c). Nature (2012) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to examine IL-7R signaling in Tbx21 and Rag2 knockout mice, Invitrogen Cd4 antibody (eBioscience, RM4.5) was used in flow cytometry on mouse samples . Immunity (2012) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to study the kinetics of iNKT cell precursors, Invitrogen Cd4 antibody (Caltag Laboratories, CT-CD4) was used in flow cytometry on mouse samples . PLoS ONE (2012) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4
In order to test if combinatorial targeting of histamine receptors is an effective therapy for experimental allergic encephalomyelitis, Invitrogen Cd4 antibody (Caltag, MCD0417) was used in flow cytometry on mouse samples (fig 4). Eur J Immunol (2012) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to establish and characterize a novel murine model of arthritis, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples . Arthritis Res Ther (2012) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to elucidate how TGF-beta signaling regulates the self-reactivity of peripheral T cells, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Nat Immunol (2012) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to determine how thermal processing influences ovalbumin's ability to induce allergic symptoms and immune responses in mouse model of food allergy, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2012) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, 13-0041-85) was used in flow cytometry on mouse samples . Exp Hematol (2012) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse
In order to suggest that CD80 and CD86 contribute to polyclonal B cell activation mediated by Lat(Y136F) CD4 positive T cells, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in immunohistochemistry - frozen section on mouse samples . Front Immunol (2012) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study the contribution of IL-10 in mice infected with respiratory syncytial virus, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2012) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study the development of atherosclerosis in BAFF-R deficient ApoE(-/-) mice, Invitrogen Cd4 antibody (Caltag Laboratories, MCD0428) was used in flow cytometry on mouse samples . PLoS ONE (2012) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
In order to identify genes involved in multiple sclerosis and experimental allergic encephalomyelitis, Invitrogen Cd4 antibody (Caltag, MCD0417) was used in flow cytometry on mouse samples (fig 5). Ann Neurol (2011) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4
In order to investigate the contribution of H(4)R to autoimmunity, Invitrogen Cd4 antibody (Caltag, MCD0417,) was used in flow cytometry on mouse samples (fig 4). J Immunol (2012) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . Nat Immunol (2011) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to determine the role of granzyme B in immune regulation during viral infections, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples (fig 2). J Immunol (2011) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, 17-0041-81) was used in flow cytometry on mouse samples . J Immunol (2011) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3
In order to determine the contributions of individual MHC class I family members to autoimmunity in two mouse models, Invitrogen Cd4 antibody (Invitrogen, MCD0430) was used in flow cytometry on mouse samples (fig 3). J Immunol (2011) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to examine Th17 cells in the microenvironment of primary intraocular B-cell lymphoma, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples (fig 2). PLoS ONE (2011) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to determine the importance of ligand-activated N3 in promoting beta-selection and N1 intracellular domain-induced T cell leukemogenesis, Invitrogen Cd4 antibody (eBioScience, GK1.5) was used in flow cytometry on mouse samples . PLoS ONE (2011) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to determine the importance of ligand-activated N3 in promoting beta-selection and N1 intracellular domain-induced T cell leukemogenesis, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2011) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 5). Mol Biol Cell (2011) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
In order to test if IL-17/IL-17 receptor-mediated responses contribute to T-cell-mediated concanavalin A-induced liver injury, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 5). Immunol Cell Biol (2012) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (eBiosciences, GK1.5) was used in flow cytometry on mouse samples (fig 1). PLoS ONE (2011) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 7
In order to determine the components of the host immune system that are sufficient to prevent morbidity/mortality in a murine model of smallpox, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples (fig 7). PLoS ONE (2011) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 6
In order to identify T-cell epitopes of Francisella tularensis, Invitrogen Cd4 antibody (Invitrogen, clone RM4-5) was used in flow cytometry on mouse samples (fig 6). Immunology (2011) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 6, 7
In order to use the Friend retrovirus mouse model to elucidate the mode of action of poly(I:C) in antiretroviral immunotherapy, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 6, 7). J Immunol (2010) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to examine how maternal immune stimulation affects the adaptive immune system and pathobiology of the offspring, Invitrogen Cd4 antibody (eBioscience, clone GK1.5) was used in flow cytometry on mouse samples . Brain Behav Immun (2011) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3
In order to characterize a spread-deficient murine cytomegalovirus as a novel approach for betaherpesvirus vaccination, Invitrogen Cd4 antibody (eBioscience, RM 4-5) was used in flow cytometry on mouse samples (fig 3). J Virol (2010) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; tbl 1
In order to develop and characterize a novel model of heterologous pulmonary infection using Bordetella parapertussis and influenza virus, Invitrogen Cd4 antibody (Invitrogen, RM4-5) was used in flow cytometry on mouse samples (tbl 1). J Immunol (2010) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1). J Immunol (2010) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 3
In order to determine the roles of c-Myb during lymphocyte development, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 3). J Immunol (2009) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
In order to show that surface IL-17A is a marker for Th17 cells, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 1). J Immunol (2009) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to study committed transformed progenitors in a murine model of acute promyelocytic leukemia, Invitrogen Cd4 antibody (Caltag, MCD0406) was used in flow cytometry on mouse samples (fig 1). Blood (2009) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to study the role of bone marrow-derived cells in lymphangiogenesis, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . PLoS ONE (2009) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBiosciences, RM4.5) was used in flow cytometry on mouse samples . Nat Med (2009) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to evaluate immunotherapeutic regimens in mice chronically infected with lymphocytic choriomeningitis virus, Invitrogen Cd4 antibody (eBioscience, RMA4.5) was used in flow cytometry on mouse samples (fig 1). J Virol (2009) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 5). J Immunol (2009) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study interactions between CD8 T cells, Toxoplasma gondii, and APCs in the brain, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2009) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to track populations of T cells specific for a given peptide-major histocompatibility complex epitope, Invitrogen Cd4 antibody (eBioscience, 56-0041) was used in flow cytometry on mouse samples . Nat Protoc (2009) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to track populations of T cells specific for a given peptide-major histocompatibility complex epitope, Invitrogen Cd4 antibody (eBioscience, 12-0042) was used in flow cytometry on mouse samples . Nat Protoc (2009) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to assess the effects of early termination of infection on primary T cell expansion, subsequent memory cell development, and protective immunity, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples (fig 2). J Immunol (2009) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2, 4
In order to describe a role for Marco in the development of disease in BXSB mice, Invitrogen Cd4 antibody (Caltag, RMA-5) was used in flow cytometry on mouse samples (fig 2, 4). J Immunol (2009) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 5). Clin Exp Immunol (2009) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 10
In order to elucidate the role of VAMP8 in the thymus, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 10). Cell Tissue Res (2008) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to test if mesenchymal stem cells have immunomodulatory properties in solid organ allotransplantation, Invitrogen Cd4 antibody (Caltag Laboratories, CT-CD4) was used in flow cytometry on mouse samples . J Immunol (2008) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4
In order to define the contributions of apoptosis and anergy to the maintenance of self-tolerance to a systemic antigen, Invitrogen Cd4 antibody (Caltag, GK1.5) was used in flow cytometry on mouse samples (fig 4). J Immunol (2008) ncbi
rat monoclonal (GK1.5)
  • other; mouse; 5 mg/kg
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in other on mouse samples at 5 mg/kg. Invest Ophthalmol Vis Sci (2008) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
In order to study how multifactorial adjuvants show reduced toxicity and enhanced efficacy compared to unitary adjuvants as cancer vaccines, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2). Blood (2008) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to investigate the effect of Stat6 in T cell expansion, survival, and recruitment to the lung, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples (fig 1). J Immunol (2008) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to study the strength and duration of an antigenic signal at initial stimulation and the development and response of effectors and memory cells to secondary stimulation with the same antigen, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . Immunology (2008) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to investigate whether hematopoietic cells transduce canonical Wnt signals in the absence of beta- and gamma-catenin, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples . Blood (2008) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to indicate that defective DRF1 expression or mammalian diaphanous 1 function contributes to myeloid malignancies and suggest mammalian diaphanous 1 as an attractive therapeutic target in human myeloproliferative syndrome and myelodysplastic syndrome, Invitrogen Cd4 antibody (Invitrogen/Caltag Laboratories, RM4-5) was used in flow cytometry on mouse samples . Cancer Res (2007) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to study autoimmune-mediated pathology in chronic graft-versus-host disease due to the absence of regulatory T-cell control of TH1 and TH17 cells, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Blood (2007) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to assess the effects of C5a on IL-12p70 secretion by murine dendritic cells and Th1 immunity, Invitrogen Cd4 antibody (Caltag Laboratories, MCD0404) was used in flow cytometry on mouse samples . J Leukoc Biol (2007) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
In order to elucidate the role of IL-10 in regulating hepatic injury using IL-10 knockout mice infected with Trichinella spiralis, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2). J Immunol (2007) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to study the regulation of CTLA-4+ and CD25+ T cells in schistosome infection, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Parasite Immunol (2007) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to study the effects of CDK inhibition on glomerulonephritis and lifespan of mice with systemic lupus, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Arthritis Rheum (2007) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to characterize the effects of chitin on immune responses, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples . Nature (2007) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2a
In order to study GRAIL expression in murine CD4+ T cells with a described anergic phenotype, Invitrogen Cd4 antibody (eBioscience, RM-5) was used in flow cytometry on mouse samples (fig 2a). J Biol Chem (2007) ncbi
rat monoclonal (CT-CD4)
  • immunohistochemistry - frozen section; mouse
In order to characterize "class I APC-bald" mice and see if they develop diabetes, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in immunohistochemistry - frozen section on mouse samples . Proc Natl Acad Sci U S A (2007) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to evaluate the use of biodegradable poly(D,L-lactic-co-glycolic acid) nanoparticles as a vaccine delivery system, Invitrogen Cd4 antibody (E-Bioscience, GK1.5) was used in flow cytometry on mouse samples . J Biomed Mater Res A (2007) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to report that dectin-1 deficiency renders mice susceptible to infection with Candida albicans, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples . Nat Immunol (2007) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to identify the cells that are producing gamma interferon during infection with Listeria monocytogenes, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples (fig 1). Infect Immun (2007) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to propose that memory T cells respond to alloantigens initially but fail to fully develop functionally, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples (fig 1). Blood (2007) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 4). Circulation (2006) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - paraffin section; mouse; fig 2
In order to identify antigens that result in age-dependent spontaneous loss of tolerance, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in immunohistochemistry - paraffin section on mouse samples (fig 2). Clin Immunol (2006) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to study a reduction of the number of splenic Foxp3+ regulatory T cells by pertussis toxin, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Immunol (2006) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study a reduction of the number of splenic Foxp3+ regulatory T cells by pertussis toxin, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2006) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples . J Exp Med (2006) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to examine the role of IL-25 during Nippostrongylus brasiliensis infection, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Exp Med (2006) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3
In order to characterize the role of CD4+ T cells and IFN-gamma and adenosine 2A receptor-mediated tissue protection and renal ischemia-reperfusion injury, Invitrogen Cd4 antibody (eBioscience, RM-5) was used in flow cytometry on mouse samples (fig 3). J Immunol (2006) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 4
In order to evaluate the use of the nontoxic B subunit of cholera toxin as mucosal adjuvant for the female genital mucosa, Invitrogen Cd4 antibody (Caltag Laboratories, CT-CD4) was used in flow cytometry on mouse samples (fig 4). J Immunol (2006) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to clone and characterize Siglec-H, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples (fig 2). Blood (2006) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; 5 ug/ml; fig 3
In order to clone and characterize Siglec-H, Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in immunohistochemistry on mouse samples at 5 ug/ml (fig 3). Blood (2006) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to determine the influence of gut ischemia/reperfusion on gut-associated lymphoid tissue mass and function, Invitrogen Cd4 antibody (Caltag, CTCD4) was used in flow cytometry on mouse samples . Crit Care Med (2006) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 9
In order to elucidate the mechanisms that regulate the inverse relationship between helminth infections and allergies, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 9). J Immunol (2006) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to demonstrate that AChE-R and ARP facilitate granulocytosis, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Immunol (2006) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 3
In order to investigate how peroxide affects hematopoiesis, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 3). Blood (2006) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 2). J Immunol (2005) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
In order to study T cell progenitors in the adult thymus, Invitrogen Cd4 antibody (Caltag, GK1.5) was used in flow cytometry on mouse samples (fig 1). J Immunol (2005) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to conclude that bone marrow committed T cell progenitors can generate functional T cells via an extrathymic pathway, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Immunol (2005) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to characterize dendritic cells in mice infected with Trichuris muris, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Parasitol Res (2005) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to determine graft-versus-host disease and emergent autoimmunity, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Blood (2005) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
Invitrogen Cd4 antibody (eBioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2). J Immunol (2005) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to study mycobacterial dissemination and immune-cell trafficking in tuberculosis, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Infect Dis (2004) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 3
In order to test if infection with Schistosoma mansoni alters the susceptibility of mice to anaphylaxis, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 3). J Immunol (2004) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to identify a role for TRAIL in apoptosis during listeriosis, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Immunol (2004) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to develop murine models of leukemogenesis, Invitrogen Cd4 antibody (Caltag, MCD 0406) was used in flow cytometry on mouse samples . Blood (2005) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to elucidate how Schistosoma mansoni suppresses T cell activation, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Immunol (2004) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to study the augmentation of antigen-specific T-cell clonal expansion and differentiation by nasal delivery of antigen with the B subunit of Escherichia coli heat-labile enterotoxin, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Infect Immun (2004) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to investigate the contribution of GRAIL and GRAIL-interacting proteins to CD4 T cell anergy, Invitrogen Cd4 antibody (eBioscience, RM4-5) was used in flow cytometry on mouse samples (fig 1). J Immunol (2004) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to test if CD4 regulatory cells prevent autologous graft-vs.-host disease, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Am J Transplant (2004) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 4
In order to demonstrate that deletion p18(INK4C) results in improved long-term engraftment, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 4). Nat Cell Biol (2004) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to determine the fate of autoreactive CD4+T cells in HNT-TCR x GFAP-HA double transgenic mice, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Autoimmun (2004) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; tbl 1
In order to analyze NOD mice after irradiation and bone marrow transplantation and the persistence of recipient lymphocytes, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (tbl 1). J Autoimmun (2004) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 6
In order to characterize a new mouse model of rheumatoid arthritis, Invitrogen Cd4 antibody (Caltag, CTCD4) was used in flow cytometry on mouse samples (fig 6). Int Immunol (2004) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to test if higher numbers of hematopoietic stem cells correlate with the speed of immune reconstitution in a congenic transplantation mouse model, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples (fig 1). Blood (2004) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 1
In order to test if higher numbers of hematopoietic stem cells correlate with the speed of immune reconstitution in a congenic transplantation mouse model, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 1). Blood (2004) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to identify cellular mechanisms that contribute to susceptibility/resistance to tuberculosis, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Clin Exp Immunol (2004) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to report that that oral encounter with antigen leads to functional anergy, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Cell Immunol (2003) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; tbl 1
In order to test if recombinant human growth hormone promotes immune recovery after allogeneic T-cell-depleted bone marrow transplantation, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (tbl 1). Exp Hematol (2003) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to track the dynamics of the antiviral CD8+ T cell responses using a transgenic mouse that marks activated T cells, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples (fig 2). J Immunol (2003) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 1
In order to study CCR6 expression by T lymphocyte precursors undergoing extrathymic differentiation in intestinal cryptopatches, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 1). J Immunol (2003) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
In order to investigate factors that mediate induction and maintenance of the 3D configuration of the epithelial network in fetal thymic lobes in vitro, Invitrogen Cd4 antibody (Caltag, GK1.5) was used in flow cytometry on mouse samples (fig 1). J Histochem Cytochem (2003) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; fig 2
In order to examine thymic and peripheral T-lymphocyte subsets in mice infected with Trypanosoma cruzi infection, Invitrogen Cd4 antibody (Caltag, YTS 191.1) was used in flow cytometry on mouse samples (fig 2). Microbes Infect (2003) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to investigate the role of granulocyte colony-stimulating factor on hematopoietic progenitors in vivo, Invitrogen Cd4 antibody (Zymed, CT-CD4) was used in flow cytometry on mouse samples . Blood (2003) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to study the early inflammatory response of mice infected with vaccinia virus strain Western Reserve, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Gen Virol (2003) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to test if NKT cells produce IL-4 in response to T. muris infection and induce an Th2 response, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Parasite Immunol (2002) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to examine the role of SOCS-1 in regulating inflammatory and immune responses in acute inflammatory arthritis, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Clin Invest (2003) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; tbl 1
In order to assess the proliferative potential of thymic progenitors that are T cell lineage restricted, Invitrogen Cd4 antibody (Caltag, GK1.5) was used in flow cytometry on mouse samples (tbl 1). Eur J Immunol (2003) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to study the effect of dietary cis-9, trans-11 and trans-10, cis-12 conjugated linoleic acid on immunoglobulin and cytokine production from spleen lymphocytes in C57BL/6J mice, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Nutr (2003) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; fig 4
In order to report that polarized type-2 immune responses are initiated independently of adaptive immunity, Invitrogen Cd4 antibody (Caltag, YTS191.1) was used in flow cytometry on mouse samples (fig 4). Nature (2002) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to examine the T cell responses in cyclophosphamide-treated mice after systemic infection with Candida albicans, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Cell Immunol (2002) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study the effect of infection age using severe respiratory syncytial virus, Invitrogen Cd4 antibody (Caltag, RM4?C5) was used in flow cytometry on mouse samples . J Exp Med (2002) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to suggest that p38 is involved in positive selection of T cells, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Blood (2003) ncbi
rat monoclonal (CT-CD4)
  • immunohistochemistry; mouse; fig 1
In order to study the cellular infiltrate during central nervous system inflammation, Invitrogen Cd4 antibody (Caltag, clone CT-CD4) was used in immunohistochemistry on mouse samples (fig 1). J Neuroimmunol (2002) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to test if T-cell-specific expression of p300 alters GR-TCR cross talk between thymocytes, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Mol Cell Biol (2002) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to investigate the role of VCAM-1 in collagen-induced arthritis, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Clin Exp Immunol (2002) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 3
In order to assess the role of TNF in the formation and maintenance of granulomas, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 3). J Immunol (2002) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 3
In order to explore the role of E2A in T cell lineage, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 3). J Immunol (2002) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to study CD4 T cell populations during and after malaria infection, Invitrogen Cd4 antibody (Caltag, GK1.5) was used in flow cytometry on mouse samples . J Exp Med (2002) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse
In order to elucidate the roles of cytotoxic T-lymphocyte-associated antigen-4 in oral tolerance, Invitrogen Cd4 antibody (Caltag, YTS 191.1) was used in flow cytometry on mouse samples . Immunology (2002) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to compare myeloid and lymphoid recovery using bone marrow and cord blood as sources of stem cells, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Blood (2002) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to report that the inhibitor, p18(INK4c), modulates TCR-mediated T cell proliferation, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Immunol (2001) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 6
In order to report that ectopic FasL expression prevents thyroid allograft rejection, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 6). J Immunol (2001) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 2
In order to elucidate the role of IL-10 in mycobacterial infections, Invitrogen Cd4 antibody (Caltag, clone CT-CD4) was used in flow cytometry on mouse samples (fig 2). Scand J Immunol (2001) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to examine the impact of TNF on rheumatoid arthritis, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Clin Invest (2001) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to study the cell cycle using FADD(-/-) peripheral T cells, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Biol Chem (2001) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 1
In order to characterize murine tumor-infiltrating lymphocytes, Invitrogen Cd4 antibody (CalTag, CT-CD4) was used in flow cytometry on mouse samples (fig 1). J Immunol (2001) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to study the role of IL-12 and IL-4 in Th1/Th2 differentiation, Invitrogen Cd4 antibody (Caltag, GK1.5) was used in flow cytometry on mouse samples . J Exp Med (2001) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; fig 3, 4
In order to investigate the effect of IL-18 on NKT cells, Invitrogen Cd4 antibody (Caltag, YTS 191.1) was used in flow cytometry on mouse samples (fig 3, 4). J Immunol (2001) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 1
In order to study regulation of the lck in T cell lineage commitment, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 1). Int Immunol (2001) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
In order to study regulation of the lck in T cell lineage commitment, Invitrogen Cd4 antibody (Caltag, GK1.5-PE) was used in flow cytometry on mouse samples (fig 1). Int Immunol (2001) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 3
In order to assess the effects of folate analogues on superantigen-reactive peripheral T cells in vivo, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 3). Int Immunol (2001) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 5
In order to discuss PG490-88, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 5). Transplantation (2000) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to investigate the functional potential and specialized functions of T cells, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Exp Med (2000) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to investigate how antigen exposure affects T cell proliferation and cell death, Invitrogen Cd4 antibody (Caltag, RM4-5) was used in flow cytometry on mouse samples (fig 1). J Immunol (2000) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to investigate the origin of CD8alpha(+) and CD8alpha(-) DCs, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Blood (2000) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 4
In order to determine the lymphoid or myeloid origin of Langerhans cells, Invitrogen Cd4 antibody (Caltag, clone CT-CD4) was used in flow cytometry on mouse samples (fig 4). Blood (2000) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 7
In order to examine the contribution of different DC subsets during infection with Cryptococcus neoformans, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 7). J Immunol (2000) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to determine the expression of endothelial addressins and integrins on T cells during infection with Mycobacterium tuberculosis, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Immunol (2000) ncbi
rat monoclonal (CT-CD4)
  • immunohistochemistry - frozen section; mouse
  • flow cytometry; mouse
In order to determine the role of polymorphonuclear neutrophils in Chlamydophila abortus-infected mice, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in immunohistochemistry - frozen section on mouse samples and in flow cytometry on mouse samples . Infect Immun (2000) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 1
In order to determine the phenotype and function of T cells that prevent diabetes, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 1). J Immunol (2000) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to identify a rare population of cells in the adult mouse bone marrow that generates CD4(+) and CD8(+) TCRalphabeta(+) T cells, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Proc Natl Acad Sci U S A (1999) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to describe a clonal system that supports the development of T and natural killer cells evenly, Invitrogen Cd4 antibody (Caltag, GK1.5) was used in flow cytometry on mouse samples . J Exp Med (1999) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to elucidate role of SOD-1 overexpression in thymocyte biology, Invitrogen Cd4 antibody (Caltag, GK1.5) was used in flow cytometry on mouse samples . J Immunol (1999) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to investigate the aorta-gonad-mesonephros region as a source of hemopoietic progenitors, Invitrogen Cd4 antibody (Caltag, GK1.5) was used in flow cytometry on mouse samples . J Immunol (1999) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to investigate the role of Id3 in tissue and embryo development, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Mol Cell Biol (1999) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse
In order to determine the importance of T cells in Chlamydia pneumoniae infection, Invitrogen Cd4 antibody (Caltag, YTS 191-1) was used in flow cytometry on mouse samples . Immunology (1999) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; fig 2
In order to report that IL-10 regulates T cell maturation, Invitrogen Cd4 antibody (Caltag, YTS 191.1) was used in flow cytometry on mouse samples (fig 2). J Immunol (1999) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; fig 1
In order to study Fas-mediated activation-induced cell death in naive and primed T cells, Invitrogen Cd4 antibody (Caltag, YTS191.1) was used in flow cytometry on mouse samples (fig 1). J Immunol (1999) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to characterize in vitro-generated dendritic cells, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Immunology (1999) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to assess if progenitors colonizing the thymus are T cell lineage restricted, Invitrogen Cd4 antibody (Caltag, GK1.5) was used in flow cytometry on mouse samples . J Immunol (1999) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 2, 3
In order to further characterize mice hemizygous for scurfy, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 2, 3). J Immunol (1999) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 1, 2
In order to examine the effect of dietary docosahexaenoic acid on the surface molecules involved in T cell proliferation, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 1, 2). Biochim Biophys Acta (1999) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; fig 5
In order to test the effect of an aged microenvironment on the maturation of newly produced CD4+ T cells, Invitrogen Cd4 antibody (Caltag, YTS 191.1) was used in flow cytometry on mouse samples (fig 5). J Immunol (1999) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study FasL expression on thyrocytes, Invitrogen Cd4 antibody (Caltag, RM4?C5) was used in flow cytometry on mouse samples . J Immunol (1999) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 4
In order to assess experimental autoimmune encephalomyelitis in mice deficient in IL-6, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 4). J Immunol (1998) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse
In order to use T cells from BALB mice and study IL-4 production, Invitrogen Cd4 antibody (Caltag, YTS191.1) was used in flow cytometry on mouse samples . J Exp Med (1998) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse
In order to identify the initial source of IL-4 in early immune responses, Invitrogen Cd4 antibody (Caltag, YTS 191.1) was used in flow cytometry on mouse samples . Int Immunol (1998) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to analyze the cell activation and proliferation requirements for the deletion of viral superantigen-reactive Vbeta8.1 T-cell receptor transgenic thymocytes, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . Blood (1998) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse
In order to develop a mouse model to study the ability of a glycoprotein conjugate vaccine to induce immunologic memory for the polysaccharide moiety, Invitrogen Cd4 antibody (Caltag, YTS191.1) was used in flow cytometry on mouse samples . Infect Immun (1998) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 4
In order to determine if the microbiota contributes to autoimmunity in IL-2 deficient mice, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 4). J Immunol (1998) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse
In order to characterize different populations of mouse lymph node dendritic cells, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples . J Immunol (1998) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 3
In order to elucidate the function of CD1.1, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 3). J Immunol (1998) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
In order to elucidate the role of B7 in thymic selection, Invitrogen Cd4 antibody (Caltag, clone GK1.5) was used in flow cytometry on mouse samples (fig 2). Int Immunol (1997) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; fig 2
In order to elucidate the pathway and cytokine regulation of NK cell development in vitro, Invitrogen Cd4 antibody (Caltag Laboratories, YTS 191.1) was used in flow cytometry on mouse samples (fig 2). Blood (1997) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 3
In order to report that bGH stimulates the proliferation of activated murine T cells, Invitrogen Cd4 antibody (Caltag, GK 1.5) was used in flow cytometry on mouse samples (fig 3). Endocrinology (1997) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 1
In order to report that NOD mice have reduced alphabetaTCR+CD4-CD8- T-cells, Invitrogen Cd4 antibody (Caltag Laboratories, CT-CD4) was used in flow cytometry on mouse samples (fig 1). Diabetes (1997) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse
In order to test if pregnancies and gender influence the cellar changes observed during ageing in mice, Invitrogen Cd4 antibody (Caltag, YTS191-1) was used in flow cytometry on mouse samples . Clin Exp Immunol (1997) ncbi
rat monoclonal (CT-CD4)
  • flow cytometry; mouse; fig 1
In order to demonstrate that the Ras/Raf/MAPK pathway is constitutively activated in lck-transformed immature thymoblasts, Invitrogen Cd4 antibody (Caltag, CT-CD4) was used in flow cytometry on mouse samples (fig 1). Int Immunol (1997) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to report that FcR is a useful marker to isolate the most immature population of murine fetal thymic cells, Invitrogen Cd4 antibody (Caltag, GK1.5) was used in flow cytometry on mouse samples . J Exp Med (1996) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; fig 1
In order to characterize T cell populations in IL-7 -/- mice, Invitrogen Cd4 antibody (Caltag, YTS 191.1) was used in flow cytometry on mouse samples (fig 1). J Immunol (1996) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse
In order to study PD-1 expression in normal murine lymphoid tissues, Invitrogen Cd4 antibody (Caltag, YTS191.1) was used in flow cytometry on mouse samples . Int Immunol (1996) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse
In order to report that TAN1 is an oncoprotein, Invitrogen Cd4 antibody (Caltag, YTS191.1) was used in flow cytometry on mouse samples . J Exp Med (1996) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; fig 1
In order to test if CD45RB(low) population of CD4+ cells is protective or pathogenic to the development of disease in the NOD mouse, Invitrogen Cd4 antibody (Caltag, YTS191.1) was used in flow cytometry on mouse samples (fig 1). Diabetes (1996) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
In order to test if alpha beta T cells develop from hematopoietic stem cells in the absence of the thymus, Invitrogen Cd4 antibody (Caltag, GK 1.5) was used in flow cytometry on mouse samples (fig 1). J Immunol (1995) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; fig 1
In order to investigate KMI6 recognition of beta 1 integrins on T cells, Invitrogen Cd4 antibody (Caltag, YTS 191.1) was used in flow cytometry on mouse samples (fig 1). J Immunol (1995) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to study precursors of thymic T cells, Invitrogen Cd4 antibody (noco, GK1.5) was used in flow cytometry on mouse samples . Nature (1991) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; tbl 2
In order to describe the cells that transfer adoptive murine experimental hypersensitivity pneumonitis, Invitrogen Cd4 antibody (Caltag, YTS191.1) was used in flow cytometry on mouse samples (tbl 2). Am Rev Respir Dis (1992) ncbi
Abcam
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 3b
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry - paraffin section on mouse samples (fig 3b). Biomedicines (2021) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry; mouse; 1:100; fig 2e
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry on mouse samples at 1:100 (fig 2e). Cell Death Discov (2021) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - frozen section; mouse; 1:500; loading ...; fig 2a
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry - frozen section on mouse samples at 1:500 (fig 2a). J Clin Invest (2021) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry; mouse; loading ...; fig 8c
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry on mouse samples (fig 8c). Neoplasia (2021) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry; mouse; 1:500; loading ...; fig 3
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry on mouse samples at 1:500 (fig 3). Sci Rep (2020) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry; mouse; loading ...
Abcam Cd4 antibody (Abcam, EPR19514) was used in immunohistochemistry on mouse samples . Mucosal Immunol (2021) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry; mouse; loading ...
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry on mouse samples . World J Gastroenterol (2020) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 6
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry - paraffin section on mouse samples (fig 6). Oncoimmunology (2020) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - paraffin section; mouse; 1:1000; loading ...; fig 3s1a
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry - paraffin section on mouse samples at 1:1000 (fig 3s1a). elife (2020) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunocytochemistry; mouse; loading ...; fig e5b
Abcam Cd4 antibody (Abcam, ab183685) was used in immunocytochemistry on mouse samples (fig e5b). Nature (2020) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 5b
Abcam Cd4 antibody (Abcam, EPR19514) was used in immunohistochemistry - paraffin section on mouse samples (fig 5b). Cancers (Basel) (2020) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - frozen section; mouse; 1:200; loading ...; fig 2b
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry - frozen section on mouse samples at 1:200 (fig 2b). Nat Commun (2020) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig e3g
Abcam Cd4 antibody (Abcam, EPR19514) was used in immunohistochemistry - paraffin section on mouse samples (fig e3g). Nature (2019) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig e8d
Abcam Cd4 antibody (Abcam, 183685) was used in immunohistochemistry - paraffin section on mouse samples (fig e8d). Nature (2019) ncbi
domestic rabbit monoclonal (EPR19514)
  • flow cytometry; mouse; 1:500; loading ...; fig 3c
Abcam Cd4 antibody (Abcam, ab183685) was used in flow cytometry on mouse samples at 1:500 (fig 3c). J Immunother Cancer (2019) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - paraffin section; mouse; fig 3g
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry - paraffin section on mouse samples (fig 3g). J Clin Invest (2019) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig e5c
  • flow cytometry; mouse; loading ...; fig e5b
Abcam Cd4 antibody (Abcam, 183685) was used in immunohistochemistry - paraffin section on mouse samples (fig e5c) and in flow cytometry on mouse samples (fig e5b). Nature (2019) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 1d
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry - paraffin section on mouse samples (fig 1d). Cancer Cell (2019) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry; human; 1:100; loading ...
Abcam Cd4 antibody (Abcam, EPR19514) was used in immunohistochemistry on human samples at 1:100. Nature (2019) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 6d
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry - paraffin section on mouse samples (fig 6d). Nat Commun (2019) ncbi
domestic rabbit monoclonal (EPR19514)
  • immunohistochemistry - paraffin section; mouse; 1:1000; loading ...; fig 1k'
Abcam Cd4 antibody (Abcam, ab183685) was used in immunohistochemistry - paraffin section on mouse samples at 1:1000 (fig 1k'). Cell Death Dis (2018) ncbi
domestic rabbit monoclonal
  • immunohistochemistry; mouse; 1:200; loading ...; fig s4a
Abcam Cd4 antibody (Abcam, ab221775) was used in immunohistochemistry on mouse samples at 1:200 (fig s4a). Breast Cancer Res (2018) ncbi
Bio X Cell
rat monoclonal (GK1.5)
  • immunohistochemistry; human; loading ...; fig 1
  • other; mouse; loading ...; fig s6i
  • immunohistochemistry; mouse; loading ...; fig 1
Bio X Cell Cd4 antibody (BioXCell, GK1.5) was used in immunohistochemistry on human samples (fig 1), in other on mouse samples (fig s6i) and in immunohistochemistry on mouse samples (fig 1). Cell (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3e
Bio X Cell Cd4 antibody (Bio X cell, GK1.5) was used in flow cytometry on mouse samples (fig 3e). Nature (2020) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; fig 4g
  • flow cytometry; mouse; loading ...; fig 1a
Bio X Cell Cd4 antibody (Bio X Cell, GK1.5) was used in blocking or activating experiments on mouse samples (fig 4g) and in flow cytometry on mouse samples (fig 1a). Sci Adv (2020) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; ; fig 1g
Bio X Cell Cd4 antibody (BioXcell, BE0003-1) was used in blocking or activating experiments on mouse samples at (fig 1g). J Exp Med (2020) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 1c
Bio X Cell Cd4 antibody (Bio-X-Cell, BE0003-1) was used in immunohistochemistry - frozen section on mouse samples (fig 1c). Cell (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2d, e5h, e7i
Bio X Cell Cd4 antibody (BioXCell, BE0003-1) was used in flow cytometry on mouse samples (fig 2d, e5h, e7i). Nature (2019) ncbi
rat monoclonal (GK1.5)
  • other; mouse
Bio X Cell Cd4 antibody (BioXCell, GK1.5) was used in other on mouse samples . Nature (2019) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig s8
Bio X Cell Cd4 antibody (BioXcel, GK1.5) was used in blocking or activating experiments on mouse samples (fig s8). Science (2018) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; fig 2a
Bio X Cell Cd4 antibody (BioXcell, GK1.5) was used in blocking or activating experiments on mouse samples (fig 2a). JCI Insight (2018) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig s3a
Bio X Cell Cd4 antibody (Bio X Cell, GK1.5) was used in blocking or activating experiments on mouse samples (fig s3a). J Clin Invest (2019) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; 100 ug/mouse; loading ...; fig 5a
Bio X Cell Cd4 antibody (Bioxcell, BE0003-1) was used in blocking or activating experiments on mouse samples at 100 ug/mouse (fig 5a). Nat Commun (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 7a
Bio X Cell Cd4 antibody (BioXcell, GK1.5) was used in flow cytometry on mouse samples (fig 7a). Cell (2017) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 3d
Bio X Cell Cd4 antibody (BioXcell, GK1.5) was used in blocking or activating experiments on mouse samples (fig 3d). Nat Commun (2017) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 10
Bio X Cell Cd4 antibody (BioXcell, GK1.5) was used in blocking or activating experiments on mouse samples (fig 10). J Virol (2017) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig s6a
In order to evaluate mouse models of hepacivirus infection, Bio X Cell Cd4 antibody (Bioxcell, GK1.5) was used in blocking or activating experiments on mouse samples (fig s6a). Science (2017) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 6a
Bio X Cell Cd4 antibody (BioXcell, GK1.5) was used in blocking or activating experiments on mouse samples (fig 6a). J Exp Med (2017) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 7h
Bio X Cell Cd4 antibody (BioXcell, GK1.5) was used in blocking or activating experiments on mouse samples (fig 7h). J Exp Med (2017) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse
  • flow cytometry; mouse; fig s2c
In order to demonstrate that type 1 T helper cells play a crucial role in vessel normalization, Bio X Cell Cd4 antibody (BioXcell, GK1.5) was used in blocking or activating experiments on mouse samples and in flow cytometry on mouse samples (fig s2c). Nature (2017) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 6a
In order to find that TLR3, 7 and 9 deficiencies on host cells result in complete tumor regression and induction of anti-tumor immunity, Bio X Cell Cd4 antibody (BioXCell, GK1.5) was used in blocking or activating experiments on mouse samples (fig 6a). Nat Commun (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5b
In order to discover that SIRPalpha is highly expressed in human renal cell carcinoma and melanoma, Bio X Cell Cd4 antibody (Bio X cell, GK1.5) was used in flow cytometry on mouse samples (fig 5b). JCI Insight (2017) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 5a
Bio X Cell Cd4 antibody (Bio X Cell, GK1.5) was used in blocking or activating experiments on mouse samples (fig 5a). J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...
In order to explore the role of Axl in promoting a suppressive myeloid microenvironment in response to ionizing radiation therapy in combination with checkpoint immunotherapy, Bio X Cell Cd4 antibody (Bio-X-Cell, GK1.5) was used in blocking or activating experiments on mouse samples . Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 3a
In order to show that parasite-specific CD8 positive T cell-induced fatal vascular breakdown and subsequent neuronal death in an animal model of cerebral malaria, Bio X Cell Cd4 antibody (BioXcell, GK1.5) was used in blocking or activating experiments on mouse samples (fig 3a). PLoS Pathog (2016) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 2f
Bio X Cell Cd4 antibody (BioXCell, GK1.5) was used in blocking or activating experiments on mouse samples (fig 2f). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...
Bio X Cell Cd4 antibody (Bio X cell, GK1.5) was used in blocking or activating experiments on mouse samples . Science (2016) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig s9b
In order to develop and characterize a murine model of hepatitis A virus, Bio X Cell Cd4 antibody (BioXcell, GK1.5) was used in blocking or activating experiments on mouse samples (fig s9b). Science (2016) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig s8
Bio X Cell Cd4 antibody (BioXcell, GK1.5) was used in blocking or activating experiments on mouse samples (fig s8). Nature (2016) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 3
In order to discuss models of squamous lung tumors to test therapeutic regimens, Bio X Cell Cd4 antibody (BioXcel, GK1.5) was used in blocking or activating experiments on mouse samples (fig 3). J Thorac Oncol (2016) ncbi
rat monoclonal (GK1.5)
  • blocking or activating experiments; mouse; loading ...; fig 8E
In order to show that CD4 positive T cells and ILC2s together block Nippostrongylus brasiliensis development in the parenchyma, Bio X Cell Cd4 antibody (BioXcell, GK1.5) was used in blocking or activating experiments on mouse samples (fig 8E). Nat Commun (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s1
In order to investigate the effect of ADAM17 on CSF1R protein expression on hematopoietic progenitors, Bio X Cell Cd4 antibody (Bio X-Cell/Bhattacharya, GK1.5) was used in flow cytometry on mouse samples (fig s1). Exp Hematol (2015) ncbi
Bio-Rad
rat monoclonal (YTS191.1)
  • immunohistochemistry - frozen section; mouse; 1:1000; loading ...
Bio-Rad Cd4 antibody (Bio-Rad AbD Serotec, MCA1767) was used in immunohistochemistry - frozen section on mouse samples at 1:1000. Brain Commun (2021) ncbi
mouse monoclonal (CC8)
  • flow cytometry; bovine; loading ...; fig 6
Bio-Rad Cd4 antibody (Bio-Rad, MCA1653A647) was used in flow cytometry on bovine samples (fig 6). Animals (Basel) (2021) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - paraffin section; mouse; 1:200; loading ...; fig 9b
Bio-Rad Cd4 antibody (AbD Serotec, GK1.5) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 9b). Heliyon (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1b
Bio-Rad Cd4 antibody (AbD Serotec, RM4-5) was used in flow cytometry on mouse samples (fig 1b). Immunology (2017) ncbi
rat monoclonal (YTS191.1)
  • flow cytometry; mouse; loading ...; fig 1a
Bio-Rad Cd4 antibody (AbD Serotec, YTS191.1) was used in flow cytometry on mouse samples (fig 1a). Immunology (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
Bio-Rad Cd4 antibody (AbD Serotec, GK1.5) was used in flow cytometry on mouse samples . Immunology (2017) ncbi
rat monoclonal (YTS191.1)
  • immunohistochemistry - free floating section; mouse; 1:100; loading ...
In order to explore the role of hippocampal T cell infiltration in tau-driven pathophysiology and cognitive impairments, Bio-Rad Cd4 antibody (AbD Serotec, YTS191.1) was used in immunohistochemistry - free floating section on mouse samples at 1:100. Brain (2017) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; 1:500; fig s4
Bio-Rad Cd4 antibody (AbD Serotec, MCA4635) was used in immunohistochemistry on mouse samples at 1:500 (fig s4). PLoS ONE (2016) ncbi
rat monoclonal (YTS191.1)
  • immunohistochemistry; mouse; 1:200
In order to study ceramide dysregulation in a chronic experimental autoimmune encephalomyelitis model, Bio-Rad Cd4 antibody (Serotec, MCA1767) was used in immunohistochemistry on mouse samples at 1:200. Biochem Pharmacol (2014) ncbi
Santa Cruz Biotechnology
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; 1:500
  • immunohistochemistry; mouse; loading ...; fig 45
In order to outline the protocols for antibodies used for immunohistochemical studies, Santa Cruz Biotechnology Cd4 antibody (Santa Cruz, sc-13573) was used in immunohistochemistry - frozen section on mouse samples at 1:500 and in immunohistochemistry on mouse samples (fig 45). J Toxicol Pathol (2017) ncbi
mouse monoclonal (RIV6)
  • immunoprecipitation; rat; fig s3
Santa Cruz Biotechnology Cd4 antibody (Santa Cruz, sc-52385) was used in immunoprecipitation on rat samples (fig s3). PLoS ONE (2015) ncbi
rat monoclonal (H129.19)
  • flow cytometry; rat; 1:1000
Santa Cruz Biotechnology Cd4 antibody (Santa Cruz Biotechnology, sc-19642) was used in flow cytometry on rat samples at 1:1000. Mol Med Rep (2015) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; 1:100
Santa Cruz Biotechnology Cd4 antibody (Santa Cruz, sc-13573) was used in immunohistochemistry - frozen section on mouse samples at 1:100. J Mol Cell Cardiol (2014) ncbi
rat monoclonal (GK1.5)
  • immunoprecipitation; rat
  • western blot; rat; 1:500
In order to identify the molecular mechanisms that regulate the enrichment of KCNQ channels at the neuronal axon, Santa Cruz Biotechnology Cd4 antibody (Santa Cruz Biotech, sc-13573) was used in immunoprecipitation on rat samples and in western blot on rat samples at 1:500. PLoS ONE (2014) ncbi
Miltenyi Biotec
human monoclonal (REA604)
  • flow cytometry; mouse; loading ...; fig 6c
Miltenyi Biotec Cd4 antibody (Miltenyi Biotec, REA604) was used in flow cytometry on mouse samples (fig 6c). Antioxidants (Basel) (2021) ncbi
Sino Biological
domestic rabbit monoclonal (1)
  • flow cytometry; mouse; loading ...; fig 6b
Sino Biological Cd4 antibody (Sino Biological, 50134-R001) was used in flow cytometry on mouse samples (fig 6b). Front Microbiol (2018) ncbi
Novus Biologicals
domestic rabbit polyclonal (SP107)
Novus Biologicals Cd4 antibody (Novus Biologicals, NBP1-19371) was used . Sci Rep (2015) ncbi
Tonbo Biosciences
monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 8b
Tonbo Biosciences Cd4 antibody (Tonbo Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 8b). PLoS ONE (2018) ncbi
monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s2a
Tonbo Biosciences Cd4 antibody (Tonbo, GK1.5) was used in flow cytometry on mouse samples (fig s2a). J Immunol (2018) ncbi
BD Biosciences
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s3a, s3b, s3c
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig s3a, s3b, s3c). Theranostics (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 3a). J Immunother Cancer (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100
BD Biosciences Cd4 antibody (BD Horizon, 563747) was used in flow cytometry on mouse samples at 1:100. Hypertension (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3e
BD Biosciences Cd4 antibody (BD Biosciences, 562891) was used in flow cytometry on mouse samples (fig 3e). Cell Death Dis (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2b
BD Biosciences Cd4 antibody (BD Pharmingen, 552051) was used in flow cytometry on mouse samples (fig 2b). Signal Transduct Target Ther (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4b, 6a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 4b, 6a). Sci Rep (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
BD Biosciences Cd4 antibody (BD Biosciences, GK1/5) was used in flow cytometry on mouse samples . Int J Mol Sci (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...; fig 3c, s2b, s4d
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples at 1:400 (fig 3c, s2b, s4d). Nat Commun (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:400; loading ...; fig 3c, s2b, s4d
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples at 1:400 (fig 3c, s2b, s4d). Nat Commun (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 7e
BD Biosciences Cd4 antibody (BD Pharmingen, 553051) was used in flow cytometry on mouse samples (fig 7e). Signal Transduct Target Ther (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 4e
BD Biosciences Cd4 antibody (BD Pharmingen, 560181) was used in flow cytometry on mouse samples at 1:100 (fig 4e). Cells (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig 1c
BD Biosciences Cd4 antibody (BD Biosciences, 550954) was used in flow cytometry on mouse samples at 1:200 (fig 1c). Aging Cell (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5a
BD Biosciences Cd4 antibody (BD Biosciences, 550954) was used in flow cytometry on mouse samples (fig 5a). PLoS Pathog (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...; fig 1j
BD Biosciences Cd4 antibody (BD Bioscience, 561091) was used in flow cytometry on mouse samples at 1:400 (fig 1j). Proc Natl Acad Sci U S A (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig ds1k
BD Biosciences Cd4 antibody (BD, 563790) was used in flow cytometry on mouse samples (fig ds1k). Cell Rep (2021) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 2f
BD Biosciences Cd4 antibody (BD, 553647) was used in immunohistochemistry - frozen section on mouse samples (fig 2f). Int J Mol Sci (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig s3a, s3b
BD Biosciences Cd4 antibody (BD Biosciences, 562891) was used in flow cytometry on mouse samples at 1:200 (fig s3a, s3b). Nat Commun (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig s3b
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples at 1:100 (fig s3b). Cancer Res (2021) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - paraffin section; mouse; 1:500; loading ...; fig 3c
BD Biosciences Cd4 antibody (BD-Pharmingen, 557667) was used in immunohistochemistry - paraffin section on mouse samples at 1:500 (fig 3c). Oncoimmunology (2021) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; 1:200; loading ...
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in immunohistochemistry on mouse samples at 1:200. Nat Commun (2021) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; 1:200; loading ...
BD Biosciences Cd4 antibody (BDHorizon, GK1.5) was used in immunohistochemistry on mouse samples at 1:200. Nat Commun (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1b
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 1b). Sci Adv (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:1000; loading ...; fig 1b
BD Biosciences Cd4 antibody (BD PharMingen, RM4.5) was used in flow cytometry on mouse samples at 1:1000 (fig 1b). Sci Rep (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:400; loading ...; fig 5m
BD Biosciences Cd4 antibody (BD, RM4.5) was used in flow cytometry on mouse samples at 1:400 (fig 5m). Aging Cell (2021) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; loading ...; fig 2g
BD Biosciences Cd4 antibody (BD, 550280) was used in immunohistochemistry on mouse samples (fig 2g). Front Cell Dev Biol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1c
BD Biosciences Cd4 antibody (BD Bioscience, 553730) was used in flow cytometry on mouse samples (fig 1c). Cell Mol Gastroenterol Hepatol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3b
BD Biosciences Cd4 antibody (BD, GK1.5) was used in flow cytometry on mouse samples (fig 3b). Front Immunol (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 4). Front Immunol (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 7b
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig 7b). Front Immunol (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a, 3b
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2a, 3b). Front Immunol (2021) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100
BD Biosciences Cd4 antibody (BD Biosciences, 563106) was used in flow cytometry on mouse samples at 1:100. elife (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...
BD Biosciences Cd4 antibody (BD, 563790) was used in flow cytometry on mouse samples at 1:200. Nature (2021) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; loading ...; fig 8b
BD Biosciences Cd4 antibody (BD Biosciences, H129.19) was used in flow cytometry on mouse samples (fig 8b). Front Immunol (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; human; loading ...; fig s3c
BD Biosciences Cd4 antibody (BD, 553729) was used in flow cytometry on human samples (fig s3c). Cell (2021) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; fig 5a
BD Biosciences Cd4 antibody (BD, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig 5a). Hepatol Commun (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples . Front Immunol (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig s6-1b
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples at 1:200 (fig s6-1b). elife (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig 4j
BD Biosciences Cd4 antibody (BD Biosciences, 553051) was used in flow cytometry on mouse samples at 1:200 (fig 4j). elife (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1e
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 1e). Sci Immunol (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s5
BD Biosciences Cd4 antibody (BD Pharmingen, 560181) was used in flow cytometry on mouse samples (fig s5). Vaccines (Basel) (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 9b
BD Biosciences Cd4 antibody (BD Biosciences, 552051) was used in flow cytometry on mouse samples at 1:100 (fig 9b). elife (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s3e
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig s3e). BMC Immunol (2020) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 5b
BD Biosciences Cd4 antibody (BD Bioscience, RM4-5) was used in immunohistochemistry - paraffin section on mouse samples (fig 5b). Acta Neuropathol (2020) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; loading ...; fig 2e
BD Biosciences Cd4 antibody (BD, GK1.5) was used in immunohistochemistry on mouse samples (fig 2e). Nat Commun (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2a
BD Biosciences Cd4 antibody (BD Biosciences, 550954) was used in flow cytometry on mouse samples (fig 2a). Nat Commun (2020) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5d
BD Biosciences Cd4 antibody (BD Biosciences, 553727) was used in flow cytometry on mouse samples (fig 5d). Cell Rep (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1b
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig s1b). Aging Cell (2020) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry - frozen section; mouse; 1.25 ug/ml; loading ...; fig 4a
BD Biosciences Cd4 antibody (BD Pharmingen, H129.19) was used in immunohistochemistry - frozen section on mouse samples at 1.25 ug/ml (fig 4a). BMC Cancer (2020) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; loading ...; fig 2a, s2a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in immunohistochemistry on mouse samples (fig 2a, s2a). JCI Insight (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3g
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 3g). Sci Adv (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig 4b
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples at 1:200 (fig 4b). Cell Rep (2019) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; loading ...; fig 6s2a
BD Biosciences Cd4 antibody (BD, RM4-5) was used in immunohistochemistry on mouse samples (fig 6s2a). elife (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human; loading ...; fig s1
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on human samples (fig s1). Aging Cell (2020) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 2a). BMC Infect Dis (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig s1f
BD Biosciences Cd4 antibody (BD Pharmingen, 563106) was used in flow cytometry on mouse samples at 1:200 (fig s1f). Nat Commun (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4a
BD Biosciences Cd4 antibody (BD Pharmingen, 550954) was used in flow cytometry on mouse samples (fig 4a). elife (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig 3s1
BD Biosciences Cd4 antibody (BD, 557308) was used in flow cytometry on mouse samples at 1:100 (fig 3s1). elife (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s3j
BD Biosciences Cd4 antibody (BD, 553048) was used in flow cytometry on mouse samples (fig s3j). Nature (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig s1h
BD Biosciences Cd4 antibody (BD Horizon, 563790) was used in flow cytometry on mouse samples at 1:200 (fig s1h). Nat Metab (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3b, 4b
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 3b, 4b). Biomolecules (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 6a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 6a). Sci Rep (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s5a
BD Biosciences Cd4 antibody (BD Biogen, 563790) was used in flow cytometry on mouse samples (fig s5a). Cell (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:400; loading ...; fig s5
BD Biosciences Cd4 antibody (BD Bioscience, 743156) was used in flow cytometry on mouse samples at 1:400 (fig s5). Science (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1c
BD Biosciences Cd4 antibody (Biolegend, 563790) was used in flow cytometry on mouse samples (fig s1c). Cell (2019) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; 1:90; loading ...; fig s1e
BD Biosciences Cd4 antibody (BD Pharmingen, 550280) was used in immunohistochemistry - frozen section on mouse samples at 1:90 (fig s1e). Sci Rep (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s3b
BD Biosciences Cd4 antibody (BD Biosciences, 557956) was used in flow cytometry on mouse samples (fig s3b). Cell (2019) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry; mouse; 1:320; loading ...; fig ex5b
BD Biosciences Cd4 antibody (BD Biosciences, 553649) was used in immunohistochemistry on mouse samples at 1:320 (fig ex5b). Nature (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2b
BD Biosciences Cd4 antibody (BD Biosciences, 563747) was used in flow cytometry on mouse samples (fig s2b). Cell Rep (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s3b
BD Biosciences Cd4 antibody (BD Biosciences, 557956) was used in flow cytometry on mouse samples (fig s3b). Cell Rep (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3a, 3b, 4g, s7f
BD Biosciences Cd4 antibody (BD, 564667) was used in flow cytometry on mouse samples (fig 3a, 3b, 4g, s7f). Immunity (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; ; loading ...; fig 2c
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples at (fig 2c). Science (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
BD Biosciences Cd4 antibody (BD, GK1.5) was used in flow cytometry on mouse samples (fig 2a). J Exp Med (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1a
BD Biosciences Cd4 antibody (BD Biosciences, 561099) was used in flow cytometry on mouse samples (fig s1a). Sci Rep (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s3b
BD Biosciences Cd4 antibody (BD Biosciences, 563790) was used in flow cytometry on mouse samples (fig s3b). Cell (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2a
BD Biosciences Cd4 antibody (BD Bioscience, RM4-5) was used in flow cytometry on mouse samples (fig s2a). Science (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4b
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 4b). Nature (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1a). J Virol (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1
BD Biosciences Cd4 antibody (BD Biosciences, 563232) was used in flow cytometry on mouse samples (fig s1). J Clin Invest (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4b
BD Biosciences Cd4 antibody (BD, 560782) was used in flow cytometry on mouse samples (fig 4b). Oncoimmunology (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s14a
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig s14a). J Clin Invest (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3f
BD Biosciences Cd4 antibody (BD Biosciences, 553047) was used in flow cytometry on mouse samples (fig 3f). Cell Mol Gastroenterol Hepatol (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2f
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig s2f). Front Immunol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; loading ...; fig s2a, s2b
BD Biosciences Cd4 antibody (BD, GK1.5) was used in flow cytometry on mouse samples at 1:100 (fig s2a, s2b). J Pathol (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s3a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig s3a). J Clin Invest (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2f
BD Biosciences Cd4 antibody (BD, 561099) was used in flow cytometry on mouse samples (fig 2f). Cell (2018) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 4
BD Biosciences Cd4 antibody (BD Pharminger, RM4-4) was used in flow cytometry on mouse samples (fig 4). J Diabetes Res (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1c
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig s1c). J Clin Invest (2019) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 1a
BD Biosciences Cd4 antibody (BD, 552051) was used in flow cytometry on mouse samples at 1:200 (fig 1a). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 2a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in immunohistochemistry - frozen section on mouse samples (fig 2a). PLoS ONE (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5
BD Biosciences Cd4 antibody (BD Biosciences, RM4?C5) was used in flow cytometry on mouse samples (fig 5). Virology (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5e
BD Biosciences Cd4 antibody (BD Bioscience, RM4-5) was used in flow cytometry on mouse samples (fig 5e). Front Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3b
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig 3b). Sci Rep (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s4a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig s4a). Oncogene (2019) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1c
BD Biosciences Cd4 antibody (BD Biosciences, 553052) was used in flow cytometry on mouse samples (fig s1c). Cell (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 4a). Nutrients (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig s7d
BD Biosciences Cd4 antibody (BD Biosciences, 553051) was used in flow cytometry on mouse samples at 1:200 (fig s7d). Nat Neurosci (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 7c
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 7c). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2b
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2b). Oncotarget (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig s10a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples at 1:200 (fig s10a). J Clin Invest (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5b
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 5b). J Biol Chem (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4g
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5.) was used in flow cytometry on mouse samples (fig 4g). Circulation (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s18
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig s18). J Clin Invest (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3a
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig 3a). Cell Death Dis (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2a). J Clin Invest (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4a
BD Biosciences Cd4 antibody (BD Pharmingen, GK1.5) was used in flow cytometry on mouse samples (fig 4a). Int J Obes (Lond) (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2c
BD Biosciences Cd4 antibody (BD Biosciences, 557307) was used in flow cytometry on mouse samples (fig 2c). Mol Cell (2018) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 2d
BD Biosciences Cd4 antibody (BD Pharmingen, H129.19) was used in immunohistochemistry - paraffin section on mouse samples (fig 2d). Int J Cancer (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2b
BD Biosciences Cd4 antibody (BD Pharmingen, GK1.5) was used in flow cytometry on mouse samples (fig 2b). Int J Cancer (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4f
BD Biosciences Cd4 antibody (BD Biosciences, 564667) was used in flow cytometry on mouse samples (fig 4f). Nat Immunol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s13b
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig s13b). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2b
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2b). J Virol (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:250; loading ...; fig 4c
BD Biosciences Cd4 antibody (BD Biosciences, 553052) was used in flow cytometry on mouse samples at 1:250 (fig 4c). Nat Commun (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:1000; fig s7
BD Biosciences Cd4 antibody (BioLegend, 553730) was used in flow cytometry on mouse samples at 1:1000 (fig s7). J Clin Invest (2018) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 5c
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in immunohistochemistry - paraffin section on mouse samples (fig 5c). PLoS ONE (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2f
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2f). Transgenic Res (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:800; loading ...; fig 2a
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples at 1:800 (fig 2a). Heliyon (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s7c
BD Biosciences Cd4 antibody (BD Biosciences, 553049) was used in flow cytometry on mouse samples (fig s7c). Cell (2018) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; loading ...; fig 1a
BD Biosciences Cd4 antibody (BD Pharmingen, GK1.5) was used in immunohistochemistry on mouse samples (fig 1a). Nat Commun (2018) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 4f
BD Biosciences Cd4 antibody (BD, RM4-5) was used in immunohistochemistry - frozen section on mouse samples (fig 4f). J Exp Med (2018) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1d
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1d). Cell (2018) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; fig s6g
BD Biosciences Cd4 antibody (BD Biosciences, H129.19) was used in flow cytometry on mouse samples (fig s6g). Cell (2018) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; loading ...; fig 3b, 4d
BD Biosciences Cd4 antibody (BD, H129.19) was used in flow cytometry on mouse samples (fig 3b, 4d). Nature (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; loading ...; fig 2a
BD Biosciences Cd4 antibody (BD, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig 2a). Infect Immun (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
BD Biosciences Cd4 antibody (BD, GK1.5) was used in flow cytometry on mouse samples (fig 1a). J Immunol (2018) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
In order to study the role of hypercholesterolemia in T cell receptor signaling and regulatory T cell population, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 1a). Sci Rep (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 3f
BD Biosciences Cd4 antibody (BD Biosciences, 560181) was used in flow cytometry on mouse samples (fig 3f). Cancer Cell (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3f
BD Biosciences Cd4 antibody (BD Biosciences, 560783) was used in flow cytometry on mouse samples (fig 3f). Cancer Cell (2017) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; loading ...; fig 6a
In order to investigate the role of protease-activated receptor 2 in lymphocyte development, BD Biosciences Cd4 antibody (BD Biosciences, H129-19) was used in flow cytometry on mouse samples (fig 6a). Int J Biochem Cell Biol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4a
BD Biosciences Cd4 antibody (Becton Dickinson, RM4-5) was used in flow cytometry on mouse samples (fig 4a). PLoS ONE (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s6a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig s6a). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a
In order to study the involvement of the Ox40/Ox40 ligand pathway in systemic lupus erythematosus, BD Biosciences Cd4 antibody (BD Bioscience, 560782) was used in flow cytometry on mouse samples (fig 1a). J Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 6c
In order to study the regulatory mechanism for the sex-dependent stroke mortality, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 6c). Cell Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2
In order to investigate the regulated egress of T-cell subsets from tumors, BD Biosciences Cd4 antibody (BD Bioscience, RM4-5) was used in flow cytometry on mouse samples (fig 2). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2
In order to investigate the regulated egress of T-cell subsets from tumors, BD Biosciences Cd4 antibody (BD Bioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; 1:100; loading ...; fig 4b
In order to study the role of APBA3/Mint3 in metastatic niche formation, BD Biosciences Cd4 antibody (BD Biosciences, 553727) was used in immunohistochemistry - frozen section on mouse samples at 1:100 (fig 4b). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1d
BD Biosciences Cd4 antibody (BD, GK1.5) was used in flow cytometry on mouse samples (fig 1d). J Exp Med (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s4c
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig s4c). J Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3c
In order to find factors that regulate follicular T helper cell migration and function, BD Biosciences Cd4 antibody (BD Biosciences, RM 4-5) was used in flow cytometry on mouse samples (fig 3c). Science (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1b
In order to study the effects of IL-10R signaling during Plasmodium berghei ANKA-induced experimental cerebral malaria, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig s1b). Infect Immun (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; tbl 1
In order to identify pleiotropic functions for RIPK3 using a mouse model of West Nile virus encephalitis, BD Biosciences Cd4 antibody (BD Biosciences, 563726) was used in flow cytometry on mouse samples (tbl 1). Cell (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...
In order to show that Eros is essential for host defense via the phagocyte NAPDH oxidase, BD Biosciences Cd4 antibody (BD, 558107) was used in flow cytometry on mouse samples . J Exp Med (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:300; loading ...; fig 6k
In order to test if oncolytic poxvirus treatment improves anti-PD-L1 immunotherapy, BD Biosciences Cd4 antibody (BD Biosciences, 562285) was used in flow cytometry on mouse samples at 1:300 (fig 6k). Nat Commun (2017) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; 1:500; fig 4b
In order to find that TLR3, 7 and 9 deficiencies on host cells result in complete tumor regression and induction of anti-tumor immunity, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in immunohistochemistry - frozen section on mouse samples at 1:500 (fig 4b). Nat Commun (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig 2a). Immunology (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1f
In order to demonstrate that loss of autophagy results in the accumulation of mitochondria and an activated metabolic state of hematopoietic stem cells, BD Biosciences Cd4 antibody (BD Biosciences, 553729) was used in flow cytometry on mouse samples (fig s1f). Nature (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 6d
In order to study the therapeutic TnP peptide in inflammation and demyelination in a mouse model of multiple sclerosis., BD Biosciences Cd4 antibody (BD Biosciences, 553729) was used in flow cytometry on mouse samples (fig 6d). PLoS ONE (2017) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; 1:200; loading ...; fig 3
In order to examine B cell homeostasis modifications in an experimental model of systemic sclerosis, BD Biosciences Cd4 antibody (BD Bioscience, 553653) was used in flow cytometry on mouse samples at 1:200 (fig 3). Front Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3E
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 3E). Front Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1b
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig s1b). Mucosal Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:300; loading ...; fig 6c
In order to examine two llama-derived single-domain respiratory syncytial virus neutralizing antibodies, BD Biosciences Cd4 antibody (BD Pharmingen, 553052) was used in flow cytometry on mouse samples at 1:300 (fig 6c). Nat Commun (2017) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; fig 7
In order to find that Th40 cells drive a rapid, more severe experimental autoimmune encephalomyelitis disease course than conventional CD4 T cells, BD Biosciences Cd4 antibody (BD Biosciences, H129.19) was used in flow cytometry on mouse samples (fig 7). PLoS ONE (2017) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; 1:50
  • immunohistochemistry - paraffin section; mouse; 1:50
  • immunohistochemistry; mouse; loading ...; fig 47
In order to outline the protocols for antibodies used for immunohistochemical studies, BD Biosciences Cd4 antibody (BD Biosciences, 550280) was used in immunohistochemistry - frozen section on mouse samples at 1:50, in immunohistochemistry - paraffin section on mouse samples at 1:50 and in immunohistochemistry on mouse samples (fig 47). J Toxicol Pathol (2017) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry; mouse; 1:50; loading ...; fig st3
In order to outline the protocols for antibodies used for immunohistochemical studies, BD Biosciences Cd4 antibody (BD Biosciences, 550278) was used in immunohistochemistry on mouse samples at 1:50 (fig st3). J Toxicol Pathol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5b
In order to define the functions of IL-10 during Staphylococcus aureus, BD Biosciences Cd4 antibody (BD Bioscience, RM4-5) was used in flow cytometry on mouse samples (fig 5b). J Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:300; fig s4a
In order to assess the use of anti-CCR4 antibody in a mouse model of renal cell carcinoma, BD Biosciences Cd4 antibody (BD Biosciences, 560783) was used in flow cytometry on mouse samples at 1:300 (fig s4a). J Clin Invest (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1c
BD Biosciences Cd4 antibody (BD, GK 1.5) was used in flow cytometry on mouse samples (fig s1c). Nat Commun (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human
In order to show that QS-21 directly activated human monocyte-derived dendritic cells and promoted a pro-inflammatory transcriptional program, BD Biosciences Cd4 antibody (BD Biosciences, RM 4-5) was used in flow cytometry on human samples . Front Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4b
In order to discover that SIRPalpha is highly expressed in human renal cell carcinoma and melanoma, BD Biosciences Cd4 antibody (BD Bioscience, RM4-5) was used in flow cytometry on mouse samples (fig 4b). JCI Insight (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig 4A
In order to find that C-type lectin dendritic cell immunoreceptor is required to modulate lung inflammation and bacterial burden in tuberculosis, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples at 1:100 (fig 4A). Proc Natl Acad Sci U S A (2017) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry - paraffin section; mouse; 5000 ng/ml; loading ...; fig 2f
In order to find that CD4+ T cells from DOCK8-deficient mice produce large amounts of IL-31, BD Biosciences Cd4 antibody (BD Biosciences, H129.19) was used in immunohistochemistry - paraffin section on mouse samples at 5000 ng/ml (fig 2f). Nat Commun (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 5000 ng/ml; loading ...; fig 1a
In order to find that CD4+ T cells from DOCK8-deficient mice produce large amounts of IL-31, BD Biosciences Cd4 antibody (BD Biosciences, RM4?C5) was used in flow cytometry on mouse samples at 5000 ng/ml (fig 1a). Nat Commun (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig 2a). J Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig s4a
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples at 1:200 (fig s4a). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3c
In order to determine the effect of a high salt diet on intestinal immunity and the risk of inflammatory bowel disease, BD Biosciences Cd4 antibody (BD Bioscience, RM4-5) was used in flow cytometry on mouse samples (fig 3c). Oncotarget (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
In order to determine the effect of a high salt diet on intestinal immunity and the risk of inflammatory bowel disease, BD Biosciences Cd4 antibody (BD Bioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2a). Oncotarget (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2b
In order to report that differentiation and self-renewal arise as opposing outcomes of sibling CD4 positive T cells during challenge with influenza, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 2b). J Exp Med (2017) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; fig 1
In order to research the transition of T cells to B cells, BD Biosciences Cd4 antibody (BD Bioscience, 553653) was used in flow cytometry on mouse samples (fig 1). Genes Dev (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 7f
In order to examine skin dendritic cells from mice exposed to two different Th2 stimuli, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 7f). J Exp Med (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 5c
In order to determine the role of IL-17A in airway fibrosis, BD Biosciences Cd4 antibody (Becton Dickinson, GK1.5) was used in flow cytometry on mouse samples (fig 5c). Am J Physiol Lung Cell Mol Physiol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1h
In order to use knockout mice to determine if GRK6 contributes to hematopoiesis, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1h). Cell Death Dis (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s10a
In order to show that DNA hypermethylation at the PPARgamma1 promoter is induced by obesity-related factors, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig s10a). JCI Insight (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 7a
In order to determine which cells express CD83, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 7a). J Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4b
BD Biosciences Cd4 antibody (BD, 553051) was used in flow cytometry on mouse samples (fig 4b). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s4a
In order to explore the role of hippocampal T cell infiltration in tau-driven pathophysiology and cognitive impairments, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig s4a). Brain (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1c
In order to show that R848-mediated suppression of experimental asthma is IL-27-dependent, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig 1c). J Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 6
In order to study the contribution of T follicular helper cells to islet autoimmunity, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 6). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; 0.2-0.8 ug/ml; loading ...
BD Biosciences Cd4 antibody (BD Biosciences, BD553649) was used in flow cytometry on mouse samples at 0.2-0.8 ug/ml. Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; 1:250; loading ...; fig 2d
In order to examine inflammatory markers in progranulin-deficient mice, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in immunohistochemistry - frozen section on mouse samples at 1:250 (fig 2d). Glia (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3a
In order to report a role for plasmalemma vesicle-associated protein in hematopoiesis, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig 3a). J Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2D
In order to examine the thymic microenvironment using a model of paracoccidioidomycosis, BD Biosciences Cd4 antibody (BD Pharmigen, RM4-5) was used in flow cytometry on mouse samples (fig 2D). PLoS ONE (2016) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; loading ...; fig 2B
In order to examine the thymic microenvironment using a model of paracoccidioidomycosis, BD Biosciences Cd4 antibody (BD Pharmigen, H129.19) was used in flow cytometry on mouse samples (fig 2B). PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig st2
In order to demonstrate that plasmalemma vesicle-associated protein governs the seeding of fetal monocyte-derived macrophages in the tissues of mice, BD Biosciences Cd4 antibody (BD, 553048) was used in flow cytometry on mouse samples (fig st2). Nature (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig st2
In order to demonstrate that plasmalemma vesicle-associated protein governs the seeding of fetal monocyte-derived macrophages in the tissues of mice, BD Biosciences Cd4 antibody (BD, 552051) was used in flow cytometry on mouse samples (fig st2). Nature (2016) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; loading ...; fig 1e,f
In order to investigate Fanconi anemia function in hematopoietic stem cells, BD Biosciences Cd4 antibody (BD, 553653) was used in flow cytometry on mouse samples (fig 1e,f). Stem Cell Reports (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4b
In order to assess the role of cathepsin L during infection with orthomyxovirus influenza A, BD Biosciences Cd4 antibody (BD Pharmingen, 553049) was used in flow cytometry on mouse samples (fig 4b). PLoS ONE (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1b
In order to examine the contribution of T cells to the pathogenesis of age-related ocular surface disease, BD Biosciences Cd4 antibody (BD Pharmingen, GK1.5) was used in flow cytometry on mouse samples (fig s1b). Mucosal Immunol (2017) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry - paraffin section; mouse; 10 ug/ml; loading ...; fig 2h
In order to examine the contribution of T cells to the pathogenesis of age-related ocular surface disease, BD Biosciences Cd4 antibody (BD Bioscience, H129.9) was used in immunohistochemistry - paraffin section on mouse samples at 10 ug/ml (fig 2h). Mucosal Immunol (2017) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4C
BD Biosciences Cd4 antibody (BD, 550954) was used in flow cytometry on mouse samples (fig 4C). Sci Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig st1
In order to determine the contribution of IL-33 and ST2 to eosinophil homeostasis, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig st1). J Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s5
In order to describe the microRNA regulatory network that is activated in macrophages during infection with Mycobacterium tuberculosis, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig s5). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - paraffin section; mouse; 1:50; fig s4
BD Biosciences Cd4 antibody (BD PharMingen, 550280) was used in immunohistochemistry - paraffin section on mouse samples at 1:50 (fig s4). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; fig 3
BD Biosciences Cd4 antibody (BD Biosciences, 553051) was used in flow cytometry on mouse samples at 1:100 (fig 3). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human; fig 1
In order to explore the role of GABAergic signaling in mesenchymal stem cell-mediated immunosuppression, BD Biosciences Cd4 antibody (BD Biosciences, 553050) was used in flow cytometry on human samples (fig 1). PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1c
In order to discuss methods to improve needle-free intradermal injections, BD Biosciences Cd4 antibody (BD Biosciences, 553052) was used in flow cytometry on mouse samples (fig 1c). Sci Rep (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 4
BD Biosciences Cd4 antibody (BD, 553729) was used in flow cytometry on mouse samples (fig 4). PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1a, 1b
In order to explore signaling pathways regulated by RLTPR in T and B cells, BD Biosciences Cd4 antibody (BD, RMA-5) was used in flow cytometry on mouse samples (fig 1a, 1b). J Exp Med (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to investigate how organ-specific Btnl genes shape local T cell compartments, BD Biosciences Cd4 antibody (BD, 563331) was used in flow cytometry on mouse samples . Cell (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2b
In order to establish and characterize a mouse model of narcolepsy, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig s2b). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 6b
In order to characterize side population T cells, BD Biosciences Cd4 antibody (BD Biosciences, RM4.5) was used in flow cytometry on mouse samples (fig 6b). J Clin Invest (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...; fig 2b
In order to investigate if CRISPR-Cas9 delivery by adeno-associated virus induces an immune response, BD Biosciences Cd4 antibody (BD Pharmingen, 561090) was used in flow cytometry on mouse samples at 1:100 (fig 2b). Nat Methods (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:500; fig 5
BD Biosciences Cd4 antibody (BD Biosciences, 553046) was used in flow cytometry on mouse samples at 1:500 (fig 5). Exp Ther Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...
In order to describe a method for the retroviral insertion of Bcr-Abl into mice that are genetically depleted for a potential tumor suppressor, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples . Methods Mol Biol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1d
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig s1d). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4
BD Biosciences Cd4 antibody (BD Biosciences, RM4.5) was used in flow cytometry on mouse samples (fig 4). PLoS Pathog (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 2a
In order to study the T-cell depletion protective effect in the heart of diabetic Rag1 KO mice., BD Biosciences Cd4 antibody (BD Pharmingen, 561828) was used in flow cytometry on mouse samples (fig 2a). Int Immunopharmacol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
BD Biosciences Cd4 antibody (BD Biosciences, 552775) was used in flow cytometry on mouse samples (fig 2). Nat Commun (2016) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry - frozen section; mouse; 1:200; loading ...; tbl s2
In order to identify and characterize follicular cytotoxic T cells, BD Biosciences Cd4 antibody (BD, H129.19) was used in immunohistochemistry - frozen section on mouse samples at 1:200 (tbl s2). Nat Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s1
In order to test if a diet high in fats affects the development of respiratory tolerance, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig s1). PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4a
In order to report that poly-N-acetylglucosamine production by Staphylococcus epidermidis biofilms exacerbates disease, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig 4a). Infect Immun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s3a
In order to characterize a mouse model of MICU1 deficiency, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig s3a). Cell Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig ev1
BD Biosciences Cd4 antibody (BD Biosciences, RM4?\5) was used in flow cytometry on mouse samples (fig ev1). Mol Syst Biol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 4a
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 4a). J Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3a
In order to explore the contribution of IL-33 in a model of rheumatoid arthritis, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 3a). J Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, 553730) was used in flow cytometry on mouse samples . Oncoimmunology (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to study prevention of allergic skin disease by epidermal RAF, BD Biosciences Cd4 antibody (BD Bioscience, 553051) was used in flow cytometry on mouse samples (fig 2). elife (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; loading ...
In order to explore the anti-viral effects of iRhom2, BD Biosciences Cd4 antibody (BD, 553052) was used in flow cytometry on mouse samples at 1:100. Nat Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • western blot; human; 1:1000; fig 5g
  • flow cytometry; mouse; 1:50; loading ...; fig s3
In order to discuss the role of myeloid cells in pancreatic cancer pathogenesis, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in western blot on human samples at 1:1000 (fig 5g) and in flow cytometry on mouse samples at 1:50 (fig s3). Gut (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5b
In order to investigate the role of general control non-derepressible 2 in resolving autoimmune neuroinflammation, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 5b). J Neuroimmunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 5
In order to develop a protocol for differentiation of retinal pigment epithelium from mouse induced pluripotent stem cells, BD Biosciences Cd4 antibody (BD Pharmingen, 553730) was used in flow cytometry on mouse samples (fig 5). PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2a
In order to determine the role of CD6 in T cells using knock out mice, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 2a). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 8
In order to study the promotion of the development of self-reactive T cells by hydrophobic CDR3 residues, BD Biosciences Cd4 antibody (BD Biosciences, 550954) was used in flow cytometry on mouse samples (fig 8). Nat Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 8
In order to study the promotion of the development of self-reactive T cells by hydrophobic CDR3 residues, BD Biosciences Cd4 antibody (BD Biosciences, 561830) was used in flow cytometry on mouse samples (fig 8). Nat Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • immunocytochemistry; mouse; fig 4a
BD Biosciences Cd4 antibody (BD Pharmingen, 553043) was used in immunocytochemistry on mouse samples (fig 4a). J Transl Med (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to analyze inhibition of IL-17-mediated colon inflammation and tumorigenesis by ROR-gamma-t ubiquitination by Itch, BD Biosciences Cd4 antibody (BD Pharmingen, GK1.5) was used in flow cytometry on mouse samples . Nat Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2b
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2b). J Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1b
In order to discuss the environmental and cellular factors that contribute to allergic responses, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig s1b). J Allergy Clin Immunol (2017) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
BD Biosciences Cd4 antibody (BD Pharmingen, 553729) was used in flow cytometry on mouse samples (fig 2). PLoS Pathog (2016) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; 1:200; loading ...; fig 3g
In order to test if senescent stromal cells contribute to tumorigenesis, BD Biosciences Cd4 antibody (BD Pharmingen, H129.19) was used in flow cytometry on mouse samples at 1:200 (fig 3g). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s1a
In order to examine the dynamics of anti-inflammatory T cells in the intestine, BD Biosciences Cd4 antibody (BD- Pharmingen, GK1.5) was used in flow cytometry on mouse samples (fig s1a). Science (2016) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; fig 4
BD Biosciences Cd4 antibody (Becton Dickinson, 553649) was used in flow cytometry on mouse samples (fig 4). Blood (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; fig 4
BD Biosciences Cd4 antibody (BD, 560468) was used in flow cytometry on mouse samples at 1:200 (fig 4). PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1b
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1b). J Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4d
In order to elucidate the role of AMP-activated protein kinase in regulating T cell survival and function, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 4d). Oncotarget (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
BD Biosciences Cd4 antibody (Becton Dickinson, RM4-5) was used in flow cytometry on mouse samples (fig 2a). Vaccines (Basel) (2016) ncbi
rat monoclonal (GK1.5)
  • other; mouse; loading ...
In order to examine the effects of mesenchymal stromal cell-derived extracellular vesicles on bone marrow radiation damage, BD Biosciences Cd4 antibody (BD Bioscience, 553726) was used in other on mouse samples . Leukemia (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig 1). Cell Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s2b
BD Biosciences Cd4 antibody (Beckon Dickinson, 557956) was used in flow cytometry on mouse samples (fig s2b). Biol Open (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to investigate the effects of IL-1 on hematopoietic stem cells, BD Biosciences Cd4 antibody (BD Biosciences, 553729) was used in flow cytometry on mouse samples . Nat Cell Biol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; fig 4
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples at 1:200 (fig 4). Nat Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig s8
In order to investigate how spinal cord injury above thoracic level 5 causes systemic immune suppression, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig s8). Nat Neurosci (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human; fig s3a
In order to discover that T follicular helper cells preferentially express the transcriptional coactivator Bob1, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on human samples (fig s3a). Eur J Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
In order to explore the role of the JAK/STAT pathway in controlling Foxp3 in regulatory T cells, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 2a). PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to characterize differential regulation of the instructive IL-6 receptor signaling required for Th17 development by TNFR-associated factors 2 and 5, BD Biosciences Cd4 antibody (BD Biosciences, 558107) was used in flow cytometry on mouse samples (fig 2). J Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 3e
In order to identify a B cell-intrinsic mechanism by which IFN signaling promotes lupus pathogenesis, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 3e). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; fig 6
BD Biosciences Cd4 antibody (BD Biosciences, 553046) was used in flow cytometry on mouse samples at 1:100 (fig 6). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; fig 3
In order to analyze the induction of tissue-specific cytokine polarization and cellular differentiation in HPV16-driven cervical tumorigenesis in vivo due to loss of keratin 17, BD Biosciences Cd4 antibody (BD Biosciences, 550280) was used in immunohistochemistry on mouse samples (fig 3). Oncogene (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2c
In order to compare methods of generating tumor lysates/cells used for pulsing dendritic cell vaccines, BD Biosciences Cd4 antibody (BD, 553049) was used in flow cytometry on mouse samples (fig 2c). Oncoimmunology (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 6
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 6). Oncoimmunology (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to analyze induction of efficient anti-tumor immunity by vaccination with necroptotic cancer cells, BD Biosciences Cd4 antibody (BD Pharmingen, 557307) was used in flow cytometry on mouse samples . Cell Rep (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s2
In order to describe a role for Nbn in skin homeostasis, BD Biosciences Cd4 antibody (BD Biosciences, 563790) was used in flow cytometry on mouse samples (fig s2). Oncotarget (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD, 553051) was used in flow cytometry on mouse samples . PLoS ONE (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s1
In order to characterize promotion of an effective anti-tumor immune response by enhancing the production of type 1 interferons by 2'-5' oligoadenylate synthetase-like 1 (OASL1) deficiency in mice, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig s1). Cancer Immunol Immunother (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 3). Sci Rep (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
BD Biosciences Cd4 antibody (BD Bioscience, 557956) was used in flow cytometry on mouse samples (fig 1). Nat Commun (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
In order to learn the enhancement of T-cell chemokine expression and augment response to PD-1 immunotherapy in lung adenocarcinoma by HDAC inhibitors, BD Biosciences Cd4 antibody (BD Biosciences, 553729) was used in flow cytometry on mouse samples (fig 2). Clin Cancer Res (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; rat; fig 2d
In order to report bifurcation in hematopoietic stem cell types at early embryonic stages in the aorta-gonad-mesonephros, BD Biosciences Cd4 antibody (BD, 557308) was used in flow cytometry on rat samples (fig 2d). Stem Cell Reports (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4
In order to test whether heat-killed Staphyloccocus aureus inhibits the development of atherosclerosis, BD Biosciences Cd4 antibody (BD Bioscience, RM4-5) was used in flow cytometry on mouse samples (fig 4). J Intern Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1c
In order to report the contribution of dendritic cell-derived thrombospondin-1 on allergic eye disease, BD Biosciences Cd4 antibody (BD Horizon, RM4-5) was used in flow cytometry on mouse samples (fig 1c). J Leukoc Biol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
In order to show that Bhlhe40 expression marks encephalitogenic T helper cells and that the PTX-IL-1-Bhlhe40 pathway is active in mice with experimental autoimmune encephalomyelitis, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 2a). J Exp Med (2016) ncbi
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, 551539) was used in flow cytometry on mouse samples . Sci Rep (2016) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; 1:90; loading ...; fig 4f
In order to research the role of Tim-1 and Tim-4 blockade in the atherosclerotic pathogenesis, BD Biosciences Cd4 antibody (BD Pharmingen, RM4- 5) was used in immunohistochemistry on mouse samples at 1:90 (fig 4f). Arterioscler Thromb Vasc Biol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Pharmingen, GK1.5) was used in flow cytometry on mouse samples . PLoS Pathog (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2a
In order to show that ATP11C is an aminophospholipid translocase in immune cells, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 2a). PLoS ONE (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; fig 1
BD Biosciences Cd4 antibody (BD Biosciences, 557308) was used in flow cytometry on mouse samples at 1:100 (fig 1). Dis Model Mech (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD, 552775) was used in flow cytometry on mouse samples . Nature (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; fig 4, 7
In order to assess how IL-7 signaling represses TFH and Bcl-6, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples at 1:200 (fig 4, 7). Nat Commun (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s1
In order to investigate the control of LAT recruitment to the immune synapse and T-cell activation in vivo by IFT20, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig s1). Proc Natl Acad Sci U S A (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 1A; 2F
In order to determine that Th2 cell responses, alternative macrophage activation, and immunoglobulin class switching to IgG1, are enhanced in Batf3(-/-) mice responding to helminth parasites, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 1A; 2F). J Exp Med (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples at 1:100. Nature (2016) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse; fig 5
BD Biosciences Cd4 antibody (BD pharmingen, 553729) was used in immunohistochemistry on mouse samples (fig 5). Sci Rep (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig s1
In order to study the polysialylation of CCR7, BD Biosciences Cd4 antibody (BD Bioscience, RM4-5) was used in flow cytometry on mouse samples (fig s1). Science (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
BD Biosciences Cd4 antibody (BD Biosciences, 563727) was used in flow cytometry on mouse samples (fig 2). Nat Immunol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2b
In order to study the interactions between hepatoma cells and anti-hepatocellular carcinoma T-cells, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 2b). Immunol Cell Biol (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:200; fig 1
BD Biosciences Cd4 antibody (BD Bioscience, GK1.5) was used in flow cytometry on mouse samples at 1:200 (fig 1). J Endod (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2). J Gastrointest Surg (2016) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; human; 1:200
In order to elucidate the relationship between MITF and c-Jun in melanoma, BD Biosciences Cd4 antibody (BD Pharmingen, GK1.5) was used in flow cytometry on human samples at 1:200. Nat Commun (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s9
BD Biosciences Cd4 antibody (BD Biosciences, 553051) was used in flow cytometry on mouse samples (fig s9). Nat Commun (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2b
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2b). Nat Med (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; tbl 1
In order to study apolipoprotein-1 during normocholesterolemic conditions, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (tbl 1). J Immunol (2015) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse; fig 7
In order to study apolipoprotein-1 during normocholesterolemic conditions, BD Biosciences Cd4 antibody (BD Pharmingen, GK1.5) was used in immunohistochemistry - frozen section on mouse samples (fig 7). J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • immunocytochemistry; mouse
In order to report that carbon monoxide produced by heme-oxygenase 1 impairs DC immunogenicity using a mitochondria-dependent mechanism, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in immunocytochemistry on mouse samples . Eur J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4
In order to study B cells migration in vivo, BD Biosciences Cd4 antibody (BD Biosciences, 552775) was used in flow cytometry on mouse samples (fig 4). Oncoimmunology (2015) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; fig 1
In order to investigate the role of FAT10 in thymic antigen presentation, BD Biosciences Cd4 antibody (BD Biosciences., H129.19) was used in flow cytometry on mouse samples (fig 1). J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to investigate the role of FAT10 in thymic antigen presentation, BD Biosciences Cd4 antibody (BD Biosciences., RM4-5) was used in flow cytometry on mouse samples (fig 1). J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2b
In order to determine the mechanism by which BCR-ABL positive leukemia escapes immune surveillance, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2b). J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; fig 3
BD Biosciences Cd4 antibody (BD Pharmingen, 553047) was used in immunohistochemistry on mouse samples (fig 3). J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study PI3Kdelta in CD8+ T cells during infection with Listeria monocytogenes, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to compare the immunometabolic phenotype of C57Bl/6 and BALB/c mice fed chow or high-fat diets, BD Biosciences Cd4 antibody (BD Biosciences, 557681) was used in flow cytometry on mouse samples . PLoS ONE (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to investigate the induction and role of Tregs during the early pre-patent larval stage of infection with Schistosoma mansoni, BD Biosciences Cd4 antibody (BD Bioscience, RM4-5) was used in flow cytometry on mouse samples . Infect Immun (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 2e
In order to assess surface expression of C-type lectin-like receptor 2 on hematopoietic cells from peripheral blood and secondary lymphoid organs, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2e). Eur J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s1e
In order to report that autoimmune regulator is induced in human and mouse tumor keratinocytes in a K17-dependent manner and results in Gli2-induced skin tumorigenesis in mice, BD Biosciences Cd4 antibody (BD Biosciences, 550280) was used in flow cytometry on mouse samples (fig s1e). Nat Genet (2015) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry - frozen section; mouse; fig 4b
BD Biosciences Cd4 antibody (BD Pharmingen, H129.19) was used in immunohistochemistry - frozen section on mouse samples (fig 4b). Cell Mol Immunol (2016) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study the contribution of IL-10 to virus-induced demyelination, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . Glia (2015) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; fig 4
In order to study mediation of TLR7-dependent inflammation and autoimmunity by B cell autophagy, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in immunohistochemistry - frozen section on mouse samples (fig 4). Autophagy (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100; fig s3
In order to study modulation of the composition of the gut microbiota by ganoderma lucidum that reduces obesity in mice, BD Biosciences Cd4 antibody (BD Pharmingen, 557308) was used in flow cytometry on mouse samples at 1:100 (fig s3). Nat Commun (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples . Nat Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry; mouse; 1:25
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in immunohistochemistry on mouse samples at 1:25. Cancer Immunol Immunother (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to optimize application routes for trifunctional bispecific antibodies against tumor-associated ganglioside GD2, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1). Mol Cancer Ther (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; tbl s1
In order to study the role of ICOS in group 2 innate lymphoid cell responses, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (tbl s1). Biochem Biophys Res Commun (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
  • flow cytometry; human
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples and in flow cytometry on human samples . Cancer Immunol Res (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 5
BD Biosciences Cd4 antibody (BD Pharmingen, 553052) was used in flow cytometry on mouse samples (fig 5). Int J Obes (Lond) (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; fig 3
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples at 1:100 (fig 3). PLoS ONE (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD, 562891) was used in flow cytometry on mouse samples . Biochim Biophys Acta (2015) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry; mouse; 1:500; fig 4d
In order to determine the immune profile of a murine ovarian cancer model., BD Biosciences Cd4 antibody (BD Pharmingen, 550278) was used in immunohistochemistry on mouse samples at 1:500 (fig 4d). J Immunother Cancer (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 10-20 ug/ml
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples at 10-20 ug/ml. Immunology (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 2). PLoS ONE (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 3A
In order to explore the roles of T and B cells in chronic graft-versus-host disease, BD Biosciences Cd4 antibody (BD, GK1.5) was used in flow cytometry on mouse samples (fig 3A). Ann Hematol (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; human; fig 3
BD Biosciences Cd4 antibody (BD Biosciences, 553730) was used in flow cytometry on human samples (fig 3). Stem Cell Rev (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 2
  • immunocytochemistry; mouse; fig 4
BD Biosciences Cd4 antibody (BD Bioscience, GK1.5) was used in flow cytometry on mouse samples (fig 2) and in immunocytochemistry on mouse samples (fig 4). Nat Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4a
In order to assess the capacity of dried microneedle array vaccination on effector/memory CD8 positive T cell subsets, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 4a). Vaccine (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 1a
In order to assess the capacity of dried microneedle array vaccination on effector/memory CD8 positive T cell subsets, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 1a). Vaccine (2015) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; loading ...; fig 4
In order to show that CD4 positive T cells and ILC2s together block Nippostrongylus brasiliensis development in the parenchyma, BD Biosciences Cd4 antibody (BD Biosciences, RM4-4) was used in flow cytometry on mouse samples (fig 4). Nat Commun (2015) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; loading ...; fig ED3d
In order to use personalized immunotherapy to target individual tumor-specific mutations in patients, BD Biosciences Cd4 antibody (BD, RM4-5) was used in immunohistochemistry - frozen section on mouse samples (fig ED3d). Nature (2015) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry - frozen section; mouse; 10 ug/ml; fig 2
BD Biosciences Cd4 antibody (BD Pharmingen, H129.9) was used in immunohistochemistry - frozen section on mouse samples at 10 ug/ml (fig 2). Arthritis Res Ther (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100
BD Biosciences Cd4 antibody (BD Pharmingen, 553051) was used in flow cytometry on mouse samples at 1:100. PLoS ONE (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . Vaccine (2015) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; 1:50; loading ...; fig 3a
BD Biosciences Cd4 antibody (BD Pharmingen, RM4.5) was used in immunohistochemistry - frozen section on mouse samples at 1:50 (fig 3a). J Autoimmun (2015) ncbi
rat monoclonal (RM4-5)
  • immunocytochemistry; mouse; 1:200
In order to study the role of astroglial cx43 in immune quiescence of the brain, BD Biosciences Cd4 antibody (BD Biosciences, 561115) was used in immunocytochemistry on mouse samples at 1:200. J Neurosci (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 4
In order to study the role of melanoma cell surface-associated calreticulin in melphalan-induced antitumor immunity, BD Biosciences Cd4 antibody (BD, 553047) was used in flow cytometry on mouse samples (fig 4). Cancer Res (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples . PLoS ONE (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:800; fig s7
BD Biosciences Cd4 antibody (BD, 557956) was used in flow cytometry on mouse samples at 1:800 (fig s7). Nat Commun (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig s7
BD Biosciences Cd4 antibody (BD, 552051) was used in flow cytometry on mouse samples (fig s7). Nat Commun (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; fig 3
BD Biosciences Cd4 antibody (BD, 553046) was used in flow cytometry on mouse samples at 1:100 (fig 3). Nagoya J Med Sci (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples . FASEB J (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to elucidate the mechanisms by which RANKL promotes bone formation and erosion, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig 1). J Bone Miner Res (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 7
BD Biosciences Cd4 antibody (BD Pharmingen, 553049) was used in flow cytometry on mouse samples (fig 7). J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
In order to test if injury interferes with the differentiation of antigen-specific T helper-cell responses in vivo, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1). Clin Sci (Lond) (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100; fig 3
BD Biosciences Cd4 antibody (BD Biosciences, 553050) was used in flow cytometry on mouse samples at 1:100 (fig 3). Biol Reprod (2015) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry - frozen section; mouse; 2.5 ug/ml
BD Biosciences Cd4 antibody (BD, 553647) was used in immunohistochemistry - frozen section on mouse samples at 2.5 ug/ml. J Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; fig 5
In order to test if a viral cyclin-CDK6 complex is a regulator of the Notch receptor, BD Biosciences Cd4 antibody (BD PharMingen, H129.9) was used in flow cytometry on mouse samples (fig 5). Cell Cycle (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to identify DUBA as a suppressor of IL-17 production in T cells, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples . Nature (2015) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; loading ...; fig 7a
BD Biosciences Cd4 antibody (BD Bioscience, GK1.5) was used in flow cytometry on mouse samples (fig 7a). Int Immunopharmacol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig e4
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig e4). Nature (2015) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse; fig 1
In order to analyze induction of murine cardiac allograft survival and regulatory T cells from treadmill exercise, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in immunohistochemistry - frozen section on mouse samples (fig 1). Transpl Int (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to examine the effects of Withaferin A treatment using two mouse models of amyotrophic lateral sclerosis, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples . Neurotherapeutics (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; loading ...; fig 5
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 5). Infect Immun (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples (fig 3). PLoS ONE (2014) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; fig 5
In order to assess IL-25 and IL-23 and reciprocal regulation of lymphoid tissue development in the large intestine, BD Biosciences Cd4 antibody (BD Biosciences, H129.19) was used in flow cytometry on mouse samples (fig 5). Mucosal Immunol (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . J Neuroimmunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples . Cancer Res (2014) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse; fig 5
In order to analyze deubiquitinization Usp9X and its regulation of proximal T cell receptor signaling and tolerance induction, BD Biosciences Cd4 antibody (BD, H129-19) was used in flow cytometry on mouse samples (fig 5). J Exp Med (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig s1
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig s1). J Immunol (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to study the mechanism for the effect of HMGB1 on myeloid-derived suppressor cells, BD Biosciences Cd4 antibody (BD Biosciences, L3T4/GK1.5) was used in flow cytometry on mouse samples . Cancer Res (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study the role of CD93 molecule in mature dendritic cells and T cells, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . Immunobiology (2015) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to investigate the role of T reg cells in exhaustion of lymphocytic choriomeningitis virus-specific CD8 T cells, BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples . J Exp Med (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to identify a relationship between resistant cancers and myeloid-derived suppressor cells, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples . Proc Natl Acad Sci U S A (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . Proc Natl Acad Sci U S A (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to show that MID1 regulates cytotoxic lymphocytes responses, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2). Eur J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences Pharmingen, RM4-5) was used in flow cytometry on mouse samples . Nanomedicine (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD, GK1.5) was used in flow cytometry on mouse samples . Nat Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, 558107) was used in flow cytometry on mouse samples . J Neurosci (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 1
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 1). J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - paraffin section; mouse; 1:50
In order to study the contribution of paracrine effects to the repair of bone by muscle-derived stem cells, BD Biosciences Cd4 antibody (BD, BD 550280) was used in immunohistochemistry - paraffin section on mouse samples at 1:50. FASEB J (2014) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse
BD Biosciences Cd4 antibody (BD, RM4-5) was used in immunohistochemistry - frozen section on mouse samples . J Exp Med (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study the role of human endogenous retrovirus (HERV) envelope proteins in the uptake of exosomes, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples . FASEB J (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to explore the protective mechanism by which the oxysterol receptors suppress inflammatory bowel disease, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . Mucosal Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 3
In order to determine the role of CD4+ T cells during mutant Kras-driven pancreatic carcinogenesis, BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples (fig 3). Cancer Immunol Res (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Bioscience, RM4-5) was used in flow cytometry on mouse samples . Proc Natl Acad Sci U S A (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
In order to study the effect of FTY720 treatment on CD8 T-cells, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . J Neuroimmunol (2014) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-4) was used in flow cytometry on mouse samples . Exp Parasitol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (PharMingen, RM4-5) was used in flow cytometry on mouse samples . Vaccine (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:200; loading ...; fig 1a
In order to study the role of FoxP3 positive regulatory T cells in controlling T follicular helper and germinal center B-cell responses to influenza, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples at 1:200 (fig 1a). Nat Commun (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 8
In order to study optimization of a universal flu vaccine, BD Biosciences Cd4 antibody (BD, 558107) was used in flow cytometry on mouse samples (fig 8). Hum Vaccin Immunother (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 4
BD Biosciences Cd4 antibody (BD Biosciences, clone RM4-5) was used in flow cytometry on mouse samples (fig 4). Vaccine (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD, RM4-5) was used in flow cytometry on mouse samples . PLoS ONE (2014) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - paraffin section; mouse; 1:200; fig 6
In order to present a mechanism for the N-myc downstream-regulated gene 2-dependent regulation of PTEN phosphatase activity via the dephosphorylation of PTEN, BD Biosciences Cd4 antibody (BD, RM4-5) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 6). Nat Commun (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
In order to study the role of CD4 T cells during mixed antibody-mediated rejection of renal allografts, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples . Am J Transplant (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples . Immunology (2014) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD PharMingen, GK1.5) was used in flow cytometry on mouse samples . Respirology (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . Diabetes (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . Mucosal Immunol (2014) ncbi
rat monoclonal (H129.19)
  • immunocytochemistry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, H129.19) was used in immunocytochemistry on mouse samples . J Biol Chem (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Pharmingen, 558107) was used in flow cytometry on mouse samples . PLoS ONE (2013) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse
BD Biosciences Cd4 antibody (BD, 550280) was used in immunohistochemistry - frozen section on mouse samples . Transplant Res (2013) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry; mouse
BD Biosciences Cd4 antibody (BD Biosciences Pharmingen, GK 1.5) was used in immunohistochemistry on mouse samples . Mol Ther (2014) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; 1:100
BD Biosciences Cd4 antibody (BD Biosciences, 553052) was used in flow cytometry on mouse samples at 1:100. Nat Med (2013) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; 1:100
BD Biosciences Cd4 antibody (BD Biosciences, 553730) was used in flow cytometry on mouse samples at 1:100. Nat Med (2013) ncbi
rat monoclonal (H129.19)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Pharmingen, H129.19) was used in flow cytometry on mouse samples . J Immunol (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2013) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; tbl 1
BD Biosciences Cd4 antibody (BD, 552051) was used in flow cytometry on mouse samples (tbl 1). PLoS ONE (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples . J Immunol (2013) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse
BD Biosciences Cd4 antibody (BD Pharmingen, 553043) was used in immunohistochemistry - frozen section on mouse samples . Circulation (2013) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Bioscience, RM-4-5) was used in flow cytometry on mouse samples . J Immunol Methods (2013) ncbi
rat monoclonal (H129.19)
  • immunohistochemistry - frozen section; mouse; fig 1
BD Biosciences Cd4 antibody (BD, H129.19) was used in immunohistochemistry - frozen section on mouse samples (fig 1). PLoS ONE (2012) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse; fig 2
In order to assess the effect of sounds on alloimmune responses in a murine model of cardiac allograft transplantation, BD Biosciences Cd4 antibody (BD Biosciences, RM4-5) was used in flow cytometry on mouse samples (fig 2). J Cardiothorac Surg (2012) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; dogs
BD Biosciences Cd4 antibody (BD Biosciences, 553049) was used in flow cytometry on dogs samples . J Biol Chem (2012) ncbi
rat monoclonal (GK1.5)
  • immunohistochemistry - frozen section; mouse
BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in immunohistochemistry - frozen section on mouse samples . J Immunol (2010) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; human
BD Biosciences Cd4 antibody (BD Biosciences, 553052) was used in flow cytometry on human samples . J Immunol (2010) ncbi
rat monoclonal (GK1.5)
  • flow cytometry; mouse; fig 1
In order to determine the expression of CD39 in mouse and human T cells, BD Biosciences Cd4 antibody (BD Biosciences, GK1.5) was used in flow cytometry on mouse samples (fig 1). Blood (2007) ncbi
rat monoclonal (RM4-5)
  • immunohistochemistry - frozen section; mouse
In order to investigate how TRANCE on stromal cells contributes to the differentiation and maintenance of organized lymphoid aggregates in the small intestine, BD Biosciences Cd4 antibody (BD, RM4-5) was used in immunohistochemistry - frozen section on mouse samples . J Immunol (2007) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD PharMingen, RM4-5) was used in flow cytometry on mouse samples . Nat Immunol (2006) ncbi
rat monoclonal (RM4-5)
  • flow cytometry; mouse
BD Biosciences Cd4 antibody (BD Pharmingen, RM4-5) was used in flow cytometry on mouse samples . Mol Cell Biol (2004) ncbi
rat monoclonal (RM4-4)
  • flow cytometry; mouse; fig 5
In order to propose a revised model of early T cell development, BD Biosciences Cd4 antibody (PharMingen, RM4-4) was used in flow cytometry on mouse samples (fig 5). J Immunol (1994) ncbi
ATCC
rat monoclonal
  • blocking or activating experiments; mouse; fig 1
In order to study the contribution of IL-7 to pneumocystis pneumonia, ATCC Cd4 antibody (ATCC, TIB-207) was used in blocking or activating experiments on mouse samples (fig 1). Infect Immun (2016) ncbi
Articles Reviewed
  1. Arinrad S, Wilke J, Seelbach A, Doeren J, Hindermann M, Butt U, et al. NMDAR1 autoantibodies amplify behavioral phenotypes of genetic white matter inflammation: a mild encephalitis model with neuropsychiatric relevance. Mol Psychiatry. 2021;: pubmed publisher
  2. Chuang H, Chen M, Chen Y, Yang H, Ciou Y, Hsueh C, et al. BPI overexpression suppresses Treg differentiation and induces exosome-mediated inflammation in systemic lupus erythematosus. Theranostics. 2021;11:9953-9966 pubmed publisher
  3. Zhu Y, Elsheikha H, Wang J, Fang S, He J, Zhu X, et al. Synergy between Toxoplasma gondii type I ΔGRA17 immunotherapy and PD-L1 checkpoint inhibition triggers the regression of targeted and distal tumors. J Immunother Cancer. 2021;9: pubmed publisher
  4. Fearon A, Slabber C, Kuklin A, Bachofner M, Tortola L, Pohlmeier L, et al. Fibroblast growth factor receptor 3 in hepatocytes protects from toxin-induced liver injury and fibrosis. iScience. 2021;24:103143 pubmed publisher
  5. Van Maldegem F, Valand K, Cole M, Patel H, Angelova M, Rana S, et al. Characterisation of tumour microenvironment remodelling following oncogene inhibition in preclinical studies with imaging mass cytometry. Nat Commun. 2021;12:5906 pubmed publisher
  6. Liu H, Pedros C, Kong K, Canonigo Balancio A, Xue W, Altman A. Leveraging the Treg-intrinsic CTLA4-PKCη signaling pathway for cancer immunotherapy. J Immunother Cancer. 2021;9: pubmed publisher
  7. Tanaka Y, Onozato M, Mikami T, Kohwi Shigematsu T, Fukushima T, Kondo M. Increased Indoleamine 2,3-Dioxygenase Levels at the Onset of Sjögren's Syndrome in SATB1-Conditional Knockout Mice. Int J Mol Sci. 2021;22: pubmed publisher
  8. Carnevale D, Carnevale L, Perrotta S, Pallante F, Migliaccio A, Iodice D, et al. Chronic 3D Vascular-Immune Interface Established by Coculturing Pressurized Resistance Arteries and Immune Cells. Hypertension. 2021;78:1648-1661 pubmed publisher
  9. Tian N, Hu L, Lu Y, Tong L, Feng M, Liu Q, et al. TKT maintains intestinal ATP production and inhibits apoptosis-induced colitis. Cell Death Dis. 2021;12:853 pubmed publisher
  10. Jiang Y, Yuan Y, Chen M, Li S, Bai J, Zhang Y, et al. PRMT5 disruption drives antitumor immunity in cervical cancer by reprogramming T cell-mediated response and regulating PD-L1 expression. Theranostics. 2021;11:9162-9176 pubmed publisher
  11. Yang M, Long D, Hu L, Zhao Z, Li Q, Guo Y, et al. AIM2 deficiency in B cells ameliorates systemic lupus erythematosus by regulating Blimp-1-Bcl-6 axis-mediated B-cell differentiation. Signal Transduct Target Ther. 2021;6:341 pubmed publisher
  12. Rizvi Z, Dalal R, Sadhu S, Kumar Y, Kumar S, Gupta S, et al. High-salt diet mediates interplay between NK cells and gut microbiota to induce potent tumor immunity. Sci Adv. 2021;7:eabg5016 pubmed publisher
  13. Onodera T, Kita S, Adachi Y, Moriyama S, Sato A, Nomura T, et al. A SARS-CoV-2 antibody broadly neutralizes SARS-related coronaviruses and variants by coordinated recognition of a virus-vulnerable site. Immunity. 2021;54:2385-2398.e10 pubmed publisher
  14. Droho S, Cuda C, Perlman H, Lavine J. Macrophage-derived interleukin-6 is necessary and sufficient for choroidal angiogenesis. Sci Rep. 2021;11:18084 pubmed publisher
  15. Lin J, Liu H, Fukumoto T, Zundell J, Yan Q, Tang C, et al. Targeting the IRE1α/XBP1s pathway suppresses CARM1-expressing ovarian cancer. Nat Commun. 2021;12:5321 pubmed publisher
  16. Wang Z, He L, Li W, Xu C, Zhang J, Wang D, et al. GDF15 induces immunosuppression via CD48 on regulatory T cells in hepatocellular carcinoma. J Immunother Cancer. 2021;9: pubmed publisher
  17. Malenica I, Adam J, Corgnac S, Mezquita L, Auclin E, Damei I, et al. Integrin-αV-mediated activation of TGF-β regulates anti-tumour CD8 T cell immunity and response to PD-1 blockade. Nat Commun. 2021;12:5209 pubmed publisher
  18. Neumann S, Campbell K, Woodall M, Evans M, Clarkson A, Young S. Obesity Has a Systemic Effect on Immune Cells in Naïve and Cancer-Bearing Mice. Int J Mol Sci. 2021;22: pubmed publisher
  19. Moreira T, Mangani D, Cox L, Leibowitz J, Lobo E, Oliveira M, et al. PD-L1+ and XCR1+ dendritic cells are region-specific regulators of gut homeostasis. Nat Commun. 2021;12:4907 pubmed publisher
  20. Zhu Q, Ma Y, Liang J, Wei Z, Li M, Zhang Y, et al. AHR mediates the aflatoxin B1 toxicity associated with hepatocellular carcinoma. Signal Transduct Target Ther. 2021;6:299 pubmed publisher
  21. Xu P, Xiong W, Lin Y, Fan L, Pan H, Li Y. Histone deacetylase 2 knockout suppresses immune escape of triple-negative breast cancer cells via downregulating PD-L1 expression. Cell Death Dis. 2021;12:779 pubmed publisher
  22. Tillie R, Theelen T, van Kuijk K, Temmerman L, de Bruijn J, Gijbels M, et al. A Switch from Cell-Associated to Soluble PDGF-B Protects against Atherosclerosis, despite Driving Extramedullary Hematopoiesis. Cells. 2021;10: pubmed publisher
  23. Zhao Q, Koyama S, Yoshihara N, Takagi A, Komiyama E, Wada A, et al. The Alopecia Areata Phenotype Is Induced by the Water Avoidance Stress Test In cchcr1-Deficient Mice. Biomedicines. 2021;9: pubmed publisher
  24. Winn N, Wolf E, Cottam M, Bhanot M, Hasty A. Myeloid-specific deletion of ferroportin impairs macrophage bioenergetics but is disconnected from systemic insulin action in adult mice. Am J Physiol Endocrinol Metab. 2021;321:E376-E391 pubmed publisher
  25. Guo D, Yamamoto M, Hernandez C, Khodadadi H, Baban B, Stranahan A. Beige adipocytes mediate the neuroprotective and anti-inflammatory effects of subcutaneous fat in obese mice. Nat Commun. 2021;12:4623 pubmed publisher
  26. Forman R, Logunova L, Smith H, Wemyss K, Mair I, Boon L, et al. Trichuris muris infection drives cell-intrinsic IL4R alpha independent colonic RELMα+ macrophages. PLoS Pathog. 2021;17:e1009768 pubmed publisher
  27. Funk K, Arutyunov A, Desai P, White J, Soung A, Rosen S, et al. Decreased antiviral immune response within the central nervous system of aged mice is associated with increased lethality of West Nile virus encephalitis. Aging Cell. 2021;20:e13412 pubmed publisher
  28. Patial S, Lewis B, Vo T, Choudhary I, Paudel K, Mao Y, et al. Myeloid-IL4Rα is an indispensable link in IL-33-ILCs-IL-13-IL4Rα axis of eosinophil recruitment in murine lungs. Sci Rep. 2021;11:15465 pubmed publisher
  29. Lu C, Liu Z, Klement J, Yang D, Merting A, Poschel D, et al. WDR5-H3K4me3 epigenetic axis regulates OPN expression to compensate PD-L1 function to promote pancreatic cancer immune escape. J Immunother Cancer. 2021;9: pubmed publisher
  30. Cerny O, Godlee C, Tocci R, Cross N, Shi H, Williamson J, et al. CD97 stabilises the immunological synapse between dendritic cells and T cells and is targeted for degradation by the Salmonella effector SteD. PLoS Pathog. 2021;17:e1009771 pubmed publisher
  31. Kim G, Kim W, Lim S, Lee H, Koo J, Nam K, et al. In Vivo Induction of Regulatory T Cells Via CTLA-4 Signaling Peptide to Control Autoimmune Encephalomyelitis and Prevent Disease Relapse. Adv Sci (Weinh). 2021;8:2004973 pubmed publisher
  32. Mathä L, Romera Hernandez M, Steer C, Yin Y, Orangi M, Shim H, et al. Migration of Lung Resident Group 2 Innate Lymphoid Cells Link Allergic Lung Inflammation and Liver Immunity. Front Immunol. 2021;12:679509 pubmed publisher
  33. Van De Velde L, Allen E, Crawford J, Wilson T, Guy C, Russier M, et al. Neuroblastoma Formation Requires Unconventional CD4 T Cells and Arginase-1-Dependent Myeloid Cells. Cancer Res. 2021;81:5047-5059 pubmed publisher
  34. Toyama S, Moniaga C, Nakae S, Kurosawa M, Ogawa H, Tominaga M, et al. Regulatory T Cells Exhibit Interleukin-33-Dependent Migratory Behavior during Skin Barrier Disruption. Int J Mol Sci. 2021;22: pubmed publisher
  35. Hutton C, Heider F, Blanco Gómez A, Banyard A, Kononov A, Zhang X, et al. Single-cell analysis defines a pancreatic fibroblast lineage that supports anti-tumor immunity. Cancer Cell. 2021;: pubmed publisher
  36. Bruand M, Barras D, Mina M, Ghisoni E, Morotti M, Lanitis E, et al. Cell-autonomous inflammation of BRCA1-deficient ovarian cancers drives both tumor-intrinsic immunoreactivity and immune resistance via STING. Cell Rep. 2021;36:109412 pubmed publisher
  37. Goyette M, Elkholi I, Apcher C, Kuasne H, Rothlin C, Muller W, et al. Targeting Axl favors an antitumorigenic microenvironment that enhances immunotherapy responses by decreasing Hif-1α levels. Proc Natl Acad Sci U S A. 2021;118: pubmed publisher
  38. Ortega Molina A, Lebrero Fernández C, Sanz A, Deleyto Seldas N, Plata Gómez A, Menéndez C, et al. Inhibition of Rag GTPase signaling in mice suppresses B cell responses and lymphomagenesis with minimal detrimental trade-offs. Cell Rep. 2021;36:109372 pubmed publisher
  39. James O, Vandereyken M, Marchingo J, Singh F, Bray S, Wilson J, et al. IL-15 and PIM kinases direct the metabolic programming of intestinal intraepithelial lymphocytes. Nat Commun. 2021;12:4290 pubmed publisher
  40. Lu J, Wang W, Li P, Wang X, Gao C, Zhang B, et al. MiR-146a regulates regulatory T cells to suppress heart transplant rejection in mice. Cell Death Discov. 2021;7:165 pubmed publisher
  41. Wilke J, Hindermann M, Moussavi A, Butt U, Dadarwal R, Berghoff S, et al. Inducing sterile pyramidal neuronal death in mice to model distinct aspects of gray matter encephalitis. Acta Neuropathol Commun. 2021;9:121 pubmed publisher
  42. Gvozdeva O, Achasova K, Litvinova N, Kozhevnikova E, Litvinova E. Female Scent Activated Expression of Arginase1 and Inducible NO-Synthetase in Lung of BALB/c Male Mice. Animals (Basel). 2021;11: pubmed publisher
  43. Hering L, Katkeviciute E, Schwarzfischer M, Niechcial A, Riggs J, Wawrzyniak M, et al. Macrophages Compensate for Loss of Protein Tyrosine Phosphatase N2 in Dendritic Cells to Protect from Elevated Colitis. Int J Mol Sci. 2021;22: pubmed publisher
  44. Gehlsen U, Stary D, Maass M, Riesner K, Musial G, Stern M, et al. Ocular Graft-versus-Host Disease in a Chemotherapy-Based Minor-Mismatch Mouse Model Features Corneal (Lymph-) Angiogenesis. Int J Mol Sci. 2021;22: pubmed publisher
  45. Innamarato P, Morse J, Mackay A, Asby S, Beatty M, Blauvelt J, et al. Intralesional injection of rose bengal augments the efficacy of gemcitabine chemotherapy against pancreatic tumors. BMC Cancer. 2021;21:756 pubmed publisher
  46. Ryu S, Shchukina I, Youm Y, Qing H, Hilliard B, Dlugos T, et al. Ketogenic diet restrains aging-induced exacerbation of coronavirus infection in mice. elife. 2021;10: pubmed publisher
  47. Souza C, Ketelut Carneiro N, Milanezi C, Faccioli L, Gardinassi L, Silva J. NLRC4 inhibits NLRP3 inflammasome and abrogates effective antifungal CD8+ T cell responses. iScience. 2021;24:102548 pubmed publisher
  48. Ho D, Tsui Y, Chan L, Sze K, Zhang X, Cheu J, et al. Single-cell RNA sequencing shows the immunosuppressive landscape and tumor heterogeneity of HBV-associated hepatocellular carcinoma. Nat Commun. 2021;12:3684 pubmed publisher
  49. Uyanik B, Goloudina A, Akbarali A, Grigorash B, Petukhov A, Singhal S, et al. Inhibition of the DNA damage response phosphatase PPM1D reprograms neutrophils to enhance anti-tumor immune responses. Nat Commun. 2021;12:3622 pubmed publisher
  50. Wang J, Zhang Y, Xiao Y, Yuan X, Li P, Wang X, et al. Boosting immune surveillance by low-dose PI3K inhibitor facilitates early intervention of breast cancer. Am J Cancer Res. 2021;11:2005-2024 pubmed
  51. Okunuki Y, Tabor S, Lee M, Connor K. CD47 Deficiency Ameliorates Ocular Autoimmune Inflammation. Front Immunol. 2021;12:680568 pubmed publisher
  52. Chen J, Yang F, Shi S, Liu X, Qin F, Wei X, et al. The Severity of CVB3-Induced Myocarditis Can Be Improved by Blocking the Orchestration of NLRP3 and Th17 in Balb/c Mice. Mediators Inflamm. 2021;2021:5551578 pubmed publisher
  53. Yan C, Saleh N, Yang J, Nebhan C, Vilgelm A, Reddy E, et al. Novel induction of CD40 expression by tumor cells with RAS/RAF/PI3K pathway inhibition augments response to checkpoint blockade. Mol Cancer. 2021;20:85 pubmed publisher
  54. Pereira J, Cavaco P, da Silva R, Pacheco Leyva I, Mereiter S, Pinto R, et al. P-selectin glycoprotein ligand 1 promotes T cell lymphoma development and dissemination. Transl Oncol. 2021;14:101125 pubmed publisher
  55. Wu S, Fukumoto T, Lin J, Nacarelli T, Wang Y, Ong D, et al. Targeting glutamine dependence through GLS1 inhibition suppresses ARID1A-inactivated clear cell ovarian carcinoma. Nat Cancer. 2021;2:189-200 pubmed publisher
  56. Parodi B, Sanna A, Cedola A, Uccelli A, Kerlero de Rosbo N. Hydroxycarboxylic Acid Receptor 2, a Pleiotropically Linked Receptor for the Multiple Sclerosis Drug, Monomethyl Fumarate. Possible Implications for the Inflammatory Response. Front Immunol. 2021;12:655212 pubmed publisher
  57. West J, Austin E, Rizzi E, Yan L, Tanjore H, Crabtree A, et al. KCNK3 Mutation Causes Altered Immune Function in Pulmonary Arterial Hypertension Patients and Mouse Models. Int J Mol Sci. 2021;22: pubmed publisher
  58. Barker K, Etesami N, Shenoy A, Arafa E, Lyon de Ana C, Smith N, et al. Lung-resident memory B cells protect against bacterial pneumonia. J Clin Invest. 2021;131: pubmed publisher
  59. Chen S, Liu H, Li Z, Tang J, Huang B, Zhi F, et al. Epithelial PBLD attenuates intestinal inflammatory response and improves intestinal barrier function by inhibiting NF-κB signaling. Cell Death Dis. 2021;12:563 pubmed publisher
  60. Kemp S, Carpenter E, Steele N, Donahue K, Nwosu Z, Pacheco A, et al. Apolipoprotein E Promotes Immune Suppression in Pancreatic Cancer through NF-κB-Mediated Production of CXCL1. Cancer Res. 2021;81:4305-4318 pubmed publisher
  61. Lebratti T, Lim Y, Cofie A, Andhey P, Jiang X, Scott J, et al. A sustained type I IFN-neutrophil-IL-18 axis drives pathology during mucosal viral infection. elife. 2021;10: pubmed publisher
  62. Wang K, Ding Y, Xu C, Hao M, Li H, Ding L. Cldn-7 deficiency promotes experimental colitis and associated carcinogenesis by regulating intestinal epithelial integrity. Oncoimmunology. 2021;10:1923910 pubmed publisher
  63. Liu K, Jing N, Wang D, Xu P, Wang J, Chen X, et al. A novel mouse model for liver metastasis of prostate cancer reveals dynamic tumour-immune cell communication. Cell Prolif. 2021;54:e13056 pubmed publisher
  64. Glassman C, Su L, Majri Morrison S, Winkelmann H, Mo F, Li P, et al. Calibration of cell-intrinsic interleukin-2 response thresholds guides design of a regulatory T cell biased agonist. elife. 2021;10: pubmed publisher
  65. Li K, Yuan Z, Lyu J, Ahn E, Davis S, Ahmed R, et al. PD-1 suppresses TCR-CD8 cooperativity during T-cell antigen recognition. Nat Commun. 2021;12:2746 pubmed publisher
  66. Groh J, Berve K, Martini R. Immune modulation attenuates infantile neuronal ceroid lipofuscinosis in mice before and after disease onset. Brain Commun. 2021;3:fcab047 pubmed publisher
  67. Borkner L, Curham L, Wilk M, Moran B, Mills K. IL-17 mediates protective immunity against nasal infection with Bordetella pertussis by mobilizing neutrophils, especially Siglec-F+ neutrophils. Mucosal Immunol. 2021;14:1183-1202 pubmed publisher
  68. Amoozgar Z, Kloepper J, Ren J, Tay R, Kazer S, Kiner E, et al. Targeting Treg cells with GITR activation alleviates resistance to immunotherapy in murine glioblastomas. Nat Commun. 2021;12:2582 pubmed publisher
  69. Kerselidou D, Dohai B, Nelson D, Daakour S, De Cock N, Hassoun Z, et al. Alternative glycosylation controls endoplasmic reticulum dynamics and tubular extension in mammalian cells. Sci Adv. 2021;7: pubmed publisher
  70. Phong B, D Souza S, Baudier R, Wu E, Immethun V, Bauer D, et al. IgE-activated mast cells enhance TLR4-mediated antigen-specific CD4+ T cell responses. Sci Rep. 2021;11:9686 pubmed publisher
  71. Lin Q, Rong L, Jia X, Li R, Yu B, Hu J, et al. IFN-γ-dependent NK cell activation is essential to metastasis suppression by engineered Salmonella. Nat Commun. 2021;12:2537 pubmed publisher
  72. Piñeiro Hermida S, Martinez P, Blasco M. Short and dysfunctional telomeres protect from allergen-induced airway inflammation. Aging Cell. 2021;20:e13352 pubmed publisher
  73. Reis M, Willis G, Fernandez Gonzalez A, Yeung V, Taglauer E, Magaletta M, et al. Mesenchymal Stromal Cell-Derived Extracellular Vesicles Restore Thymic Architecture and T Cell Function Disrupted by Neonatal Hyperoxia. Front Immunol. 2021;12:640595 pubmed publisher
  74. Zhang S, Li L, Xie D, Reddy S, Sleasman J, Ma L, et al. Regulation of Intrinsic and Bystander T Follicular Helper Cell Differentiation and Autoimmunity by Tsc1. Front Immunol. 2021;12:620437 pubmed publisher
  75. Flamini S, Sergeev P, Viana de Barros Z, Mello T, Biagioli M, Paglialunga M, et al. Glucocorticoid-induced leucine zipper regulates liver fibrosis by suppressing CCL2-mediated leukocyte recruitment. Cell Death Dis. 2021;12:421 pubmed publisher
  76. Morel K, Sheahan A, Burkhart D, Baca S, Boufaied N, Liu Y, et al. EZH2 inhibition activates a dsRNA-STING-interferon stress axis that potentiates response to PD-1 checkpoint blockade in prostate cancer. Nat Cancer. 2021;2:444-456 pubmed publisher
  77. Liu Y, Li Y, Loh Y, Singer J, Zhu W, Macia L, et al. Fiber Derived Microbial Metabolites Prevent Acute Kidney Injury Through G-Protein Coupled Receptors and HDAC Inhibition. Front Cell Dev Biol. 2021;9:648639 pubmed publisher
  78. Go D, Lee S, Lee S, Woo S, Kim K, Kim K, et al. Programmed Death Ligand 1-Expressing Classical Dendritic Cells MitigateHelicobacter-Induced Gastritis. Cell Mol Gastroenterol Hepatol. 2021;12:715-739 pubmed publisher
  79. Zhou J, Pei X, Yang Y, Wang Z, Gao W, Ye R, et al. Orphan nuclear receptor TLX promotes immunosuppression via its transcriptional activation of PD-L1 in glioma. J Immunother Cancer. 2021;9: pubmed publisher
  80. Gangoso E, Southgate B, Bradley L, Rus S, Gálvez Cancino F, McGivern N, et al. Glioblastomas acquire myeloid-affiliated transcriptional programs via epigenetic immunoediting to elicit immune evasion. Cell. 2021;184:2454-2470.e26 pubmed publisher
  81. Yang C, Kwon D, Kim M, Im S, Lee Y. Commensal Microbiome Expands Tγδ17 Cells in the Lung and Promotes Particulate Matter-Induced Acute Neutrophilia. Front Immunol. 2021;12:645741 pubmed publisher
  82. Kastenschmidt J, Coulis G, Farahat P, Pham P, Rios R, Cristal T, et al. A stromal progenitor and ILC2 niche promotes muscle eosinophilia and fibrosis-associated gene expression. Cell Rep. 2021;35:108997 pubmed publisher
  83. Datta M, Staszewski O. Hdac1 and Hdac2 are essential for physiological maturation of a Cx3cr1 expressing subset of T-lymphocytes. BMC Res Notes. 2021;14:135 pubmed publisher
  84. Jhala G, Selck C, Chee J, Kwong C, Pappas E, Thomas H, et al. Tolerance to Proinsulin-1 Reduces Autoimmune Diabetes in NOD Mice. Front Immunol. 2021;12:645817 pubmed publisher
  85. Zheng W, Song H, Luo Z, Wu H, Chen L, Wang Y, et al. Acetylcholine ameliorates colitis by promoting IL-10 secretion of monocytic myeloid-derived suppressor cells through the nAChR/ERK pathway. Proc Natl Acad Sci U S A. 2021;118: pubmed publisher
  86. Borges P, Waclawiak I, Georgii J, Fraga Junior V, Barros J, Lemos F, et al. Adenosine Diphosphate Improves Wound Healing in Diabetic Mice Through P2Y12 Receptor Activation. Front Immunol. 2021;12:651740 pubmed publisher
  87. Akgul A, Maddaloni M, Jun S, Nelson A, Odreman V, Hoffman C, et al. Stimulation of regulatory T cells with Lactococcus lactis expressing enterotoxigenic E. coli colonization factor antigen 1 retains salivary flow in a genetic model of Sjögren's syndrome. Arthritis Res Ther. 2021;23:99 pubmed publisher
  88. Joo S, Lee S, Park D, Kim D, Gu B, Park Y, et al. Changes in Blood Metabolites and Immune Cells in Holstein and Jersey Dairy Cows by Heat Stress. Animals (Basel). 2021;11: pubmed publisher
  89. Roux C, Mucciolo G, Kopecka J, Novelli F, Riganti C, Cappello P. IL17A Depletion Affects the Metabolism of Macrophages Treated with Gemcitabine. Antioxidants (Basel). 2021;10: pubmed publisher
  90. Joseph R, Soundararajan R, Vasaikar S, Yang F, Allton K, Tian L, et al. CD8+ T cells inhibit metastasis and CXCL4 regulates its function. Br J Cancer. 2021;125:176-189 pubmed publisher
  91. Xia X, Li R, Zhou P, Xing Z, Lu C, Long Z, et al. Decreased NSG3 enhances PD-L1 expression by Erk1/2 pathway to promote pancreatic cancer progress. Am J Cancer Res. 2021;11:916-929 pubmed
  92. Horiuchi H, Parajuli B, Komiya H, Ogawa Y, Jin S, Takahashi K, et al. Interleukin-19 Abrogates Experimental Autoimmune Encephalomyelitis by Attenuating Antigen-Presenting Cell Activation. Front Immunol. 2021;12:615898 pubmed publisher
  93. Chu A, Kok S, TSUI J, Lin M, Aguirre B, Wadehra M. Epithelial membrane protein 2 (Emp2) modulates innate immune cell population recruitment at the maternal-fetal interface. J Reprod Immunol. 2021;145:103309 pubmed publisher
  94. Voisin M, Shrestha E, Rollet C, Nikain C, Josefs T, Mahe M, et al. Inhibiting LXRα phosphorylation in hematopoietic cells reduces inflammation and attenuates atherosclerosis and obesity in mice. Commun Biol. 2021;4:420 pubmed publisher
  95. Sugita J, Fujiu K, Nakayama Y, Matsubara T, Matsuda J, Oshima T, et al. Cardiac macrophages prevent sudden death during heart stress. Nat Commun. 2021;12:1910 pubmed publisher
  96. Lagnado A, Leslie J, Ruchaud Sparagano M, Victorelli S, Hirsova P, Ogrodnik M, et al. Neutrophils induce paracrine telomere dysfunction and senescence in ROS-dependent manner. EMBO J. 2021;40:e106048 pubmed publisher
  97. Bonilla W, Kirchhammer N, Marx A, Kallert S, Krzyzaniak M, Lu M, et al. Heterologous arenavirus vector prime-boost overrules self-tolerance for efficient tumor-specific CD8 T cell attack. Cell Rep Med. 2021;2:100209 pubmed publisher
  98. Petty A, Dai R, Lapalombella R, Baiocchi R, Benson D, Li Z, et al. Hedgehog-induced PD-L1 on tumor-associated macrophages is critical for suppression of tumor-infiltrating CD8+ T cell function. JCI Insight. 2021;6: pubmed publisher
  99. Guo S, Smeltz R, Nanajian A, Heller R. IL-15/IL-15Rα Heterodimeric Complex as Cancer Immunotherapy in Murine Breast Cancer Models. Front Immunol. 2020;11:614667 pubmed publisher
  100. Sun Z, Yao Y, You M, Liu J, Guo W, Qi Z, et al. The kinase PDK1 is critical for promoting T follicular helper cell differentiation. elife. 2021;10: pubmed publisher
  101. Ballet R, Brennan M, Brandl C, Feng N, Berri J, Cheng J, et al. A CD22-Shp1 phosphatase axis controls integrin β7 display and B cell function in mucosal immunity. Nat Immunol. 2021;22:381-390 pubmed publisher
  102. Mpekris F, Panagi M, Voutouri C, Martin J, Samuel R, Takahashi S, et al. Normalizing the Microenvironment Overcomes Vessel Compression and Resistance to Nano-immunotherapy in Breast Cancer Lung Metastasis. Adv Sci (Weinh). 2021;8:2001917 pubmed publisher
  103. Bielecki P, Riesenfeld S, Hütter J, Torlai Triglia E, Kowalczyk M, Ricardo Gonzalez R, et al. Skin-resident innate lymphoid cells converge on a pathogenic effector state. Nature. 2021;592:128-132 pubmed publisher
  104. Merkenschlager J, Finkin S, Ramos V, Kraft J, Cipolla M, Nowosad C, et al. Dynamic regulation of TFH selection during the germinal centre reaction. Nature. 2021;591:458-463 pubmed publisher
  105. Wang F, Ye W, Wang S, He Y, Zhong H, Wang Y, et al. Discovery of a new inhibitor targeting PD-L1 for cancer immunotherapy. Neoplasia. 2021;23:281-293 pubmed publisher
  106. Nian Y, Iske J, Maenosono R, Minami K, Heinbokel T, Quante M, et al. Targeting age-specific changes in CD4+ T cell metabolism ameliorates alloimmune responses and prolongs graft survival. Aging Cell. 2021;20:e13299 pubmed publisher
  107. Khan T, Hartley A, Haskard D, Caga Anan M, Pennell D, Collins P, et al. Oxidised LDL and Anti-Oxidised LDL Antibodies Are Reduced by Lipoprotein Apheresis in a Randomised Controlled Trial on Patients with Refractory Angina and Elevated Lipoprotein(a). Antioxidants (Basel). 2021;10: pubmed publisher
  108. Herring S, Oda J, Wagoner J, Kirchmeier D, O Connor A, Nelson E, et al. Inhibition of Arenaviruses by Combinations of Orally Available Approved Drugs. Antimicrob Agents Chemother. 2021;65: pubmed publisher
  109. Break T, Oikonomou V, Dutzan N, Desai J, Swidergall M, Freiwald T, et al. Aberrant type 1 immunity drives susceptibility to mucosal fungal infections. Science. 2021;371: pubmed publisher
  110. Mazur Bialy A, Pochec E. The Time-Course of Antioxidant Irisin Activity: Role of the Nrf2/HO-1/HMGB1 Axis. Antioxidants (Basel). 2021;10: pubmed publisher
  111. Tyagi A, Darby T, Hsu E, Yu M, Pal S, Dar H, et al. The gut microbiota is a transmissible determinant of skeletal maturation. elife. 2021;10: pubmed publisher
  112. Jin C, Du L, Nuerlan A, Wang X, Yang Y, Guo R. High expression of RRM2 as an independent predictive factor of poor prognosis in patients with lung adenocarcinoma. Aging (Albany NY). 2020;13:3518-3535 pubmed publisher
  113. Sanmarco L, Wheeler M, Gutiérrez Vázquez C, Polonio C, Linnerbauer M, Pinho Ribeiro F, et al. Gut-licensed IFNγ+ NK cells drive LAMP1+TRAIL+ anti-inflammatory astrocytes. Nature. 2021;: pubmed publisher
  114. Webb L, Fra Bido S, Innocentin S, Matheson L, Attaf N, Bignon A, et al. Ageing promotes early T follicular helper cell differentiation by modulating expression of RBPJ. Aging Cell. 2021;20:e13295 pubmed publisher
  115. Grand M, Waqasi M, Demarta Gatsi C, Wei Y, Peronet R, Commere P, et al. Hepatic Inflammation Confers Protective Immunity Against Liver Stages of Malaria Parasite. Front Immunol. 2020;11:585502 pubmed publisher
  116. Li X, Zhang M, Huang X, Liang W, Li G, Lu X, et al. Ubiquitination of RIPK1 regulates its activation mediated by TNFR1 and TLRs signaling in distinct manners. Nat Commun. 2020;11:6364 pubmed publisher
  117. Torretta S, Scagliola A, Ricci L, Mainini F, Di Marco S, Cuccovillo I, et al. D-mannose suppresses macrophage IL-1β production. Nat Commun. 2020;11:6343 pubmed publisher
  118. Rodda L, Netland J, Shehata L, Pruner K, Morawski P, Thouvenel C, et al. Functional SARS-CoV-2-Specific Immune Memory Persists after Mild COVID-19. Cell. 2021;184:169-183.e17 pubmed publisher
  119. Li J, Zhang L, Zheng Y, Shao R, Liang Q, Yu W, et al. BAD inactivation exacerbates rheumatoid arthritis pathology by promoting survival of sublining macrophages. elife. 2020;9: pubmed publisher
  120. Sanchez Felipe L, Vercruysse T, Sharma S, Ma J, Lemmens V, Van Looveren D, et al. A single-dose live-attenuated YF17D-vectored SARS-CoV-2 vaccine candidate. Nature. 2021;590:320-325 pubmed publisher
  121. Jensen I, Jensen S, Sjaastad F, Gibson Corley K, Dileepan T, Griffith T, et al. Sepsis impedes EAE disease development and diminishes autoantigen-specific naive CD4 T cells. elife. 2020;9: pubmed publisher
  122. Gao L, Li B, Wang J, Shen D, Yang M, Sun R, et al. Activation of Liver X Receptor α Sensitizes Mice to T-Cell Mediated Hepatitis. Hepatol Commun. 2020;4:1664-1679 pubmed publisher
  123. Wang Y, Luo M, Chen Y, Wang Y, Zhang B, Ren Z, et al. ZMYND8 Expression in Breast Cancer Cells Blocks T-Lymphocyte Surveillance to Promote Tumor Growth. Cancer Res. 2021;81:174-186 pubmed publisher
  124. Myers D, Abram C, Wildes D, Belwafa A, Welsh A, Schulze C, et al. Shp1 Loss Enhances Macrophage Effector Function and Promotes Anti-Tumor Immunity. Front Immunol. 2020;11:576310 pubmed publisher
  125. Lissner M, Cumnock K, Davis N, Vilches Moure J, Basak P, Navarrete D, et al. Metabolic profiling during malaria reveals the role of the aryl hydrocarbon receptor in regulating kidney injury. elife. 2020;9: pubmed publisher
  126. Zhao L, Hu S, Davila M, Yang J, Lin Y, Albanese J, et al. Coordinated co-migration of CCR10+ antibody-producing B cells with helper T cells for colonic homeostatic regulation. Mucosal Immunol. 2021;14:420-430 pubmed publisher
  127. Fernandes R, Li C, Wang G, Yang X, Savvides C, Glassman C, et al. Discovery of surrogate agonists for visceral fat Treg cells that modulate metabolic indices in vivo. elife. 2020;9: pubmed publisher
  128. Ricci B, Tycksen E, Celik H, Belle J, Fontana F, Civitelli R, et al. Osterix-Cre marks distinct subsets of CD45- and CD45+ stromal populations in extra-skeletal tumors with pro-tumorigenic characteristics. elife. 2020;9: pubmed publisher
  129. Li N, Kang Y, Wang L, Huff S, Tang R, Hui H, et al. ALKBH5 regulates anti-PD-1 therapy response by modulating lactate and suppressive immune cell accumulation in tumor microenvironment. Proc Natl Acad Sci U S A. 2020;117:20159-20170 pubmed publisher
  130. Li Z, Zhang H, Huang Y, Huang J, Sun P, Zhou N, et al. Autophagy deficiency promotes triple-negative breast cancer resistance to T cell-mediated cytotoxicity by blocking tenascin-C degradation. Nat Commun. 2020;11:3806 pubmed publisher
  131. Pasciuto E, Burton O, Roca C, Lagou V, Rajan W, Theys T, et al. Microglia Require CD4 T Cells to Complete the Fetal-to-Adult Transition. Cell. 2020;182:625-640.e24 pubmed publisher
  132. Malacco N, Souza J, Martins F, Rachid M, Simplicio J, Tirapelli C, et al. Chronic ethanol consumption compromises neutrophil function in acute pulmonary Aspergillus fumigatus infection. elife. 2020;9: pubmed publisher
  133. Bhaskar A, Kumar S, Khan M, Singh A, Dwivedi V, Nandicoori V. Host sirtuin 2 as an immunotherapeutic target against tuberculosis. elife. 2020;9: pubmed publisher
  134. Chitirala P, Chang H, Martzloff P, Harenberg C, Ravichandran K, Abdulreda M, et al. Studying the biology of cytotoxic T lymphocytes in vivo with a fluorescent granzyme B-mTFP knock-in mouse. elife. 2020;9: pubmed publisher
  135. Peligero Cruz C, Givony T, Sebé Pedrós A, Dobes J, Kadouri N, Nevo S, et al. IL18 signaling promotes homing of mature Tregs into the thymus. elife. 2020;9: pubmed publisher
  136. Harbour S, DiToro D, Witte S, Zindl C, Gao M, Schoeb T, et al. TH17 cells require ongoing classic IL-6 receptor signaling to retain transcriptional and functional identity. Sci Immunol. 2020;5: pubmed publisher
  137. Neuper T, Neureiter D, Sarajlic M, Strandt H, Bauer R, Schwarz H, et al. IL-31 transgenic mice show reduced allergen-induced lung inflammation. Eur J Immunol. 2021;51:191-196 pubmed publisher
  138. Mahr B, Pilat N, Granofszky N, Muckenhuber M, Unger L, Weijler A, et al. Distinct roles for major and minor antigen barriers in chimerism-based tolerance under irradiation-free conditions. Am J Transplant. 2021;21:968-977 pubmed publisher
  139. Manils J, Webb L, Howes A, Janzen J, Boeing S, Bowcock A, et al. CARD14E138A signalling in keratinocytes induces TNF-dependent skin and systemic inflammation. elife. 2020;9: pubmed publisher
  140. Zhou T, Damsky W, Weizman O, McGeary M, Hartmann K, Rosen C, et al. IL-18BP is a secreted immune checkpoint and barrier to IL-18 immunotherapy. Nature. 2020;583:609-614 pubmed publisher
  141. Seitz V, Kleo K, Dröge A, Schaper S, Elezkurtaj S, Bedjaoui N, et al. Evidence for a role of RUNX1 as recombinase cofactor for TCRβ rearrangements and pathological deletions in ETV6-RUNX1 ALL. Sci Rep. 2020;10:10024 pubmed publisher
  142. Jansons J, Bayurova E, Skrastina D, Kurlanda A, Fridrihsone I, Kostyushev D, et al. Expression of the Reverse Transcriptase Domain of Telomerase Reverse Transcriptase Induces Lytic Cellular Response in DNA-Immunized Mice and Limits Tumorigenic and Metastatic Potential of Murine Adenocarcinoma 4T1 Cells. Vaccines (Basel). 2020;8: pubmed publisher
  143. Ning Y, Ding J, Sun X, Xie Y, Su M, Ma C, et al. HDAC9 deficiency promotes tumor progression by decreasing the CD8+ dendritic cell infiltration of the tumor microenvironment. J Immunother Cancer. 2020;8: pubmed publisher
  144. Zhou S, Wu W, Wang Z, Wang Z, Su Q, Li X, et al. RelB regulates the homeostatic proliferation but not the function of Tregs. BMC Immunol. 2020;21:37 pubmed publisher
  145. Maisel K, Hrusch C, Medellin J, Potin L, Chapel D, Nurmi H, et al. Pro-lymphangiogenic VEGFR-3 signaling modulates memory T cell responses in allergic airway inflammation. Mucosal Immunol. 2021;14:144-151 pubmed publisher
  146. Domingo Gonzalez R, Zanini F, Che X, Liu M, Jones R, Swift M, et al. Diverse homeostatic and immunomodulatory roles of immune cells in the developing mouse lung at single cell resolution. elife. 2020;9: pubmed publisher
  147. Vacca F, Chauch C, Jamwal A, Hinchy E, Heieis G, Webster H, et al. A helminth-derived suppressor of ST2 blocks allergic responses. elife. 2020;9: pubmed publisher
  148. Burfeind K, Zhu X, Norgard M, Levasseur P, Huisman C, Buenafe A, et al. Circulating myeloid cells invade the central nervous system to mediate cachexia during pancreatic cancer. elife. 2020;9: pubmed publisher
  149. Castiello M, Bosticardo M, Sacchetti N, Calzoni E, Fontana E, Yamazaki Y, et al. Efficacy and safety of anti-CD45-saporin as conditioning agent for RAG deficiency. J Allergy Clin Immunol. 2021;147:309-320.e6 pubmed publisher
  150. Yamamoto K, Venida A, Yano J, Biancur D, Kakiuchi M, Gupta S, et al. Autophagy promotes immune evasion of pancreatic cancer by degrading MHC-I. Nature. 2020;581:100-105 pubmed publisher
  151. Zheng D, Gao F, Cheng Q, Bao P, Dong X, Fan J, et al. A vaccine-based nanosystem for initiating innate immunity and improving tumor immunotherapy. Nat Commun. 2020;11:1985 pubmed publisher
  152. Zhu M, Ma Y, Tan K, Zhang L, Wang Z, Li Y, et al. Thalidomide with blockade of co-stimulatory molecules prolongs the survival of alloantigen-primed mice with cardiac allografts. BMC Immunol. 2020;21:19 pubmed publisher
  153. Luoni M, Giannelli S, Indrigo M, Niro A, Massimino L, Iannielli A, et al. Whole brain delivery of an instability-prone Mecp2 transgene improves behavioral and molecular pathological defects in mouse models of Rett syndrome. elife. 2020;9: pubmed publisher
  154. Tashita C, Hoshi M, Hirata A, Nakamoto K, Ando T, Hattori T, et al. Kynurenine plays an immunosuppressive role in 2,4,6-trinitrobenzene sulfate-induced colitis in mice. World J Gastroenterol. 2020;26:918-932 pubmed publisher
  155. Stebegg M, Bignon A, Hill D, Silva Cayetano A, Krueger C, Vanderleyden I, et al. Rejuvenating conventional dendritic cells and T follicular helper cell formation after vaccination. elife. 2020;9: pubmed publisher
  156. von Roemeling C, Wang Y, Qie Y, Yuan H, Zhao H, Liu X, et al. Therapeutic modulation of phagocytosis in glioblastoma can activate both innate and adaptive antitumour immunity. Nat Commun. 2020;11:1508 pubmed publisher
  157. Gao M, Wang T, Ji L, Bai S, Tian L, Song H. Therapy With Carboplatin and Anti-PD-1 Antibodies Before Surgery Demonstrates Sustainable Anti-Tumor Effects for Secondary Cancers in Mice With Triple-Negative Breast Cancer. Front Immunol. 2020;11:366 pubmed publisher
  158. Wuggenig P, Kaya B, Melhem H, Ayata C, Hruz P, Sayan A, et al. Loss of the branched-chain amino acid transporter CD98hc alters the development of colonic macrophages in mice. Commun Biol. 2020;3:130 pubmed publisher
  159. Zhang S, Liang W, Luo L, Sun S, Wang F. The role of T cell trafficking in CTLA-4 blockade-induced gut immunopathology. BMC Biol. 2020;18:29 pubmed publisher
  160. Chaurasiya S, Yang A, Kang S, Lu J, Kim S, Park A, et al. Oncolytic poxvirus CF33-hNIS-ΔF14.5 favorably modulates tumor immune microenvironment and works synergistically with anti-PD-L1 antibody in a triple-negative breast cancer model. Oncoimmunology. 2020;9:1729300 pubmed publisher
  161. Doll J, Hoebe K, Thompson R, Sawtell N. Resolution of herpes simplex virus reactivation in vivo results in neuronal destruction. PLoS Pathog. 2020;16:e1008296 pubmed publisher
  162. Fu Y, Ding Y, Wang Q, Zhu F, Tan Y, Lu X, et al. Blood-stage malaria parasites manipulate host innate immune responses through the induction of sFGL2. Sci Adv. 2020;6:eaay9269 pubmed publisher
  163. Ramstead A, Wallace J, Lee S, Bauer K, Tang W, Ekiz H, et al. Mitochondrial Pyruvate Carrier 1 Promotes Peripheral T Cell Homeostasis through Metabolic Regulation of Thymic Development. Cell Rep. 2020;30:2889-2899.e6 pubmed publisher
  164. Witalis M, Chang J, Zhong M, Bouklouch Y, Panneton V, Li J, et al. Progression of AITL-like tumors in mice is driven by Tfh signature proteins and T-B cross talk. Blood Adv. 2020;4:868-879 pubmed publisher
  165. Hajaj E, Eisenberg G, Klein S, Frankenburg S, Merims S, Ben David I, et al. SLAMF6​ deficiency augments tumor killing and skews toward an effector phenotype revealing it as a novel T cell checkpoint. elife. 2020;9: pubmed publisher
  166. Wei J, Mattapallil M, Horai R, Jittayasothorn Y, Modi A, Sen H, et al. A novel role for lipoxin A4 in driving a lymph node-eye axis that controls autoimmunity to the neuroretina. elife. 2020;9: pubmed publisher
  167. Martens R, Permanyer M, Werth K, Yu K, Braun A, Halle O, et al. Efficient homing of T cells via afferent lymphatics requires mechanical arrest and integrin-supported chemokine guidance. Nat Commun. 2020;11:1114 pubmed publisher
  168. Luker A, Graham L, Smith T, Camarena C, Zellner M, Gilmer J, et al. The DNA methyltransferase inhibitor, guadecitabine, targets tumor-induced myelopoiesis and recovers T cell activity to slow tumor growth in combination with adoptive immunotherapy in a mouse model of breast cancer. BMC Immunol. 2020;21:8 pubmed publisher
  169. Lu Z, Zou J, Li S, Topper M, Tao Y, Zhang H, et al. Epigenetic therapy inhibits metastases by disrupting premetastatic niches. Nature. 2020;579:284-290 pubmed publisher
  170. Hu X, Deng Q, Ma L, Li Q, Chen Y, Liao Y, et al. Meningeal lymphatic vessels regulate brain tumor drainage and immunity. Cell Res. 2020;30:229-243 pubmed publisher
  171. Lu H, Kim S, Steelman A, Tracy K, Zhou B, Michaud D, et al. STAT3 signaling in myeloid cells promotes pathogenic myelin-specific T cell differentiation and autoimmune demyelination. Proc Natl Acad Sci U S A. 2020;117:5430-5441 pubmed publisher
  172. Wang J, Li P, Yu Y, Fu Y, Jiang H, Lu M, et al. Pulmonary surfactant-biomimetic nanoparticles potentiate heterosubtypic influenza immunity. Science. 2020;367: pubmed publisher
  173. Chen C, Chencheng Z, Cuiying L, Xiaokun G. Plasmacytoid Dendritic Cells Protect Against Middle Cerebral Artery Occlusion Induced Brain Injury by Priming Regulatory T Cells. Front Cell Neurosci. 2020;14:8 pubmed publisher
  174. Aslan K, Turco V, Blobner J, Sonner J, Liuzzi A, Núñez N, et al. Heterogeneity of response to immune checkpoint blockade in hypermutated experimental gliomas. Nat Commun. 2020;11:931 pubmed publisher
  175. Chen H, Cong X, Wu C, Wu X, Wang J, Mao K, et al. Intratumoral delivery of CCL25 enhances immunotherapy against triple-negative breast cancer by recruiting CCR9+ T cells. Sci Adv. 2020;6:eaax4690 pubmed publisher
  176. Ferrer Font L, Mehta P, Harmos P, Schmidt A, Chappell S, Price K, et al. High-dimensional analysis of intestinal immune cells during helminth infection. elife. 2020;9: pubmed publisher
  177. Tizian C, Lahmann A, Hölsken O, Cosovanu C, Kofoed Branzk M, Heinrich F, et al. c-Maf restrains T-bet-driven programming of CCR6-negative group 3 innate lymphoid cells. elife. 2020;9: pubmed publisher
  178. Cohen G, Chandran P, Lorsung R, Tomlinson L, Sundby M, Burks S, et al. The Impact of Focused Ultrasound in Two Tumor Models: Temporal Alterations in the Natural History on Tumor Microenvironment and Immune Cell Response. Cancers (Basel). 2020;12: pubmed publisher
  179. Terashima Y, Toda E, Itakura M, Otsuji M, Yoshinaga S, Okumura K, et al. Targeting FROUNT with disulfiram suppresses macrophage accumulation and its tumor-promoting properties. Nat Commun. 2020;11:609 pubmed publisher
  180. Williams G, Marmion D, Schonhoff A, Jurkuvenaite A, Won W, Standaert D, et al. T cell infiltration in both human multiple system atrophy and a novel mouse model of the disease. Acta Neuropathol. 2020;139:855-874 pubmed publisher
  181. Schanoski A, Le T, Kaiserman D, Rowe C, Prow N, Barboza D, et al. Granzyme A in Chikungunya and Other Arboviral Infections. Front Immunol. 2019;10:3083 pubmed publisher
  182. Mosaheb M, Dobrikova E, Brown M, Yang Y, Cable J, Okada H, et al. Genetically stable poliovirus vectors activate dendritic cells and prime antitumor CD8 T cell immunity. Nat Commun. 2020;11:524 pubmed publisher
  183. Liu Z, Wen J, Wu C, Hu C, Wang J, Bao Q, et al. MicroRNA-200a induces immunosuppression by promoting PTEN-mediated PD-L1 upregulation in osteosarcoma. Aging (Albany NY). 2020;12:1213-1236 pubmed publisher
  184. Choi S, Bae H, Jeong S, Park I, Cho H, Hong S, et al. YAP/TAZ direct commitment and maturation of lymph node fibroblastic reticular cells. Nat Commun. 2020;11:519 pubmed publisher
  185. Yu M, Guo G, Huang L, Deng L, Chang C, Achyut B, et al. CD73 on cancer-associated fibroblasts enhanced by the A2B-mediated feedforward circuit enforces an immune checkpoint. Nat Commun. 2020;11:515 pubmed publisher
  186. Singh K, Leu J, Barnoud T, Vonteddu P, Gnanapradeepan K, Lin C, et al. African-centric TP53 variant increases iron accumulation and bacterial pathogenesis but improves response to malaria toxin. Nat Commun. 2020;11:473 pubmed publisher
  187. He B, Johansson Percival A, Backhouse J, Li J, Lee G, Hamzah J, et al. Remodeling of Metastatic Vasculature Reduces Lung Colonization and Sensitizes Overt Metastases to Immunotherapy. Cell Rep. 2020;30:714-724.e5 pubmed publisher
  188. Canel M, Taggart D, Sims A, Lonergan D, Waizenegger I, Serrels A. T-cell co-stimulation in combination with targeting FAK drives enhanced anti-tumor immunity. elife. 2020;9: pubmed publisher
  189. Schafflick D, Xu C, Hartlehnert M, Cole M, Schulte Mecklenbeck A, Lautwein T, et al. Integrated single cell analysis of blood and cerebrospinal fluid leukocytes in multiple sclerosis. Nat Commun. 2020;11:247 pubmed publisher
  190. Bliss C, Parsons A, Nachbagauer R, Hamilton J, Cappuccini F, Ulaszewska M, et al. Targeting Antigen to the Surface of EVs Improves the In Vivo Immunogenicity of Human and Non-human Adenoviral Vaccines in Mice. Mol Ther Methods Clin Dev. 2020;16:108-125 pubmed publisher
  191. Hayes M, Ward S, Crawford G, Seoane R, Jackson W, Kipling D, et al. Inflammation-induced IgE promotes epithelial hyperplasia and tumour growth. elife. 2020;9: pubmed publisher
  192. Wang G, Xu J, Zhao J, Yin W, Liu D, Chen W, et al. Arf1-mediated lipid metabolism sustains cancer cells and its ablation induces anti-tumor immune responses in mice. Nat Commun. 2020;11:220 pubmed publisher
  193. Gate D, Saligrama N, Leventhal O, Yang A, Unger M, Middeldorp J, et al. Clonally expanded CD8 T cells patrol the cerebrospinal fluid in Alzheimer's disease. Nature. 2020;577:399-404 pubmed publisher
  194. Thiele Née Schrewe L, Guse K, Tietz S, Remlinger J, Demir S, Pedreiturria X, et al. Functional relevance of the multi-drug transporter abcg2 on teriflunomide therapy in an animal model of multiple sclerosis. J Neuroinflammation. 2020;17:9 pubmed publisher
  195. Cheng M, Chen Y, Huang D, Chen W, Xu W, Chen Y, et al. Intrinsically altered lung-resident γδT cells control lung melanoma by producing interleukin-17A in the elderly. Aging Cell. 2020;19:e13099 pubmed publisher
  196. Enríquez Pérez J, Kopecky J, Visse E, Darabi A, Siesjo P. Convection-enhanced delivery of temozolomide and whole cell tumor immunizations in GL261 and KR158 experimental mouse gliomas. BMC Cancer. 2020;20:7 pubmed publisher
  197. Lee J, Hall J, Kroehling L, Wu L, Najar T, Nguyen H, et al. Serum Amyloid A Proteins Induce Pathogenic Th17 Cells and Promote Inflammatory Disease. Cell. 2020;180:79-91.e16 pubmed publisher
  198. Raphael I, Gomez Rivera F, Raphael R, Robinson R, Nalawade S, Forsthuber T. TNFR2 limits proinflammatory astrocyte functions during EAE induced by pathogenic DR2b-restricted T cells. JCI Insight. 2019;4: pubmed publisher
  199. Fusciello M, Fontana F, Tähtinen S, Capasso C, Feola S, Martins B, et al. Artificially cloaked viral nanovaccine for cancer immunotherapy. Nat Commun. 2019;10:5747 pubmed publisher
  200. Williford J, Ishihara J, Ishihara A, Mansurov A, Hosseinchi P, Marchell T, et al. Recruitment of CD103+ dendritic cells via tumor-targeted chemokine delivery enhances efficacy of checkpoint inhibitor immunotherapy. Sci Adv. 2019;5:eaay1357 pubmed publisher
  201. Jimeno R, Lebrusant Fernandez M, Margreitter C, LUCAS B, Veerapen N, Kelly G, et al. Tissue-specific shaping of the TCR repertoire and antigen specificity of iNKT cells. elife. 2019;8: pubmed publisher
  202. Eastman A, Xu J, Bermik J, Potchen N, den Dekker A, Neal L, et al. Epigenetic stabilization of DC and DC precursor classical activation by TNFα contributes to protective T cell polarization. Sci Adv. 2019;5:eaaw9051 pubmed publisher
  203. Guo C, Allen B, Hiam K, Dodd D, Van Treuren W, Higginbottom S, et al. Depletion of microbiome-derived molecules in the host using Clostridium genetics. Science. 2019;366: pubmed publisher
  204. Leylek R, Alcántara Hernández M, Lanzar Z, Lüdtke A, Perez O, Reizis B, et al. Integrated Cross-Species Analysis Identifies a Conserved Transitional Dendritic Cell Population. Cell Rep. 2019;29:3736-3750.e8 pubmed publisher
  205. Mantani P, Dunér P, Ljungcrantz I, Nilsson J, Bjorkbacka H, Fredrikson G. ILC2 transfers to apolipoprotein E deficient mice reduce the lipid content of atherosclerotic lesions. BMC Immunol. 2019;20:47 pubmed publisher
  206. Ward L, Lee D, Sharma A, Wang A, Naouar I, Ma X, et al. Siponimod therapy implicates Th17 cells in a preclinical model of subpial cortical injury. JCI Insight. 2020;5: pubmed publisher
  207. Li A, Herbst R, Canner D, Schenkel J, Smith O, Kim J, et al. IL-33 Signaling Alters Regulatory T Cell Diversity in Support of Tumor Development. Cell Rep. 2019;29:2998-3008.e8 pubmed publisher
  208. Fukuda Y, Asaoka T, Eguchi H, Yokota Y, Kubo M, Kinoshita M, et al. Endogenous CXCL9 affects prognosis by regulating tumor-infiltrating natural killer cells in intrahepatic cholangiocarcinoma. Cancer Sci. 2020;111:323-333 pubmed publisher
  209. Park C, Kehrl J. An integrin/MFG-E8 shuttle loads HIV-1 viral-like particles onto follicular dendritic cells in mouse lymph node. elife. 2019;8: pubmed publisher
  210. Callender L, Carroll E, Bober E, Akbar A, Solito E, Henson S. Mitochondrial mass governs the extent of human T cell senescence. Aging Cell. 2020;19:e13067 pubmed publisher
  211. Shi L, Wang J, Ding N, Zhang Y, Zhu Y, Dong S, et al. Inflammation induced by incomplete radiofrequency ablation accelerates tumor progression and hinders PD-1 immunotherapy. Nat Commun. 2019;10:5421 pubmed publisher
  212. Hang S, Paik D, Yao L, Kim E, Jamma T, Lu J, et al. Bile acid metabolites control TH17 and Treg cell differentiation. Nature. 2019;576:143-148 pubmed publisher
  213. Zhao Y, Yang Q, Jin C, Feng Y, Xie S, Xie H, et al. Changes of CD103-expressing pulmonary CD4+ and CD8+ T cells in S. japonicum infected C57BL/6 mice. BMC Infect Dis. 2019;19:999 pubmed publisher
  214. Reed M, Luissint A, Azcutia V, Fan S, O Leary M, Quirós M, et al. Epithelial CD47 is critical for mucosal repair in the murine intestine in vivo. Nat Commun. 2019;10:5004 pubmed publisher
  215. Strickley J, Messerschmidt J, Awad M, Li T, Hasegawa T, Ha D, et al. Immunity to commensal papillomaviruses protects against skin cancer. Nature. 2019;: pubmed publisher
  216. Yan D, Wang J, Sun H, Zamani A, Zhang H, Chen W, et al. TIPE2 specifies the functional polarization of myeloid-derived suppressor cells during tumorigenesis. J Exp Med. 2020;217: pubmed publisher
  217. Constantinides M, Link V, Tamoutounour S, Wong A, Pérez Chaparro P, Han S, et al. MAIT cells are imprinted by the microbiota in early life and promote tissue repair. Science. 2019;366: pubmed publisher
  218. Alspach E, Lussier D, Miceli A, Kizhvatov I, DuPage M, Luoma A, et al. MHC-II neoantigens shape tumour immunity and response to immunotherapy. Nature. 2019;574:696-701 pubmed publisher
  219. Chu C, Murdock M, Jing D, Won T, Chung H, Kressel A, et al. The microbiota regulate neuronal function and fear extinction learning. Nature. 2019;574:543-548 pubmed publisher
  220. Liberatore R, Mastrocola E, Cassella E, Schmidt F, Willen J, Voronin D, et al. Rhabdo-immunodeficiency virus, a murine model of acute HIV-1 infection. elife. 2019;8: pubmed publisher
  221. Lin F, Meng X, Guo Y, Cao W, Liu W, Xia Q, et al. Epigenetic initiation of the TH17 differentiation program is promoted by Cxxc finger protein 1. Sci Adv. 2019;5:eaax1608 pubmed publisher
  222. Helsley R, Varadharajan V, Brown A, Gromovsky A, Schugar R, Ramachandiran I, et al. Obesity-linked suppression of membrane-bound O-acyltransferase 7 (MBOAT7) drives non-alcoholic fatty liver disease. elife. 2019;8: pubmed publisher
  223. Yadava K, Medina C, Ishak H, Gurevich I, Kuipers H, Shamskhou E, et al. Natural Tr1-like cells do not confer long-term tolerogenic memory. elife. 2019;8: pubmed publisher
  224. Benechet A, De Simone G, Di Lucia P, Cilenti F, Barbiera G, Le Bert N, et al. Dynamics and genomic landscape of CD8+ T cells undergoing hepatic priming. Nature. 2019;574:200-205 pubmed publisher
  225. Ortega Molina A, Deleyto Seldas N, Carreras J, Sanz A, Lebrero Fernández C, Menéndez C, et al. Oncogenic Rag GTPase signaling enhances B cell activation and drives follicular lymphoma sensitive to pharmacological inhibition of mTOR. Nat Metab. 2019;1:775-789 pubmed publisher
  226. Lecocq Q, Zeven K, De Vlaeminck Y, Martens S, Massa S, Goyvaerts C, et al. Noninvasive Imaging of the Immune Checkpoint LAG-3 Using Nanobodies, from Development to Pre-Clinical Use. Biomolecules. 2019;9: pubmed publisher
  227. Majer O, Liu B, Kreuk L, Krogan N, Barton G. UNC93B1 recruits syntenin-1 to dampen TLR7 signalling and prevent autoimmunity. Nature. 2019;575:366-370 pubmed publisher
  228. Nelson C, Thompson E, Quarnstrom C, Fraser K, Seelig D, Bhela S, et al. Robust Iterative Stimulation with Self-Antigens Overcomes CD8+ T Cell Tolerance to Self- and Tumor Antigens. Cell Rep. 2019;28:3092-3104.e5 pubmed publisher
  229. Schreiber L, Urbiola C, Das K, Spiesschaert B, Kimpel J, Heinemann F, et al. The lytic activity of VSV-GP treatment dominates the therapeutic effects in a syngeneic model of lung cancer. Br J Cancer. 2019;121:647-658 pubmed publisher
  230. Jia S, Li W, Liu P, Xu L. A role of eosinophils in mediating the anti-tumour effect of cryo-thermal treatment. Sci Rep. 2019;9:13214 pubmed publisher
  231. Aghajanian H, Kimura T, Rurik J, Hancock A, Leibowitz M, Li L, et al. Targeting cardiac fibrosis with engineered T cells. Nature. 2019;573:430-433 pubmed publisher
  232. Liu Z, Gu Y, Chakarov S, Blériot C, Kwok I, Chen X, et al. Fate Mapping via Ms4a3-Expression History Traces Monocyte-Derived Cells. Cell. 2019;178:1509-1525.e19 pubmed publisher
  233. Zhang F, Parayath N, Ene C, Stephan S, Koehne A, Coon M, et al. Genetic programming of macrophages to perform anti-tumor functions using targeted mRNA nanocarriers. Nat Commun. 2019;10:3974 pubmed publisher
  234. Rasoulouniriana D, Santana Magal N, Gutwillig A, Farhat Younis L, Wine Y, Saperia C, et al. A distinct subset of FcγRI-expressing Th1 cells exert antibody-mediated cytotoxic activity. J Clin Invest. 2019;129:4151-4164 pubmed publisher
  235. Amezcua Vesely M, Pallis P, Bielecki P, Low J, Zhao J, Harman C, et al. Effector TH17 Cells Give Rise to Long-Lived TRM Cells that Are Essential for an Immediate Response against Bacterial Infection. Cell. 2019;178:1176-1188.e15 pubmed publisher
  236. Jordan S, Tung N, Casanova Acebes M, Chang C, Cantoni C, Zhang D, et al. Dietary Intake Regulates the Circulating Inflammatory Monocyte Pool. Cell. 2019;178:1102-1114.e17 pubmed publisher
  237. Collins N, Han S, Enamorado M, Link V, Huang B, Moseman E, et al. The Bone Marrow Protects and Optimizes Immunological Memory during Dietary Restriction. Cell. 2019;178:1088-1101.e15 pubmed publisher
  238. Benci J, Johnson L, Choa R, Xu Y, Qiu J, Zhou Z, et al. Opposing Functions of Interferon Coordinate Adaptive and Innate Immune Responses to Cancer Immune Checkpoint Blockade. Cell. 2019;178:933-948.e14 pubmed publisher
  239. Lou Q, Liu R, Yang X, Li W, Huang L, Wei L, et al. miR-448 targets IDO1 and regulates CD8+ T cell response in human colon cancer. J Immunother Cancer. 2019;7:210 pubmed publisher
  240. Rosshart S, Herz J, Vassallo B, Hunter A, Wall M, Badger J, et al. Laboratory mice born to wild mice have natural microbiota and model human immune responses. Science. 2019;365: pubmed publisher
  241. Cohen J, Edwards T, Liu A, Hirai T, Jones M, Wu J, et al. Cutaneous TRPV1+ Neurons Trigger Protective Innate Type 17 Anticipatory Immunity. Cell. 2019;178:919-932.e14 pubmed publisher
  242. Leclerc M, Voilin E, Gros G, Corgnac S, de Montpreville V, Validire P, et al. Regulation of antitumour CD8 T-cell immunity and checkpoint blockade immunotherapy by Neuropilin-1. Nat Commun. 2019;10:3345 pubmed publisher
  243. Engelbertsen D, Autio A, Verwilligen R, Depuydt M, Newton G, Rattik S, et al. Increased lymphocyte activation and atherosclerosis in CD47-deficient mice. Sci Rep. 2019;9:10608 pubmed publisher
  244. Niemann J, Woller N, Brooks J, Fleischmann Mundt B, Martin N, Kloos A, et al. Molecular retargeting of antibodies converts immune defense against oncolytic viruses into cancer immunotherapy. Nat Commun. 2019;10:3236 pubmed publisher
  245. Wirsching H, Zhang H, Szulzewsky F, Arora S, Grandi P, Cimino P, et al. Arming oHSV with ULBP3 drives abscopal immunity in lymphocyte-depleted glioblastoma. JCI Insight. 2019;4: pubmed publisher
  246. Lee Y, Riopel M, Cabrales P, Bandyopadhyay G. Hepatocyte-specific HIF-1α ablation improves obesity-induced glucose intolerance by reducing first-pass GLP-1 degradation. Sci Adv. 2019;5:eaaw4176 pubmed publisher
  247. Dulken B, Buckley M, Navarro Negredo P, Saligrama N, Cayrol R, Leeman D, et al. Single-cell analysis reveals T cell infiltration in old neurogenic niches. Nature. 2019;571:205-210 pubmed publisher
  248. Papaioannou E, Yanez D, Ross S, Lau C, Solanki A, Chawda M, et al. Sonic Hedgehog signaling limits atopic dermatitis via Gli2-driven immune regulation. J Clin Invest. 2019;129:3153-3170 pubmed publisher
  249. Ponzetta A, Carriero R, Carnevale S, Barbagallo M, Molgora M, Perucchini C, et al. Neutrophils Driving Unconventional T Cells Mediate Resistance against Murine Sarcomas and Selected Human Tumors. Cell. 2019;178:346-360.e24 pubmed publisher
  250. Khanom U, Ohigashi I, Fujimori S, Kondo K, Takada K, Takahama Y. TCR Affinity for In Vivo Peptide-Induced Thymic Positive Selection Fine-Tunes TCR Responsiveness of Peripheral CD8+ T Cells. J Immunol. 2019;: pubmed publisher
  251. Leach S, Shinnakasu R, Adachi Y, Momota M, Makino Okamura C, Yamamoto T, et al. Requirement for memory B cell activation in protection from heterologous influenza virus reinfection. Int Immunol. 2019;: pubmed publisher
  252. Liu D, Yin X, Olyha S, Nascimento M, Chen P, White T, et al. IL-10-Dependent Crosstalk between Murine Marginal Zone B Cells, Macrophages, and CD8α+ Dendritic Cells Promotes Listeria monocytogenes Infection. Immunity. 2019;: pubmed publisher
  253. Ansaldo E, Slayden L, Ching K, Koch M, Wolf N, Plichta D, et al. Akkermansia muciniphila induces intestinal adaptive immune responses during homeostasis. Science. 2019;364:1179-1184 pubmed publisher
  254. Oh J, Iijima N, Song E, Lu P, Klein J, Jiang R, et al. Migrant memory B cells secrete luminal antibody in the vagina. Nature. 2019;: pubmed publisher
  255. Celis Gutierrez J, Blattmann P, Zhai Y, Jarmuzynski N, Ruminski K, Gregoire C, et al. Quantitative Interactomics in Primary T Cells Provides a Rationale for Concomitant PD-1 and BTLA Coinhibitor Blockade in Cancer Immunotherapy. Cell Rep. 2019;27:3315-3330.e7 pubmed publisher
  256. Dangaj D, Bruand M, Grimm A, Ronet C, Barras D, Duttagupta P, et al. Cooperation between Constitutive and Inducible Chemokines Enables T Cell Engraftment and Immune Attack in Solid Tumors. Cancer Cell. 2019;35:885-900.e10 pubmed publisher
  257. Palacio L, Goyer M, Maggiorani D, Espinosa A, Villeneuve N, Bourbonnais S, et al. Restored immune cell functions upon clearance of senescence in the irradiated splenic environment. Aging Cell. 2019;18:e12971 pubmed publisher
  258. Escolano A, Gristick H, Abernathy M, Merkenschlager J, Gautam R, Oliveira T, et al. Immunization expands B cells specific to HIV-1 V3 glycan in mice and macaques. Nature. 2019;: pubmed publisher
  259. Wilkinson A, Ishida R, Kikuchi M, Sudo K, Morita M, Crisostomo R, et al. Long-term ex vivo haematopoietic-stem-cell expansion allows nonconditioned transplantation. Nature. 2019;: pubmed publisher
  260. Rosenbaum M, Gewies A, Pechloff K, Heuser C, Engleitner T, Gehring T, et al. Bcl10-controlled Malt1 paracaspase activity is key for the immune suppressive function of regulatory T cells. Nat Commun. 2019;10:2352 pubmed publisher
  261. Persson E, Verstraete K, Heyndrickx I, Gevaert E, Aegerter H, Percier J, et al. Protein crystallization promotes type 2 immunity and is reversible by antibody treatment. Science. 2019;364: pubmed publisher
  262. Sivaram N, McLaughlin P, Han H, Petrenko O, Jiang Y, Ballou L, et al. Tumor-intrinsic PIK3CA represses tumor immunogenecity in a model of pancreatic cancer. J Clin Invest. 2019;130: pubmed publisher
  263. Di Pilato M, Kim E, Cadilha B, Prüßmann J, Nasrallah M, Seruggia D, et al. Targeting the CBM complex causes Treg cells to prime tumours for immune checkpoint therapy. Nature. 2019;570:112-116 pubmed publisher
  264. Harding J, Herbáth M, Chen Y, Rayasam A, Ritter A, Csóka B, et al. VEGF-A from Granuloma Macrophages Regulates Granulomatous Inflammation by a Non-angiogenic Pathway during Mycobacterial Infection. Cell Rep. 2019;27:2119-2131.e6 pubmed publisher
  265. Komuczki J, Tuzlak S, Friebel E, Hartwig T, Spath S, Rosenstiel P, et al. Fate-Mapping of GM-CSF Expression Identifies a Discrete Subset of Inflammation-Driving T Helper Cells Regulated by Cytokines IL-23 and IL-1β. Immunity. 2019;: pubmed publisher
  266. Sharma N, Vacher J, Allison J. TLR1/2 ligand enhances antitumor efficacy of CTLA-4 blockade by increasing intratumoral Treg depletion. Proc Natl Acad Sci U S A. 2019;116:10453-10462 pubmed publisher
  267. Takagaki S, Yamashita R, Hashimoto N, Sugihara K, Kanari K, Tabata K, et al. Galactosyl carbohydrate residues on hematopoietic stem/progenitor cells are essential for homing and engraftment to the bone marrow. Sci Rep. 2019;9:7133 pubmed publisher
  268. Choi J, Zhong X, McAlpine W, Liao T, Zhang D, Fang B, et al. LMBR1L regulates lymphopoiesis through Wnt/β-catenin signaling. Science. 2019;364: pubmed publisher
  269. Ajina R, Zamalin D, Zuo A, Moussa M, Catalfamo M, Jablonski S, et al. SpCas9-expression by tumor cells can cause T cell-dependent tumor rejection in immunocompetent mice. Oncoimmunology. 2019;8:e1577127 pubmed publisher
  270. Kotov J, Kotov D, Linehan J, Bardwell V, Gearhart M, Jenkins M. BCL6 corepressor contributes to Th17 cell formation by inhibiting Th17 fate suppressors. J Exp Med. 2019;216:1450-1464 pubmed publisher
  271. Rühl J, Citterio C, Engelmann C, Haigh T, Dzionek A, Dreyer J, et al. Heterologous prime-boost vaccination protects against EBV antigen-expressing lymphomas. J Clin Invest. 2019;129:2071-2087 pubmed publisher
  272. Miao Y, Yang H, Levorse J, Yuan S, Polak L, Sribour M, et al. Adaptive Immune Resistance Emerges from Tumor-Initiating Stem Cells. Cell. 2019;177:1172-1186.e14 pubmed publisher
  273. Mizuno R, Sugiura D, Shimizu K, Maruhashi T, Watada M, Okazaki I, et al. PD-1 Primarily Targets TCR Signal in the Inhibition of Functional T Cell Activation. Front Immunol. 2019;10:630 pubmed publisher
  274. Knox T, Sahakian E, Banik D, Hadley M, Palmer E, Noonepalle S, et al. Selective HDAC6 inhibitors improve anti-PD-1 immune checkpoint blockade therapy by decreasing the anti-inflammatory phenotype of macrophages and down-regulation of immunosuppressive proteins in tumor cells. Sci Rep. 2019;9:6136 pubmed publisher
  275. Esterházy D, Canesso M, Mesin L, Muller P, de Castro T, Lockhart A, et al. Compartmentalized gut lymph node drainage dictates adaptive immune responses. Nature. 2019;569:126-130 pubmed publisher
  276. Eisemann T, Costa B, Peterziel H, Angel P. Podoplanin Positive Myeloid Cells Promote Glioma Development by Immune Suppression. Front Oncol. 2019;9:187 pubmed publisher
  277. LaFleur M, Nguyen T, Coxe M, Yates K, Trombley J, Weiss S, et al. A CRISPR-Cas9 delivery system for in vivo screening of genes in the immune system. Nat Commun. 2019;10:1668 pubmed publisher
  278. Pais H, Ruggero K, Zhang J, Al Assar O, Bery N, Bhuller R, et al. Surfaceome interrogation using an RNA-seq approach highlights leukemia initiating cell biomarkers in an LMO2 T cell transgenic model. Sci Rep. 2019;9:5760 pubmed publisher
  279. Lytle N, Ferguson L, Rajbhandari N, Gilroy K, Fox R, Deshpande A, et al. A Multiscale Map of the Stem Cell State in Pancreatic Adenocarcinoma. Cell. 2019;177:572-586.e22 pubmed publisher
  280. Binnewies M, Mujal A, Pollack J, Combes A, Hardison E, Barry K, et al. Unleashing Type-2 Dendritic Cells to Drive Protective Antitumor CD4+ T Cell Immunity. Cell. 2019;177:556-571.e16 pubmed publisher
  281. Poggio M, Hu T, Pai C, Chu B, BELAIR C, Chang A, et al. Suppression of Exosomal PD-L1 Induces Systemic Anti-tumor Immunity and Memory. Cell. 2019;177:414-427.e13 pubmed publisher
  282. Visekruna A, Hartmann S, Sillke Y, Glauben R, Fischer F, Raifer H, et al. Intestinal development and homeostasis require activation and apoptosis of diet-reactive T cells. J Clin Invest. 2019;129:1972-1983 pubmed publisher
  283. Yao W, Rose J, Wang W, Seth S, Jiang H, Taguchi A, et al. Syndecan 1 is a critical mediator of macropinocytosis in pancreatic cancer. Nature. 2019;: pubmed publisher
  284. Liao W, Overman M, Boutin A, Shang X, Zhao D, Dey P, et al. KRAS-IRF2 Axis Drives Immune Suppression and Immune Therapy Resistance in Colorectal Cancer. Cancer Cell. 2019;35:559-572.e7 pubmed publisher
  285. Cao Y, Trillo Tinoco J, Sierra R, Anadon C, Dai W, Mohamed E, et al. ER stress-induced mediator C/EBP homologous protein thwarts effector T cell activity in tumors through T-bet repression. Nat Commun. 2019;10:1280 pubmed publisher
  286. Lee J, Stone M, Porrett P, Thomas S, Komar C, Li J, et al. Hepatocytes direct the formation of a pro-metastatic niche in the liver. Nature. 2019;567:249-252 pubmed publisher
  287. Xing S, Gai K, Li X, Shao P, Zeng Z, Zhao X, et al. Tcf1 and Lef1 are required for the immunosuppressive function of regulatory T cells. J Exp Med. 2019;: pubmed publisher
  288. Thompson P, Shah A, Ntranos V, Van Gool F, Atkinson M, Bhushan A. Targeted Elimination of Senescent Beta Cells Prevents Type 1 Diabetes. Cell Metab. 2019;29:1045-1060.e10 pubmed publisher
  289. Anandagoda N, Willis J, Hertweck A, Roberts L, Jackson I, Gökmen M, et al. microRNA-142-mediated repression of phosphodiesterase 3B critically regulates peripheral immune tolerance. J Clin Invest. 2019;129:1257-1271 pubmed publisher
  290. Dosch M, Zindel J, Jebbawi F, Melin N, Sánchez Taltavull D, Stroka D, et al. Connexin-43-dependent ATP release mediates macrophage activation during sepsis. elife. 2019;8: pubmed publisher
  291. Haikala H, Anttila J, Marques E, Raatikainen T, Ilander M, Hakanen H, et al. Pharmacological reactivation of MYC-dependent apoptosis induces susceptibility to anti-PD-1 immunotherapy. Nat Commun. 2019;10:620 pubmed publisher
  292. Jin C, Lagoudas G, Zhao C, Bullman S, Bhutkar A, Hu B, et al. Commensal Microbiota Promote Lung Cancer Development via γδ T Cells. Cell. 2019;176:998-1013.e16 pubmed publisher
  293. Davies A, Kim H, González Cano R, Choi J, Back S, Roh S, et al. Natural Killer Cells Degenerate Intact Sensory Afferents following Nerve Injury. Cell. 2019;176:716-728.e18 pubmed publisher
  294. Hendrikx S, Coso S, Prat Luri B, Wetterwald L, Sabine A, Franco C, et al. Endothelial Calcineurin Signaling Restrains Metastatic Outgrowth by Regulating Bmp2. Cell Rep. 2019;26:1227-1241.e6 pubmed publisher
  295. Lavoie S, Conway K, Lassen K, Jijon H, Pan H, Chun E, et al. The Crohn's disease polymorphism, ATG16L1 T300A, alters the gut microbiota and enhances the local Th1/Th17 response. elife. 2019;8: pubmed publisher
  296. Contijoch E, Britton G, Yang C, Mogno I, Li Z, Ng R, et al. Gut microbiota density influences host physiology and is shaped by host and microbial factors. elife. 2019;8: pubmed publisher
  297. Wheeler M, Jaronen M, Covacu R, Zandee S, Scalisi G, Rothhammer V, et al. Environmental Control of Astrocyte Pathogenic Activities in CNS Inflammation. Cell. 2019;176:581-596.e18 pubmed publisher
  298. Martins J, Andoniou C, Fleming P, Kuns R, Schuster I, Voigt V, et al. Strain-specific antibody therapy prevents cytomegalovirus reactivation after transplantation. Science. 2019;363:288-293 pubmed publisher
  299. Faliti C, Gualtierotti R, Rottoli E, Gerosa M, Perruzza L, Romagnani A, et al. P2X7 receptor restrains pathogenic Tfh cell generation in systemic lupus erythematosus. J Exp Med. 2019;216:317-336 pubmed publisher
  300. Britton G, Contijoch E, Mogno I, Vennaro O, Llewellyn S, Ng R, et al. Microbiotas from Humans with Inflammatory Bowel Disease Alter the Balance of Gut Th17 and RORγt+ Regulatory T Cells and Exacerbate Colitis in Mice. Immunity. 2019;50:212-224.e4 pubmed publisher
  301. McLaren J, Clement M, Marsden M, Miners K, Llewellyn Lacey S, Grant E, et al. IL-33 Augments Virus-Specific Memory T Cell Inflation and Potentiates the Efficacy of an Attenuated Cytomegalovirus-Based Vaccine. J Immunol. 2019;202:943-955 pubmed publisher
  302. Silva D, Yu S, Ulge U, Spangler J, Jude K, Labao Almeida C, et al. De novo design of potent and selective mimics of IL-2 and IL-15. Nature. 2019;565:186-191 pubmed publisher
  303. Eldi P, Chaudhri G, Nutt S, Newsome T, Karupiah G. Viral Replicative Capacity, Antigen Availability via Hematogenous Spread, and High TFH:TFR Ratios Drive Induction of Potent Neutralizing Antibody Responses. J Virol. 2019;93: pubmed publisher
  304. Lee Y, Ju J, Shon W, Oh S, Min C, Kang M, et al. Skewed Dendritic Cell Differentiation of MyD88-Deficient Donor Bone Marrow Cells, Instead of Massive Expansion as Myeloid-Derived Suppressor Cells, Aggravates GVHD. Immune Netw. 2018;18:e44 pubmed publisher
  305. Maseda D, Banerjee A, Johnson E, Washington M, Kim H, Lau K, et al. mPGES-1-Mediated Production of PGE2 and EP4 Receptor Sensing Regulate T Cell Colonic Inflammation. Front Immunol. 2018;9:2954 pubmed publisher
  306. Chopin M, Lun A, Zhan Y, Schreuder J, Coughlan H, D Amico A, et al. Transcription Factor PU.1 Promotes Conventional Dendritic Cell Identity and Function via Induction of Transcriptional Regulator DC-SCRIPT. Immunity. 2019;50:77-90.e5 pubmed publisher
  307. Gorth D, Shapiro I, Risbud M. Transgenic mice overexpressing human TNF-α experience early onset spontaneous intervertebral disc herniation in the absence of overt degeneration. Cell Death Dis. 2018;10:7 pubmed publisher
  308. Cornelissen L, Blanas A, van der Horst J, Kruijssen L, Zaal A, O Toole T, et al. Disruption of sialic acid metabolism drives tumor growth by augmenting CD8+ T cell apoptosis. Int J Cancer. 2019;144:2290-2302 pubmed publisher
  309. Li F, Zeng Z, Xing S, Gullicksrud J, Shan Q, Choi J, et al. Ezh2 programs TFH differentiation by integrating phosphorylation-dependent activation of Bcl6 and polycomb-dependent repression of p19Arf. Nat Commun. 2018;9:5452 pubmed publisher
  310. Ruscetti M, Leibold J, Bott M, Fennell M, Kulick A, Salgado N, et al. NK cell-mediated cytotoxicity contributes to tumor control by a cytostatic drug combination. Science. 2018;362:1416-1422 pubmed publisher
  311. Mantri C, St John A. Immune synapses between mast cells and γδ T cells limit viral infection. J Clin Invest. 2019;129:1094-1108 pubmed publisher
  312. Chorro L, Suzuki M, Chin S, Williams T, Snapp E, Odagiu L, et al. Interleukin 2 modulates thymic-derived regulatory T cell epigenetic landscape. Nat Commun. 2018;9:5368 pubmed publisher
  313. Ishizuka J, Manguso R, Cheruiyot C, Bi K, Panda A, Iracheta Vellve A, et al. Loss of ADAR1 in tumours overcomes resistance to immune checkpoint blockade. Nature. 2019;565:43-48 pubmed publisher
  314. Bern M, Parikh B, Yang L, Beckman D, Poursine Laurent J, Yokoyama W. Inducible down-regulation of MHC class I results in natural killer cell tolerance. J Exp Med. 2019;216:99-116 pubmed publisher
  315. Obino D, Fetler L, Soza A, Malbec O, Saez J, Labarca M, et al. Galectin-8 Favors the Presentation of Surface-Tethered Antigens by Stabilizing the B Cell Immune Synapse. Cell Rep. 2018;25:3110-3122.e6 pubmed publisher
  316. Simula L, Pacella I, Colamatteo A, Procaccini C, Cancila V, Bordi M, et al. Drp1 Controls Effective T Cell Immune-Surveillance by Regulating T Cell Migration, Proliferation, and cMyc-Dependent Metabolic Reprogramming. Cell Rep. 2018;25:3059-3073.e10 pubmed publisher
  317. Ding L, Kim H, Wang Q, Kearns M, Jiang T, Ohlson C, et al. PARP Inhibition Elicits STING-Dependent Antitumor Immunity in Brca1-Deficient Ovarian Cancer. Cell Rep. 2018;25:2972-2980.e5 pubmed publisher
  318. Gubernatorova E, Gorshkova E, Namakanova O, Zvartsev R, Hidalgo J, Drutskaya M, et al. Non-redundant Functions of IL-6 Produced by Macrophages and Dendritic Cells in Allergic Airway Inflammation. Front Immunol. 2018;9:2718 pubmed publisher
  319. Magallanes Puebla A, Espinosa Cueto P, López Marín L, Mancilla R. Mycobacterial glycolipid Di-O-acyl trehalose promotes a tolerogenic profile in dendritic cells. PLoS ONE. 2018;13:e0207202 pubmed publisher
  320. Tordesillas L, Lozano Ojalvo D, Dunkin D, Mondoulet L, Agudo J, Merad M, et al. PDL2+ CD11b+ dermal dendritic cells capture topical antigen through hair follicles to prime LAP+ Tregs. Nat Commun. 2018;9:5238 pubmed publisher
  321. Garić D, Tao S, Ahmed E, Youssef M, Kanagaratham C, Shah J, et al. Depletion of BAFF cytokine exacerbates infection in Pseudomonas aeruginosa infected mice. J Cyst Fibros. 2019;18:349-356 pubmed publisher
  322. Quandt J, Schlude C, Bartoschek M, Will R, Cid Arregui A, Schölch S, et al. Long-peptide vaccination with driver gene mutations in p53 and Kras induces cancer mutation-specific effector as well as regulatory T cell responses. Oncoimmunology. 2018;7:e1500671 pubmed publisher
  323. Harrison O, Linehan J, Shih H, Bouladoux N, Han S, SMELKINSON M, et al. Commensal-specific T cell plasticity promotes rapid tissue adaptation to injury. Science. 2019;363: pubmed publisher
  324. Tan H, Jegaskanda S, Juno J, Esterbauer R, Wong J, Kelly H, et al. Subdominance and poor intrinsic immunogenicity limit humoral immunity targeting influenza HA stem. J Clin Invest. 2019;129:850-862 pubmed publisher
  325. Sato Y, Bolzenius J, Eteleeb A, Su X, Maher C, Sehn J, et al. CD4+ T cells induce rejection of urothelial tumors after immune checkpoint blockade. JCI Insight. 2018;3: pubmed publisher
  326. Uccellini M, Garcia Sastre A. ISRE-Reporter Mouse Reveals High Basal and Induced Type I IFN Responses in Inflammatory Monocytes. Cell Rep. 2018;25:2784-2796.e3 pubmed publisher
  327. Kiyohara H, Sujino T, Teratani T, Miyamoto K, Arai M, Nomura E, et al. Toll-Like Receptor 7 Agonist-Induced Dermatitis Causes Severe Dextran Sulfate Sodium Colitis by Altering the Gut Microbiome and Immune Cells. Cell Mol Gastroenterol Hepatol. 2019;7:135-156 pubmed publisher
  328. Du X, de Almeida P, Manieri N, de Almeida Nagata D, Wu T, Harden Bowles K, et al. CD226 regulates natural killer cell antitumor responses via phosphorylation-mediated inactivation of transcription factor FOXO1. Proc Natl Acad Sci U S A. 2018;115:E11731-E11740 pubmed publisher
  329. Wiedemann G, Aithal C, Kraechan A, Heise C, Cadilha B, Zhang J, et al. Microphthalmia-Associated Transcription Factor (MITF) Regulates Immune Cell Migration into Melanoma. Transl Oncol. 2019;12:350-360 pubmed publisher
  330. Atretkhany K, Mufazalov I, Dunst J, Kuchmiy A, Gogoleva V, Andruszewski D, et al. Intrinsic TNFR2 signaling in T regulatory cells provides protection in CNS autoimmunity. Proc Natl Acad Sci U S A. 2018;115:13051-13056 pubmed publisher
  331. Muscate F, Stetter N, Schramm C, Schulze zur Wiesch J, Bosurgi L, Jacobs T. HVEM and CD160: Regulators of Immunopathology During Malaria Blood-Stage. Front Immunol. 2018;9:2611 pubmed publisher
  332. Aarts S, Seijkens T, Kusters P, Van Tiel C, Reiche M, den Toom M, et al. Macrophage CD40 signaling drives experimental autoimmune encephalomyelitis. J Pathol. 2019;247:471-480 pubmed publisher
  333. Inoue T, Ito Y, Nishizawa N, Eshima K, Kojo K, Otaka F, et al. RAMP1 in Kupffer cells is a critical regulator in immune-mediated hepatitis. PLoS ONE. 2018;13:e0200432 pubmed publisher
  334. Dong S, Harrington B, Hu E, Greene J, Lehman A, Tran M, et al. PI3K p110δ inactivation antagonizes chronic lymphocytic leukemia and reverses T cell immune suppression. J Clin Invest. 2019;129:122-136 pubmed publisher
  335. Grohmann M, Wiede F, Dodd G, Gurzov E, Ooi G, Butt T, et al. Obesity Drives STAT-1-Dependent NASH and STAT-3-Dependent HCC. Cell. 2018;175:1289-1306.e20 pubmed publisher
  336. He Z, Zhang J, Huang Z, Du Q, Li N, Zhang Q, et al. Sumoylation of RORγt regulates TH17 differentiation and thymocyte development. Nat Commun. 2018;9:4870 pubmed publisher
  337. Casagrande F, de Souza Ferreira S, Nunes F, Romera L, Dos Santos S, Tessaro F, et al. Insulin Modulates Paracoccidioides brasiliensis-Induced Inflammation by Restoring the Populations of NK Cells, Dendritic Cells, and B Lymphocytes in Lungs. J Diabetes Res. 2018;2018:6209694 pubmed publisher
  338. James K, Cosway E, LUCAS B, White A, Parnell S, Carvalho Gaspar M, et al. Endothelial cells act as gatekeepers for LTβR-dependent thymocyte emigration. J Exp Med. 2018;215:2984-2993 pubmed publisher
  339. Walsh S, Bastin D, Chen L, Nguyen A, Storbeck C, Lefebvre C, et al. Type I IFN blockade uncouples immunotherapy-induced antitumor immunity and autoimmune toxicity. J Clin Invest. 2019;129:518-530 pubmed publisher
  340. Huang L, Zinselmeyer B, Chang C, Saunders B, Elvington A, Baba O, et al. Interleukin-17 Drives Interstitial Entrapment of Tissue Lipoproteins in Experimental Psoriasis. Cell Metab. 2019;29:475-487.e7 pubmed publisher
  341. Wilgenburg B, Loh L, Chen Z, Pediongco T, Wang H, Shi M, et al. MAIT cells contribute to protection against lethal influenza infection in vivo. Nat Commun. 2018;9:4706 pubmed publisher
  342. Meyers J, Winans B, Kelsaw E, Murthy A, Gerber S, Lawrence B. Environmental cues received during development shape dendritic cell responses later in life. PLoS ONE. 2018;13:e0207007 pubmed publisher
  343. Klement J, Paschall A, Redd P, Ibrahim M, Lu C, Yang D, et al. An osteopontin/CD44 immune checkpoint controls CD8+ T cell activation and tumor immune evasion. J Clin Invest. 2018;128:5549-5560 pubmed publisher
  344. Nicol M, Campbell G, Shaw D, Dransfield I, Ligertwood Y, Beard P, et al. Lack of IFNγ signaling attenuates spread of influenza A virus in vivo and leads to reduced pathogenesis. Virology. 2019;526:155-164 pubmed publisher
  345. Hsu J, Dayaram T, Tovy A, De Braekeleer E, Jeong M, Wang F, et al. PPM1D Mutations Drive Clonal Hematopoiesis in Response to Cytotoxic Chemotherapy. Cell Stem Cell. 2018;23:700-713.e6 pubmed publisher
  346. Singh A, Khare P, Obaid A, Conlon K, Basrur V, Depinho R, et al. SUMOylation of ROR-γt inhibits IL-17 expression and inflammation via HDAC2. Nat Commun. 2018;9:4515 pubmed publisher
  347. Meyer I, Goetzke C, Kespohl M, Sauter M, Heuser A, Eckstein V, et al. Silencing the CSF-1 Axis Using Nanoparticle Encapsulated siRNA Mitigates Viral and Autoimmune Myocarditis. Front Immunol. 2018;9:2303 pubmed publisher
  348. Humblet Baron S, Barber J, Roca C, Lenaerts A, Koni P, Liston A. Murine myeloproliferative disorder as a consequence of impaired collaboration between dendritic cells and CD4 T cells. Blood. 2018;: pubmed publisher
  349. Noh J, Kim Y, Kim D, Hwang J, Kim K, Choi D, et al. Small heterodimer partner negatively regulates C-X-C motif chemokine ligand 2 in hepatocytes during liver inflammation. Sci Rep. 2018;8:15222 pubmed publisher
  350. Aydin E, Hallner A, Grauers Wiktorin H, Staffas A, Hellstrand K, Martner A. NOX2 inhibition reduces oxidative stress and prolongs survival in murine KRAS-induced myeloproliferative disease. Oncogene. 2019;38:1534-1543 pubmed publisher
  351. Er J, Koean R, Ding J. Loss of T-bet confers survival advantage to influenza-bacterial superinfection. EMBO J. 2019;38: pubmed publisher
  352. Xu X, Xu J, Wu J, Hu Y, Han Y, Gu Y, et al. Phosphorylation-Mediated IFN-γR2 Membrane Translocation Is Required to Activate Macrophage Innate Response. Cell. 2018;175:1336-1351.e17 pubmed publisher
  353. Masuda J, Umemura C, Yokozawa M, Yamauchi K, Seko T, Yamashita M, et al. Dietary Supplementation of Selenoneine-Containing Tuna Dark Muscle Extract Effectively Reduces Pathology of Experimental Colorectal Cancers in Mice. Nutrients. 2018;10: pubmed publisher
  354. Brun P, Scarpa M, Marchiori C, Conti J, Kotsafti A, Porzionato A, et al. Herpes Simplex Virus Type 1 Engages Toll Like Receptor 2 to Recruit Macrophages During Infection of Enteric Neurons. Front Microbiol. 2018;9:2148 pubmed publisher
  355. Luo H, Winkelmann E, Zhu S, Ru W, Mays E, Silvas J, et al. Peli1 facilitates virus replication and promotes neuroinflammation during West Nile virus infection. J Clin Invest. 2018;128:4980-4991 pubmed publisher
  356. Louveau A, Herz J, Alme M, Salvador A, Dong M, Viar K, et al. CNS lymphatic drainage and neuroinflammation are regulated by meningeal lymphatic vasculature. Nat Neurosci. 2018;21:1380-1391 pubmed publisher
  357. Williams G, Schonhoff A, Jurkuvenaite A, Thome A, Standaert D, Harms A. Targeting of the class II transactivator attenuates inflammation and neurodegeneration in an alpha-synuclein model of Parkinson's disease. J Neuroinflammation. 2018;15:244 pubmed publisher
  358. Wang H, D Souza C, Lim X, Kostenko L, Pediongco T, Eckle S, et al. MAIT cells protect against pulmonary Legionella longbeachae infection. Nat Commun. 2018;9:3350 pubmed publisher
  359. Schrand B, Clark E, Levay A, Capote A, Martínez O, Brenneman R, et al. Hapten-mediated recruitment of polyclonal antibodies to tumors engenders antitumor immunity. Nat Commun. 2018;9:3348 pubmed publisher
  360. Breuer J, Korpos E, Hannocks M, Schneider Hohendorf T, Song J, Zondler L, et al. Blockade of MCAM/CD146 impedes CNS infiltration of T cells over the choroid plexus. J Neuroinflammation. 2018;15:236 pubmed publisher
  361. Amôr N, de Oliveira C, Gasparoto T, Vilas Boas V, Perri G, Kaneno R, et al. ST2/IL-33 signaling promotes malignant development of experimental squamous cell carcinoma by decreasing NK cells cytotoxicity and modulating the intratumoral cell infiltrate. Oncotarget. 2018;9:30894-30904 pubmed publisher
  362. Lin Y, Wang L, Lee C, Chen S. Flt3 ligand treatment reduces enterovirus A71 lethality in mice with enhanced B cell responses. Sci Rep. 2018;8:12184 pubmed publisher
  363. Zhao D, Kim Y, Jeong S, Greenson J, Chaudhry M, Hoepting M, et al. Survival signal REG3α prevents crypt apoptosis to control acute gastrointestinal graft-versus-host disease. J Clin Invest. 2018;128:4970-4979 pubmed publisher
  364. White E, Gyulay G, Lhotak S, Szewczyk M, Chong T, Fuller M, et al. Sialidase down-regulation reduces non-HDL cholesterol, inhibits leukocyte transmigration, and attenuates atherosclerosis in ApoE knockout mice. J Biol Chem. 2018;293:14689-14706 pubmed publisher
  365. Cheng Y, Zhu X, Wang X, Zhuang Q, Huyan X, Sun X, et al. Trichinella spiralis Infection Mitigates Collagen-Induced Arthritis via Programmed Death 1-Mediated Immunomodulation. Front Immunol. 2018;9:1566 pubmed publisher
  366. Deason K, Troutman T, Jain A, Challa D, Mandraju R, Brewer T, et al. BCAP links IL-1R to the PI3K-mTOR pathway and regulates pathogenic Th17 cell differentiation. J Exp Med. 2018;215:2413-2428 pubmed publisher
  367. Rezende R, Lanser A, Rubino S, Kuhn C, Skillin N, Moreira T, et al. γδ T cells control humoral immune response by inducing T follicular helper cell differentiation. Nat Commun. 2018;9:3151 pubmed publisher
  368. Stathopoulou C, Gangaplara A, Mallett G, Flomerfelt F, Liniany L, Knight D, et al. PD-1 Inhibitory Receptor Downregulates Asparaginyl Endopeptidase and Maintains Foxp3 Transcription Factor Stability in Induced Regulatory T Cells. Immunity. 2018;49:247-263.e7 pubmed publisher
  369. Poffenberger M, Metcalfe Roach A, Aguilar E, Chen J, Hsu B, Wong A, et al. LKB1 deficiency in T cells promotes the development of gastrointestinal polyposis. Science. 2018;361:406-411 pubmed publisher
  370. Xing S, Shao P, Li F, Zhao X, Seo W, Wheat J, et al. Tle corepressors are differentially partitioned to instruct CD8+ T cell lineage choice and identity. J Exp Med. 2018;215:2211-2226 pubmed publisher
  371. Baens M, Stirparo R, Lampi Y, Verbeke D, Vandepoel R, Cools J, et al. Malt1 self-cleavage is critical for regulatory T cell homeostasis and anti-tumor immunity in mice. Eur J Immunol. 2018;48:1728-1738 pubmed publisher
  372. Thyagarajan H, Lancaster J, Lira S, Ehrlich L. CCR8 is expressed by post-positive selection CD4-lineage thymocytes but is dispensable for central tolerance induction. PLoS ONE. 2018;13:e0200765 pubmed publisher
  373. Wan X, Zinselmeyer B, Zakharov P, Vomund A, Taniguchi R, Santambrogio L, et al. Pancreatic islets communicate with lymphoid tissues via exocytosis of insulin peptides. Nature. 2018;560:107-111 pubmed publisher
  374. Zhang C, Wang C, Jiang M, Gu C, Xiao J, Chen X, et al. Act1 is a negative regulator in T and B cells via direct inhibition of STAT3. Nat Commun. 2018;9:2745 pubmed publisher
  375. Cho S, Lee H, Yu I, Choi Y, Huang H, Hashemifar S, et al. Differential cell-intrinsic regulations of germinal center B and T cells by miR-146a and miR-146b. Nat Commun. 2018;9:2757 pubmed publisher
  376. Gisterå A, Klement M, Polyzos K, Mailer R, Duhlin A, Karlsson M, et al. LDL-Reactive T Cells Regulate Plasma Cholesterol Levels and Development of Atherosclerosis in Humanized Hypercholesterolemic Mice. Circulation. 2018;: pubmed publisher
  377. Webster P, Dawes J, Dewchand H, Takacs K, Iadarola B, Bolt B, et al. Subclonal mutation selection in mouse lymphomagenesis identifies known cancer loci and suggests novel candidates. Nat Commun. 2018;9:2649 pubmed publisher
  378. Chute C, Yang X, Meyer K, Yang N, O Neil K, Kasza I, et al. Syndecan-1 induction in lung microenvironment supports the establishment of breast tumor metastases. Breast Cancer Res. 2018;20:66 pubmed publisher
  379. Arnold I, Artola Borán M, Tallón de Lara P, Kyburz A, Taube C, OTTEMANN K, et al. Eosinophils suppress Th1 responses and restrict bacterially induced gastrointestinal inflammation. J Exp Med. 2018;215:2055-2072 pubmed publisher
  380. Tan B, Shi X, Zhang J, Qin J, Zhang N, Ren H, et al. Inhibition of Rspo-Lgr4 Facilitates Checkpoint Blockade Therapy by Switching Macrophage Polarization. Cancer Res. 2018;78:4929-4942 pubmed publisher
  381. Li J, Byrne K, Yan F, Yamazoe T, Chen Z, Baslan T, et al. Tumor Cell-Intrinsic Factors Underlie Heterogeneity of Immune Cell Infiltration and Response to Immunotherapy. Immunity. 2018;49:178-193.e7 pubmed publisher
  382. Vendetti F, Karukonda P, Clump D, Teo T, Lalonde R, Nugent K, et al. ATR kinase inhibitor AZD6738 potentiates CD8+ T cell-dependent antitumor activity following radiation. J Clin Invest. 2018;128:3926-3940 pubmed publisher
  383. Alissafi T, Hatzioannou A, Mintzas K, Barouni R, Banos A, Sormendi S, et al. Autophagy orchestrates the regulatory program of tumor-associated myeloid-derived suppressor cells. J Clin Invest. 2018;128:3840-3852 pubmed publisher
  384. Manresa Arraut A, Johansen F, Brakebusch C, Issazadeh Navikas S, Hasseldam H. RhoA Drives T-Cell Activation and Encephalitogenic Potential in an Animal Model of Multiple Sclerosis. Front Immunol. 2018;9:1235 pubmed publisher
  385. Feng Y, Liao Y, Huang W, Lai X, Luo J, Du C, et al. Mesenchymal stromal cells-derived matrix Gla protein contribute to the alleviation of experimental colitis. Cell Death Dis. 2018;9:691 pubmed publisher
  386. Gu C, Borjabad A, Hadas E, Kelschenbach J, Kim B, Chao W, et al. EcoHIV infection of mice establishes latent viral reservoirs in T cells and active viral reservoirs in macrophages that are sufficient for induction of neurocognitive impairment. PLoS Pathog. 2018;14:e1007061 pubmed publisher
  387. Du X, Wen J, Wang Y, Karmaus P, Khatamian A, Tan H, et al. Hippo/Mst signalling couples metabolic state and immune function of CD8α+ dendritic cells. Nature. 2018;558:141-145 pubmed publisher
  388. Kanneganti A, Malireddi R, Saavedra P, Vande Walle L, Van Gorp H, Kambara H, et al. GSDMD is critical for autoinflammatory pathology in a mouse model of Familial Mediterranean Fever. J Exp Med. 2018;215:1519-1529 pubmed publisher
  389. Shaw T, Houston S, Wemyss K, Bridgeman H, Barbera T, Zangerle Murray T, et al. Tissue-resident macrophages in the intestine are long lived and defined by Tim-4 and CD4 expression. J Exp Med. 2018;215:1507-1518 pubmed publisher
  390. Jun H, Yu H, Gong J, Jiang J, Qiao X, Perkey E, et al. An immune-beige adipocyte communication via nicotinic acetylcholine receptor signaling. Nat Med. 2018;24:814-822 pubmed publisher
  391. Daenthanasanmak A, Wu Y, Iamsawat S, Nguyen H, Bastian D, Zhang M, et al. PIM-2 protein kinase negatively regulates T cell responses in transplantation and tumor immunity. J Clin Invest. 2018;128:2787-2801 pubmed publisher
  392. García Nores G, Ly C, Cuzzone D, Kataru R, Hespe G, Torrisi J, et al. CD4+ T cells are activated in regional lymph nodes and migrate to skin to initiate lymphedema. Nat Commun. 2018;9:1970 pubmed publisher
  393. Hu X, Majchrzak K, Liu X, Wyatt M, Spooner C, Moisan J, et al. In Vitro Priming of Adoptively Transferred T Cells with a RORγ Agonist Confers Durable Memory and Stemness In Vivo. Cancer Res. 2018;78:3888-3898 pubmed publisher
  394. Kyung D, Sung H, Kim Y, Kim K, Cho S, Choi J, et al. Global transcriptome analysis identifies weight regain-induced activation of adaptive immune responses in white adipose tissue of mice. Int J Obes (Lond). 2018;42:755-764 pubmed publisher
  395. Bellelli R, Borel V, Logan C, Svendsen J, Cox D, Nye E, et al. Polε Instability Drives Replication Stress, Abnormal Development, and Tumorigenesis. Mol Cell. 2018;70:707-721.e7 pubmed publisher
  396. Stefani F, Eberstål S, Vergani S, Kristiansen T, Bengzon J. Low-dose irradiated mesenchymal stromal cells break tumor defensive properties in vivo. Int J Cancer. 2018;143:2200-2212 pubmed publisher
  397. Yang K, Liang Y, Sun Z, Xue D, Xu H, Zhu M, et al. T Cell-Derived Lymphotoxin Is Essential for the Anti-Herpes Simplex Virus 1 Humoral Immune Response. J Virol. 2018;92: pubmed publisher
  398. Borlido J, Sakuma S, Raices M, Carrette F, Tinoco R, Bradley L, et al. Nuclear pore complex-mediated modulation of TCR signaling is required for naïve CD4+ T cell homeostasis. Nat Immunol. 2018;19:594-605 pubmed publisher
  399. Crosby E, Wei J, Yang X, Lei G, Wang T, Liu C, et al. Complimentary mechanisms of dual checkpoint blockade expand unique T-cell repertoires and activate adaptive anti-tumor immunity in triple-negative breast tumors. Oncoimmunology. 2018;7:e1421891 pubmed publisher
  400. Ubil E, Caskey L, Holtzhausen A, Hunter D, Story C, Earp H. Tumor-secreted Pros1 inhibits macrophage M1 polarization to reduce antitumor immune response. J Clin Invest. 2018;128:2356-2369 pubmed publisher
  401. Gounder A, Yokoyama C, Jarjour N, Bricker T, Edelson B, Boon A. Interferon induced protein 35 exacerbates H5N1 influenza disease through the expression of IL-12p40 homodimer. PLoS Pathog. 2018;14:e1007001 pubmed publisher
  402. Grist J, Marro B, Skinner D, Syage A, Worne C, Doty D, et al. Induced CNS expression of CXCL1 augments neurologic disease in a murine model of multiple sclerosis via enhanced neutrophil recruitment. Eur J Immunol. 2018;48:1199-1210 pubmed publisher
  403. Emmerson A, Trevelin S, Mongue Din H, Becker P, Ortiz C, Smyth L, et al. Nox2 in regulatory T cells promotes angiotensin II-induced cardiovascular remodeling. J Clin Invest. 2018;128:3088-3101 pubmed publisher
  404. Anker J, Naseem A, Mok H, Schaeffer A, Abdulkadir S, Thumbikat P. Multi-faceted immunomodulatory and tissue-tropic clinical bacterial isolate potentiates prostate cancer immunotherapy. Nat Commun. 2018;9:1591 pubmed publisher
  405. Dipiazza A, Laniewski N, Rattan A, Topham D, Miller J, Sant A. CD4 T Cell Epitope Specificity and Cytokine Potential Are Preserved as Cells Transition from the Lung Vasculature to Lung Tissue following Influenza Virus Infection. J Virol. 2018;92: pubmed publisher
  406. Tanaka S, Pfleger C, Lai J, Roan F, Sun S, Ziegler S. KAP1 Regulates Regulatory T Cell Function and Proliferation in Both Foxp3-Dependent and -Independent Manners. Cell Rep. 2018;23:796-807 pubmed publisher
  407. Silva M, Davoli Ferreira M, Medina T, Sesti Costa R, Silva G, Lopes C, et al. Canonical PI3Kγ signaling in myeloid cells restricts Trypanosoma cruzi infection and dampens chagasic myocarditis. Nat Commun. 2018;9:1513 pubmed publisher
  408. Zheng X, Fang Z, Liu X, Deng S, Zhou P, Wang X, et al. Increased vessel perfusion predicts the efficacy of immune checkpoint blockade. J Clin Invest. 2018;128:2104-2115 pubmed publisher
  409. Zhang Z, Zi Z, Lee E, Zhao J, Contreras D, South A, et al. Differential glucose requirement in skin homeostasis and injury identifies a therapeutic target for psoriasis. Nat Med. 2018;24:617-627 pubmed publisher
  410. Foerster F, Boegel S, Heck R, Pickert G, R ssel N, Rosigkeit S, et al. Enhanced protection of C57 BL/6 vs Balb/c mice to melanoma liver metastasis is mediated by NK cells. Oncoimmunology. 2018;7:e1409929 pubmed publisher
  411. Carrasco S, Hu S, Imai D, Kumar R, Sandusky G, Yang X, et al. Toll-like receptor 3 (TLR3) promotes the resolution of Chlamydia muridarum genital tract infection in congenic C57BL/6N mice. PLoS ONE. 2018;13:e0195165 pubmed publisher
  412. Prado C, Gaiazzi M, Gonzalez H, Ugalde V, Figueroa A, Osorio Barrios F, et al. Dopaminergic Stimulation of Myeloid Antigen-Presenting Cells Attenuates Signal Transducer and Activator of Transcription 3-Activation Favouring the Development of Experimental Autoimmune Encephalomyelitis. Front Immunol. 2018;9:571 pubmed publisher
  413. Han Y, Liu Q, Hou J, Gu Y, Zhang Y, Chen Z, et al. Tumor-Induced Generation of Splenic Erythroblast-like Ter-Cells Promotes Tumor Progression. Cell. 2018;173:634-648.e12 pubmed publisher
  414. Sui P, Wiesner D, Xu J, Zhang Y, Lee J, Van Dyken S, et al. Pulmonary neuroendocrine cells amplify allergic asthma responses. Science. 2018;360: pubmed publisher
  415. Lyons J, Ghazi P, Starchenko A, Tovaglieri A, Baldwin K, Poulin E, et al. The colonic epithelium plays an active role in promoting colitis by shaping the tissue cytokine profile. PLoS Biol. 2018;16:e2002417 pubmed publisher
  416. Lee J, Park J, Nam T, Seo S, Kim J, Lee H, et al. Differences between immunodeficient mice generated by classical gene targeting and CRISPR/Cas9-mediated gene knockout. Transgenic Res. 2018;27:241-251 pubmed publisher
  417. Olesen M, Christiansen J, Petersen S, Jensen P, Paslawski W, Romero Ramos M, et al. CD4 T cells react to local increase of α-synuclein in a pathology-associated variant-dependent manner and modify brain microglia in absence of brain pathology. Heliyon. 2018;4:e00513 pubmed publisher
  418. Kawano Y, Zavidij O, Park J, Moschetta M, Kokubun K, Mouhieddine T, et al. Blocking IFNAR1 inhibits multiple myeloma-driven Treg expansion and immunosuppression. J Clin Invest. 2018;128:2487-2499 pubmed publisher
  419. Xiao G, Chan L, Klemm L, Braas D, Chen Z, Geng H, et al. B-Cell-Specific Diversion of Glucose Carbon Utilization Reveals a Unique Vulnerability in B Cell Malignancies. Cell. 2018;173:470-484.e18 pubmed publisher
  420. Mencarelli A, Khameneh H, Fric J, Vacca M, El Daker S, Janela B, et al. Calcineurin-mediated IL-2 production by CD11chighMHCII+ myeloid cells is crucial for intestinal immune homeostasis. Nat Commun. 2018;9:1102 pubmed publisher
  421. Gaddis D, Padgett L, Wu R, McSkimming C, Romines V, Taylor A, et al. Apolipoprotein AI prevents regulatory to follicular helper T cell switching during atherosclerosis. Nat Commun. 2018;9:1095 pubmed publisher
  422. Xi J, Huang Q, Wang L, Ma X, Deng Q, Kumar M, et al. miR-21 depletion in macrophages promotes tumoricidal polarization and enhances PD-1 immunotherapy. Oncogene. 2018;37:3151-3165 pubmed publisher
  423. Safya H, Mellouk A, Legrand J, Le Gall S, Benbijja M, Kanellopoulos Langevin C, et al. Variations in Cellular Responses of Mouse T Cells to Adenosine-5'-Triphosphate Stimulation Do Not Depend on P2X7 Receptor Expression Levels but on Their Activation and Differentiation Stage. Front Immunol. 2018;9:360 pubmed publisher
  424. Sun H, Lagarrigue F, Gingras A, Fan Z, Ley K, Ginsberg M. Transmission of integrin β7 transmembrane domain topology enables gut lymphoid tissue development. J Cell Biol. 2018;217:1453-1465 pubmed publisher
  425. Macdougall C, Wood E, Loschko J, Scagliotti V, Cassidy F, Robinson M, et al. Visceral Adipose Tissue Immune Homeostasis Is Regulated by the Crosstalk between Adipocytes and Dendritic Cell Subsets. Cell Metab. 2018;27:588-601.e4 pubmed publisher
  426. Tang C, Chang S, Paton A, Paton J, Gabrilovich D, Ploegh H, et al. Phosphorylation of IRE1 at S729 regulates RIDD in B cells and antibody production after immunization. J Cell Biol. 2018;217:1739-1755 pubmed publisher
  427. Yeh C, Nojima T, Kuraoka M, Kelsoe G. Germinal center entry not selection of B cells is controlled by peptide-MHCII complex density. Nat Commun. 2018;9:928 pubmed publisher
  428. Metghalchi S, Vandestienne M, Haddad Y, Esposito B, Dairou J, Tedgui A, et al. Indoleamine 2 3-dioxygenase knockout limits angiotensin II-induced aneurysm in low density lipoprotein receptor-deficient mice fed with high fat diet. PLoS ONE. 2018;13:e0193737 pubmed publisher
  429. Tinoco R, Carrette F, Henriquez M, Fujita Y, Bradley L. Fucosyltransferase Induction during Influenza Virus Infection Is Required for the Generation of Functional Memory CD4+ T Cells. J Immunol. 2018;200:2690-2702 pubmed publisher
  430. Yang J, Cornelissen F, Papazian N, Reijmers R, Llorian M, Cupedo T, et al. IL-7-dependent maintenance of ILC3s is required for normal entry of lymphocytes into lymph nodes. J Exp Med. 2018;215:1069-1077 pubmed publisher
  431. Westhorpe C, Norman M, Hall P, Snelgrove S, Finsterbusch M, Li A, et al. Effector CD4+ T cells recognize intravascular antigen presented by patrolling monocytes. Nat Commun. 2018;9:747 pubmed publisher
  432. Lee Y, Lee J, Jang Y, Seo S, Chang J, Seong B. Non-specific Effect of Vaccines: Immediate Protection against Respiratory Syncytial Virus Infection by a Live Attenuated Influenza Vaccine. Front Microbiol. 2018;9:83 pubmed publisher
  433. Kim I, Kim K, Lee E, Oh D, Park C, Park S, et al. Sox7 promotes high-grade glioma by increasing VEGFR2-mediated vascular abnormality. J Exp Med. 2018;215:963-983 pubmed publisher
  434. A Verghese D, Demir M, Chun N, Fribourg M, Cravedi P, Llaudó I, et al. T Cell Expression of C5a Receptor 2 Augments Murine Regulatory T Cell (TREG) Generation and TREG-Dependent Cardiac Allograft Survival. J Immunol. 2018;200:2186-2198 pubmed publisher
  435. Perry C, Muñoz Rojas A, Meeth K, Kellman L, Amezquita R, Thakral D, et al. Myeloid-targeted immunotherapies act in synergy to induce inflammation and antitumor immunity. J Exp Med. 2018;215:877-893 pubmed publisher
  436. Seki A, Rutz S. Optimized RNP transfection for highly efficient CRISPR/Cas9-mediated gene knockout in primary T cells. J Exp Med. 2018;215:985-997 pubmed publisher
  437. Liang W, Mao S, Sun S, Li M, Li Z, Yu R, et al. Core Fucosylation of the T Cell Receptor Is Required for T Cell Activation. Front Immunol. 2018;9:78 pubmed publisher
  438. Zemmour D, Zilionis R, Kiner E, Klein A, Mathis D, Benoist C. Single-cell gene expression reveals a landscape of regulatory T cell phenotypes shaped by the TCR. Nat Immunol. 2018;19:291-301 pubmed publisher
  439. Fahl S, Coffey F, Kain L, Zarin P, Dunbrack R, Teyton L, et al. Role of a selecting ligand in shaping the murine γδ-TCR repertoire. Proc Natl Acad Sci U S A. 2018;115:1889-1894 pubmed publisher
  440. King E, Mazor R, Cuburu N, Pastan I. Low-Dose Methotrexate Prevents Primary and Secondary Humoral Immune Responses and Induces Immune Tolerance to a Recombinant Immunotoxin. J Immunol. 2018;200:2038-2045 pubmed publisher
  441. Böttcher J, Bonavita E, Chakravarty P, Blees H, Cabeza Cabrerizo M, Sammicheli S, et al. NK Cells Stimulate Recruitment of cDC1 into the Tumor Microenvironment Promoting Cancer Immune Control. Cell. 2018;172:1022-1037.e14 pubmed publisher
  442. Anderson A, Baranowska Hustad M, Braathen R, Grodeland G, Bogen B. Simultaneous Targeting of Multiple Hemagglutinins to APCs for Induction of Broad Immunity against Influenza. J Immunol. 2018;200:2057-2066 pubmed publisher
  443. Dejea C, Fathi P, Craig J, Boleij A, Taddese R, Geis A, et al. Patients with familial adenomatous polyposis harbor colonic biofilms containing tumorigenic bacteria. Science. 2018;359:592-597 pubmed publisher
  444. Ellestad K, Thangavelu G, Haile Y, Lin J, Boon L, Anderson C. Prior to Peripheral Tolerance, Newly Generated CD4 T Cells Maintain Dangerous Autoimmune Potential: Fas- and Perforin-Independent Autoimmunity Controlled by Programmed Death-1. Front Immunol. 2018;9:12 pubmed publisher
  445. Cortes J, Ambesi Impiombato A, Couronné L, Quinn S, Kim C, da Silva Almeida A, et al. RHOA G17V Induces T Follicular Helper Cell Specification and Promotes Lymphomagenesis. Cancer Cell. 2018;33:259-273.e7 pubmed publisher
  446. Kara E, Bastow C, McKenzie D, Gregor C, Fenix K, Babb R, et al. Atypical chemokine receptor 4 shapes activated B cell fate. J Exp Med. 2018;215:801-813 pubmed publisher
  447. Wheeler D, Sariol A, Meyerholz D, Perlman S. Microglia are required for protection against lethal coronavirus encephalitis in mice. J Clin Invest. 2018;128:931-943 pubmed publisher
  448. Solanki A, Yanez D, Ross S, Lau C, Papaioannou E, Li J, et al. Gli3 in fetal thymic epithelial cells promotes thymocyte positive selection and differentiation by repression of Shh. Development. 2018;145: pubmed publisher
  449. Delong J, Hall A, Konradt C, Coppock G, Park J, Harms Pritchard G, et al. Cytokine- and TCR-Mediated Regulation of T Cell Expression of Ly6C and Sca-1. J Immunol. 2018;200:1761-1770 pubmed publisher
  450. Linehan J, Harrison O, Han S, Byrd A, Vujkovic Cvijin I, Villarino A, et al. Non-classical Immunity Controls Microbiota Impact on Skin Immunity and Tissue Repair. Cell. 2018;172:784-796.e18 pubmed publisher
  451. Scott J, Lebratti T, Richner J, Jiang X, Fernandez E, Zhao H, et al. Cellular and Humoral Immunity Protect against Vaginal Zika Virus Infection in Mice. J Virol. 2018;92: pubmed publisher
  452. Capucha T, Koren N, Nassar M, Heyman O, Nir T, Levy M, et al. Sequential BMP7/TGF-β1 signaling and microbiota instruct mucosal Langerhans cell differentiation. J Exp Med. 2018;215:481-500 pubmed publisher
  453. Xiao X, Fan Y, Li J, Zhang X, Lou X, Dou Y, et al. Guidance of super-enhancers in regulation of IL-9 induction and airway inflammation. J Exp Med. 2018;215:559-574 pubmed publisher
  454. Tang H, Liang Y, Anders R, Taube J, Qiu X, Mulgaonkar A, et al. PD-L1 on host cells is essential for PD-L1 blockade-mediated tumor regression. J Clin Invest. 2018;128:580-588 pubmed publisher
  455. Tavazoie M, Pollack I, Tanqueco R, Ostendorf B, Reis B, Gonsalves F, et al. LXR/ApoE Activation Restricts Innate Immune Suppression in Cancer. Cell. 2018;172:825-840.e18 pubmed publisher
  456. Koh A, Miller E, Buenrostro J, Moskowitz D, Wang J, Greenleaf W, et al. Rapid chromatin repression by Aire provides precise control of immune tolerance. Nat Immunol. 2018;19:162-172 pubmed publisher
  457. Ferdinand J, Richard A, Meylan F, Al Shamkhani A, Siegel R. Cleavage of TL1A Differentially Regulates Its Effects on Innate and Adaptive Immune Cells. J Immunol. 2018;200:1360-1369 pubmed publisher
  458. Kaufmann E, Sanz J, Dunn J, Khan N, Mendonça L, Pacis A, et al. BCG Educates Hematopoietic Stem Cells to Generate Protective Innate Immunity against Tuberculosis. Cell. 2018;172:176-190.e19 pubmed publisher
  459. Christ A, Günther P, Lauterbach M, Duewell P, Biswas D, Pelka K, et al. Western Diet Triggers NLRP3-Dependent Innate Immune Reprogramming. Cell. 2018;172:162-175.e14 pubmed publisher
  460. Leonardi I, Li X, Semon A, Li D, Doron I, Putzel G, et al. CX3CR1+ mononuclear phagocytes control immunity to intestinal fungi. Science. 2018;359:232-236 pubmed publisher
  461. Garaycoechea J, Crossan G, Langevin F, Mulderrig L, Louzada S, Yang F, et al. Alcohol and endogenous aldehydes damage chromosomes and mutate stem cells. Nature. 2018;553:171-177 pubmed publisher
  462. Stremmel C, Schuchert R, Wagner F, Thaler R, Weinberger T, Pick R, et al. Yolk sac macrophage progenitors traffic to the embryo during defined stages of development. Nat Commun. 2018;9:75 pubmed publisher
  463. Mazor R, King E, Onda M, Cuburu N, Addissie S, Crown D, et al. Tolerogenic nanoparticles restore the antitumor activity of recombinant immunotoxins by mitigating immunogenicity. Proc Natl Acad Sci U S A. 2018;115:E733-E742 pubmed publisher
  464. Guarnerio J, Mendez L, Asada N, Menon A, Fung J, Berry K, et al. A non-cell-autonomous role for Pml in the maintenance of leukemia from the niche. Nat Commun. 2018;9:66 pubmed publisher
  465. Pan D, Kobayashi A, Jiang P, Ferrari de Andrade L, Tay R, Luoma A, et al. A major chromatin regulator determines resistance of tumor cells to T cell-mediated killing. Science. 2018;359:770-775 pubmed publisher
  466. Cowan J, Baik S, McCarthy N, Parnell S, White A, Jenkinson W, et al. Aire controls the recirculation of murine Foxp3+ regulatory T-cells back to the thymus. Eur J Immunol. 2018;48:844-854 pubmed publisher
  467. Lynch J, Werder R, Loh Z, Sikder M, Curren B, Zhang V, et al. Plasmacytoid dendritic cells protect from viral bronchiolitis and asthma through semaphorin 4a-mediated T reg expansion. J Exp Med. 2018;215:537-557 pubmed publisher
  468. Guimarães G, Gomes M, Campos P, Marinho F, de Assis N, Silveira T, et al. Immunoproteasome Subunits Are Required for CD8+ T Cell Function and Host Resistance to Brucella abortus Infection in Mice. Infect Immun. 2018;86: pubmed publisher
  469. Burrack A, Malhotra D, Dileepan T, Osum K, Swanson L, Fife B, et al. Cutting Edge: Allograft Rejection Is Associated with Weak T Cell Responses to Many Different Graft Leukocyte-Derived Peptides. J Immunol. 2018;200:477-482 pubmed publisher
  470. Ibitokou S, Dillon B, Sinha M, Szczesny B, Delgadillo A, Reda Abdelrahman D, et al. Early Inhibition of Fatty Acid Synthesis Reduces Generation of Memory Precursor Effector T Cells in Chronic Infection. J Immunol. 2018;200:643-656 pubmed publisher
  471. Matsuo K, Nagakubo D, Yamamoto S, Shigeta A, Tomida S, Fujita M, et al. CCL28-Deficient Mice Have Reduced IgA Antibody-Secreting Cells and an Altered Microbiota in the Colon. J Immunol. 2018;200:800-809 pubmed publisher
  472. Medaglia C, Giladi A, Stoler Barak L, De Giovanni M, Salame T, Biram A, et al. Spatial reconstruction of immune niches by combining photoactivatable reporters and scRNA-seq. Science. 2017;358:1622-1626 pubmed publisher
  473. Ibrahim M, Scozzi D, Toth K, Ponti D, Kreisel D, Menna C, et al. Naive CD4+ T Cells Carrying a TLR2 Agonist Overcome TGF-β-Mediated Tumor Immune Evasion. J Immunol. 2018;200:847-856 pubmed publisher
  474. Kortlever R, Sodir N, Wilson C, Burkhart D, Pellegrinet L, Brown Swigart L, et al. Myc Cooperates with Ras by Programming Inflammation and Immune Suppression. Cell. 2017;171:1301-1315.e14 pubmed publisher
  475. Engblom C, Pfirschke C, Zilionis R, da Silva Martins J, Bos S, Courties G, et al. Osteoblasts remotely supply lung tumors with cancer-promoting SiglecFhigh neutrophils. Science. 2017;358: pubmed publisher
  476. Kishore M, Cheung K, Fu H, Bonacina F, Wang G, Coe D, et al. Regulatory T Cell Migration Is Dependent on Glucokinase-Mediated Glycolysis. Immunity. 2017;47:875-889.e10 pubmed publisher
  477. Ernszt D, Banfai K, Kellermayer Z, Pap A, Lord J, Pongracz J, et al. PPARgamma Deficiency Counteracts Thymic Senescence. Front Immunol. 2017;8:1515 pubmed publisher
  478. Zhang J, Bu X, Wang H, Zhu Y, Geng Y, Nihira N, et al. Cyclin D-CDK4 kinase destabilizes PD-L1 via cullin 3-SPOP to control cancer immune surveillance. Nature. 2018;553:91-95 pubmed publisher
  479. Harms A, Thome A, Yan Z, Schonhoff A, Williams G, Li X, et al. Peripheral monocyte entry is required for alpha-Synuclein induced inflammation and Neurodegeneration in a model of Parkinson disease. Exp Neurol. 2018;300:179-187 pubmed publisher
  480. Mailer R, Gisterå A, Polyzos K, Ketelhuth D, Hansson G. Hypercholesterolemia Enhances T Cell Receptor Signaling and Increases the Regulatory T Cell Population. Sci Rep. 2017;7:15655 pubmed publisher
  481. Wei X, Zhang J, Gu Q, Huang M, Zhang W, Guo J, et al. Reciprocal Expression of IL-35 and IL-10 Defines Two Distinct Effector Treg Subsets that Are Required for Maintenance of Immune Tolerance. Cell Rep. 2017;21:1853-1869 pubmed publisher
  482. Robles Valero J, Lorenzo Martín L, Menacho Márquez M, Fernández Pisonero I, Abad A, Camos M, et al. A Paradoxical Tumor-Suppressor Role for the Rac1 Exchange Factor Vav1 in T Cell Acute Lymphoblastic Leukemia. Cancer Cell. 2017;32:608-623.e9 pubmed publisher
  483. Singh M, Vianden C, Cantwell M, Dai Z, Xiao Z, Sharma M, et al. Intratumoral CD40 activation and checkpoint blockade induces T cell-mediated eradication of melanoma in the brain. Nat Commun. 2017;8:1447 pubmed publisher
  484. Kwak J, Laskowski J, Li H, McSharry M, Sippel T, Bullock B, et al. Complement Activation via a C3a Receptor Pathway Alters CD4+ T Lymphocytes and Mediates Lung Cancer Progression. Cancer Res. 2018;78:143-156 pubmed publisher
  485. Wasiuk A, Testa J, Weidlick J, Sisson C, Vitale L, Widger J, et al. CD27-Mediated Regulatory T Cell Depletion and Effector T Cell Costimulation Both Contribute to Antitumor Efficacy. J Immunol. 2017;199:4110-4123 pubmed publisher
  486. Widjaja Adhi M, Palczewski G, Dale K, Knauss E, Kelly M, Golczak M, et al. Transcription factor ISX mediates the cross talk between diet and immunity. Proc Natl Acad Sci U S A. 2017;114:11530-11535 pubmed publisher
  487. Zhang S, Takaku M, Zou L, Gu A, Chou W, Zhang G, et al. Reversing SKI-SMAD4-mediated suppression is essential for TH17 cell differentiation. Nature. 2017;551:105-109 pubmed publisher
  488. Glasner A, Isaacson B, Viukov S, Neuman T, Friedman N, Mandelboim M, et al. Increased NK cell immunity in a transgenic mouse model of NKp46 overexpression. Sci Rep. 2017;7:13090 pubmed publisher
  489. Meng Y, Zhou W, Jin L, Liu L, Chang K, Mei J, et al. RANKL-mediated harmonious dialogue between fetus and mother guarantees smooth gestation by inducing decidual M2 macrophage polarization. Cell Death Dis. 2017;8:e3105 pubmed publisher
  490. Francis N, Every A, Ayodele B, Pike R, Mackie E, Pagel C. A T cell-specific knockout reveals an important role for protease-activated receptor 2 in lymphocyte development. Int J Biochem Cell Biol. 2017;92:95-103 pubmed publisher
  491. Purvis H, Clarke F, Jordan C, Blanco C, Cornish G, Dai X, et al. Protein tyrosine phosphatase PTPN22 regulates IL-1β dependent Th17 responses by modulating dectin-1 signaling in mice. Eur J Immunol. 2018;48:306-315 pubmed publisher
  492. Sasaki F, Koga T, Saeki K, Okuno T, Kazuno S, Fujimura T, et al. Biochemical and immunological characterization of a novel monoclonal antibody against mouse leukotriene B4 receptor 1. PLoS ONE. 2017;12:e0185133 pubmed publisher
  493. Wallrapp A, Riesenfeld S, Burkett P, Abdulnour R, Nyman J, Dionne D, et al. The neuropeptide NMU amplifies ILC2-driven allergic lung inflammation. Nature. 2017;549:351-356 pubmed publisher
  494. Jung K, Heishi T, Incio J, Huang Y, Beech E, Pinter M, et al. Targeting CXCR4-dependent immunosuppressive Ly6Clow monocytes improves antiangiogenic therapy in colorectal cancer. Proc Natl Acad Sci U S A. 2017;114:10455-10460 pubmed publisher
  495. Yu H, Gagliani N, Ishigame H, Huber S, Zhu S, Esplugues E, et al. Intestinal type 1 regulatory T cells migrate to periphery to suppress diabetogenic T cells and prevent diabetes development. Proc Natl Acad Sci U S A. 2017;114:10443-10448 pubmed publisher
  496. Zimmermann J, Durek P, Kuhl A, Schattenberg F, Maschmeyer P, Siracusa F, et al. The intestinal microbiota determines the colitis-inducing potential of T-bet-deficient Th cells in mice. Eur J Immunol. 2018;48:161-167 pubmed publisher
  497. Li B, Wang X, Choi I, Wang Y, Liu S, Pham A, et al. miR-146a modulates autoreactive Th17 cell differentiation and regulates organ-specific autoimmunity. J Clin Invest. 2017;127:3702-3716 pubmed publisher
  498. Giampazolias E, Zunino B, Dhayade S, Bock F, Cloix C, Cao K, et al. Mitochondrial permeabilization engages NF-κB-dependent anti-tumour activity under caspase deficiency. Nat Cell Biol. 2017;19:1116-1129 pubmed publisher
  499. Kumar B, Garcia M, Weng L, Jung X, Murakami J, Hu X, et al. Acute myeloid leukemia transforms the bone marrow niche into a leukemia-permissive microenvironment through exosome secretion. Leukemia. 2018;32:575-587 pubmed publisher
  500. Goel S, Decristo M, Watt A, BrinJones H, Sceneay J, Li B, et al. CDK4/6 inhibition triggers anti-tumour immunity. Nature. 2017;548:471-475 pubmed publisher
  501. Yi W, Gupta S, Ricker E, Manni M, Jessberger R, Chinenov Y, et al. The mTORC1-4E-BP-eIF4E axis controls de novo Bcl6 protein synthesis in T cells and systemic autoimmunity. Nat Commun. 2017;8:254 pubmed publisher
  502. Earl P, Americo J, Moss B. Insufficient Innate Immunity Contributes to the Susceptibility of the Castaneous Mouse to Orthopoxvirus Infection. J Virol. 2017;91: pubmed publisher
  503. Strandt H, Pinheiro D, Kaplan D, Wirth D, GRATZ I, Hammerl P, et al. Neoantigen Expression in Steady-State Langerhans Cells Induces CTL Tolerance. J Immunol. 2017;199:1626-1634 pubmed publisher
  504. Kim S, Kwon J, Park J, Seo H, Jung K, Moon Y, et al. Achaete-scute complex homologue 2 accelerates the development of Sjögren's syndrome-like disease in the NOD/ShiLtJ mouse. Immunol Lett. 2017;190:26-33 pubmed publisher
  505. Wang Y, Yun C, Gao B, Xu Y, Zhang Y, Wang Y, et al. The Lysine Acetyltransferase GCN5 Is Required for iNKT Cell Development through EGR2 Acetylation. Cell Rep. 2017;20:600-612 pubmed publisher
  506. Billerbeck E, Wolfisberg R, Fahnøe U, Xiao J, Quirk C, Luna J, et al. Mouse models of acute and chronic hepacivirus infection. Science. 2017;357:204-208 pubmed publisher
  507. Papa I, Saliba D, Ponzoni M, Bustamante S, Canete P, Gonzalez Figueroa P, et al. TFH-derived dopamine accelerates productive synapses in germinal centres. Nature. 2017;547:318-323 pubmed publisher
  508. Sitrin J, Suto E, Wuster A, Eastham Anderson J, Kim J, Austin C, et al. The Ox40/Ox40 Ligand Pathway Promotes Pathogenic Th Cell Responses, Plasmablast Accumulation, and Lupus Nephritis in NZB/W F1 Mice. J Immunol. 2017;199:1238-1249 pubmed publisher
  509. Lee S, Park H, Suh Y, Yoon E, Kim J, Jang W, et al. Inhibition of acute lethal pulmonary inflammation by the IDO-AhR pathway. Proc Natl Acad Sci U S A. 2017;114:E5881-E5890 pubmed publisher
  510. Hannibal T, Schmidt Christensen A, Nilsson J, Fransén Pettersson N, Hansen L, Holmberg D. Deficiency in plasmacytoid dendritic cells and type I interferon signalling prevents diet-induced obesity and insulin resistance in mice. Diabetologia. 2017;60:2033-2041 pubmed publisher
  511. Akiel M, Guo C, Li X, Rajasekaran D, Mendoza R, Robertson C, et al. IGFBP7 Deletion Promotes Hepatocellular Carcinoma. Cancer Res. 2017;77:4014-4025 pubmed publisher
  512. Levine A, Mendoza A, Hemmers S, Moltedo B, Niec R, Schizas M, et al. Stability and function of regulatory T cells expressing the transcription factor T-bet. Nature. 2017;546:421-425 pubmed publisher
  513. Seifert H, Benedek G, Liang J, Nguyen H, Kent G, Vandenbark A, et al. Sex differences in regulatory cells in experimental stroke. Cell Immunol. 2017;318:49-54 pubmed publisher
  514. Xie M, Koh B, Hollister K, Wu H, Sun J, Kaplan M, et al. Bcl6 promotes follicular helper T-cell differentiation and PD-1 expression in a Blimp1-independent manner in mice. Eur J Immunol. 2017;47:1136-1141 pubmed publisher
  515. Chae W, Park J, Henegariu O, Yilmaz S, Hao L, Bothwell A. Membrane-bound Dickkopf-1 in Foxp3+ regulatory T cells suppresses T-cell-mediated autoimmune colitis. Immunology. 2017;152:265-275 pubmed publisher
  516. Hasan Z, Koizumi S, Sasaki D, Yamada H, Arakaki N, Fujihara Y, et al. JunB is essential for IL-23-dependent pathogenicity of Th17 cells. Nat Commun. 2017;8:15628 pubmed publisher
  517. Mendoza A, Fang V, Chen C, Serasinghe M, Verma A, Muller J, et al. Lymphatic endothelial S1P promotes mitochondrial function and survival in naive T cells. Nature. 2017;546:158-161 pubmed publisher
  518. Li C, Leng Y, Zhao B, Gao C, Du F, Jin N, et al. Human iPSC-MSC-Derived Xenografts Modulate Immune Responses by Inhibiting the Cleavage of Caspases. Stem Cells. 2017;35:1719-1732 pubmed publisher
  519. Mildner A, Schönheit J, Giladi A, David E, Lara Astiaso D, Lorenzo Vivas E, et al. Genomic Characterization of Murine Monocytes Reveals C/EBP? Transcription Factor Dependence of Ly6C- Cells. Immunity. 2017;46:849-862.e7 pubmed publisher
  520. Miyazaki M, Miyazaki K, Chen K, Jin Y, Turner J, Moore A, et al. The E-Id Protein Axis Specifies Adaptive Lymphoid Cell Identity and Suppresses Thymic Innate Lymphoid Cell Development. Immunity. 2017;46:818-834.e4 pubmed publisher
  521. Hattori A, Tsunoda M, Konuma T, Kobayashi M, Nagy T, Glushka J, et al. Cancer progression by reprogrammed BCAA metabolism in myeloid leukaemia. Nature. 2017;545:500-504 pubmed publisher
  522. Torcellan T, Hampton H, Bailey J, Tomura M, Brink R, Chtanova T. In vivo photolabeling of tumor-infiltrating cells reveals highly regulated egress of T-cell subsets from tumors. Proc Natl Acad Sci U S A. 2017;114:5677-5682 pubmed publisher
  523. Hara T, Nakaoka H, Hayashi T, Mimura K, Hoshino D, Inoue M, et al. Control of metastatic niche formation by targeting APBA3/Mint3 in inflammatory monocytes. Proc Natl Acad Sci U S A. 2017;114:E4416-E4424 pubmed publisher
  524. Kraakman M, Lee M, Al Sharea A, Dragoljevic D, Barrett T, Montenont E, et al. Neutrophil-derived S100 calcium-binding proteins A8/A9 promote reticulated thrombocytosis and atherogenesis in diabetes. J Clin Invest. 2017;127:2133-2147 pubmed publisher
  525. Minutti C, Jackson Jones L, Garcia Fojeda B, Knipper J, Sutherland T, Logan N, et al. Local amplifiers of IL-4R?-mediated macrophage activation promote repair in lung and liver. Science. 2017;356:1076-1080 pubmed publisher
  526. Taylor S, Huang Y, Mallett G, Stathopoulou C, Felizardo T, Sun M, et al. PD-1 regulates KLRG1+ group 2 innate lymphoid cells. J Exp Med. 2017;214:1663-1678 pubmed publisher
  527. Tang A, Choi J, Kotzin J, Yang Y, Hong C, Hobson N, et al. Endothelial TLR4 and the microbiome drive cerebral cavernous malformations. Nature. 2017;545:305-310 pubmed publisher
  528. Miao T, Symonds A, Singh R, Symonds J, Ogbe A, Omodho B, et al. Egr2 and 3 control adaptive immune responses by temporally uncoupling expansion from T cell differentiation. J Exp Med. 2017;214:1787-1808 pubmed publisher
  529. Laffont S, Blanquart E, Savignac M, Cenac C, Laverny G, Metzger D, et al. Androgen signaling negatively controls group 2 innate lymphoid cells. J Exp Med. 2017;214:1581-1592 pubmed publisher
  530. Burton O, Tamayo J, Stranks A, Koleoglou K, Oettgen H. Allergen-specific IgG antibody signaling through FcγRIIb promotes food tolerance. J Allergy Clin Immunol. 2018;141:189-201.e3 pubmed publisher
  531. Kwan B, Zhu E, Tzeng A, Sugito H, Eltahir A, Ma B, et al. Integrin-targeted cancer immunotherapy elicits protective adaptive immune responses. J Exp Med. 2017;214:1679-1690 pubmed publisher
  532. Chowdhary V, Krogman A, Tilahun A, Alexander M, David C, Rajagopalan G. Concomitant Disruption of CD4 and CD8 Genes Facilitates the Development of Double Negative ?? TCR+ Peripheral T Cells That Respond Robustly to Staphylococcal Superantigen. J Immunol. 2017;198:4413-4424 pubmed publisher
  533. Audzevich T, Bashford Rogers R, Mabbott N, Frampton D, Freeman T, Potocnik A, et al. Pre/pro-B cells generate macrophage populations during homeostasis and inflammation. Proc Natl Acad Sci U S A. 2017;114:E3954-E3963 pubmed publisher
  534. Kammertoens T, Friese C, Arina A, Idel C, Briesemeister D, Rothe M, et al. Tumour ischaemia by interferon-? resembles physiological blood vessel regression. Nature. 2017;545:98-102 pubmed publisher
  535. Daley D, Mani V, Mohan N, Akkad N, Pandian G, Savadkar S, et al. NLRP3 signaling drives macrophage-induced adaptive immune suppression in pancreatic carcinoma. J Exp Med. 2017;214:1711-1724 pubmed publisher
  536. Acharya N, Penukonda S, Shcheglova T, Hagymasi A, Basu S, Srivastava P. Endocannabinoid system acts as a regulator of immune homeostasis in the gut. Proc Natl Acad Sci U S A. 2017;114:5005-5010 pubmed publisher
  537. Zhang H, Luo J, Alcorn J, Chen K, Fan S, Pilewski J, et al. AIM2 Inflammasome Is Critical for Influenza-Induced Lung Injury and Mortality. J Immunol. 2017;198:4383-4393 pubmed publisher
  538. Lu P, Shih C, Qi H. Ephrin B1-mediated repulsion and signaling control germinal center T cell territoriality and function. Science. 2017;356: pubmed publisher
  539. Chien C, Yu H, Chen S, Chiang B. Characterization of c-Maf+Foxp3- Regulatory T Cells Induced by Repeated Stimulation of Antigen-Presenting B Cells. Sci Rep. 2017;7:46348 pubmed publisher
  540. Fu G, Xu Q, Qiu Y, Jin X, Xu T, Dong S, et al. Suppression of Th17 cell differentiation by misshapen/NIK-related kinase MINK1. J Exp Med. 2017;214:1453-1469 pubmed publisher
  541. Claser C, de Souza J, Thorburn S, Grau G, Riley E, Renia L, et al. Host Resistance to Plasmodium-Induced Acute Immune Pathology Is Regulated by Interleukin-10 Receptor Signaling. Infect Immun. 2017;85: pubmed publisher
  542. Daley D, Mani V, Mohan N, Akkad N, Ochi A, Heindel D, et al. Dectin 1 activation on macrophages by galectin 9 promotes pancreatic carcinoma and peritumoral immune tolerance. Nat Med. 2017;23:556-567 pubmed publisher
  543. Shrestha B, You D, Saravia J, Siefker D, Jaligama S, Lee G, et al. IL-4R? on dendritic cells in neonates and Th2 immunopathology in respiratory syncytial virus infection. J Leukoc Biol. 2017;102:153-161 pubmed publisher
  544. Lehmann C, Baranska A, Heidkamp G, Heger L, Neubert K, Lühr J, et al. DC subset-specific induction of T cell responses upon antigen uptake via Fc? receptors in vivo. J Exp Med. 2017;214:1509-1528 pubmed publisher
  545. Chen Y, Wu K, Wu K, Wu K, Tsai H, Chen M, et al. Recombinant Adeno-Associated Virus-Mediated Expression of Methamphetamine Antibody Attenuates Methamphetamine-Induced Hyperactivity in Mice. Sci Rep. 2017;7:46301 pubmed publisher
  546. van der Vlugt L, Obieglo K, Ozir Fazalalikhan A, Sparwasser T, Haeberlein S, Smits H. Schistosome-induced pulmonary B cells inhibit allergic airway inflammation and display a reduced Th2-driving function. Int J Parasitol. 2017;47:545-554 pubmed publisher
  547. Bruce D, Stefanski H, Vincent B, Dant T, Reisdorf S, Bommiasamy H, et al. Type 2 innate lymphoid cells treat and prevent acute gastrointestinal graft-versus-host disease. J Clin Invest. 2017;127:1813-1825 pubmed publisher
  548. Tian L, Goldstein A, Wang H, Ching Lo H, Sun Kim I, Welte T, et al. Mutual regulation of tumour vessel normalization and immunostimulatory reprogramming. Nature. 2017;544:250-254 pubmed publisher
  549. Turner V, Mabbott N. Ageing adversely affects the migration and function of marginal zone B cells. Immunology. 2017;151:349-362 pubmed publisher
  550. Daniels B, Snyder A, Olsen T, Orozco S, Oguin T, Tait S, et al. RIPK3 Restricts Viral Pathogenesis via Cell Death-Independent Neuroinflammation. Cell. 2017;169:301-313.e11 pubmed publisher
  551. Martinez Jimenez C, Eling N, Chen H, Vallejos C, Kolodziejczyk A, Connor F, et al. Aging increases cell-to-cell transcriptional variability upon immune stimulation. Science. 2017;355:1433-1436 pubmed publisher
  552. Kitada S, Kayama H, Okuzaki D, Koga R, Kobayashi M, Arima Y, et al. BATF2 inhibits immunopathological Th17 responses by suppressing Il23a expression during Trypanosoma cruzi infection. J Exp Med. 2017;214:1313-1331 pubmed publisher
  553. Schweighoffer E, Nys J, Vanes L, Smithers N, Tybulewicz V. TLR4 signals in B lymphocytes are transduced via the B cell antigen receptor and SYK. J Exp Med. 2017;214:1269-1280 pubmed publisher
  554. Thomas D, Clare S, Sowerby J, Pardo M, Juss J, Goulding D, et al. Eros is a novel transmembrane protein that controls the phagocyte respiratory burst and is essential for innate immunity. J Exp Med. 2017;214:1111-1128 pubmed publisher
  555. Inoue T, Shinnakasu R, Ise W, Kawai C, Egawa T, Kurosaki T. The transcription factor Foxo1 controls germinal center B cell proliferation in response to T cell help. J Exp Med. 2017;214:1181-1198 pubmed publisher
  556. Briseño C, Gargaro M, Durai V, Davidson J, Theisen D, Anderson D, et al. Deficiency of transcription factor RelB perturbs myeloid and DC development by hematopoietic-extrinsic mechanisms. Proc Natl Acad Sci U S A. 2017;114:3957-3962 pubmed publisher
  557. He W, Wang C, Mu R, Liang P, Huang Z, Zhang J, et al. MiR-21 is required for anti-tumor immune response in mice: an implication for its bi-directional roles. Oncogene. 2017;36:4212-4223 pubmed publisher
  558. Sindhava V, Oropallo M, Moody K, Naradikian M, Higdon L, Zhou L, et al. A TLR9-dependent checkpoint governs B cell responses to DNA-containing antigens. J Clin Invest. 2017;127:1651-1663 pubmed publisher
  559. Liu Z, Ravindranathan R, Kalinski P, Guo Z, Bartlett D. Rational combination of oncolytic vaccinia virus and PD-L1 blockade works synergistically to enhance therapeutic efficacy. Nat Commun. 2017;8:14754 pubmed publisher
  560. Wolf Y, Shemer A, Polonsky M, Gross M, Mildner A, Yona S, et al. Autonomous TNF is critical for in vivo monocyte survival in steady state and inflammation. J Exp Med. 2017;214:905-917 pubmed publisher
  561. Klein J, Moses K, Zelinskyy G, Sody S, Buer J, Lang S, et al. Combined toll-like receptor 3/7/9 deficiency on host cells results in T-cell-dependent control of tumour growth. Nat Commun. 2017;8:14600 pubmed publisher
  562. Jin Z, Liang F, Yang J, Mei W. hnRNP I regulates neonatal immune adaptation and prevents colitis and colorectal cancer. PLoS Genet. 2017;13:e1006672 pubmed publisher
  563. Bhattacharyya M, Penaloza MacMaster P. T regulatory cells are critical for the maintenance, anamnestic expansion and protection elicited by vaccine-induced CD8 T cells. Immunology. 2017;151:340-348 pubmed publisher
  564. Ansa Addo E, Zhang Y, Yang Y, Hussey G, Howley B, Salem M, et al. Membrane-organizing protein moesin controls Treg differentiation and antitumor immunity via TGF-β signaling. J Clin Invest. 2017;127:1321-1337 pubmed publisher
  565. Barthels C, Ogrinc A, Steyer V, Meier S, Simon F, Wimmer M, et al. CD40-signalling abrogates induction of RORγt+ Treg cells by intestinal CD103+ DCs and causes fatal colitis. Nat Commun. 2017;8:14715 pubmed publisher
  566. Pishesha N, Bilate A, Wibowo M, Huang N, Li Z, Deshycka R, et al. Engineered erythrocytes covalently linked to antigenic peptides can protect against autoimmune disease. Proc Natl Acad Sci U S A. 2017;114:3157-3162 pubmed publisher
  567. Obeid S, Wankell M, Charrez B, Sternberg J, Kreuter R, Esmaili S, et al. Adiponectin confers protection from acute colitis and restricts a B cell immune response. J Biol Chem. 2017;292:6569-6582 pubmed publisher
  568. Ramos G, van den Berg A, Nunes Silva V, Weirather J, Peters L, Burkard M, et al. Myocardial aging as a T-cell-mediated phenomenon. Proc Natl Acad Sci U S A. 2017;114:E2420-E2429 pubmed publisher
  569. Fisher S, Aston W, Chee J, Khong A, Cleaver A, Solin J, et al. Transient Treg depletion enhances therapeutic anti-cancer vaccination. Immun Inflamm Dis. 2017;5:16-28 pubmed publisher
  570. Ho T, Warr M, Adelman E, Lansinger O, Flach J, Verovskaya E, et al. Autophagy maintains the metabolism and function of young and old stem cells. Nature. 2017;543:205-210 pubmed publisher
  571. Komegae E, Souza T, Grund L, Lima C, Lopes Ferreira M. Multiple functional therapeutic effects of TnP: A small stable synthetic peptide derived from fish venom in a mouse model of multiple sclerosis. PLoS ONE. 2017;12:e0171796 pubmed publisher
  572. Takahashi T, Asano Y, Sugawara K, Yamashita T, Nakamura K, Saigusa R, et al. Epithelial Fli1 deficiency drives systemic autoimmunity and fibrosis: Possible roles in scleroderma. J Exp Med. 2017;214:1129-1151 pubmed publisher
  573. Stanley R, Piszczatowski R, Bartholdy B, Mitchell K, McKimpson W, Narayanagari S, et al. A myeloid tumor suppressor role for NOL3. J Exp Med. 2017;214:753-771 pubmed publisher
  574. Sanges S, Jendoubi M, Kavian N, Hauspie C, Speca S, Crave J, et al. B Cell Homeostasis and Functional Properties Are Altered in an Hypochlorous Acid-Induced Murine Model of Systemic Sclerosis. Front Immunol. 2017;8:53 pubmed publisher
  575. Mirotti L, Alberca Custódio R, Gomes E, Rammauro F, de Araujo E, Garcia Calich V, et al. CpG-ODN Shapes Alum Adjuvant Activity Signaling via MyD88 and IL-10. Front Immunol. 2017;8:47 pubmed publisher
  576. Szabo P, Goswami A, Mazzuca D, Kim K, O Gorman D, Hess D, et al. Rapid and Rigorous IL-17A Production by a Distinct Subpopulation of Effector Memory T Lymphocytes Constitutes a Novel Mechanism of Toxic Shock Syndrome Immunopathology. J Immunol. 2017;198:2805-2818 pubmed publisher
  577. Turner V, Mabbott N. Structural and functional changes to lymph nodes in ageing mice. Immunology. 2017;151:239-247 pubmed publisher
  578. Szilagyi B, Triebus J, Kressler C, De Almeida M, Tierling S, Durek P, et al. Gut memories do not fade: epigenetic regulation of lasting gut homing receptor expression in CD4+ memory T cells. Mucosal Immunol. 2017;10:1443-1454 pubmed publisher
  579. Huang R, Francois A, McGray A, Miliotto A, Odunsi K. Compensatory upregulation of PD-1, LAG-3, and CTLA-4 limits the efficacy of single-agent checkpoint blockade in metastatic ovarian cancer. Oncoimmunology. 2017;6:e1249561 pubmed publisher
  580. Rossey I, Gilman M, Kabeche S, Sedeyn K, Wrapp D, Kanekiyo M, et al. Potent single-domain antibodies that arrest respiratory syncytial virus fusion protein in its prefusion state. Nat Commun. 2017;8:14158 pubmed publisher
  581. Zamarin D, Holmgaard R, Ricca J, Plitt T, Palese P, Sharma P, et al. Intratumoral modulation of the inducible co-stimulator ICOS by recombinant oncolytic virus promotes systemic anti-tumour immunity. Nat Commun. 2017;8:14340 pubmed publisher
  582. Vaitaitis G, Yussman M, Waid D, Wagner D. Th40 cells (CD4+CD40+ Tcells) drive a more severe form of Experimental Autoimmune Encephalomyelitis than conventional CD4 T cells. PLoS ONE. 2017;12:e0172037 pubmed publisher
  583. Ying W, Wollam J, Ofrecio J, Bandyopadhyay G, El Ouarrat D, Lee Y, et al. Adipose tissue B2 cells promote insulin resistance through leukotriene LTB4/LTB4R1 signaling. J Clin Invest. 2017;127:1019-1030 pubmed publisher
  584. Furukawa S, Nagaike M, Ozaki K. Databases for technical aspects of immunohistochemistry. J Toxicol Pathol. 2017;30:79-107 pubmed publisher
  585. Zan H, Tat C, Qiu Z, Taylor J, Guerrero J, Shen T, et al. Rad52 competes with Ku70/Ku86 for binding to S-region DSB ends to modulate antibody class-switch DNA recombination. Nat Commun. 2017;8:14244 pubmed publisher
  586. Leech J, Lacey K, Mulcahy M, Medina E, McLoughlin R. IL-10 Plays Opposing Roles during Staphylococcus aureus Systemic and Localized Infections. J Immunol. 2017;198:2352-2365 pubmed publisher
  587. Zhang H, Qi Y, Yuan Y, Cai L, Xu H, Zhang L, et al. Paeoniflorin Ameliorates Experimental Autoimmune Encephalomyelitis via Inhibition of Dendritic Cell Function and Th17 Cell Differentiation. Sci Rep. 2017;7:41887 pubmed publisher
  588. Ramjee V, Li D, Manderfield L, Liu F, Engleka K, Aghajanian H, et al. Epicardial YAP/TAZ orchestrate an immunosuppressive response following myocardial infarction. J Clin Invest. 2017;127:899-911 pubmed publisher
  589. Asano T, Meguri Y, Yoshioka T, Kishi Y, Iwamoto M, Nakamura M, et al. PD-1 modulates regulatory T-cell homeostasis during low-dose interleukin-2 therapy. Blood. 2017;129:2186-2197 pubmed publisher
  590. Oh J, Oh D, Jung H, Lee H. A mechanism for the induction of type 2 immune responses by a protease allergen in the genital tract. Proc Natl Acad Sci U S A. 2017;114:E1188-E1195 pubmed publisher
  591. Berlato C, Khan M, Schioppa T, Thompson R, Maniati E, Montfort A, et al. A CCR4 antagonist reverses the tumor-promoting microenvironment of renal cancer. J Clin Invest. 2017;127:801-813 pubmed publisher
  592. Ishiguro T, Fukawa T, Akaki K, Nagaoka K, Takeda T, Iwakura Y, et al. Absence of DCIR1 reduces the mortality rate of endotoxemic hepatitis in mice. Eur J Immunol. 2017;47:704-712 pubmed publisher
  593. van Nieuwenhuijze A, Dooley J, Humblet Baron S, Sreenivasan J, Koenders M, Schlenner S, et al. Defective germinal center B-cell response and reduced arthritic pathology in microRNA-29a-deficient mice. Cell Mol Life Sci. 2017;74:2095-2106 pubmed publisher
  594. Berghoff S, Gerndt N, Winchenbach J, Stumpf S, Hosang L, Odoardi F, et al. Dietary cholesterol promotes repair of demyelinated lesions in the adult brain. Nat Commun. 2017;8:14241 pubmed publisher
  595. Edwards R, Kopp S, Ifergan I, Shui J, Kronenberg M, Miller S, et al. Murine Corneal Inflammation and Nerve Damage After Infection With HSV-1 Are Promoted by HVEM and Ameliorated by Immune-Modifying Nanoparticle Therapy. Invest Ophthalmol Vis Sci. 2017;58:282-291 pubmed publisher
  596. Welsby I, Detienne S, N kuli F, Thomas S, Wouters S, Bechtold V, et al. Lysosome-Dependent Activation of Human Dendritic Cells by the Vaccine Adjuvant QS-21. Front Immunol. 2016;7:663 pubmed publisher
  597. Goverse G, Molenaar R, Macia L, Tan J, Erkelens M, Konijn T, et al. Diet-Derived Short Chain Fatty Acids Stimulate Intestinal Epithelial Cells To Induce Mucosal Tolerogenic Dendritic Cells. J Immunol. 2017;198:2172-2181 pubmed publisher
  598. Yanagita T, Murata Y, Tanaka D, Motegi S, Arai E, Daniwijaya E, et al. Anti-SIRPα antibodies as a potential new tool for cancer immunotherapy. JCI Insight. 2017;2:e89140 pubmed publisher
  599. Zhu J, Cifuentes H, Reynolds J, Lamba D. Immunosuppression via Loss of IL2rγ Enhances Long-Term Functional Integration of hESC-Derived Photoreceptors in the Mouse Retina. Cell Stem Cell. 2017;20:374-384.e5 pubmed publisher
  600. Troegeler A, Mercier I, Cougoule C, Pietretti D, Colom A, Duval C, et al. C-type lectin receptor DCIR modulates immunity to tuberculosis by sustaining type I interferon signaling in dendritic cells. Proc Natl Acad Sci U S A. 2017;114:E540-E549 pubmed publisher
  601. Yamamura K, Uruno T, Shiraishi A, Tanaka Y, Ushijima M, Nakahara T, et al. The transcription factor EPAS1 links DOCK8 deficiency to atopic skin inflammation via IL-31 induction. Nat Commun. 2017;8:13946 pubmed publisher
  602. Ai J, Li J, Gessler D, Su Q, Wei Q, Li H, et al. Adeno-associated virus serotype rh.10 displays strong muscle tropism following intraperitoneal delivery. Sci Rep. 2017;7:40336 pubmed publisher
  603. Yun T, Lee J, Shim D, Choi J, Cheong C. Isolation and Characterization of Aortic Dendritic Cells and Lymphocytes in Atherosclerosis. Methods Mol Biol. 2017;1559:419-437 pubmed publisher
  604. Rowe A, Yun H, Treat B, Kinchington P, Hendricks R. Subclinical Herpes Simplex Virus Type 1 Infections Provide Site-Specific Resistance to an Unrelated Pathogen. J Immunol. 2017;198:1706-1717 pubmed publisher
  605. Atkin Smith G, Paone S, Zanker D, Duan M, Phan T, Chen W, et al. Isolation of cell type-specific apoptotic bodies by fluorescence-activated cell sorting. Sci Rep. 2017;7:39846 pubmed publisher
  606. Cañete A, Carmona R, Ariza L, Sanchez M, Rojas A, Muñoz Chápuli R. A population of hematopoietic stem cells derives from GATA4-expressing progenitors located in the placenta and lateral mesoderm of mice. Haematologica. 2017;102:647-655 pubmed publisher
  607. van der Weyden L, Arends M, Campbell A, Bald T, Wardle Jones H, Griggs N, et al. Genome-wide in vivo screen identifies novel host regulators of metastatic colonization. Nature. 2017;541:233-236 pubmed publisher
  608. Engler J, Kursawe N, Solano M, Patas K, Wehrmann S, Heckmann N, et al. Glucocorticoid receptor in T cells mediates protection from autoimmunity in pregnancy. Proc Natl Acad Sci U S A. 2017;114:E181-E190 pubmed publisher
  609. Chen S, Cai C, Li Z, Liu G, Wang Y, Blonska M, et al. Dissection of SAP-dependent and SAP-independent SLAM family signaling in NKT cell development and humoral immunity. J Exp Med. 2017;214:475-489 pubmed publisher
  610. Kinosada H, Yasunaga J, Shimura K, Miyazato P, Onishi C, Iyoda T, et al. HTLV-1 bZIP Factor Enhances T-Cell Proliferation by Impeding the Suppressive Signaling of Co-inhibitory Receptors. PLoS Pathog. 2017;13:e1006120 pubmed publisher
  611. Marshall N, Vong A, Devarajan P, Brauner M, Kuang Y, Nayar R, et al. NKG2C/E Marks the Unique Cytotoxic CD4 T Cell Subset, ThCTL, Generated by Influenza Infection. J Immunol. 2017;198:1142-1155 pubmed publisher
  612. Xu X, Han L, Zhao G, Xue S, Gao Y, Xiao J, et al. LRCH1 interferes with DOCK8-Cdc42-induced T cell migration and ameliorates experimental autoimmune encephalomyelitis. J Exp Med. 2017;214:209-226 pubmed publisher
  613. von Moltke J, O Leary C, Barrett N, Kanaoka Y, Austen K, Locksley R. Leukotrienes provide an NFAT-dependent signal that synergizes with IL-33 to activate ILC2s. J Exp Med. 2017;214:27-37 pubmed publisher
  614. Hayakawa M, Hayakawa H, Petrova T, Ritprajak P, Sutavani R, Jiménez Andrade G, et al. Loss of Functionally Redundant p38 Isoforms in T Cells Enhances Regulatory T Cell Induction. J Biol Chem. 2017;292:1762-1772 pubmed publisher
  615. Aguilera T, Rafat M, Castellini L, Shehade H, Kariolis M, Hui A, et al. Reprogramming the immunological microenvironment through radiation and targeting Axl. Nat Commun. 2016;7:13898 pubmed publisher
  616. Lamprianou S, Gysemans C, Bou Saab J, Pontes H, Mathieu C, Meda P. Glibenclamide Prevents Diabetes in NOD Mice. PLoS ONE. 2016;11:e0168839 pubmed publisher
  617. Griffiths K, Ahmed M, Das S, Gopal R, Horne W, Connell T, et al. Targeting dendritic cells to accelerate T-cell activation overcomes a bottleneck in tuberculosis vaccine efficacy. Nat Commun. 2016;7:13894 pubmed publisher
  618. Tripathi D, Venkatasubramanian S, Cheekatla S, Paidipally P, Welch E, Tvinnereim A, et al. A TLR9 agonist promotes IL-22-dependent pancreatic islet allograft survival in type 1 diabetic mice. Nat Commun. 2016;7:13896 pubmed publisher
  619. Hashimoto Hill S, Friesen L, Kim M, Kim C. Contraction of intestinal effector T cells by retinoic acid-induced purinergic receptor P2X7. Mucosal Immunol. 2017;10:912-923 pubmed publisher
  620. Karki R, Man S, Malireddi R, Kesavardhana S, Zhu Q, Burton A, et al. NLRC3 is an inhibitory sensor of PI3K-mTOR pathways in cancer. Nature. 2016;540:583-587 pubmed publisher
  621. Wei Y, Lu C, Chen J, Cui G, Wang L, Yu T, et al. High salt diet stimulates gut Th17 response and exacerbates TNBS-induced colitis in mice. Oncotarget. 2017;8:70-82 pubmed publisher
  622. von Kutzleben S, Pryce G, Giovannoni G, Baker D. Depletion of CD52-positive cells inhibits the development of central nervous system autoimmune disease, but deletes an immune-tolerance promoting CD8 T-cell population. Implications for secondary autoimmunity of alemtuzumab in multiple sclerosis. Immunology. 2017;150:444-455 pubmed publisher
  623. Nish S, Zens K, Kratchmarov R, Lin W, Adams W, Chen Y, et al. CD4+ T cell effector commitment coupled to self-renewal by asymmetric cell divisions. J Exp Med. 2017;214:39-47 pubmed publisher
  624. Jacobsen E, Ochkur S, Doyle A, Lesuer W, Li W, Protheroe C, et al. Lung Pathologies in a Chronic Inflammation Mouse Model Are Independent of Eosinophil Degranulation. Am J Respir Crit Care Med. 2017;195:1321-1332 pubmed publisher
  625. Bieber K, Witte M, Sun S, Hundt J, Kalies K, Dräger S, et al. T cells mediate autoantibody-induced cutaneous inflammation and blistering in epidermolysis bullosa acquisita. Sci Rep. 2016;6:38357 pubmed publisher
  626. Ikawa T, Masuda K, Endo T, Endo M, Isono K, Koseki Y, et al. Conversion of T cells to B cells by inactivation of polycomb-mediated epigenetic suppression of the B-lineage program. Genes Dev. 2016;30:2475-2485 pubmed
  627. Connor L, Tang S, Cognard E, Ochiai S, Hilligan K, Old S, et al. Th2 responses are primed by skin dendritic cells with distinct transcriptional profiles. J Exp Med. 2017;214:125-142 pubmed publisher
  628. Yanagisawa H, Hashimoto M, Minagawa S, Takasaka N, Ma R, Moermans C, et al. Role of IL-17A in murine models of COPD airway disease. Am J Physiol Lung Cell Mol Physiol. 2017;312:L122-L130 pubmed publisher
  629. Semenkovich N, Planer J, Ahern P, Griffin N, Lin C, Gordon J. Impact of the gut microbiota on enhancer accessibility in gut intraepithelial lymphocytes. Proc Natl Acad Sci U S A. 2016;113:14805-14810 pubmed publisher
  630. Swanson P, Hart G, Russo M, Nayak D, Yazew T, Pena M, et al. CD8+ T Cells Induce Fatal Brainstem Pathology during Cerebral Malaria via Luminal Antigen-Specific Engagement of Brain Vasculature. PLoS Pathog. 2016;12:e1006022 pubmed publisher
  631. Kretzer N, Theisen D, Tussiwand R, Briseño C, Grajales Reyes G, Wu X, et al. RAB43 facilitates cross-presentation of cell-associated antigens by CD8?+ dendritic cells. J Exp Med. 2016;213:2871-2883 pubmed
  632. Khameneh H, Ho A, Spreafico R, Derks H, Quek H, Mortellaro A. The Syk-NFAT-IL-2 Pathway in Dendritic Cells Is Required for Optimal Sterile Immunity Elicited by Alum Adjuvants. J Immunol. 2017;198:196-204 pubmed
  633. Cecchinato V, Bernasconi E, Speck R, Proietti M, Sauermann U, D Agostino G, et al. Impairment of CCR6+ and CXCR3+ Th Cell Migration in HIV-1 Infection Is Rescued by Modulating Actin Polymerization. J Immunol. 2017;198:184-195 pubmed
  634. Le Q, Yao W, Chen Y, Yan B, Liu C, Yuan M, et al. GRK6 regulates ROS response and maintains hematopoietic stem cell self-renewal. Cell Death Dis. 2016;7:e2478 pubmed publisher
  635. Wang X, Cao Q, Yu L, Shi H, Xue B, Shi H. Epigenetic regulation of macrophage polarization and inflammation by DNA methylation in obesity. JCI Insight. 2016;1:e87748 pubmed publisher
  636. Kuchmiy A, D Hont J, Hochepied T, Lamkanfi M. NLRP2 controls age-associated maternal fertility. J Exp Med. 2016;213:2851-2860 pubmed
  637. Sektioglu I, Carretero R, Bulbuc N, Bald T, Tüting T, Rudensky A, et al. Basophils Promote Tumor Rejection via Chemotaxis and Infiltration of CD8+ T Cells. Cancer Res. 2017;77:291-302 pubmed publisher
  638. Kimura Y, Inoue A, Hangai S, Saijo S, Negishi H, Nishio J, et al. The innate immune receptor Dectin-2 mediates the phagocytosis of cancer cells by Kupffer cells for the suppression of liver metastasis. Proc Natl Acad Sci U S A. 2016;113:14097-14102 pubmed
  639. Hammer A, Yang G, Friedrich J, Kovacs A, Lee D, Grave K, et al. Role of the receptor Mas in macrophage-mediated inflammation in vivo. Proc Natl Acad Sci U S A. 2016;113:14109-14114 pubmed
  640. Yu V, Yusuf R, Oki T, Wu J, Saez B, Wang X, et al. Epigenetic Memory Underlies Cell-Autonomous Heterogeneous Behavior of Hematopoietic Stem Cells. Cell. 2016;167:1310-1322.e17 pubmed publisher
  641. Ju X, Silveira P, Hsu W, Elgundi Z, Alingcastre R, Verma N, et al. The Analysis of CD83 Expression on Human Immune Cells Identifies a Unique CD83+-Activated T Cell Population. J Immunol. 2016;197:4613-4625 pubmed
  642. Escalante N, Lemire P, Cruz Tleugabulova M, Prescott D, Mortha A, Streutker C, et al. The common mouse protozoa Tritrichomonas muris alters mucosal T cell homeostasis and colitis susceptibility. J Exp Med. 2016;213:2841-2850 pubmed
  643. Cummings R, Barbet G, Bongers G, Hartmann B, Gettler K, Muniz L, et al. Different tissue phagocytes sample apoptotic cells to direct distinct homeostasis programs. Nature. 2016;539:565-569 pubmed publisher
  644. Theisen E, Sauer J. Listeria monocytogenes-Induced Cell Death Inhibits the Generation of Cell-Mediated Immunity. Infect Immun. 2017;85: pubmed publisher
  645. Baron L, Paatero A, Morel J, Impens F, Guenin Macé L, Saint Auret S, et al. Mycolactone subverts immunity by selectively blocking the Sec61 translocon. J Exp Med. 2016;213:2885-2896 pubmed
  646. Marichal T, Gaudenzio N, El Abbas S, Sibilano R, Zurek O, Starkl P, et al. Guanine nucleotide exchange factor RABGEF1 regulates keratinocyte-intrinsic signaling to maintain skin homeostasis. J Clin Invest. 2016;126:4497-4515 pubmed publisher
  647. Park K, Mikulski Z, Seo G, Andreyev A, Marcovecchio P, Blatchley A, et al. The transcription factor NR4A3 controls CD103+ dendritic cell migration. J Clin Invest. 2016;126:4603-4615 pubmed publisher
  648. Laurent C, Dorothee G, Hunot S, Martin E, Monnet Y, Duchamp M, et al. Hippocampal T cell infiltration promotes neuroinflammation and cognitive decline in a mouse model of tauopathy. Brain. 2017;140:184-200 pubmed publisher
  649. Hu Y, Kim J, He K, Wan Q, Kim J, Flach M, et al. Scramblase TMEM16F terminates T cell receptor signaling to restrict T cell exhaustion. J Exp Med. 2016;213:2759-2772 pubmed
  650. Zamora Pineda J, Kumar A, Suh J, Zhang M, Saba J. Dendritic cell sphingosine-1-phosphate lyase regulates thymic egress. J Exp Med. 2016;213:2773-2791 pubmed
  651. Hirako I, Ataide M, Faustino L, Assis P, Sorensen E, Ueta H, et al. Splenic differentiation and emergence of CCR5+CXCL9+CXCL10+ monocyte-derived dendritic cells in the brain during cerebral malaria. Nat Commun. 2016;7:13277 pubmed publisher
  652. Kirschbaum K, Sonner J, Zeller M, Deumelandt K, Bode J, Sharma R, et al. In vivo nanoparticle imaging of innate immune cells can serve as a marker of disease severity in a model of multiple sclerosis. Proc Natl Acad Sci U S A. 2016;113:13227-13232 pubmed
  653. Wang S, Campos J, Gallotta M, Gong M, Crain C, Naik E, et al. Intratumoral injection of a CpG oligonucleotide reverts resistance to PD-1 blockade by expanding multifunctional CD8+ T cells. Proc Natl Acad Sci U S A. 2016;113:E7240-E7249 pubmed
  654. Jirmo A, Daluege K, Happle C, Albrecht M, Dittrich A, Busse M, et al. IL-27 Is Essential for Suppression of Experimental Allergic Asthma by the TLR7/8 Agonist R848 (Resiquimod). J Immunol. 2016;197:4219-4227 pubmed
  655. Coleman C, Sisk J, Halasz G, Zhong J, Beck S, Matthews K, et al. CD8+ T Cells and Macrophages Regulate Pathogenesis in a Mouse Model of Middle East Respiratory Syndrome. J Virol. 2017;91: pubmed publisher
  656. Serr I, Fürst R, Ott V, Scherm M, Nikolaev A, Gökmen F, et al. miRNA92a targets KLF2 and the phosphatase PTEN signaling to promote human T follicular helper precursors in T1D islet autoimmunity. Proc Natl Acad Sci U S A. 2016;113:E6659-E6668 pubmed
  657. Pauken K, Sammons M, Odorizzi P, Manne S, Godec J, Khan O, et al. Epigenetic stability of exhausted T cells limits durability of reinvigoration by PD-1 blockade. Science. 2016;354:1160-1165 pubmed
  658. Bahal R, Ali McNeer N, Quijano E, Liu Y, Sulkowski P, Turchick A, et al. In vivo correction of anaemia in ?-thalassemic mice by ?PNA-mediated gene editing with nanoparticle delivery. Nat Commun. 2016;7:13304 pubmed publisher
  659. Kwong Chung C, Ronchi F, Geuking M. Detrimental effect of systemic antimicrobial CD4+ T-cell reactivity on gut epithelial integrity. Immunology. 2017;150:221-235 pubmed publisher
  660. Menzel L, Kleber L, Friedrich C, Hummel R, Dangel L, Winter J, et al. Progranulin protects against exaggerated axonal injury and astrogliosis following traumatic brain injury. Glia. 2017;65:278-292 pubmed publisher
  661. Zhao J, Chen C, Guo M, Tao Y, Cui P, Zhou Y, et al. MicroRNA-7 Deficiency Ameliorates the Pathologies of Acute Lung Injury through Elevating KLF4. Front Immunol. 2016;7:389 pubmed
  662. Kotschy A, Szlávik Z, Murray J, Davidson J, Maragno A, Le Toumelin Braizat G, et al. The MCL1 inhibitor S63845 is tolerable and effective in diverse cancer models. Nature. 2016;538:477-482 pubmed publisher
  663. Massaad M, Zhou J, Tsuchimoto D, Chou J, Jabara H, Janssen E, et al. Deficiency of base excision repair enzyme NEIL3 drives increased predisposition to autoimmunity. J Clin Invest. 2016;126:4219-4236 pubmed publisher
  664. Elgueta R, Tse D, Deharvengt S, Luciano M, CARRIERE C, Noelle R, et al. Endothelial Plasmalemma Vesicle-Associated Protein Regulates the Homeostasis of Splenic Immature B Cells and B-1 B Cells. J Immunol. 2016;197:3970-3981 pubmed
  665. Alves da Costa T, Di Gangi R, Thomé R, Barreto Felisbino M, Pires Bonfanti A, Lumi Watanabe Ishikawa L, et al. Severe Changes in Thymic Microenvironment in a Chronic Experimental Model of Paracoccidioidomycosis. PLoS ONE. 2016;11:e0164745 pubmed publisher
  666. Rantakari P, Jäppinen N, Lokka E, Mokkala E, Gerke H, Peuhu E, et al. Fetal liver endothelium regulates the seeding of tissue-resident macrophages. Nature. 2016;538:392-396 pubmed publisher
  667. Kimura T, Nada S, Takegahara N, Okuno T, Nojima S, Kang S, et al. Polarization of M2 macrophages requires Lamtor1 that integrates cytokine and amino-acid signals. Nat Commun. 2016;7:13130 pubmed publisher
  668. Mascarell L, Airouche S, Berjont N, Gary C, Gueguen C, Fourcade G, et al. The regulatory dendritic cell marker C1q is a potent inhibitor of allergic inflammation. Mucosal Immunol. 2017;10:695-704 pubmed publisher
  669. Georgiev H, Ravens I, Benarafa C, Forster R, Bernhardt G. Distinct gene expression patterns correlate with developmental and functional traits of iNKT subsets. Nat Commun. 2016;7:13116 pubmed publisher
  670. Lopez Guadamillas E, Fernandez Marcos P, Pantoja C, Muñoz Martin M, Martinez D, Gomez Lopez G, et al. p21Cip1 plays a critical role in the physiological adaptation to fasting through activation of PPAR?. Sci Rep. 2016;6:34542 pubmed publisher
  671. Yoon Y, Storm K, Kamimae Lanning A, Goloviznina N, Kurre P. Endogenous DNA Damage Leads to p53-Independent Deficits in Replicative Fitness in Fetal Murine Fancd2-/- Hematopoietic Stem and Progenitor Cells. Stem Cell Reports. 2016;7:840-853 pubmed publisher
  672. Liu Y, Wang Z, De La Torre R, Barling A, Tsujikawa T, Hornick N, et al. Trim32 Deficiency Enhances Th2 Immunity and Predisposes to Features of Atopic Dermatitis. J Invest Dermatol. 2017;137:359-366 pubmed publisher
  673. Xu X, Greenland J, Gotts J, Matthay M, Caughey G. Cathepsin L Helps to Defend Mice from Infection with Influenza A. PLoS ONE. 2016;11:e0164501 pubmed publisher
  674. Coursey T, Bian F, Zaheer M, Pflugfelder S, Volpe E, de Paiva C. Age-related spontaneous lacrimal keratoconjunctivitis is accompanied by dysfunctional T regulatory cells. Mucosal Immunol. 2017;10:743-756 pubmed publisher
  675. Swaminathan G, Thoryk E, Cox K, Smith J, Wolf J, Gindy M, et al. A Tetravalent Sub-unit Dengue Vaccine Formulated with Ionizable Cationic Lipid Nanoparticle induces Significant Immune Responses in Rodents and Non-Human Primates. Sci Rep. 2016;6:34215 pubmed publisher
  676. Gerriets V, Kishton R, Johnson M, Cohen S, Siska P, Nichols A, et al. Foxp3 and Toll-like receptor signaling balance Treg cell anabolic metabolism for suppression. Nat Immunol. 2016;17:1459-1466 pubmed publisher
  677. Johnston L, Hsu C, Krier Burris R, Chhiba K, Chien K, McKenzie A, et al. IL-33 Precedes IL-5 in Regulating Eosinophil Commitment and Is Required for Eosinophil Homeostasis. J Immunol. 2016;197:3445-3453 pubmed
  678. Rothchild A, Sissons J, Shafiani S, Plaisier C, Min D, Mai D, et al. MiR-155-regulated molecular network orchestrates cell fate in the innate and adaptive immune response to Mycobacterium tuberculosis. Proc Natl Acad Sci U S A. 2016;113:E6172-E6181 pubmed
  679. Carnevale D, Perrotta M, Pallante F, Fardella V, Iacobucci R, Fardella S, et al. A cholinergic-sympathetic pathway primes immunity in hypertension and mediates brain-to-spleen communication. Nat Commun. 2016;7:13035 pubmed publisher
  680. Klotz L, Kuzmanov I, Hucke S, Gross C, Posevitz V, Dreykluft A, et al. B7-H1 shapes T-cell-mediated brain endothelial cell dysfunction and regional encephalitogenicity in spontaneous CNS autoimmunity. Proc Natl Acad Sci U S A. 2016;113:E6182-E6191 pubmed
  681. Kishi Y, Kondo T, Xiao S, Yosef N, Gaublomme J, Wu C, et al. Protein C receptor (PROCR) is a negative regulator of Th17 pathogenicity. J Exp Med. 2016;213:2489-2501 pubmed
  682. Ishikawa E, Kosako H, Yasuda T, Ohmuraya M, Araki K, Kurosaki T, et al. Protein kinase D regulates positive selection of CD4+ thymocytes through phosphorylation of SHP-1. Nat Commun. 2016;7:12756 pubmed publisher
  683. Urrutia M, Fernandez S, Gonzalez M, Vilches R, Rojas P, Vásquez M, et al. Overexpression of Glutamate Decarboxylase in Mesenchymal Stem Cells Enhances Their Immunosuppressive Properties and Increases GABA and Nitric Oxide Levels. PLoS ONE. 2016;11:e0163735 pubmed publisher
  684. Arunachalam P, Mishra R, Badarinath K, Selvam D, Payeli S, Stout R, et al. Toll-Like Receptor 9 Activation Rescues Impaired Antibody Response in Needle-free Intradermal DNA Vaccination. Sci Rep. 2016;6:33564 pubmed publisher
  685. Hrdinka M, Sudan K, Just S, Drobek A, Stepanek O, Schluter D, et al. Normal Development and Function of T Cells in Proline Rich 7 (Prr7) Deficient Mice. PLoS ONE. 2016;11:e0162863 pubmed publisher
  686. Roncagalli R, Cucchetti M, Jarmuzynski N, Gregoire C, Bergot E, Audebert S, et al. The scaffolding function of the RLTPR protein explains its essential role for CD28 co-stimulation in mouse and human T cells. J Exp Med. 2016;213:2437-2457 pubmed
  687. Lexmond W, Goettel J, Lyons J, Jacobse J, Deken M, Lawrence M, et al. FOXP3+ Tregs require WASP to restrain Th2-mediated food allergy. J Clin Invest. 2016;126:4030-4044 pubmed publisher
  688. Kaneda M, Messer K, Ralainirina N, Li H, Leem C, Gorjestani S, et al. PI3Kγ is a molecular switch that controls immune suppression. Nature. 2016;539:437-442 pubmed publisher
  689. Di Marco Barros R, Roberts N, Dart R, Vantourout P, Jandke A, Nussbaumer O, et al. Epithelia Use Butyrophilin-like Molecules to Shape Organ-Specific γδ T Cell Compartments. Cell. 2016;167:203-218.e17 pubmed publisher
  690. Butcher M, Filipowicz A, Waseem T, McGary C, Crow K, Magilnick N, et al. Atherosclerosis-Driven Treg Plasticity Results in Formation of a Dysfunctional Subset of Plastic IFN?+ Th1/Tregs. Circ Res. 2016;119:1190-1203 pubmed publisher
  691. Huang M, Zhang W, Guo J, Wei X, Phiwpan K, Zhang J, et al. Improved Transgenic Mouse Model for Studying HLA Class I Antigen Presentation. Sci Rep. 2016;6:33612 pubmed publisher
  692. Hirai Yuki A, Hensley L, McGivern D, Gonzalez Lopez O, Das A, Feng H, et al. MAVS-dependent host species range and pathogenicity of human hepatitis A virus. Science. 2016;353:1541-1545 pubmed
  693. Bernard Valnet R, Yshii L, Quériault C, Nguyen X, Arthaud S, Rodrigues M, et al. CD8 T cell-mediated killing of orexinergic neurons induces a narcolepsy-like phenotype in mice. Proc Natl Acad Sci U S A. 2016;113:10956-61 pubmed publisher
  694. Boddupalli C, Nair S, Gray S, Nowyhed H, Verma R, Gibson J, et al. ABC transporters and NR4A1 identify a quiescent subset of tissue-resident memory T cells. J Clin Invest. 2016;126:3905-3916 pubmed publisher
  695. Olofsson P, Steinberg B, Sobbi R, Cox M, Ahmed M, Oswald M, et al. Blood pressure regulation by CD4+ lymphocytes expressing choline acetyltransferase. Nat Biotechnol. 2016;34:1066-1071 pubmed publisher
  696. Akk A, Springer L, Pham C. Neutrophil Extracellular Traps Enhance Early Inflammatory Response in Sendai Virus-Induced Asthma Phenotype. Front Immunol. 2016;7:325 pubmed publisher
  697. Uhde A, Herder V, Akram Khan M, Ciurkiewicz M, Schaudien D, Teich R, et al. Viral Infection of the Central Nervous System Exacerbates Interleukin-10 Receptor Deficiency-Mediated Colitis in SJL Mice. PLoS ONE. 2016;11:e0161883 pubmed publisher
  698. Xiong X, Gu L, Wang Y, Luo Y, Zhang H, Lee J, et al. Glycyrrhizin protects against focal cerebral ischemia via inhibition of T cell activity and HMGB1-mediated mechanisms. J Neuroinflammation. 2016;13:241 pubmed publisher
  699. Hoegl S, Ehrentraut H, Brodsky K, Victorino F, Golden Mason L, Eltzschig H, et al. NK cells regulate CXCR2+ neutrophil recruitment during acute lung injury. J Leukoc Biol. 2017;101:471-480 pubmed publisher
  700. Lewis G, Wehrens E, Labarta Bajo L, Streeck H, Zuniga E. TGF-? receptor maintains CD4 T helper cell identity during chronic viral infections. J Clin Invest. 2016;126:3799-3813 pubmed publisher
  701. Lu X, Chen Q, Rong Y, Yang G, Li C, Xu N, et al. LECT2 drives haematopoietic stem cell expansion and mobilization via regulating the macrophages and osteolineage cells. Nat Commun. 2016;7:12719 pubmed publisher
  702. Chew W, Tabebordbar M, Cheng J, Mali P, Wu E, Ng A, et al. A multifunctional AAV-CRISPR-Cas9 and its host response. Nat Methods. 2016;13:868-74 pubmed publisher
  703. Ruan G, Tao B, Wang D, Li Y, Wu J, Yin G. Chinese herbal medicine formula Gu-Ben-Fang-Xiao-Tang attenuates airway inflammation by modulating Th17/Treg balance in an ovalbumin-induced murine asthma model. Exp Ther Med. 2016;12:1428-1434 pubmed
  704. Xia G, Wu S, Zhang Y. Anti-4-1BB monoclonal antibodies attenuate concanavalin A-induced immune-mediated liver injury in mice. Exp Ther Med. 2016;12:1263-1268 pubmed
  705. Papadaki G, Kambas K, Choulaki C, Vlachou K, Drakos E, Bertsias G, et al. Neutrophil extracellular traps exacerbate Th1-mediated autoimmune responses in rheumatoid arthritis by promoting DC maturation. Eur J Immunol. 2016;46:2542-2554 pubmed publisher
  706. Jackson Jones L, Duncan S, Magalhaes M, Campbell S, Maizels R, McSorley H, et al. Fat-associated lymphoid clusters control local IgM secretion during pleural infection and lung inflammation. Nat Commun. 2016;7:12651 pubmed publisher
  707. Zhang S, Liu X, Mei L, Wang H, Fang F. Epigallocatechin-3-gallate (EGCG) inhibits imiquimod-induced psoriasis-like inflammation of BALB/c mice. BMC Complement Altern Med. 2016;16:334 pubmed publisher
  708. Herrmann O, Schemionek M. Tumor Suppressor Analysis in CML. Methods Mol Biol. 2016;1465:87-94 pubmed publisher
  709. Olsson A, Venkatasubramanian M, Chaudhri V, Aronow B, Salomonis N, Singh H, et al. Single-cell analysis of mixed-lineage states leading to a binary cell fate choice. Nature. 2016;537:698-702 pubmed publisher
  710. Uckelmann H, Blaszkiewicz S, Nicolae C, Haas S, Schnell A, Wurzer S, et al. Extracellular matrix protein Matrilin-4 regulates stress-induced HSC proliferation via CXCR4. J Exp Med. 2016;213:1961-71 pubmed publisher
  711. Proekt I, Miller C, Jeanne M, Fasano K, Moon J, Lowell C, et al. LYN- and AIRE-mediated tolerance checkpoint defects synergize to trigger organ-specific autoimmunity. J Clin Invest. 2016;126:3758-3771 pubmed publisher
  712. Fabbiano S, Suárez Zamorano N, Rigo D, Veyrat Durebex C, Stevanovic Dokic A, Colin D, et al. Caloric Restriction Leads to Browning of White Adipose Tissue through Type 2 Immune Signaling. Cell Metab. 2016;24:434-446 pubmed publisher
  713. Vogel K, Bell L, Galloway A, Ahlfors H, Turner M. The RNA-Binding Proteins Zfp36l1 and Zfp36l2 Enforce the Thymic ?-Selection Checkpoint by Limiting DNA Damage Response Signaling and Cell Cycle Progression. J Immunol. 2016;197:2673-2685 pubmed publisher
  714. Ulges A, Witsch E, Pramanik G, Klein M, Birkner K, Bühler U, et al. Protein kinase CK2 governs the molecular decision between encephalitogenic TH17 cell and Treg cell development. Proc Natl Acad Sci U S A. 2016;113:10145-50 pubmed publisher
  715. Drennan M, Govindarajan S, Verheugen E, Coquet J, Staal J, McGuire C, et al. NKT sublineage specification and survival requires the ubiquitin-modifying enzyme TNFAIP3/A20. J Exp Med. 2016;213:1973-81 pubmed publisher
  716. Yoon J, Leyva Castillo J, Wang G, Galand C, Oyoshi M, Kumar L, et al. IL-23 induced in keratinocytes by endogenous TLR4 ligands polarizes dendritic cells to drive IL-22 responses to skin immunization. J Exp Med. 2016;213:2147-66 pubmed publisher
  717. Murakami S, Shahbazian D, Surana R, Zhang W, Chen H, Graham G, et al. Yes-associated protein mediates immune reprogramming in pancreatic ductal adenocarcinoma. Oncogene. 2017;36:1232-1244 pubmed publisher
  718. Klose R, Krzywinska E, Castells M, Gotthardt D, Putz E, Kantari Mimoun C, et al. Targeting VEGF-A in myeloid cells enhances natural killer cell responses to chemotherapy and ameliorates cachexia. Nat Commun. 2016;7:12528 pubmed publisher
  719. He C, Duan X, Guo N, Chan C, Poon C, Weichselbaum R, et al. Core-shell nanoscale coordination polymers combine chemotherapy and photodynamic therapy to potentiate checkpoint blockade cancer immunotherapy. Nat Commun. 2016;7:12499 pubmed publisher
  720. Henry E, Sy C, Inclan Rico J, Espinosa V, Ghanny S, Dwyer D, et al. Carbonic anhydrase enzymes regulate mast cell-mediated inflammation. J Exp Med. 2016;213:1663-73 pubmed publisher
  721. Chopra M, Biehl M, Steinfatt T, Brandl A, Kums J, Amich J, et al. Exogenous TNFR2 activation protects from acute GvHD via host T reg cell expansion. J Exp Med. 2016;213:1881-900 pubmed publisher
  722. Lund A, Wagner M, Fankhauser M, Steinskog E, Broggi M, Spranger S, et al. Lymphatic vessels regulate immune microenvironments in human and murine melanoma. J Clin Invest. 2016;126:3389-402 pubmed publisher
  723. Belinson H, Savage A, Fadrosh D, Kuo Y, Lin D, Valladares R, et al. Dual epithelial and immune cell function of Dvl1 regulates gut microbiota composition and intestinal homeostasis. JCI Insight. 2016;1: pubmed publisher
  724. Moodley D, Yoshida H, Mostafavi S, Asinovski N, Ortiz Lopez A, Symanowicz P, et al. Network pharmacology of JAK inhibitors. Proc Natl Acad Sci U S A. 2016;113:9852-7 pubmed publisher
  725. Meliopoulos V, Van De Velde L, Van De Velde N, Karlsson E, Neale G, Vogel P, et al. An Epithelial Integrin Regulates the Amplitude of Protective Lung Interferon Responses against Multiple Respiratory Pathogens. PLoS Pathog. 2016;12:e1005804 pubmed publisher
  726. Carow B, Gao Y, Coquet J, Reilly M, Rottenberg M. lck-Driven Cre Expression Alters T Cell Development in the Thymus and the Frequencies and Functions of Peripheral T Cell Subsets. J Immunol. 2016;197:2261-8 pubmed publisher
  727. Liu H, Jain R, Guan J, Vuong V, Ishido S, La Gruta N, et al. Ubiquitin ligase MARCH 8 cooperates with CD83 to control surface MHC II expression in thymic epithelium and CD4 T cell selection. J Exp Med. 2016;213:1695-703 pubmed publisher
  728. You L, Li L, Zou J, Yan K, Belle J, Nijnik A, et al. BRPF1 is essential for development of fetal hematopoietic stem cells. J Clin Invest. 2016;126:3247-62 pubmed publisher
  729. Shi L, Fu T, Guan B, Chen J, Blando J, Allison J, et al. Interdependent IL-7 and IFN-? signalling in T-cell controls tumour eradication by combined ?-CTLA-4+?-PD-1 therapy. Nat Commun. 2016;7:12335 pubmed publisher
  730. Abdullah C, Li Z, Wang X, Jin Z. Depletion of T lymphocytes ameliorates cardiac fibrosis in streptozotocin-induced diabetic cardiomyopathy. Int Immunopharmacol. 2016;39:251-264 pubmed publisher
  731. Shi Y, Wu W, Chai Q, Li Q, Hou Y, Xia H, et al. LTβR controls thymic portal endothelial cells for haematopoietic progenitor cell homing and T-cell regeneration. Nat Commun. 2016;7:12369 pubmed publisher
  732. Zhao Y, Chu X, Chen J, Wang Y, Gao S, Jiang Y, et al. Dectin-1-activated dendritic cells trigger potent antitumour immunity through the induction of Th9 cells. Nat Commun. 2016;7:12368 pubmed publisher
  733. Leong Y, Chen Y, Ong H, Wu D, Man K, Deléage C, et al. CXCR5(+) follicular cytotoxic T cells control viral infection in B cell follicles. Nat Immunol. 2016;17:1187-96 pubmed publisher
  734. Pizzolla A, Oh D, Luong S, Prickett S, Henstridge D, Febbraio M, et al. High Fat Diet Inhibits Dendritic Cell and T Cell Response to Allergens but Does Not Impair Inhalational Respiratory Tolerance. PLoS ONE. 2016;11:e0160407 pubmed publisher
  735. Cheng H, Gaddis D, Wu R, McSkimming C, Haynes L, Taylor A, et al. Loss of ABCG1 influences regulatory T cell differentiation and atherosclerosis. J Clin Invest. 2016;126:3236-46 pubmed publisher
  736. Ferreirinha P, Pérez Cabezas B, Correia A, Miyazawa B, França A, Carvalhais V, et al. Poly-N-Acetylglucosamine Production by Staphylococcus epidermidis Cells Increases Their In Vivo Proinflammatory Effect. Infect Immun. 2016;84:2933-43 pubmed publisher
  737. Hwang S, Cobb D, Bhadra R, Youngblood B, Khan I. Blimp-1-mediated CD4 T cell exhaustion causes CD8 T cell dysfunction during chronic toxoplasmosis. J Exp Med. 2016;213:1799-818 pubmed publisher
  738. Yoshioka D, Kajiwara C, Ishii Y, Umeki K, Hiramatsu K, Kadota J, et al. Efficacy of ?-Lactam-plus-Macrolide Combination Therapy in a Mouse Model of Lethal Pneumococcal Pneumonia. Antimicrob Agents Chemother. 2016;60:6146-54 pubmed publisher
  739. Alberdi M, Iglesias M, Tejedor S, Merino R, Lopez Rodriguez C, Aramburu J. Context-dependent regulation of Th17-associated genes and IFN? expression by the transcription factor NFAT5. Immunol Cell Biol. 2017;95:56-67 pubmed publisher
  740. Liu J, Liu J, Holmström K, Menazza S, Parks R, Fergusson M, et al. MICU1 Serves as a Molecular Gatekeeper to Prevent In Vivo Mitochondrial Calcium Overload. Cell Rep. 2016;16:1561-1573 pubmed publisher
  741. Voisinne G, García Blesa A, Chaoui K, Fiore F, Bergot E, Girard L, et al. Co-recruitment analysis of the CBL and CBLB signalosomes in primary T cells identifies CD5 as a key regulator of TCR-induced ubiquitylation. Mol Syst Biol. 2016;12:876 pubmed publisher
  742. Chow K, Delconte R, Huntington N, Tarlinton D, Sutherland R, Zhan Y, et al. Innate Allorecognition Results in Rapid Accumulation of Monocyte-Derived Dendritic Cells. J Immunol. 2016;197:2000-8 pubmed publisher
  743. Biton J, Khaleghparast Athari S, Thiolat A, Santinon F, Lemeiter D, Hervé R, et al. In Vivo Expansion of Activated Foxp3+ Regulatory T Cells and Establishment of a Type 2 Immune Response upon IL-33 Treatment Protect against Experimental Arthritis. J Immunol. 2016;197:1708-19 pubmed publisher
  744. Finkel P, Frey B, Mayer F, Bösl K, Werthmöller N, Mackensen A, et al. The dual role of NK cells in antitumor reactions triggered by ionizing radiation in combination with hyperthermia. Oncoimmunology. 2016;5:e1101206 pubmed publisher
  745. Barin J, Talor M, Schaub J, Diny N, Hou X, Hoyer M, et al. Collaborative Interferon-? and Interleukin-17 Signaling Protects the Oral Mucosa from Staphylococcus aureus. Am J Pathol. 2016;186:2337-52 pubmed publisher
  746. Aryal B, Rotllan N, Araldi E, Ramírez C, He S, Chousterman B, et al. ANGPTL4 deficiency in haematopoietic cells promotes monocyte expansion and atherosclerosis progression. Nat Commun. 2016;7:12313 pubmed publisher
  747. Chen S, Miyazaki M, Chandra V, Fisch K, Chang A, Murre C. Id3 Orchestrates Germinal Center B Cell Development. Mol Cell Biol. 2016;36:2543-52 pubmed publisher
  748. Kang J, Park S, Jeong S, Han M, Lee C, Lee K, et al. Epigenetic regulation of Kcna3-encoding Kv1.3 potassium channel by cereblon contributes to regulation of CD4+ T-cell activation. Proc Natl Acad Sci U S A. 2016;113:8771-6 pubmed publisher
  749. Parsa R, Lund H, Georgoudaki A, Zhang X, Ortlieb Guerreiro Cacais A, Grommisch D, et al. BAFF-secreting neutrophils drive plasma cell responses during emergency granulopoiesis. J Exp Med. 2016;213:1537-53 pubmed publisher
  750. Raguz J, Jerić I, Niault T, Nowacka J, Kuzet S, Rupp C, et al. Epidermal RAF prevents allergic skin disease. elife. 2016;5: pubmed publisher
  751. Luo W, Li S, Li C, Lian H, Yang Q, Zhong B, et al. iRhom2 is essential for innate immunity to DNA viruses by mediating trafficking and stability of the adaptor STING. Nat Immunol. 2016;17:1057-66 pubmed publisher
  752. Xu Y, Zhao F, Qiu Q, Chen K, Wei J, Kong Q, et al. The ER membrane-anchored ubiquitin ligase Hrd1 is a positive regulator of T-cell immunity. Nat Commun. 2016;7:12073 pubmed publisher
  753. Ibiza S, García Cassani B, Ribeiro H, Carvalho T, Almeida L, Marques R, et al. Glial-cell-derived neuroregulators control type 3 innate lymphoid cells and gut defence. Nature. 2016;535:440-443 pubmed publisher
  754. Stifter K, Schuster C, Schlosser M, Boehm B, Schirmbeck R. Exploring the induction of preproinsulin-specific Foxp3(+) CD4(+) Treg cells that inhibit CD8(+) T cell-mediated autoimmune diabetes by DNA vaccination. Sci Rep. 2016;6:29419 pubmed publisher
  755. Zhang Y, Velez Delgado A, Mathew E, Li D, Mendez F, Flannagan K, et al. Myeloid cells are required for PD-1/PD-L1 checkpoint activation and the establishment of an immunosuppressive environment in pancreatic cancer. Gut. 2017;66:124-136 pubmed publisher
  756. Riedel A, Shorthouse D, Haas L, Hall B, Shields J. Tumor-induced stromal reprogramming drives lymph node transformation. Nat Immunol. 2016;17:1118-27 pubmed publisher
  757. Keil M, Sonner J, Lanz T, Oezen I, Bunse T, Bittner S, et al. General control non-derepressible 2 (GCN2) in T cells controls disease progression of autoimmune neuroinflammation. J Neuroimmunol. 2016;297:117-26 pubmed publisher
  758. Iwasaki Y, Sugita S, Mandai M, Yonemura S, Onishi A, Ito S, et al. Differentiation/Purification Protocol for Retinal Pigment Epithelium from Mouse Induced Pluripotent Stem Cells as a Research Tool. PLoS ONE. 2016;11:e0158282 pubmed publisher
  759. Gorman M, Poddar S, Farzan M, Diamond M. The Interferon-Stimulated Gene Ifitm3 Restricts West Nile Virus Infection and Pathogenesis. J Virol. 2016;90:8212-25 pubmed publisher
  760. Bombeiro A, Santini J, Thomé R, Ferreira E, Nunes S, Moreira B, et al. Enhanced Immune Response in Immunodeficient Mice Improves Peripheral Nerve Regeneration Following Axotomy. Front Cell Neurosci. 2016;10:151 pubmed publisher
  761. Orta Mascaró M, Consuegra Fernández M, Carreras E, Roncagalli R, Carreras Sureda A, Alvarez P, et al. CD6 modulates thymocyte selection and peripheral T cell homeostasis. J Exp Med. 2016;213:1387-97 pubmed publisher
  762. Allison K, Sajti E, Collier J, Gosselin D, Troutman T, Stone E, et al. Affinity and dose of TCR engagement yield proportional enhancer and gene activity in CD4+ T cells. elife. 2016;5: pubmed publisher
  763. Larocca R, Abbink P, Peron J, Zanotto P, Iampietro M, Badamchi Zadeh A, et al. Vaccine protection against Zika virus from Brazil. Nature. 2016;536:474-8 pubmed
  764. Stadinski B, Shekhar K, Gomez Tourino I, Jung J, Sasaki K, Sewell A, et al. Hydrophobic CDR3 residues promote the development of self-reactive T cells. Nat Immunol. 2016;17:946-55 pubmed publisher
  765. Deng Z, Rong Y, Teng Y, Zhuang X, Samykutty A, Mu J, et al. Exosomes miR-126a released from MDSC induced by DOX treatment promotes lung metastasis. Oncogene. 2017;36:639-651 pubmed publisher
  766. Shen J, Li Z, Li L, Lu L, Xiao Z, Wu W, et al. Vascular-targeted TNF? and IFN? inhibits orthotopic colorectal tumor growth. J Transl Med. 2016;14:187 pubmed publisher
  767. Rudolph H, Klopstein A, Gruber I, Blatti C, Lyck R, Engelhardt B. Postarrest stalling rather than crawling favors CD8(+) over CD4(+) T-cell migration across the blood-brain barrier under flow in vitro. Eur J Immunol. 2016;46:2187-203 pubmed publisher
  768. Brinkman C, Iwami D, Hritzo M, Xiong Y, Ahmad S, Simon T, et al. Treg engage lymphotoxin beta receptor for afferent lymphatic transendothelial migration. Nat Commun. 2016;7:12021 pubmed publisher
  769. Kathania M, Khare P, Zeng M, Cantarel B, Zhang H, Ueno H, et al. Itch inhibits IL-17-mediated colon inflammation and tumorigenesis by ROR-?t ubiquitination. Nat Immunol. 2016;17:997-1004 pubmed publisher
  770. Albarrán Juárez J, Kaur H, Grimm M, Offermanns S, Wettschureck N. Lineage tracing of cells involved in atherosclerosis. Atherosclerosis. 2016;251:445-453 pubmed publisher
  771. Lo T, Silveira P, Fromm P, Verma N, Vu P, Kupresanin F, et al. Characterization of the Expression and Function of the C-Type Lectin Receptor CD302 in Mice and Humans Reveals a Role in Dendritic Cell Migration. J Immunol. 2016;197:885-98 pubmed publisher
  772. De Grove K, Provoost S, Hendriks R, McKenzie A, Seys L, Kumar S, et al. Dysregulation of type 2 innate lymphoid cells and TH2 cells impairs pollutant-induced allergic airway responses. J Allergy Clin Immunol. 2017;139:246-257.e4 pubmed publisher
  773. Gu L, Deng W, Sun X, Zhou H, Xu Q. Rapamycin ameliorates CCl4-induced liver fibrosis in mice through reciprocal regulation of the Th17/Treg cell balance. Mol Med Rep. 2016;14:1153-61 pubmed publisher
  774. Arbore G, West E, Spolski R, Robertson A, Klos A, Rheinheimer C, et al. T helper 1 immunity requires complement-driven NLRP3 inflammasome activity in CD4⁺ T cells. Science. 2016;352:aad1210 pubmed publisher
  775. Saha A, O Connor R, Thangavelu G, Lovitch S, Dandamudi D, Wilson C, et al. Programmed death ligand-1 expression on donor T cells drives graft-versus-host disease lethality. J Clin Invest. 2016;126:2642-60 pubmed publisher
  776. Wang T, Pan D, Zhou Z, You Y, Jiang C, Zhao X, et al. Dectin-3 Deficiency Promotes Colitis Development due to Impaired Antifungal Innate Immune Responses in the Gut. PLoS Pathog. 2016;12:e1005662 pubmed publisher
  777. Goetz B, An W, Mohapatra B, Zutshi N, Iseka F, Storck M, et al. A novel CBL-Bflox/flox mouse model allows tissue-selective fully conditional CBL/CBL-B double-knockout: CD4-Cre mediated CBL/CBL-B deletion occurs in both T-cells and hematopoietic stem cells. Oncotarget. 2016;7:51107-51123 pubmed publisher
  778. Ruhland M, Loza A, Capietto A, Luo X, Knolhoff B, Flanagan K, et al. Stromal senescence establishes an immunosuppressive microenvironment that drives tumorigenesis. Nat Commun. 2016;7:11762 pubmed publisher
  779. Mkhikian H, Mortales C, Zhou R, Khachikyan K, Wu G, Haslam S, et al. Golgi self-correction generates bioequivalent glycans to preserve cellular homeostasis. elife. 2016;5: pubmed publisher
  780. Sujino T, London M, Hoytema van Konijnenburg D, Rendon T, Buch T, Silva H, et al. Tissue adaptation of regulatory and intraepithelial CD4? T cells controls gut inflammation. Science. 2016;352:1581-6 pubmed publisher
  781. Lim J, Im K, Lee E, Kim N, Nam Y, Jeon Y, et al. Enhanced immunoregulation of mesenchymal stem cells by IL-10-producing type 1 regulatory T cells in collagen-induced arthritis. Sci Rep. 2016;6:26851 pubmed publisher
  782. Seehus C, Kaye J. In vitro Differentiation of Murine Innate Lymphoid Cells from Common Lymphoid Progenitor Cells. Bio Protoc. 2016;6: pubmed
  783. Chu H, Khosravi A, Kusumawardhani I, Kwon A, Vasconcelos A, Cunha L, et al. Gene-microbiota interactions contribute to the pathogenesis of inflammatory bowel disease. Science. 2016;352:1116-20 pubmed publisher
  784. Sinclair A, Park L, Shah M, Drotar M, Calaminus S, Hopcroft L, et al. CXCR2 and CXCL4 regulate survival and self-renewal of hematopoietic stem/progenitor cells. Blood. 2016;128:371-83 pubmed publisher
  785. Yang X, Lin Y, Shi Y, Li B, Liu W, Yin W, et al. FAP Promotes Immunosuppression by Cancer-Associated Fibroblasts in the Tumor Microenvironment via STAT3-CCL2 Signaling. Cancer Res. 2016;76:4124-35 pubmed publisher
  786. Martin S, Brown S, Wick D, Nielsen J, Kroeger D, Twumasi Boateng K, et al. Low Mutation Burden in Ovarian Cancer May Limit the Utility of Neoantigen-Targeted Vaccines. PLoS ONE. 2016;11:e0155189 pubmed publisher
  787. Stein S, Mack E, Rome K, Pajcini K, Ohtani T, Xu L, et al. Trib2 Suppresses Tumor Initiation in Notch-Driven T-ALL. PLoS ONE. 2016;11:e0155408 pubmed publisher
  788. Göbel K, Pankratz S, Asaridou C, Herrmann A, Bittner S, Merker M, et al. Blood coagulation factor XII drives adaptive immunity during neuroinflammation via CD87-mediated modulation of dendritic cells. Nat Commun. 2016;7:11626 pubmed publisher
  789. Brandstätter O, Schanz O, Vorac J, König J, Mori T, Maruyama T, et al. Balancing intestinal and systemic inflammation through cell type-specific expression of the aryl hydrocarbon receptor repressor. Sci Rep. 2016;6:26091 pubmed publisher
  790. Contreras F, Prado C, Gonzalez H, Franz D, Osorio Barrios F, Osorio F, et al. Dopamine Receptor D3 Signaling on CD4+ T Cells Favors Th1- and Th17-Mediated Immunity. J Immunol. 2016;196:4143-9 pubmed publisher
  791. Patenaude J, Perreault C. Thymic Mesenchymal Cells Have a Distinct Transcriptomic Profile. J Immunol. 2016;196:4760-70 pubmed publisher
  792. Nieves W, Hung L, Oniskey T, Boon L, Foretz M, Viollet B, et al. Myeloid-Restricted AMPK?1 Promotes Host Immunity and Protects against IL-12/23p40-Dependent Lung Injury during Hookworm Infection. J Immunol. 2016;196:4632-40 pubmed publisher
  793. Welte T, Kim I, Tian L, Gao X, Wang H, Li J, et al. Oncogenic mTOR signalling recruits myeloid-derived suppressor cells to promote tumour initiation. Nat Cell Biol. 2016;18:632-44 pubmed publisher
  794. Rao E, Zhang Y, Li Q, Hao J, Egilmez N, Suttles J, et al. AMPK-dependent and independent effects of AICAR and compound C on T-cell responses. Oncotarget. 2016;7:33783-95 pubmed publisher
  795. Cooley L, El Shikh M, Li W, Keim R, Zhang Z, Strauss J, et al. Impaired immunological synapse in sperm associated antigen 6 (SPAG6) deficient mice. Sci Rep. 2016;6:25840 pubmed publisher
  796. Chikh G, Luu R, Patel S, Davis H, Weeratna R. Effects of KLK Peptide on Adjuvanticity of Different ODN Sequences. Vaccines (Basel). 2016;4: pubmed publisher
  797. Wen S, Dooner M, Cheng Y, Papa E, Del Tatto M, Pereira M, et al. Mesenchymal stromal cell-derived extracellular vesicles rescue radiation damage to murine marrow hematopoietic cells. Leukemia. 2016;30:2221-2231 pubmed publisher
  798. Szalay G, Martinecz B, Lénárt N, Kornyei Z, Orsolits B, Judák L, et al. Microglia protect against brain injury and their selective elimination dysregulates neuronal network activity after stroke. Nat Commun. 2016;7:11499 pubmed publisher
  799. Harper I, Ali J, Harper S, Wlodek E, Alsughayyir J, Negus M, et al. Augmentation of Recipient Adaptive Alloimmunity by Donor Passenger Lymphocytes within the Transplant. Cell Rep. 2016;15:1214-27 pubmed publisher
  800. Li Y, Nishikawa T, Kaneda Y. Platelet-cytokine Complex Suppresses Tumour Growth by Exploiting Intratumoural Thrombin-dependent Platelet Aggregation. Sci Rep. 2016;6:25077 pubmed publisher
  801. Salao K, Jiang L, Li H, Tsai V, Husaini Y, Curmi P, et al. CLIC1 regulates dendritic cell antigen processing and presentation by modulating phagosome acidification and proteolysis. Biol Open. 2016;5:620-30 pubmed publisher
  802. Pietras E, Mirantes Barbeito C, Fong S, Loeffler D, Kovtonyuk L, Zhang S, et al. Chronic interleukin-1 exposure drives haematopoietic stem cells towards precocious myeloid differentiation at the expense of self-renewal. Nat Cell Biol. 2016;18:607-18 pubmed publisher
  803. Li J, Chassaing B, Tyagi A, Vaccaro C, Luo T, Adams J, et al. Sex steroid deficiency-associated bone loss is microbiota dependent and prevented by probiotics. J Clin Invest. 2016;126:2049-63 pubmed publisher
  804. Swamy M, Pathak S, Grzes K, Damerow S, Sinclair L, van Aalten D, et al. Glucose and glutamine fuel protein O-GlcNAcylation to control T cell self-renewal and malignancy. Nat Immunol. 2016;17:712-20 pubmed publisher
  805. Carofino B, Ayanga B, Tracey L, Brooke Bisschop T, Justice M. PRDM14 promotes RAG-dependent Notch1 driver mutations in mouse T-ALL. Biol Open. 2016;5:645-53 pubmed publisher
  806. Ueno M, Ueno Nakamura Y, Niehaus J, Popovich P, Yoshida Y. Silencing spinal interneurons inhibits immune suppressive autonomic reflexes caused by spinal cord injury. Nat Neurosci. 2016;19:784-7 pubmed publisher
  807. O Leary C, Riling C, Spruce L, Ding H, Kumar S, Deng G, et al. Ndfip-mediated degradation of Jak1 tunes cytokine signalling to limit expansion of CD4+ effector T cells. Nat Commun. 2016;7:11226 pubmed publisher
  808. Yamashita K, Kawata K, Matsumiya H, Kamekura R, Jitsukawa S, Nagaya T, et al. Bob1 limits cellular frequency of T-follicular helper cells. Eur J Immunol. 2016;46:1361-70 pubmed publisher
  809. Goldstein J, Burlion A, Zaragoza B, Sendeyo K, Polansky J, Huehn J, et al. Inhibition of the JAK/STAT Signaling Pathway in Regulatory T Cells Reveals a Very Dynamic Regulation of Foxp3 Expression. PLoS ONE. 2016;11:e0153682 pubmed publisher
  810. Nagashima H, Okuyama Y, Hayashi T, Ishii N, So T. TNFR-Associated Factors 2 and 5 Differentially Regulate the Instructive IL-6 Receptor Signaling Required for Th17 Development. J Immunol. 2016;196:4082-9 pubmed publisher
  811. Itkin T, Gur Cohen S, Spencer J, Schajnovitz A, Ramasamy S, Kusumbe A, et al. Distinct bone marrow blood vessels differentially regulate haematopoiesis. Nature. 2016;532:323-8 pubmed publisher
  812. Zhu M, Bakhru P, Conley B, Nelson J, Free M, Martin A, et al. Sex bias in CNS autoimmune disease mediated by androgen control of autoimmune regulator. Nat Commun. 2016;7:11350 pubmed publisher
  813. Jackson S, Jacobs H, Arkatkar T, Dam E, Scharping N, Kolhatkar N, et al. B cell IFN-γ receptor signaling promotes autoimmune germinal centers via cell-intrinsic induction of BCL-6. J Exp Med. 2016;213:733-50 pubmed publisher
  814. Uto T, Fukaya T, Takagi H, Arimura K, Nakamura T, Kojima N, et al. Clec4A4 is a regulatory receptor for dendritic cells that impairs inflammation and T-cell immunity. Nat Commun. 2016;7:11273 pubmed publisher
  815. Chen W, Cao Z, Sugaya S, Lopez M, Sendra V, Laver N, et al. Pathological lymphangiogenesis is modulated by galectin-8-dependent crosstalk between podoplanin and integrin-associated VEGFR-3. Nat Commun. 2016;7:11302 pubmed publisher
  816. Hobbs R, Batazzi A, Han M, Coulombe P. Loss of Keratin 17 induces tissue-specific cytokine polarization and cellular differentiation in HPV16-driven cervical tumorigenesis in vivo. Oncogene. 2016;35:5653-5662 pubmed publisher
  817. Holmkvist P, Pool L, Hägerbrand K, Agace W, Rivollier A. IL-18R?-deficient CD4(+) T cells induce intestinal inflammation in the CD45RB(hi) transfer model of colitis despite impaired innate responsiveness. Eur J Immunol. 2016;46:1371-82 pubmed publisher
  818. Vandenberk L, Garg A, Verschuere T, Koks C, Belmans J, Beullens M, et al. Irradiation of necrotic cancer cells, employed for pulsing dendritic cells (DCs), potentiates DC vaccine-induced antitumor immunity against high-grade glioma. Oncoimmunology. 2016;5:e1083669 pubmed
  819. Lee S, Hong S, Verma V, Lee Y, Duong T, Jeong K, et al. Flagellin is a strong vaginal adjuvant of a therapeutic vaccine for genital cancer. Oncoimmunology. 2016;5:e1081328 pubmed
  820. Fend L, Remy Ziller C, Foloppe J, Kempf J, Cochin S, Barraud L, et al. Oncolytic virotherapy with an armed vaccinia virus in an orthotopic model of renal carcinoma is associated with modification of the tumor microenvironment. Oncoimmunology. 2016;5:e1080414 pubmed
  821. Mall C, Sckisel G, Proia D, Mirsoian A, Grossenbacher S, Pai C, et al. Repeated PD-1/PD-L1 monoclonal antibody administration induces fatal xenogeneic hypersensitivity reactions in a murine model of breast cancer. Oncoimmunology. 2016;5:e1075114 pubmed
  822. Aaes T, Kaczmarek A, Delvaeye T, De Craene B, De Koker S, Heyndrickx L, et al. Vaccination with Necroptotic Cancer Cells Induces Efficient Anti-tumor Immunity. Cell Rep. 2016;15:274-87 pubmed publisher
  823. Seidel P, Remus M, Delacher M, Grigaravicius P, Reuss D, Frappart L, et al. Epidermal Nbn deletion causes premature hair loss and a phenotype resembling psoriasiform dermatitis. Oncotarget. 2016;7:23006-18 pubmed publisher
  824. Barsoumian H, Yolcu E, Shirwan H. 4-1BB Signaling in Conventional T Cells Drives IL-2 Production That Overcomes CD4+CD25+FoxP3+ T Regulatory Cell Suppression. PLoS ONE. 2016;11:e0153088 pubmed publisher
  825. Seifert L, Werba G, Tiwari S, Giao Ly N, Alothman S, Alqunaibit D, et al. The necrosome promotes pancreatic oncogenesis via CXCL1 and Mincle-induced immune suppression. Nature. 2016;532:245-9 pubmed publisher
  826. Damle S, Martin R, Cross J, Conrad D. Macrophage migration inhibitory factor deficiency enhances immune response to Nippostrongylus brasiliensis. Mucosal Immunol. 2017;10:205-214 pubmed publisher
  827. Du C, Duan Y, Wei W, Cai Y, Chai H, Lv J, et al. Kappa opioid receptor activation alleviates experimental autoimmune encephalomyelitis and promotes oligodendrocyte-mediated remyelination. Nat Commun. 2016;7:11120 pubmed publisher
  828. Seo J, Bang M, Kim G, Cho S, Park D. Erythronium japonicum attenuates histopathological lung abnormalities in a mouse model of ovalbumin-induced asthma. Int J Mol Med. 2016;37:1221-8 pubmed publisher
  829. Yue Y, Li P, Song N, Li B, Li Z, Guo Y, et al. Genomic and immunologic factors associated with viral pathogenesis in a lethal EV71 infected neonatal mouse model. Mol Med Rep. 2016;13:4183-90 pubmed publisher
  830. Sim C, Cho Y, Kim B, Baek I, Kim Y, Lee M. 2'-5' Oligoadenylate synthetase-like 1 (OASL1) deficiency in mice promotes an effective anti-tumor immune response by enhancing the production of type I interferons. Cancer Immunol Immunother. 2016;65:663-75 pubmed publisher
  831. Braun J, Meixner A, Brachner A, Foisner R. The GIY-YIG Type Endonuclease Ankyrin Repeat and LEM Domain-Containing Protein 1 (ANKLE1) Is Dispensable for Mouse Hematopoiesis. PLoS ONE. 2016;11:e0152278 pubmed publisher
  832. Yang Y, Xu J, Chen H, Fei X, Tang Y, Yan Y, et al. MiR-128-2 inhibits common lymphoid progenitors from developing into progenitor B cells. Oncotarget. 2016;7:17520-31 pubmed publisher
  833. Qi X, Gurung P, Malireddi R, Karmaus P, Sharma D, Vogel P, et al. Critical role of caspase-8-mediated IL-1 signaling in promoting Th2 responses during asthma pathogenesis. Mucosal Immunol. 2017;10:128-138 pubmed publisher
  834. Arsenijević A, Milovanovic M, Milovanovic J, Stojanovic B, Zdravkovic N, Leung P, et al. Deletion of Galectin-3 Enhances Xenobiotic Induced Murine Primary Biliary Cholangitis by Facilitating Apoptosis of BECs and Release of Autoantigens. Sci Rep. 2016;6:23348 pubmed publisher
  835. Gomez de Agüero M, Ganal Vonarburg S, Fuhrer T, Rupp S, Uchimura Y, Li H, et al. The maternal microbiota drives early postnatal innate immune development. Science. 2016;351:1296-302 pubmed publisher
  836. Apostolidis S, Rodríguez Rodríguez N, Suárez Fueyo A, Dioufa N, Ozcan E, Crispín J, et al. Phosphatase PP2A is requisite for the function of regulatory T cells. Nat Immunol. 2016;17:556-64 pubmed publisher
  837. McFarland B, Marks M, Rowse A, Fehling S, Gerigk M, Qin H, et al. Loss of SOCS3 in myeloid cells prolongs survival in a syngeneic model of glioma. Oncotarget. 2016;7:20621-35 pubmed publisher
  838. Tosiek M, Fiette L, El Daker S, Eberl G, Freitas A. IL-15-dependent balance between Foxp3 and RORγt expression impacts inflammatory bowel disease. Nat Commun. 2016;7:10888 pubmed publisher
  839. Zheng H, Zhao W, Yan C, Watson C, Massengill M, Xie M, et al. HDAC Inhibitors Enhance T-Cell Chemokine Expression and Augment Response to PD-1 Immunotherapy in Lung Adenocarcinoma. Clin Cancer Res. 2016;22:4119-32 pubmed publisher
  840. Leeth C, Racine J, Chapman H, Arpa B, Carrillo J, Carrascal J, et al. B-lymphocytes expressing an Ig specificity recognizing the pancreatic ß-cell autoantigen peripherin are potent contributors to type 1 diabetes development in NOD mice. Diabetes. 2016;65:1977-1987 pubmed publisher
  841. Flach A, Litke T, Strauss J, Haberl M, Gómez C, Reindl M, et al. Autoantibody-boosted T-cell reactivation in the target organ triggers manifestation of autoimmune CNS disease. Proc Natl Acad Sci U S A. 2016;113:3323-8 pubmed publisher
  842. Seifert L, Werba G, Tiwari S, Giao Ly N, Nguy S, Alothman S, et al. Radiation Therapy Induces Macrophages to Suppress T-Cell Responses Against Pancreatic Tumors in Mice. Gastroenterology. 2016;150:1659-1672.e5 pubmed publisher
  843. Marek I, Lichtneger T, Cordasic N, Hilgers K, Volkert G, Fahlbusch F, et al. Alpha8 Integrin (Itga8) Signalling Attenuates Chronic Renal Interstitial Fibrosis by Reducing Fibroblast Activation, Not by Interfering with Regulation of Cell Turnover. PLoS ONE. 2016;11:e0150471 pubmed publisher
  844. Gomez Rodriguez J, Meylan F, Handon R, Hayes E, Anderson S, Kirby M, et al. Itk is required for Th9 differentiation via TCR-mediated induction of IL-2 and IRF4. Nat Commun. 2016;7:10857 pubmed publisher
  845. Crisan M, Solaimani Kartalaei P, Neagu A, Karkanpouna S, Yamada Inagawa T, Purini C, et al. BMP and Hedgehog Regulate Distinct AGM Hematopoietic Stem Cells Ex Vivo. Stem Cell Reports. 2016;6:383-95 pubmed publisher
  846. Frodermann V, Van Duijn J, van Puijvelde G, van Santbrink P, Lagraauw H, de Vries M, et al. Heat-killed Staphylococcus aureus reduces atherosclerosis by inducing anti-inflammatory macrophages. J Intern Med. 2016;279:592-605 pubmed publisher
  847. Tagliamonte M, Petrizzo A, Napolitano M, Luciano A, Rea D, Barbieri A, et al. A novel multi-drug metronomic chemotherapy significantly delays tumor growth in mice. J Transl Med. 2016;14:58 pubmed publisher
  848. Foy S, Sennino B, dela Cruz T, Cote J, Gordon E, Kemp F, et al. Poxvirus-Based Active Immunotherapy with PD-1 and LAG-3 Dual Immune Checkpoint Inhibition Overcomes Compensatory Immune Regulation, Yielding Complete Tumor Regression in Mice. PLoS ONE. 2016;11:e0150084 pubmed publisher
  849. Kabat A, Harrison O, Riffelmacher T, Moghaddam A, Pearson C, Laing A, et al. The autophagy gene Atg16l1 differentially regulates Treg and TH2 cells to control intestinal inflammation. elife. 2016;5:e12444 pubmed publisher
  850. Hu H, Wang H, Xiao Y, Jin J, Chang J, Zou Q, et al. Otud7b facilitates T cell activation and inflammatory responses by regulating Zap70 ubiquitination. J Exp Med. 2016;213:399-414 pubmed publisher
  851. Xu J, Zhou L, Ji L, Chen F, Fortmann K, Zhang K, et al. The REGγ-proteasome forms a regulatory circuit with IκBɛ and NFκB in experimental colitis. Nat Commun. 2016;7:10761 pubmed publisher
  852. Pelly V, Kannan Y, Coomes S, Entwistle L, Rückerl D, Seddon B, et al. IL-4-producing ILC2s are required for the differentiation of TH2 cells following Heligmosomoides polygyrus infection. Mucosal Immunol. 2016;9:1407-1417 pubmed publisher
  853. Yang Y, Poe J, Yang L, Fedoriw A, Desai S, Magnuson T, et al. Rad18 confers hematopoietic progenitor cell DNA damage tolerance independently of the Fanconi Anemia pathway in vivo. Nucleic Acids Res. 2016;44:4174-88 pubmed publisher
  854. Yang L, Cai C, Feng Q, Shi Y, Zuo Q, Yang H, et al. Protective efficacy of the chimeric Staphylococcus aureus vaccine candidate IC in sepsis and pneumonia models. Sci Rep. 2016;6:20929 pubmed publisher
  855. Chen J, Miyanishi M, Wang S, Yamazaki S, Sinha R, Kao K, et al. Hoxb5 marks long-term haematopoietic stem cells and reveals a homogenous perivascular niche. Nature. 2016;530:223-7 pubmed publisher
  856. Roffê E, Marino A, Weaver J, Wan W, de Araújo F, Hoffman V, et al. Trypanosoma cruzi Causes Paralyzing Systemic Necrotizing Vasculitis Driven by Pathogen-Specific Type I Immunity in Mice. Infect Immun. 2016;84:1123-1136 pubmed publisher
  857. Smith R, Reyes N, Khandelwal P, Schlereth S, Lee H, Masli S, et al. Secondary allergic T cell responses are regulated by dendritic cell-derived thrombospondin-1 in the setting of allergic eye disease. J Leukoc Biol. 2016;100:371-80 pubmed publisher
  858. Vieyra Garcia P, Wei T, Naym D, Fredholm S, Fink Puches R, Cerroni L, et al. STAT3/5-Dependent IL9 Overexpression Contributes to Neoplastic Cell Survival in Mycosis Fungoides. Clin Cancer Res. 2016;22:3328-39 pubmed publisher
  859. Howitt M, Lavoie S, Michaud M, Blum A, Tran S, Weinstock J, et al. Tuft cells, taste-chemosensory cells, orchestrate parasite type 2 immunity in the gut. Science. 2016;351:1329-33 pubmed publisher
  860. Haque M, Song J, Fino K, Sandhu P, Song X, Lei F, et al. Stem cell-derived tissue-associated regulatory T cells ameliorate the development of autoimmunity. Sci Rep. 2016;6:20588 pubmed publisher
  861. Azpilikueta A, Agorreta J, Labiano S, Pérez Gracia J, Sánchez Paulete A, Aznar M, et al. Successful Immunotherapy against a Transplantable Mouse Squamous Lung Carcinoma with Anti-PD-1 and Anti-CD137 Monoclonal Antibodies. J Thorac Oncol. 2016;11:524-36 pubmed publisher
  862. Lin C, Bradstreet T, Schwarzkopf E, Jarjour N, Chou C, Archambault A, et al. IL-1-induced Bhlhe40 identifies pathogenic T helper cells in a model of autoimmune neuroinflammation. J Exp Med. 2016;213:251-71 pubmed publisher
  863. Ying W, Tseng A, Chang R, Wang H, Lin Y, Kanameni S, et al. miR-150 regulates obesity-associated insulin resistance by controlling B cell functions. Sci Rep. 2016;6:20176 pubmed publisher
  864. Tubo N, Fife B, Pagán A, Kotov D, Goldberg M, Jenkins M. Most microbe-specific naïve CD4? T cells produce memory cells during infection. Science. 2016;351:511-4 pubmed publisher
  865. Polansky J, Bahri R, Divivier M, Duitman E, Vock C, Goyeneche Patino D, et al. High dose CD11c-driven IL15 is sufficient to drive NK cell maturation and anti-tumor activity in a trans-presentation independent manner. Sci Rep. 2016;6:19699 pubmed publisher
  866. Atkinson S, Hoffmann U, Hamann A, Bach E, Danneskiold Samsøe N, Kristiansen K, et al. Depletion of regulatory T cells leads to an exacerbation of delayed-type hypersensitivity arthritis in C57BL/6 mice that can be counteracted by IL-17 blockade. Dis Model Mech. 2016;9:427-40 pubmed publisher
  867. Thornton T, Delgado P, Chen L, Salas B, Krementsov D, Fernández M, et al. Inactivation of nuclear GSK3β by Ser(389) phosphorylation promotes lymphocyte fitness during DNA double-strand break response. Nat Commun. 2016;7:10553 pubmed publisher
  868. Foks A, Engelbertsen D, Kuperwaser F, Alberts Grill N, Gonen A, Witztum J, et al. Blockade of Tim-1 and Tim-4 Enhances Atherosclerosis in Low-Density Lipoprotein Receptor-Deficient Mice. Arterioscler Thromb Vasc Biol. 2016;36:456-65 pubmed publisher
  869. Aloulou M, Carr E, Gador M, Bignon A, Liblau R, Fazilleau N, et al. Follicular regulatory T cells can be specific for the immunizing antigen and derive from naive T cells. Nat Commun. 2016;7:10579 pubmed publisher
  870. Chandrasekaran U, Yi W, Gupta S, Weng C, Giannopoulou E, Chinenov Y, et al. Regulation of Effector Treg Cells in Murine Lupus. Arthritis Rheumatol. 2016;68:1454-66 pubmed publisher
  871. Maelfait J, Roose K, Vereecke L, Mc Guire C, Sze M, Schuijs M, et al. A20 Deficiency in Lung Epithelial Cells Protects against Influenza A Virus Infection. PLoS Pathog. 2016;12:e1005410 pubmed publisher
  872. Duhan V, Khairnar V, Friedrich S, Zhou F, Gassa A, Honke N, et al. Virus-specific antibodies allow viral replication in the marginal zone, thereby promoting CD8(+) T-cell priming and viral control. Sci Rep. 2016;6:19191 pubmed publisher
  873. Yabas M, Jing W, Shafik S, Bröer S, Enders A. ATP11C Facilitates Phospholipid Translocation across the Plasma Membrane of All Leukocytes. PLoS ONE. 2016;11:e0146774 pubmed publisher
  874. Chu C, Gardner P, Copland D, Liyanage S, Gonzalez Cordero A, Kleine Holthaus S, et al. Multimodal analysis of ocular inflammation using the endotoxin-induced uveitis mouse model. Dis Model Mech. 2016;9:473-81 pubmed publisher
  875. Luchsinger L, de Almeida M, Corrigan D, Mumau M, Snoeck H. Mitofusin 2 maintains haematopoietic stem cells with extensive lymphoid potential. Nature. 2016;529:528-31 pubmed publisher
  876. Luo C, Liao W, Dadi S, Toure A, Li M. Graded Foxo1 activity in Treg cells differentiates tumour immunity from spontaneous autoimmunity. Nature. 2016;529:532-6 pubmed publisher
  877. Kuipers H, Rieck M, Gurevich I, Nagy N, Butte M, Negrin R, et al. Hyaluronan synthesis is necessary for autoreactive T-cell trafficking, activation, and Th1 polarization. Proc Natl Acad Sci U S A. 2016;113:1339-44 pubmed publisher
  878. Catarinella M, Monestiroli A, Escobar G, Fiocchi A, Tran N, Aiolfi R, et al. IFNα gene/cell therapy curbs colorectal cancer colonization of the liver by acting on the hepatic microenvironment. EMBO Mol Med. 2016;8:155-70 pubmed publisher
  879. Metz P, Lopez J, Kim S, Akimoto K, Ohno S, Chang J. Regulation of Asymmetric Division by Atypical Protein Kinase C Influences Early Specification of CD8(+) T Lymphocyte Fates. Sci Rep. 2016;6:19182 pubmed publisher
  880. Lasigliè D, Boero S, Bauer I, Morando S, Damonte P, Cea M, et al. Sirt6 regulates dendritic cell differentiation, maturation, and function. Aging (Albany NY). 2016;8:34-49 pubmed
  881. McDonald P, Read K, Baker C, Anderson A, Powell M, Ballesteros Tato A, et al. IL-7 signalling represses Bcl-6 and the TFH gene program. Nat Commun. 2016;7:10285 pubmed publisher
  882. Yasuma K, Yasunaga J, Takemoto K, Sugata K, Mitobe Y, Takenouchi N, et al. HTLV-1 bZIP Factor Impairs Anti-viral Immunity by Inducing Co-inhibitory Molecule, T Cell Immunoglobulin and ITIM Domain (TIGIT). PLoS Pathog. 2016;12:e1005372 pubmed publisher
  883. Guo Z, Kong Q, Liu C, Zhang S, Zou L, Yan F, et al. DCAF1 controls T-cell function via p53-dependent and -independent mechanisms. Nat Commun. 2016;7:10307 pubmed publisher
  884. Gallego Ortega D, Ledger A, Roden D, Law A, Magenau A, Kikhtyak Z, et al. ELF5 Drives Lung Metastasis in Luminal Breast Cancer through Recruitment of Gr1+ CD11b+ Myeloid-Derived Suppressor Cells. PLoS Biol. 2015;13:e1002330 pubmed publisher
  885. Vivar O, Masi G, Carpier J, Magalhaes J, Galgano D, Pazour G, et al. IFT20 controls LAT recruitment to the immune synapse and T-cell activation in vivo. Proc Natl Acad Sci U S A. 2016;113:386-91 pubmed publisher
  886. Everts B, Tussiwand R, Dreesen L, Fairfax K, Huang S, Smith A, et al. Migratory CD103+ dendritic cells suppress helminth-driven type 2 immunity through constitutive expression of IL-12. J Exp Med. 2016;213:35-51 pubmed publisher
  887. von Moltke J, Ji M, Liang H, Locksley R. Tuft-cell-derived IL-25 regulates an intestinal ILC2-epithelial response circuit. Nature. 2016;529:221-5 pubmed publisher
  888. Gopal K, Gowtham M, Sachin S, Ravishankar Ram M, Shankar E, Kamarul T. Attrition of Hepatic Damage Inflicted by Angiotensin II with α-Tocopherol and β-Carotene in Experimental Apolipoprotein E Knock-out Mice. Sci Rep. 2015;5:18300 pubmed publisher
  889. Kiermaier E, Moussion C, Veldkamp C, Gerardy Schahn R, de Vries I, Williams L, et al. Polysialylation controls dendritic cell trafficking by regulating chemokine recognition. Science. 2016;351:186-90 pubmed publisher
  890. Traka M, Podojil J, McCarthy D, Miller S, Popko B. Oligodendrocyte death results in immune-mediated CNS demyelination. Nat Neurosci. 2016;19:65-74 pubmed publisher
  891. Shi H, Wang Y, Li X, Zhan X, Tang M, Fina M, et al. NLRP3 activation and mitosis are mutually exclusive events coordinated by NEK7, a new inflammasome component. Nat Immunol. 2016;17:250-8 pubmed publisher
  892. Wei R, Hu Y, Dong F, Xu X, Hu A, Gao G. Hepatoma cell-derived leptin downregulates the immunosuppressive function of regulatory T-cells to enhance the anti-tumor activity of CD8+ T-cells. Immunol Cell Biol. 2016;94:388-99 pubmed publisher
  893. Moretto M, Khan I. IL-21 Is Important for Induction of KLRG1+ Effector CD8 T Cells during Acute Intracellular Infection. J Immunol. 2016;196:375-84 pubmed publisher
  894. Malinova D, Fritzsche M, Nowosad C, Armer H, Munro P, Blundell M, et al. WASp-dependent actin cytoskeleton stability at the dendritic cell immunological synapse is required for extensive, functional T cell contacts. J Leukoc Biol. 2016;99:699-710 pubmed publisher
  895. Francisconi C, Vieira A, Biguetti C, Glowacki A, Trombone A, Letra A, et al. Characterization of the Protective Role of Regulatory T Cells in Experimental Periapical Lesion Development and Their Chemoattraction Manipulation as a Therapeutic Tool. J Endod. 2016;42:120-6 pubmed publisher
  896. Majumder K, Arora N, Modi S, Chugh R, Nomura A, Giri B, et al. A Novel Immunocompetent Mouse Model of Pancreatic Cancer with Robust Stroma: a Valuable Tool for Preclinical Evaluation of New Therapies. J Gastrointest Surg. 2016;20:53-65; discussion 65 pubmed publisher
  897. Ksionda O, Melton A, Bache J, Tenhagen M, Bakker J, Harvey R, et al. RasGRP1 overexpression in T-ALL increases basal nucleotide exchange on Ras rendering the Ras/PI3K/Akt pathway responsive to protumorigenic cytokines. Oncogene. 2016;35:3658-68 pubmed publisher
  898. Riesenberg S, Groetchen A, Siddaway R, Bald T, Reinhardt J, Smorra D, et al. MITF and c-Jun antagonism interconnects melanoma dedifferentiation with pro-inflammatory cytokine responsiveness and myeloid cell recruitment. Nat Commun. 2015;6:8755 pubmed publisher
  899. Kim J, Phan T, Nguyen V, Dinh Vu H, Zheng J, Yun M, et al. Salmonella typhimurium Suppresses Tumor Growth via the Pro-Inflammatory Cytokine Interleukin-1β. Theranostics. 2015;5:1328-42 pubmed publisher
  900. Ren H, Li F, Tian C, Nie H, Wang L, Li H, et al. Inhibition of Proteasome Activity by Low-dose Bortezomib Attenuates Angiotensin II-induced Abdominal Aortic Aneurysm in Apo E(-/-) Mice. Sci Rep. 2015;5:15730 pubmed publisher
  901. Oh Y, Park H, Shin J, Lee J, Park H, Kho D, et al. Ndrg1 is a T-cell clonal anergy factor negatively regulated by CD28 costimulation and interleukin-2. Nat Commun. 2015;6:8698 pubmed publisher
  902. Finkin S, Yuan D, Stein I, Taniguchi K, Weber A, Unger K, et al. Ectopic lymphoid structures function as microniches for tumor progenitor cells in hepatocellular carcinoma. Nat Immunol. 2015;16:1235-44 pubmed publisher
  903. Stachtea X, Tykesson E, van Kuppevelt T, Feinstein R, Malmström A, Reijmers R, et al. Dermatan Sulfate-Free Mice Display Embryological Defects and Are Neonatal Lethal Despite Normal Lymphoid and Non-Lymphoid Organogenesis. PLoS ONE. 2015;10:e0140279 pubmed publisher
  904. Ruan S, Samuelson D, Assouline B, Morre M, Shellito J. Treatment with Interleukin-7 Restores Host Defense against Pneumocystis in CD4+ T-Lymphocyte-Depleted Mice. Infect Immun. 2016;84:108-19 pubmed publisher
  905. Adachi T, Kobayashi T, Sugihara E, Yamada T, Ikuta K, Pittaluga S, et al. Hair follicle-derived IL-7 and IL-15 mediate skin-resident memory T cell homeostasis and lymphoma. Nat Med. 2015;21:1272-9 pubmed publisher
  906. Alam M, Gaida M, Bergmann F, Lasitschka F, Giese T, Giese N, et al. Selective inhibition of the p38 alternative activation pathway in infiltrating T cells inhibits pancreatic cancer progression. Nat Med. 2015;21:1337-43 pubmed publisher
  907. Venkatasubramanian S, Tripathi D, Tucker T, Paidipally P, Cheekatla S, Welch E, et al. Tissue factor expression by myeloid cells contributes to protective immune response against Mycobacterium tuberculosis infection. Eur J Immunol. 2016;46:464-79 pubmed publisher
  908. Black L, Srivastava R, Schoeb T, Moore R, Barnes S, KABAROWSKI J. Cholesterol-Independent Suppression of Lymphocyte Activation, Autoimmunity, and Glomerulonephritis by Apolipoprotein A-I in Normocholesterolemic Lupus-Prone Mice. J Immunol. 2015;195:4685-98 pubmed publisher
  909. Sinadinos A, Young C, Al Khalidi R, Teti A, Kalinski P, Mohamad S, et al. P2RX7 purinoceptor: a therapeutic target for ameliorating the symptoms of duchenne muscular dystrophy. PLoS Med. 2015;12:e1001888 pubmed publisher
  910. Riquelme S, Pogu J, Anegon I, Bueno S, Kalergis A. Carbon monoxide impairs mitochondria-dependent endosomal maturation and antigen presentation in dendritic cells. Eur J Immunol. 2015;45:3269-88 pubmed publisher
  911. Abboud D, Daubeuf F, Do Q, Utard V, Villa P, Haiech J, et al. A strategy to discover decoy chemokine ligands with an anti-inflammatory activity. Sci Rep. 2015;5:14746 pubmed publisher
  912. Jones D, Wilmore J, Allman D. Cellular Dynamics of Memory B Cell Populations: IgM+ and IgG+ Memory B Cells Persist Indefinitely as Quiescent Cells. J Immunol. 2015;195:4753-9 pubmed publisher
  913. Sewald X, Ladinsky M, Uchil P, Beloor J, Pi R, Herrmann C, et al. Retroviruses use CD169-mediated trans-infection of permissive lymphocytes to establish infection. Science. 2015;350:563-567 pubmed publisher
  914. Zanvit P, Konkel J, Jiao X, Kasagi S, Zhang D, Wu R, et al. Antibiotics in neonatal life increase murine susceptibility to experimental psoriasis. Nat Commun. 2015;6:8424 pubmed publisher
  915. Vlachou K, Mintzas K, Glymenaki M, Ioannou M, Papadaki G, Bertsias G, et al. Elimination of Granulocytic Myeloid-Derived Suppressor Cells in Lupus-Prone Mice Linked to Reactive Oxygen Species-Dependent Extracellular Trap Formation. Arthritis Rheumatol. 2016;68:449-61 pubmed publisher
  916. Li S, Dislich B, Brakebusch C, Lichtenthaler S, Brocker T. Control of Homeostasis and Dendritic Cell Survival by the GTPase RhoA. J Immunol. 2015;195:4244-56 pubmed publisher
  917. Gonzalez N, Wennhold K, Balkow S, Kondo E, Bölck B, Weber T, et al. In vitro and in vivo imaging of initial B-T-cell interactions in the setting of B-cell based cancer immunotherapy. Oncoimmunology. 2015;4:e1038684 pubmed
  918. Murayama M, Kakuta S, Inoue A, Umeda N, Yonezawa T, Maruhashi T, et al. CTRP6 is an endogenous complement regulator that can effectively treat induced arthritis. Nat Commun. 2015;6:8483 pubmed publisher
  919. McCormack R, de Armas L, Shiratsuchi M, Fiorentino D, Olsson M, Lichtenheld M, et al. Perforin-2 is essential for intracellular defense of parenchymal cells and phagocytes against pathogenic bacteria. elife. 2015;4: pubmed publisher
  920. Buerger S, Herrmann V, Mundt S, Trautwein N, Groettrup M, Basler M. The Ubiquitin-like Modifier FAT10 Is Selectively Expressed in Medullary Thymic Epithelial Cells and Modifies T Cell Selection. J Immunol. 2015;195:4106-16 pubmed publisher
  921. Wei T, Zhang N, Guo Z, Chi F, Song Y, Zhu X. Wnt4 signaling is associated with the decrease of proliferation and increase of apoptosis during age-related thymic involution. Mol Med Rep. 2015;12:7568-76 pubmed publisher
  922. Rodríguez Muñoz R, Cárdenas Aguayo M, Alemán V, Osorio B, Chávez González O, Rendon A, et al. Novel Nuclear Protein Complexes of Dystrophin 71 Isoforms in Rat Cultured Hippocampal GABAergic and Glutamatergic Neurons. PLoS ONE. 2015;10:e0137328 pubmed publisher
  923. Manlove L, Berquam Vrieze K, Pauken K, Williams R, Jenkins M, Farrar M. Adaptive Immunity to Leukemia Is Inhibited by Cross-Reactive Induced Regulatory T Cells. J Immunol. 2015;195:4028-37 pubmed publisher
  924. Wang X, Zeng X, Yang B, Zhao S, Chen W, Guo X. Efficacy of thymosin α1 and interferon α for the treatment of severe acute pancreatitis in a rat model. Mol Med Rep. 2015;12:6775-81 pubmed publisher
  925. Poncini C, Ilarregui J, Batalla E, Engels S, Cerliani J, Cucher M, et al. Trypanosoma cruzi Infection Imparts a Regulatory Program in Dendritic Cells and T Cells via Galectin-1-Dependent Mechanisms. J Immunol. 2015;195:3311-24 pubmed publisher
  926. Guo L, Huang Y, Chen X, Hu Li J, Urban J, Paul W. Innate immunological function of TH2 cells in vivo. Nat Immunol. 2015;16:1051-9 pubmed publisher
  927. Nakatsukasa H, Zhang D, Maruyama T, Chen H, Cui K, Ishikawa M, et al. The DNA-binding inhibitor Id3 regulates IL-9 production in CD4(+) T cells. Nat Immunol. 2015;16:1077-84 pubmed publisher
  928. Wang X, Huang Z, Chen Y, Lu X, Zhu P, Wen K, et al. A Multiple Antigenic Peptide Mimicking Peptidoglycan Induced T Cell Responses to Protect Mice from Systemic Infection with Staphylococcus aureus. PLoS ONE. 2015;10:e0136888 pubmed publisher
  929. Pearce V, Bouabe H, MacQueen A, Carbonaro V, Okkenhaug K. PI3Kδ Regulates the Magnitude of CD8+ T Cell Responses after Challenge with Listeria monocytogenes. J Immunol. 2015;195:3206-17 pubmed publisher
  930. Matsuda Y, Wang X, Oishi H, Guan Z, Saito M, Liu M, et al. Spleen Tyrosine Kinase Modulates Fibrous Airway Obliteration and Associated Lymphoid Neogenesis After Transplantation. Am J Transplant. 2016;16:342-52 pubmed publisher
  931. Smith K, Filbey K, Reynolds L, Hewitson J, Harcus Y, Boon L, et al. Low-level regulatory T-cell activity is essential for functional type-2 effector immunity to expel gastrointestinal helminths. Mucosal Immunol. 2016;9:428-43 pubmed publisher
  932. Yoon K, Byun S, Kwon E, Hwang S, Chu K, Hiraki M, et al. Control of signaling-mediated clearance of apoptotic cells by the tumor suppressor p53. Science. 2015;349:1261669 pubmed publisher
  933. Littwitz Salomon E, Akhmetzyanova I, Vallet C, Francois S, Dittmer U, Gibbert K. Activated regulatory T cells suppress effector NK cell responses by an IL-2-mediated mechanism during an acute retroviral infection. Retrovirology. 2015;12:66 pubmed publisher
  934. Jovicic N, Jeftic I, Jovanovic I, Radosavljevic G, Arsenijevic N, Lukic M, et al. Differential Immunometabolic Phenotype in Th1 and Th2 Dominant Mouse Strains in Response to High-Fat Feeding. PLoS ONE. 2015;10:e0134089 pubmed publisher
  935. Choi Y, Gullicksrud J, Xing S, Zeng Z, Shan Q, Li F, et al. LEF-1 and TCF-1 orchestrate T(FH) differentiation by regulating differentiation circuits upstream of the transcriptional repressor Bcl6. Nat Immunol. 2015;16:980-90 pubmed publisher
  936. Ngiow S, Young A, Jacquelot N, Yamazaki T, Enot D, Zitvogel L, et al. A Threshold Level of Intratumor CD8+ T-cell PD1 Expression Dictates Therapeutic Response to Anti-PD1. Cancer Res. 2015;75:3800-11 pubmed publisher
  937. Redpath S, Van Der Werf N, MacDonald A, Maizels R, Taylor M. Schistosoma mansoni Larvae Do Not Expand or Activate Foxp3+ Regulatory T Cells during Their Migratory Phase. Infect Immun. 2015;83:3881-9 pubmed publisher
  938. Lowe K, Navarro Núñez L, Bénézech C, Nayar S, Kingston B, Nieswandt B, et al. The expression of mouse CLEC-2 on leucocyte subsets varies according to their anatomical location and inflammatory state. Eur J Immunol. 2015;45:2484-93 pubmed publisher
  939. Deng B, Deng W, Xiao P, Zeng K, Zhang S, Zhang H, et al. Nonadherent culture method downregulates stem cell antigen-1 expression in mouse bone marrow mesenchymal stem cells. Exp Ther Med. 2015;10:31-36 pubmed
  940. Pérez Girón J, Gómez Medina S, Lüdtke A, Munoz Fontela C. Intranasal Administration of Recombinant Influenza Vaccines in Chimeric Mouse Models to Study Mucosal Immunity. J Vis Exp. 2015;:e52803 pubmed publisher
  941. Hobbs R, DePianto D, Jacob J, Han M, Chung B, Batazzi A, et al. Keratin-dependent regulation of Aire and gene expression in skin tumor keratinocytes. Nat Genet. 2015;47:933-8 pubmed publisher
  942. Jiang Y, Gao Q, Wang L, Guo C, Zhu F, Wang B, et al. Deficiency of programmed cell death 4 results in increased IL-10 expression by macrophages and thereby attenuates atherosclerosis in hyperlipidemic mice. Cell Mol Immunol. 2016;13:524-34 pubmed publisher
  943. Vogel A, Brown D. Single-Dose CpG Immunization Protects Against a Heterosubtypic Challenge and Generates Antigen-Specific Memory T Cells. Front Immunol. 2015;6:327 pubmed publisher
  944. Elsner R, Hastey C, Olsen K, Baumgarth N. Suppression of Long-Lived Humoral Immunity Following Borrelia burgdorferi Infection. PLoS Pathog. 2015;11:e1004976 pubmed publisher
  945. Puntambekar S, Hinton D, Yin X, Savarin C, Bergmann C, Trapp B, et al. Interleukin-10 is a critical regulator of white matter lesion containment following viral induced demyelination. Glia. 2015;63:2106-2120 pubmed publisher
  946. McWilliams I, Rajbhandari R, Nozell S, BENVENISTE E, Harrington L. STAT4 controls GM-CSF production by both Th1 and Th17 cells during EAE. J Neuroinflammation. 2015;12:128 pubmed publisher
  947. Herz J, Johnson K, McGavern D. Therapeutic antiviral T cells noncytopathically clear persistently infected microglia after conversion into antigen-presenting cells. J Exp Med. 2015;212:1153-69 pubmed publisher
  948. Weindel C, Richey L, Bolland S, Mehta A, Kearney J, Huber B. B cell autophagy mediates TLR7-dependent autoimmunity and inflammation. Autophagy. 2015;11:1010-24 pubmed publisher
  949. Ackerknecht M, Hauser M, Legler D, Stein J. In vivo TCR Signaling in CD4(+) T Cells Imprints a Cell-Intrinsic, Transient Low-Motility Pattern Independent of Chemokine Receptor Expression Levels, or Microtubular Network, Integrin, and Protein Kinase C Activity. Front Immunol. 2015;6:297 pubmed publisher
  950. Chang C, Lin C, Lu C, Martel J, Ko Y, Ojcius D, et al. Ganoderma lucidum reduces obesity in mice by modulating the composition of the gut microbiota. Nat Commun. 2015;6:7489 pubmed publisher
  951. Sasaki K, Takada K, Ohte Y, Kondo H, Sorimachi H, Tanaka K, et al. Thymoproteasomes produce unique peptide motifs for positive selection of CD8(+) T cells. Nat Commun. 2015;6:7484 pubmed publisher
  952. Bruchard M, Rebé C, Derangère V, Togbé D, Ryffel B, Boidot R, et al. The receptor NLRP3 is a transcriptional regulator of TH2 differentiation. Nat Immunol. 2015;16:859-70 pubmed publisher
  953. Xu G, Wu H, Zhang J, Li D, Wang Y, Wang Y, et al. Metformin ameliorates ionizing irradiation-induced long-term hematopoietic stem cell injury in mice. Free Radic Biol Med. 2015;87:15-25 pubmed publisher
  954. Kamimura D, Katsunuma K, Arima Y, Atsumi T, Jiang J, Bando H, et al. KDEL receptor 1 regulates T-cell homeostasis via PP1 that is a key phosphatase for ISR. Nat Commun. 2015;6:7474 pubmed publisher
  955. Stermann A, Huebener N, Seidel D, Fest S, Eschenburg G, Stauder M, et al. Targeting of MYCN by means of DNA vaccination is effective against neuroblastoma in mice. Cancer Immunol Immunother. 2015;64:1215-27 pubmed publisher
  956. Evonuk K, Baker B, Doyle R, Moseley C, Sestero C, Johnston B, et al. Inhibition of System Xc(-) Transporter Attenuates Autoimmune Inflammatory Demyelination. J Immunol. 2015;195:450-463 pubmed publisher
  957. Conde P, Rodriguez M, van der Touw W, Jimenez A, Burns M, Miller J, et al. DC-SIGN(+) Macrophages Control the Induction of Transplantation Tolerance. Immunity. 2015;42:1143-58 pubmed publisher
  958. Deppisch N, Ruf P, Eissler N, Neff F, Buhmann R, Lindhofer H, et al. Efficacy and Tolerability of a GD2-Directed Trifunctional Bispecific Antibody in a Preclinical Model: Subcutaneous Administration Is Superior to Intravenous Delivery. Mol Cancer Ther. 2015;14:1877-83 pubmed publisher
  959. Kamachi F, Isshiki T, Harada N, Akiba H, Miyake S. ICOS promotes group 2 innate lymphoid cell activation in lungs. Biochem Biophys Res Commun. 2015;463:739-45 pubmed publisher
  960. Durrans A, Gao D, Gupta R, Fischer K, Choi H, El Rayes T, et al. Identification of Reprogrammed Myeloid Cell Transcriptomes in NSCLC. PLoS ONE. 2015;10:e0129123 pubmed publisher
  961. Holtzhausen A, Zhao F, Evans K, Tsutsui M, Orabona C, Tyler D, et al. Melanoma-Derived Wnt5a Promotes Local Dendritic-Cell Expression of IDO and Immunotolerance: Opportunities for Pharmacologic Enhancement of Immunotherapy. Cancer Immunol Res. 2015;3:1082-95 pubmed publisher
  962. Khan I, Perrard X, Brunner G, Lui H, Sparks L, Smith S, et al. Intermuscular and perimuscular fat expansion in obesity correlates with skeletal muscle T cell and macrophage infiltration and insulin resistance. Int J Obes (Lond). 2015;39:1607-18 pubmed publisher
  963. Castiglioni A, Corna G, Rigamonti E, Basso V, Vezzoli M, Monno A, et al. FOXP3+ T Cells Recruited to Sites of Sterile Skeletal Muscle Injury Regulate the Fate of Satellite Cells and Guide Effective Tissue Regeneration. PLoS ONE. 2015;10:e0128094 pubmed publisher
  964. Vinue A, Andrés Blasco I, Herrero Cervera A, Piqueras L, Andres V, Burks D, et al. Ink4/Arf locus restores glucose tolerance and insulin sensitivity by reducing hepatic steatosis and inflammation in mice with impaired IRS2-dependent signalling. Biochim Biophys Acta. 2015;1852:1729-42 pubmed publisher
  965. Suzuki H, Watari A, Hashimoto E, Yonemitsu M, Kiyono H, Yagi K, et al. C-Terminal Clostridium perfringens Enterotoxin-Mediated Antigen Delivery for Nasal Pneumococcal Vaccine. PLoS ONE. 2015;10:e0126352 pubmed publisher
  966. Navarathna D, Stein E, Lessey Morillon E, Nayak D, Martin Manso G, Roberts D. CD47 Promotes Protective Innate and Adaptive Immunity in a Mouse Model of Disseminated Candidiasis. PLoS ONE. 2015;10:e0128220 pubmed publisher
  967. Chuprin A, Avin A, Goldfarb Y, Herzig Y, Levi B, Jacob A, et al. The deacetylase Sirt1 is an essential regulator of Aire-mediated induction of central immunological tolerance. Nat Immunol. 2015;16:737-45 pubmed publisher
  968. Chen H, Sun J, Huang Z, Hou H, Arcilla M, Rakhilin N, et al. Comprehensive models of human primary and metastatic colorectal tumors in immunodeficient and immunocompetent mice by chemokine targeting. Nat Biotechnol. 2015;33:656-60 pubmed publisher
  969. Teo T, Her Z, Tan J, Lum F, Lee W, Chan Y, et al. Caribbean and La Réunion Chikungunya Virus Isolates Differ in Their Capacity To Induce Proinflammatory Th1 and NK Cell Responses and Acute Joint Pathology. J Virol. 2015;89:7955-69 pubmed publisher
  970. Lu K, Keppler S, Leithäuser F, Mattfeldt T, Castello A, Kostezka U, et al. Nck adaptor proteins modulate differentiation and effector function of T cells. J Leukoc Biol. 2015;98:301-11 pubmed publisher
  971. Liao J, Ovenell K, Curtis E, Cecil D, Koehnlein M, Rastetter L, et al. Preservation of tumor-host immune interactions with luciferase-tagged imaging in a murine model of ovarian cancer. J Immunother Cancer. 2015;3:16 pubmed publisher
  972. Jacque E, Schweighoffer E, Tybulewicz V, Ley S. BAFF activation of the ERK5 MAP kinase pathway regulates B cell survival. J Exp Med. 2015;212:883-92 pubmed publisher
  973. Xue J, Sharma V, Hsieh M, Chawla A, Murali R, Pandol S, et al. Alternatively activated macrophages promote pancreatic fibrosis in chronic pancreatitis. Nat Commun. 2015;6:7158 pubmed publisher
  974. Kato Nagaoka N, Shimada S, Yamakawa Y, Tsujibe S, Naito T, Setoyama H, et al. Enhanced differentiation of intraepithelial lymphocytes in the intestine of polymeric immunoglobulin receptor-deficient mice. Immunology. 2015;146:59-69 pubmed publisher
  975. Yu J, Hoffman S, Beal A, Dykon A, Ringenberg M, Hughes A, et al. MALT1 Protease Activity Is Required for Innate and Adaptive Immune Responses. PLoS ONE. 2015;10:e0127083 pubmed publisher
  976. Shao L, Lie A, Zhang Y, Wong C, Kwong Y. Aberrant germinal center formation, follicular T-helper cells, and germinal center B-cells were involved in chronic graft-versus-host disease. Ann Hematol. 2015;94:1493-504 pubmed publisher
  977. Zhou H, Martínez H, Sun B, Li A, Zimmer M, Katsanis N, et al. Rapid and Efficient Generation of Transgene-Free iPSC from a Small Volume of Cryopreserved Blood. Stem Cell Rev. 2015;11:652-65 pubmed publisher
  978. Thiault N, Darrigues J, Adoue V, Gros M, Binet B, Pérals C, et al. Peripheral regulatory T lymphocytes recirculating to the thymus suppress the development of their precursors. Nat Immunol. 2015;16:628-34 pubmed publisher
  979. Becker P, Hervouet C, Mason G, KWON S, Klavinskis L. Skin vaccination with live virus vectored microneedle arrays induce long lived CD8(+) T cell memory. Vaccine. 2015;33:4691-8 pubmed publisher
  980. Bouchery T, Kyle R, Camberis M, Shepherd A, Filbey K, Smith A, et al. ILC2s and T cells cooperate to ensure maintenance of M2 macrophages for lung immunity against hookworms. Nat Commun. 2015;6:6970 pubmed publisher
  981. Sharma S, Chintala N, Vadrevu S, Patel J, Karbowniczek M, Markiewski M. Pulmonary alveolar macrophages contribute to the premetastatic niche by suppressing antitumor T cell responses in the lungs. J Immunol. 2015;194:5529-38 pubmed publisher
  982. Kreiter S, Vormehr M, van de Roemer N, Diken M, Löwer M, Diekmann J, et al. Mutant MHC class II epitopes drive therapeutic immune responses to cancer. Nature. 2015;520:692-6 pubmed publisher
  983. Olguín J, Fernández J, Salinas N, Juárez I, Rodriguez Sosa M, Campuzano J, et al. Adoptive transfer of CD4(+)Foxp3(+) regulatory T cells to C57BL/6J mice during acute infection with Toxoplasma gondii down modulates the exacerbated Th1 immune response. Microbes Infect. 2015;17:586-95 pubmed publisher
  984. Najm F, Madhavan M, Zaremba A, Shick E, Karl R, Factor D, et al. Drug-based modulation of endogenous stem cells promotes functional remyelination in vivo. Nature. 2015;522:216-20 pubmed publisher
  985. Bian F, Barbosa F, Corrales R, Pelegrino F, Volpe E, Pflugfelder S, et al. Altered balance of interleukin-13/interferon-gamma contributes to lacrimal gland destruction and secretory dysfunction in CD25 knockout model of Sjögren's syndrome. Arthritis Res Ther. 2015;17:53 pubmed publisher
  986. Siegemund S, Shepherd J, Xiao C, Sauer K. hCD2-iCre and Vav-iCre mediated gene recombination patterns in murine hematopoietic cells. PLoS ONE. 2015;10:e0124661 pubmed publisher
  987. Crawford G, Boldison J, Copland D, Adamson P, Gale D, Brandt M, et al. The role of lipoprotein-associated phospholipase A2 in a murine model of experimental autoimmune uveoretinitis. PLoS ONE. 2015;10:e0122093 pubmed publisher
  988. Wang J, Yin T, Wen Y, Tian F, He X, Zhou D, et al. Potential effects of interferon regulatory factor 4 in a murine model of polyinosinic-polycytidylic acid-induced embryo resorption. Reprod Fertil Dev. 2015;: pubmed publisher
  989. Wan W, Liu Q, Lionakis M, Marino A, Anderson S, Swamydas M, et al. Atypical chemokine receptor 1 deficiency reduces atherogenesis in ApoE-knockout mice. Cardiovasc Res. 2015;106:478-87 pubmed publisher
  990. Rouhani S, Eccles J, Riccardi P, Peske J, Tewalt E, Cohen J, et al. Roles of lymphatic endothelial cells expressing peripheral tissue antigens in CD4 T-cell tolerance induction. Nat Commun. 2015;6:6771 pubmed publisher
  991. Tsou Y, Lin Y, Shao H, Yu S, Wu S, Lin H, et al. Recombinant adeno-vaccine expressing enterovirus 71-like particles against hand, foot, and mouth disease. PLoS Negl Trop Dis. 2015;9:e0003692 pubmed publisher
  992. Badillo Godinez O, Gutierrez Xicotencatl L, Plett Torres T, Pedroza Saavedra A, González Jaimes A, Chihu Amparan L, et al. Targeting of rotavirus VP6 to DEC-205 induces protection against the infection in mice. Vaccine. 2015;33:4228-37 pubmed publisher
  993. Iwai H, Funatogawa K, Matsumura K, Kato Miyazawa M, Kirikae F, Kiga K, et al. MicroRNA-155 knockout mice are susceptible to Mycobacterium tuberculosis infection. Tuberculosis (Edinb). 2015;95:246-50 pubmed publisher
  994. Lal G, Nakayama Y, Sethi A, Singh A, Burrell B, Kulkarni N, et al. Interleukin-10 From Marginal Zone Precursor B-Cell Subset Is Required for Costimulatory Blockade-Induced Transplantation Tolerance. Transplantation. 2015;99:1817-28 pubmed publisher
  995. Di C, Lin X, Zhang Y, Zhong W, Yuan Y, Zhou T, et al. Basophil-associated OX40 ligand participates in the initiation of Th2 responses during airway inflammation. J Biol Chem. 2015;290:12523-36 pubmed publisher
  996. Koh F, Lizama C, Wong P, Hawkins J, Zovein A, Ramalho Santos M. Emergence of hematopoietic stem and progenitor cells involves a Chd1-dependent increase in total nascent transcription. Proc Natl Acad Sci U S A. 2015;112:E1734-43 pubmed publisher
  997. Cheah M, Chen J, Sahoo D, Contreras Trujillo H, Volkmer A, Scheeren F, et al. CD14-expressing cancer cells establish the inflammatory and proliferative tumor microenvironment in bladder cancer. Proc Natl Acad Sci U S A. 2015;112:4725-30 pubmed publisher
  998. Povinelli B, Kokolus K, Eng J, Dougher C, Curtin L, Capitano M, et al. Standard sub-thermoneutral caging temperature influences radiosensitivity of hematopoietic stem and progenitor cells. PLoS ONE. 2015;10:e0120078 pubmed publisher
  999. Hu Lieskovan S, Mok S, Homet Moreno B, Tsoi J, Robert L, Goedert L, et al. Improved antitumor activity of immunotherapy with BRAF and MEK inhibitors in BRAF(V600E) melanoma. Sci Transl Med. 2015;7:279ra41 pubmed publisher
  1000. Sarikonda G, Sachithanantham S, Miller J, Pagni P, Coppieters K, von Herrath M. The Hsp60 peptide p277 enhances anti-CD3 mediated diabetes remission in non-obese diabetic mice. J Autoimmun. 2015;59:61-6 pubmed publisher
  1001. Van Den Ham K, Shio M, Rainone A, Fournier S, Krawczyk C, Olivier M. Iron prevents the development of experimental cerebral malaria by attenuating CXCR3-mediated T cell chemotaxis. PLoS ONE. 2015;10:e0118451 pubmed publisher
  1002. Boulay A, Mazeraud A, Cisternino S, Saubaméa B, Mailly P, Jourdren L, et al. Immune quiescence of the brain is set by astroglial connexin 43. J Neurosci. 2015;35:4427-39 pubmed publisher
  1003. Dudek Perić A, Ferreira G, Muchowicz A, Wouters J, Prada N, Martin S, et al. Antitumor immunity triggered by melphalan is potentiated by melanoma cell surface-associated calreticulin. Cancer Res. 2015;75:1603-14 pubmed publisher
  1004. Rao E, Zhang Y, Zhu G, Hao J, Persson X, Egilmez N, et al. Deficiency of AMPK in CD8+ T cells suppresses their anti-tumor function by inducing protein phosphatase-mediated cell death. Oncotarget. 2015;6:7944-58 pubmed
  1005. Sakala I, Chaudhri G, Eldi P, Buller R, Karupiah G. Deficiency in Th2 cytokine responses exacerbate orthopoxvirus infection. PLoS ONE. 2015;10:e0118685 pubmed publisher
  1006. Pratama A, Srivastava M, Williams N, Papa I, Lee S, Dinh X, et al. MicroRNA-146a regulates ICOS-ICOSL signalling to limit accumulation of T follicular helper cells and germinal centres. Nat Commun. 2015;6:6436 pubmed publisher
  1007. Kishimoto M, Matsuda T, Yanase S, Katsumi A, Suzuki N, Ikejiri M, et al. Rhof promotes murine marginal zone B cell development. Nagoya J Med Sci. 2014;76:293-305 pubmed
  1008. Pone E, Lam T, Lou Z, Wang R, Chen Y, Liu D, et al. B cell Rab7 mediates induction of activation-induced cytidine deaminase expression and class-switching in T-dependent and T-independent antibody responses. J Immunol. 2015;194:3065-78 pubmed publisher
  1009. Talaber G, Tuckermann J, Okret S. ACTH controls thymocyte homeostasis independent of glucocorticoids. FASEB J. 2015;29:2526-34 pubmed publisher
  1010. Matsuda T, Yanase S, Takaoka A, Maruyama M. The immunosenescence-related gene Zizimin2 is associated with early bone marrow B cell development and marginal zone B cell formation. Immun Ageing. 2015;12:1 pubmed publisher
  1011. Choi E, Park H, Sul O, Rajasekaran M, Yu R, Choi H. Carbon monoxide reverses adipose tissue inflammation and insulin resistance upon loss of ovarian function. Am J Physiol Endocrinol Metab. 2015;308:E621-30 pubmed publisher
  1012. Srivastava M, Duan G, Kershaw N, Athanasopoulos V, Yeo J, Ose T, et al. Roquin binds microRNA-146a and Argonaute2 to regulate microRNA homeostasis. Nat Commun. 2015;6:6253 pubmed publisher
  1013. Hsiao H, Hsu T, Liu W, Hsieh W, Chou T, Wu Y, et al. Deltex1 antagonizes HIF-1α and sustains the stability of regulatory T cells in vivo. Nat Commun. 2015;6:6353 pubmed publisher
  1014. Gong W, Shou D, Cheng F, Shi J, Ge F, Liu D. Tolerance induced by IL-6 deficient donor heart is significantly involved in myeloid-derived suppressor cells (MDSCs). Transpl Immunol. 2015;32:72-5 pubmed publisher
  1015. Drees J, Mertensotto M, Liu G, Panyam J, Leonard A, Augustin L, et al. Attenuated Salmonella enterica Typhimurium reduces tumor burden in an autochthonous breast cancer model. Anticancer Res. 2015;35:843-9 pubmed
  1016. Sell S, Dietz M, Schneider A, Holtappels R, Mach M, Winkler T. Control of murine cytomegalovirus infection by γδ T cells. PLoS Pathog. 2015;11:e1004481 pubmed publisher
  1017. Bang M, Seo J, Seo J, Jo G, Jung S, Yu R, et al. Bacillus subtilis KCTC 11782BP-produced alginate oligosaccharide effectively suppresses asthma via T-helper cell type 2-related cytokines. PLoS ONE. 2015;10:e0117524 pubmed publisher
  1018. Buchwald Z, Yang C, Nellore S, Shashkova E, Davis J, Cline A, et al. A Bone Anabolic Effect of RANKL in a Murine Model of Osteoporosis Mediated Through FoxP3+ CD8 T Cells. J Bone Miner Res. 2015;30:1508-22 pubmed publisher
  1019. Valle A, Barbagiovanni G, Jofra T, Stabilini A, Pérol L, Baeyens A, et al. Heterogeneous CD3 expression levels in differing T cell subsets correlate with the in vivo anti-CD3-mediated T cell modulation. J Immunol. 2015;194:2117-27 pubmed publisher
  1020. Michelet X, Garg S, Wolf B, Tuli A, Ricciardi Castagnoli P, Brenner M. MHC class II presentation is controlled by the lysosomal small GTPase, Arl8b. J Immunol. 2015;194:2079-88 pubmed publisher
  1021. Hu W, Dooley J, Chung S, Chandramohan D, Cimmino L, Mukherjee S, et al. miR-29a maintains mouse hematopoietic stem cell self-renewal by regulating Dnmt3a. Blood. 2015;125:2206-16 pubmed publisher
  1022. Franckaert D, Schlenner S, Heirman N, Gill J, Skogberg G, Ekwall O, et al. Premature thymic involution is independent of structural plasticity of the thymic stroma. Eur J Immunol. 2015;45:1535-47 pubmed publisher
  1023. Jing W, Gershan J, Weber J, Tlomak D, McOlash L, Sabatos Peyton C, et al. Combined immune checkpoint protein blockade and low dose whole body irradiation as immunotherapy for myeloma. J Immunother Cancer. 2015;3:2 pubmed publisher
  1024. Kanayama M, Inoue M, Danzaki K, Hammer G, He Y, Shinohara M. Autophagy enhances NFκB activity in specific tissue macrophages by sequestering A20 to boost antifungal immunity. Nat Commun. 2015;6:5779 pubmed publisher
  1025. Wirsdörfer F, Bangen J, Pastille E, Hansen W, Flohé S. Breaking the co-operation between bystander T-cells and natural killer cells prevents the development of immunosuppression after traumatic skeletal muscle injury in mice. Clin Sci (Lond). 2015;128:825-38 pubmed publisher
  1026. Zhang Y, Wu B, Metelli A, Thaxton J, Hong F, Rachidi S, et al. GP96 is a GARP chaperone and controls regulatory T cell functions. J Clin Invest. 2015;125:859-69 pubmed publisher
  1027. Bergot A, Monnet N, Le Tran S, Mittal D, Al Kouba J, Steptoe R, et al. HPV16 E7 expression in skin induces TSLP secretion, type 2 ILC infiltration and atopic dermatitis-like lesions. Immunol Cell Biol. 2015;93:540-7 pubmed publisher
  1028. Sun C, Schattgen S, Pisitkun P, Jorgensen J, Hilterbrand A, Wang L, et al. Evasion of innate cytosolic DNA sensing by a gammaherpesvirus facilitates establishment of latent infection. J Immunol. 2015;194:1819-31 pubmed publisher
  1029. Glatigny S, Duhen R, Arbelaez C, Kumari S, Bettelli E. Integrin alpha L controls the homing of regulatory T cells during CNS autoimmunity in the absence of integrin alpha 4. Sci Rep. 2015;5:7834 pubmed publisher
  1030. Minkah N, Macaluso M, Oldenburg D, Paden C, White D, McBride K, et al. Absence of the uracil DNA glycosylase of murine gammaherpesvirus 68 impairs replication and delays the establishment of latency in vivo. J Virol. 2015;89:3366-79 pubmed publisher
  1031. Karsten C, Laumonnier Y, Eurich B, Ender F, Bröker K, Roy S, et al. Monitoring and cell-specific deletion of C5aR1 using a novel floxed GFP-C5aR1 reporter knock-in mouse. J Immunol. 2015;194:1841-55 pubmed publisher
  1032. Liu Z, Zhao S, Chen Q, Yan K, Liu P, Li N, et al. Roles of Toll-like receptors 2 and 4 in mediating experimental autoimmune orchitis induction in mice. Biol Reprod. 2015;92:63 pubmed publisher
  1033. Singh K, Hjort M, Thorvaldson L, Sandler S. Concomitant analysis of Helios and Neuropilin-1 as a marker to detect thymic derived regulatory T cells in naïve mice. Sci Rep. 2015;5:7767 pubmed publisher
  1034. Spada R, Rojas J, Pérez Yagüe S, Mulens V, Cannata Ortiz P, Bragado R, et al. NKG2D ligand overexpression in lupus nephritis correlates with increased NK cell activity and differentiation in kidneys but not in the periphery. J Leukoc Biol. 2015;97:583-98 pubmed publisher
  1035. Teixeira L, Moreira J, Melo J, Bezerra F, Marques R, Ferreirinha P, et al. Immune response in the adipose tissue of lean mice infected with the protozoan parasite Neospora caninum. Immunology. 2015;145:242-57 pubmed publisher
  1036. Shindo Y, Unsinger J, Burnham C, Green J, Hotchkiss R. Interleukin-7 and anti-programmed cell death 1 antibody have differing effects to reverse sepsis-induced immunosuppression. Shock. 2015;43:334-43 pubmed publisher
  1037. Shrestha S, Yang K, Guy C, Vogel P, Neale G, Chi H. Treg cells require the phosphatase PTEN to restrain TH1 and TFH cell responses. Nat Immunol. 2015;16:178-87 pubmed publisher
  1038. Sakaguchi S, Hombauer M, Hassan H, Tanaka H, Yasmin N, Naoe Y, et al. A novel Cd8-cis-regulatory element preferentially directs expression in CD44hiCD62L+ CD8+ T cells and in CD8αα+ dendritic cells. J Leukoc Biol. 2015;97:635-44 pubmed publisher
  1039. Bassi M, Kongsgaard M, Steffensen M, Fenger C, Rasmussen M, Skjødt K, et al. CD8+ T cells complement antibodies in protecting against yellow fever virus. J Immunol. 2015;194:1141-53 pubmed publisher
  1040. Nguyen L, Pan J, Dinh T, Hadeiba H, O Hara E, Ebtikar A, et al. Role and species-specific expression of colon T cell homing receptor GPR15 in colitis. Nat Immunol. 2015;16:207-213 pubmed publisher
  1041. Li Q, Zou J, Wang M, Ding X, Chepelev I, Zhou X, et al. Critical role of histone demethylase Jmjd3 in the regulation of CD4+ T-cell differentiation. Nat Commun. 2014;5:5780 pubmed publisher
  1042. Yuan X, Dee M, Altman N, Malek T. IL-2Rβ-dependent signaling and CD103 functionally cooperate to maintain tolerance in the gut mucosa. J Immunol. 2015;194:1334-46 pubmed publisher
  1043. Ikeda T, Hirata S, Takamatsu K, Haruta M, Tsukamoto H, Ito T, et al. Suppression of Th1-mediated autoimmunity by embryonic stem cell-derived dendritic cells. PLoS ONE. 2014;9:e115198 pubmed publisher
  1044. LUCAS B, White A, Ulvmar M, Nibbs R, Sitnik K, Agace W, et al. CCRL1/ACKR4 is expressed in key thymic microenvironments but is dispensable for T lymphopoiesis at steady state in adult mice. Eur J Immunol. 2015;45:574-83 pubmed publisher
  1045. Harmon E, Fronhofer V, Keller R, Feustel P, Zhu X, Xu H, et al. Anti-inflammatory immune skewing is atheroprotective: Apoe−/−FcγRIIb−/− mice develop fibrous carotid plaques. J Am Heart Assoc. 2014;3:e001232 pubmed publisher
  1046. White C, Villarino N, Sloan S, Ganusov V, Schmidt N. Plasmodium suppresses expansion of T cell responses to heterologous infections. J Immunol. 2015;194:697-708 pubmed publisher
  1047. Yin Y, Qin T, Wang X, Lin J, Yu Q, Yang Q. CpG DNA assists the whole inactivated H9N2 influenza virus in crossing the intestinal epithelial barriers via transepithelial uptake of dendritic cell dendrites. Mucosal Immunol. 2015;8:799-814 pubmed publisher
  1048. Kim J, Li W, Choi Y, Lewin S, Verbeke C, Dranoff G, et al. Injectable, spontaneously assembling, inorganic scaffolds modulate immune cells in vivo and increase vaccine efficacy. Nat Biotechnol. 2015;33:64-72 pubmed publisher
  1049. Pekkonen P, Järviluoma A, Zinovkina N, Cvrljevic A, Prakash S, Westermarck J, et al. KSHV viral cyclin interferes with T-cell development and induces lymphoma through Cdk6 and Notch activation in vivo. Cell Cycle. 2014;13:3670-84 pubmed publisher
  1050. Nacer A, Movila A, Sohet F, Girgis N, Gundra U, Loke P, et al. Experimental cerebral malaria pathogenesis--hemodynamics at the blood brain barrier. PLoS Pathog. 2014;10:e1004528 pubmed publisher
  1051. Naik A, Hawwari A, Krangel M. Specification of Vδ and Vα usage by Tcra/Tcrd locus V gene segment promoters. J Immunol. 2015;194:790-4 pubmed publisher
  1052. Rutz S, Kayagaki N, Phung Q, Eidenschenk C, Noubade R, Wang X, et al. Deubiquitinase DUBA is a post-translational brake on interleukin-17 production in T cells. Nature. 2015;518:417-21 pubmed publisher
  1053. Mang Y, Zhao Z, Zeng Z, Wu X, Li Z, Zhang L. Efficient elimination of CD103-expressing cells by anti-CD103 antibody drug conjugates in immunocompetent mice. Int Immunopharmacol. 2015;24:119-27 pubmed publisher
  1054. Lees J, Duffy S, Perera C, Moalem Taylor G. Depletion of Foxp3+ regulatory T cells increases severity of mechanical allodynia and significantly alters systemic cytokine levels following peripheral nerve injury. Cytokine. 2015;71:207-14 pubmed publisher
  1055. Her Z, Teng T, Tan J, Teo T, Kam Y, Lum F, et al. Loss of TLR3 aggravates CHIKV replication and pathology due to an altered virus-specific neutralizing antibody response. EMBO Mol Med. 2015;7:24-41 pubmed publisher
  1056. Guo X, Tanaka Y, Kondo M. Thymic precursors of TCRαβ(+)CD8αα(+) intraepithelial lymphocytes are negative for CD103. Immunol Lett. 2015;163:40-8 pubmed publisher
  1057. Peters A, Burkett P, Sobel R, Buckley C, Watson S, Bettelli E, et al. Podoplanin negatively regulates CD4+ effector T cell responses. J Clin Invest. 2015;125:129-40 pubmed publisher
  1058. Venkatanarayan A, Raulji P, Norton W, Chakravarti D, Coarfa C, Su X, et al. IAPP-driven metabolic reprogramming induces regression of p53-deficient tumours in vivo. Nature. 2015;517:626-30 pubmed publisher
  1059. Baptista A, Roozendaal R, Reijmers R, Koning J, Unger W, Greuter M, et al. Lymph node stromal cells constrain immunity via MHC class II self-antigen presentation. elife. 2014;3: pubmed publisher
  1060. Uchiyama M, Jin X, Yin E, Shimokawa T, Niimi M. Treadmill exercise induces murine cardiac allograft survival and generates regulatory T cell. Transpl Int. 2015;28:352-62 pubmed publisher
  1061. Schwartz C, Turqueti Neves A, Hartmann S, Yu P, Nimmerjahn F, Voehringer D. Basophil-mediated protection against gastrointestinal helminths requires IgE-induced cytokine secretion. Proc Natl Acad Sci U S A. 2014;111:E5169-77 pubmed publisher
  1062. Patel P, Julien J, Kriz J. Early-stage treatment with Withaferin A reduces levels of misfolded superoxide dismutase 1 and extends lifespan in a mouse model of amyotrophic lateral sclerosis. Neurotherapeutics. 2015;12:217-33 pubmed publisher
  1063. Barnes M, McMullen M, Roychowdhury S, Madhun N, Niese K, Olman M, et al. Macrophage migration inhibitory factor is required for recruitment of scar-associated macrophages during liver fibrosis. J Leukoc Biol. 2015;97:161-9 pubmed publisher
  1064. Peschke K, Dudeck A, Rabenhorst A, Hartmann K, Roers A. Cre/loxP-based mouse models of mast cell deficiency and mast cell-specific gene inactivation. Methods Mol Biol. 2015;1220:403-21 pubmed publisher
  1065. Cui Z, Han D, Sun X, Zhang M, Feng X, Sun C, et al. Mannose-modified chitosan microspheres enhance OprF-OprI-mediated protection of mice against Pseudomonas aeruginosa infection via induction of mucosal immunity. Appl Microbiol Biotechnol. 2015;99:667-80 pubmed publisher
  1066. Kern J, Drutel R, Leanhart S, Bogacz M, Pacholczyk R. Reduction of T cell receptor diversity in NOD mice prevents development of type 1 diabetes but not Sjögren's syndrome. PLoS ONE. 2014;9:e112467 pubmed publisher
  1067. Jurkin J, Henkel T, Nielsen A, Minnich M, Popow J, Kaufmann T, et al. The mammalian tRNA ligase complex mediates splicing of XBP1 mRNA and controls antibody secretion in plasma cells. EMBO J. 2014;33:2922-36 pubmed publisher
  1068. McKinstry K, Strutt T, Bautista B, Zhang W, Kuang Y, Cooper A, et al. Effector CD4 T-cell transition to memory requires late cognate interactions that induce autocrine IL-2. Nat Commun. 2014;5:5377 pubmed publisher
  1069. Swee L, Lourido S, Bell G, Ingram J, Ploegh H. One-step enzymatic modification of the cell surface redirects cellular cytotoxicity and parasite tropism. ACS Chem Biol. 2015;10:460-5 pubmed publisher
  1070. Thauland T, Koguchi Y, Dustin M, Parker D. CD28-CD80 interactions control regulatory T cell motility and immunological synapse formation. J Immunol. 2014;193:5894-903 pubmed publisher
  1071. Wang X, Sumida H, Cyster J. GPR18 is required for a normal CD8αα intestinal intraepithelial lymphocyte compartment. J Exp Med. 2014;211:2351-9 pubmed publisher
  1072. Behler F, Maus R, Bohling J, Knippenberg S, Kirchhof G, Nagata M, et al. Macrophage-inducible C-type lectin Mincle-expressing dendritic cells contribute to control of splenic Mycobacterium bovis BCG infection in mice. Infect Immun. 2015;83:184-96 pubmed publisher
  1073. Schuhmann M, Kraft P, Stoll G, Lorenz K, Meuth S, Wiendl H, et al. CD28 superagonist-mediated boost of regulatory T cells increases thrombo-inflammation and ischemic neurodegeneration during the acute phase of experimental stroke. J Cereb Blood Flow Metab. 2015;35:6-10 pubmed publisher
  1074. Becker A, Walcheck B, Bhattacharya D. ADAM17 limits the expression of CSF1R on murine hematopoietic progenitors. Exp Hematol. 2015;43:44-52.e1-3 pubmed publisher
  1075. Škrnjug I, Guzmán C, Rueckert C, Ruecker C. Cyclic GMP-AMP displays mucosal adjuvant activity in mice. PLoS ONE. 2014;9:e110150 pubmed publisher
  1076. Nagano T, Edamatsu H, Kobayashi K, Takenaka N, Yamamoto M, Sasaki N, et al. Phospholipase cε, an effector of ras and rap small GTPases, is required for airway inflammatory response in a mouse model of bronchial asthma. PLoS ONE. 2014;9:e108373 pubmed publisher
  1077. Maneva Radicheva L, Amatya C, Parker C, Ellefson J, Radichev I, Raghavan A, et al. Autoimmune diabetes is suppressed by treatment with recombinant human tissue Kallikrein-1. PLoS ONE. 2014;9:e107213 pubmed publisher
  1078. Donaldson D, Bradford B, Artis D, Mabbott N. Reciprocal regulation of lymphoid tissue development in the large intestine by IL-25 and IL-23. Mucosal Immunol. 2015;8:582-95 pubmed publisher
  1079. Tassi I, Claudio E, Wang H, Tang W, Ha H, Saret S, et al. The NF-κB regulator Bcl-3 governs dendritic cell antigen presentation functions in adaptive immunity. J Immunol. 2014;193:4303-11 pubmed publisher
  1080. Bertin S, Lozano Ruiz B, Bachiller V, García Martínez I, Herdman S, Zapater P, et al. Dual-specificity phosphatase 6 regulates CD4+ T-cell functions and restrains spontaneous colitis in IL-10-deficient mice. Mucosal Immunol. 2015;8:505-15 pubmed publisher
  1081. Castro Rojas C, Deason K, Hussain R, Hayardeny L, Cravens P, Yarovinsky F, et al. Testing effects of glatiramer acetate and fingolimod in an infectious model of CNS immune surveillance. J Neuroimmunol. 2014;276:232-5 pubmed publisher
  1082. Zasłona Z, Przybranowski S, Wilke C, Van Rooijen N, Teitz Tennenbaum S, Osterholzer J, et al. Resident alveolar macrophages suppress, whereas recruited monocytes promote, allergic lung inflammation in murine models of asthma. J Immunol. 2014;193:4245-53 pubmed publisher
  1083. Cao Y, Slaney C, Bidwell B, Parker B, Johnstone C, Rautela J, et al. BMP4 inhibits breast cancer metastasis by blocking myeloid-derived suppressor cell activity. Cancer Res. 2014;74:5091-102 pubmed publisher
  1084. Carty S, Koretzky G, Jordan M. Interleukin-4 regulates eomesodermin in CD8+ T cell development and differentiation. PLoS ONE. 2014;9:e106659 pubmed publisher
  1085. Wei F, Yang D, Tewary P, Li Y, Li S, Chen X, et al. The Alarmin HMGN1 contributes to antitumor immunity and is a potent immunoadjuvant. Cancer Res. 2014;74:5989-98 pubmed publisher
  1086. Chatterjee S, Thyagarajan K, Kesarwani P, Song J, Soloshchenko M, Fu J, et al. Reducing CD73 expression by IL1?-Programmed Th17 cells improves immunotherapeutic control of tumors. Cancer Res. 2014;74:6048-59 pubmed publisher
  1087. Naik E, Webster J, DeVoss J, Liu J, Suriben R, Dixit V. Regulation of proximal T cell receptor signaling and tolerance induction by deubiquitinase Usp9X. J Exp Med. 2014;211:1947-55 pubmed publisher
  1088. Herranz D, Ambesi Impiombato A, Palomero T, Schnell S, Belver L, Wendorff A, et al. A NOTCH1-driven MYC enhancer promotes T cell development, transformation and acute lymphoblastic leukemia. Nat Med. 2014;20:1130-7 pubmed publisher
  1089. Burton B, Britton G, Fang H, Verhagen J, Smithers B, Sabatos Peyton C, et al. Sequential transcriptional changes dictate safe and effective antigen-specific immunotherapy. Nat Commun. 2014;5:4741 pubmed publisher
  1090. Eberle M, Ebel P, Wegner M, Männich J, Tafferner N, Ferreirós N, et al. Regulation of ceramide synthase 6 in a spontaneous experimental autoimmune encephalomyelitis model is sex dependent. Biochem Pharmacol. 2014;92:326-35 pubmed publisher
  1091. Schwartz M, Kolhatkar N, Thouvenel C, Khim S, Rawlings D. CD4+ T cells and CD40 participate in selection and homeostasis of peripheral B cells. J Immunol. 2014;193:3492-502 pubmed publisher
  1092. Schwartz C, Oeser K, Prazeres da Costa C, Layland L, Voehringer D. T cell-derived IL-4/IL-13 protects mice against fatal Schistosoma mansoni infection independently of basophils. J Immunol. 2014;193:3590-9 pubmed publisher
  1093. Parker K, Sinha P, Horn L, Clements V, Yang H, Li J, et al. HMGB1 enhances immune suppression by facilitating the differentiation and suppressive activity of myeloid-derived suppressor cells. Cancer Res. 2014;74:5723-33 pubmed publisher
  1094. Chen J, Zhao Y, Zhang C, Chen H, Feng J, Chi X, et al. Persistent hepatitis C virus infections and hepatopathological manifestations in immune-competent humanized mice. Cell Res. 2014;24:1050-66 pubmed publisher
  1095. Kreiser S, Eckhardt J, Kuhnt C, Stein M, Krzyzak L, Seitz C, et al. Murine CD83-positive T cells mediate suppressor functions in vitro and in vivo. Immunobiology. 2015;220:270-9 pubmed publisher
  1096. Cremasco V, Woodruff M, Onder L, Cupovic J, Nieves Bonilla J, Schildberg F, et al. B cell homeostasis and follicle confines are governed by fibroblastic reticular cells. Nat Immunol. 2014;15:973-81 pubmed publisher
  1097. Budde H, Kolb S, Salinas Tejedor L, Wulf G, Reichardt H, Riggert J, et al. Modified extracorporeal photopheresis with cells from a healthy donor for acute graft-versus-host disease in a mouse model. PLoS ONE. 2014;9:e105896 pubmed publisher
  1098. Dai M, Yip Y, Hellstrom I, Hellstrom K. Curing mice with large tumors by locally delivering combinations of immunomodulatory antibodies. Clin Cancer Res. 2015;21:1127-38 pubmed publisher
  1099. Menon M, Sawada A, Chaturvedi A, Mishra P, Schuster Gossler K, Galla M, et al. Genetic deletion of SEPT7 reveals a cell type-specific role of septins in microtubule destabilization for the completion of cytokinesis. PLoS Genet. 2014;10:e1004558 pubmed publisher
  1100. Wu C, He S, Peng Y, Kushwaha K, Lin J, Dong J, et al. TSLPR deficiency attenuates atherosclerotic lesion development associated with the inhibition of TH17 cells and the promotion of regulator T cells in ApoE-deficient mice. J Mol Cell Cardiol. 2014;76:33-45 pubmed publisher
  1101. Penaloza MacMaster P, Kamphorst A, Wieland A, Araki K, Iyer S, West E, et al. Interplay between regulatory T cells and PD-1 in modulating T cell exhaustion and viral control during chronic LCMV infection. J Exp Med. 2014;211:1905-18 pubmed publisher
  1102. Ishihara M, Seo N, Mitsui J, Muraoka D, Tanaka M, Mineno J, et al. Systemic CD8+ T cell-mediated tumoricidal effects by intratumoral treatment of oncolytic herpes simplex virus with the agonistic monoclonal antibody for murine glucocorticoid-induced tumor necrosis factor receptor. PLoS ONE. 2014;9:e104669 pubmed publisher
  1103. Chuang H, Sheu W, Lin Y, Tsai C, Yang C, Cheng Y, et al. HGK/MAP4K4 deficiency induces TRAF2 stabilization and Th17 differentiation leading to insulin resistance. Nat Commun. 2014;5:4602 pubmed publisher
  1104. Denton A, Roberts E, Linterman M, Fearon D. Fibroblastic reticular cells of the lymph node are required for retention of resting but not activated CD8+ T cells. Proc Natl Acad Sci U S A. 2014;111:12139-44 pubmed publisher
  1105. Zhu Y, Knolhoff B, Meyer M, Nywening T, West B, Luo J, et al. CSF1/CSF1R blockade reprograms tumor-infiltrating macrophages and improves response to T-cell checkpoint immunotherapy in pancreatic cancer models. Cancer Res. 2014;74:5057-69 pubmed publisher
  1106. Cavaretta J, Sherer K, Lee K, Kim E, Issema R, Chung H. Polarized axonal surface expression of neuronal KCNQ potassium channels is regulated by calmodulin interaction with KCNQ2 subunit. PLoS ONE. 2014;9:e103655 pubmed publisher
  1107. Lo Sasso G, Menzies K, Mottis A, Piersigilli A, Perino A, Yamamoto H, et al. SIRT2 deficiency modulates macrophage polarization and susceptibility to experimental colitis. PLoS ONE. 2014;9:e103573 pubmed publisher
  1108. Kim K, Skora A, Li Z, Liu Q, Tam A, Blosser R, et al. Eradication of metastatic mouse cancers resistant to immune checkpoint blockade by suppression of myeloid-derived cells. Proc Natl Acad Sci U S A. 2014;111:11774-9 pubmed publisher
  1109. Céspedes P, Bueno S, Ramírez B, Gómez R, Riquelme S, Palavecino C, et al. Surface expression of the hRSV nucleoprotein impairs immunological synapse formation with T cells. Proc Natl Acad Sci U S A. 2014;111:E3214-23 pubmed publisher
  1110. Johannesson B, Sattler S, Semenova E, Pastore S, Kennedy Lydon T, Sampson R, et al. Insulin-like growth factor-1 induces regulatory T cell-mediated suppression of allergic contact dermatitis in mice. Dis Model Mech. 2014;7:977-85 pubmed publisher
  1111. Reeh K, Cardenas K, Bain V, Liu Z, LAURENT M, Manley N, et al. Ectopic TBX1 suppresses thymic epithelial cell differentiation and proliferation during thymus organogenesis. Development. 2014;141:2950-8 pubmed publisher
  1112. Boding L, Hansen A, Meroni G, Johansen B, Braunstein T, Bonefeld C, et al. Midline 1 directs lytic granule exocytosis and cytotoxicity of mouse killer T cells. Eur J Immunol. 2014;44:3109-18 pubmed publisher
  1113. Burton O, Logsdon S, Zhou J, Medina Tamayo J, Abdel Gadir A, Noval Rivas M, et al. Oral immunotherapy induces IgG antibodies that act through Fc?RIIb to suppress IgE-mediated hypersensitivity. J Allergy Clin Immunol. 2014;134:1310-1317.e6 pubmed publisher
  1114. Knuschke T, Bayer W, Rotan O, Sokolova V, Wadwa M, Kirschning C, et al. Prophylactic and therapeutic vaccination with a nanoparticle-based peptide vaccine induces efficient protective immunity during acute and chronic retroviral infection. Nanomedicine. 2014;10:1787-98 pubmed publisher
  1115. Furugaki K, Cui L, Kunisawa Y, Osada K, Shinkai K, Tanaka M, et al. Intraperitoneal administration of a tumor-associated antigen SART3, CD40L, and GM-CSF gene-loaded polyplex micelle elicits a vaccine effect in mouse tumor models. PLoS ONE. 2014;9:e101854 pubmed publisher
  1116. Honjo K, Kubagawa Y, Suzuki Y, Takagi M, Ohno H, Bucy R, et al. Enhanced auto-antibody production and Mott cell formation in Fc?R-deficient autoimmune mice. Int Immunol. 2014;26:659-72 pubmed publisher
  1117. Boyoglu Barnum S, Chirkova T, Todd S, Barnum T, Gaston K, Jorquera P, et al. Prophylaxis with a respiratory syncytial virus (RSV) anti-G protein monoclonal antibody shifts the adaptive immune response to RSV rA2-line19F infection from Th2 to Th1 in BALB/c mice. J Virol. 2014;88:10569-83 pubmed publisher
  1118. Cowan J, McCarthy N, Parnell S, White A, Bacon A, Serge A, et al. Differential requirement for CCR4 and CCR7 during the development of innate and adaptive ??T cells in the adult thymus. J Immunol. 2014;193:1204-12 pubmed publisher
  1119. Vegran F, Berger H, Boidot R, Mignot G, Bruchard M, Dosset M, et al. The transcription factor IRF1 dictates the IL-21-dependent anticancer functions of TH9 cells. Nat Immunol. 2014;15:758-66 pubmed publisher
  1120. Madireddi S, Eun S, Lee S, Nemčovičová I, Mehta A, Zajonc D, et al. Galectin-9 controls the therapeutic activity of 4-1BB-targeting antibodies. J Exp Med. 2014;211:1433-48 pubmed publisher
  1121. Vogelzang A, Perdomo C, Zedler U, Kuhlmann S, Hurwitz R, Gengenbacher M, et al. Central memory CD4+ T cells are responsible for the recombinant Bacillus Calmette-Guérin ?ureC::hly vaccine's superior protection against tuberculosis. J Infect Dis. 2014;210:1928-37 pubmed publisher
  1122. Zhou Q, Ho A, Schlitzer A, Tang Y, Wong K, Wong F, et al. GM-CSF-licensed CD11b+ lung dendritic cells orchestrate Th2 immunity to Blomia tropicalis. J Immunol. 2014;193:496-509 pubmed publisher
  1123. Moreno M, Bannerman P, Ma J, Guo F, Miers L, Soulika A, et al. Conditional ablation of astroglial CCL2 suppresses CNS accumulation of M1 macrophages and preserves axons in mice with MOG peptide EAE. J Neurosci. 2014;34:8175-85 pubmed publisher
  1124. Au Yeung B, Melichar H, Ross J, Cheng D, Zikherman J, Shokat K, et al. Quantitative and temporal requirements revealed for Zap70 catalytic activity during T cell development. Nat Immunol. 2014;15:687-94 pubmed publisher
  1125. Pastille E, Bardini K, Fleissner D, Adamczyk A, Frede A, Wadwa M, et al. Transient ablation of regulatory T cells improves antitumor immunity in colitis-associated colon cancer. Cancer Res. 2014;74:4258-69 pubmed publisher
  1126. Alsadeq A, Hobeika E, Medgyesi D, Kläsener K, Reth M. The role of the Syk/Shp-1 kinase-phosphatase equilibrium in B cell development and signaling. J Immunol. 2014;193:268-76 pubmed publisher
  1127. Geem D, Medina Contreras O, McBride M, Newberry R, Koni P, Denning T. Specific microbiota-induced intestinal Th17 differentiation requires MHC class II but not GALT and mesenteric lymph nodes. J Immunol. 2014;193:431-8 pubmed publisher
  1128. Chen Z, Ozbun L, Chong N, Wallecha A, Berzofsky J, Khleif S. Episomal expression of truncated listeriolysin O in LmddA-LLO-E7 vaccine enhances antitumor efficacy by preferentially inducing expansions of CD4+FoxP3- and CD8+ T cells. Cancer Immunol Res. 2014;2:911-22 pubmed publisher
  1129. Smith N, Wissink E, Wang J, Pinello J, Davenport M, Grimson A, et al. Rapid proliferation and differentiation impairs the development of memory CD8+ T cells in early life. J Immunol. 2014;193:177-84 pubmed publisher
  1130. Gao X, Usas A, Proto J, Lu A, Cummins J, Proctor A, et al. Role of donor and host cells in muscle-derived stem cell-mediated bone repair: differentiation vs. paracrine effects. FASEB J. 2014;28:3792-809 pubmed publisher
  1131. Weber G, Chousterman B, Hilgendorf I, Robbins C, Theurl I, Gerhardt L, et al. Pleural innate response activator B cells protect against pneumonia via a GM-CSF-IgM axis. J Exp Med. 2014;211:1243-56 pubmed publisher
  1132. Staumont Sallé D, Fleury S, Lazzari A, Molendi Coste O, Hornez N, Lavogiez C, et al. CX?CL1 (fractalkine) and its receptor CX?CR1 regulate atopic dermatitis by controlling effector T cell retention in inflamed skin. J Exp Med. 2014;211:1185-96 pubmed publisher
  1133. Kitagawa K, Shibata K, Matsumoto A, Matsumoto M, Ohhata T, Nakayama K, et al. Fbw7 targets GATA3 through cyclin-dependent kinase 2-dependent proteolysis and contributes to regulation of T-cell development. Mol Cell Biol. 2014;34:2732-44 pubmed
  1134. Vargas A, Zhou S, Ethier Chiasson M, Flipo D, Lafond J, Gilbert C, et al. Syncytin proteins incorporated in placenta exosomes are important for cell uptake and show variation in abundance in serum exosomes from patients with preeclampsia. FASEB J. 2014;28:3703-19 pubmed publisher
  1135. Sreedharan R, Chen S, Miller M, Haribhai D, Williams C, Van Why S. Mice with an absent stress response are protected against ischemic renal injury. Kidney Int. 2014;86:515-24 pubmed publisher
  1136. Jakobsson T, Vedin L, Hassan T, Venteclef N, Greco D, D AMATO M, et al. The oxysterol receptor LXR? protects against DSS- and TNBS-induced colitis in mice. Mucosal Immunol. 2014;7:1416-28 pubmed publisher
  1137. Zhang Y, Yan W, Mathew E, Bednar F, Wan S, Collins M, et al. CD4+ T lymphocyte ablation prevents pancreatic carcinogenesis in mice. Cancer Immunol Res. 2014;2:423-35 pubmed publisher
  1138. Smolarchuk C, Zhu L, Chan W, Anderson C. T cells generated in the absence of a thoracic thymus fail to establish homeostasis. Eur J Immunol. 2014;44:2263-73 pubmed publisher
  1139. Ebert S, Becker M, Lemmermann N, Büttner J, Michel A, Taube C, et al. Mast cells expedite control of pulmonary murine cytomegalovirus infection by enhancing the recruitment of protective CD8 T cells to the lungs. PLoS Pathog. 2014;10:e1004100 pubmed publisher
  1140. Skrnjug I, Rueckert C, Libanova R, Lienenklaus S, Weiss S, Guzman C. The mucosal adjuvant cyclic di-AMP exerts immune stimulatory effects on dendritic cells and macrophages. PLoS ONE. 2014;9:e95728 pubmed publisher
  1141. Xu Y, Hyun Y, Lim K, Lee H, Cummings R, Gerber S, et al. Optogenetic control of chemokine receptor signal and T-cell migration. Proc Natl Acad Sci U S A. 2014;111:6371-6 pubmed publisher
  1142. Kim B, Park H, Shin J, Kim S, Kim S. Human placental extract reduces allergic inflammation in a murine allergic rhinitis model. Laryngoscope. 2014;124:E399-404 pubmed publisher
  1143. Dupont C, Christian D, Selleck E, Pepper M, Leney Greene M, Harms Pritchard G, et al. Parasite fate and involvement of infected cells in the induction of CD4+ and CD8+ T cell responses to Toxoplasma gondii. PLoS Pathog. 2014;10:e1004047 pubmed publisher
  1144. Könnecke I, Serra A, El Khassawna T, Schlundt C, Schell H, Hauser A, et al. T and B cells participate in bone repair by infiltrating the fracture callus in a two-wave fashion. Bone. 2014;64:155-65 pubmed publisher
  1145. Inoue M, Arikawa T, Chen Y, Moriwaki Y, Price M, Brown M, et al. T cells down-regulate macrophage TNF production by IRAK1-mediated IL-10 expression and control innate hyperinflammation. Proc Natl Acad Sci U S A. 2014;111:5295-300 pubmed publisher
  1146. Cochain C, Chaudhari S, Koch M, Wiendl H, Eckstein H, Zernecke A. Programmed cell death-1 deficiency exacerbates T cell activation and atherogenesis despite expansion of regulatory T cells in atherosclerosis-prone mice. PLoS ONE. 2014;9:e93280 pubmed publisher
  1147. Ntranos A, Hall O, Robinson D, Grishkan I, Schott J, Tosi D, et al. FTY720 impairs CD8 T-cell function independently of the sphingosine-1-phosphate pathway. J Neuroimmunol. 2014;270:13-21 pubmed publisher
  1148. Keswani T, Bhattacharyya A. Differential role of T regulatory and Th17 in Swiss mice infected with Plasmodium berghei ANKA and Plasmodium yoelii. Exp Parasitol. 2014;141:82-92 pubmed publisher
  1149. Harland K, Day E, Apte S, Russ B, Doherty P, Turner S, et al. Epigenetic plasticity of Cd8a locus during CD8(+) T-cell development and effector differentiation and reprogramming. Nat Commun. 2014;5:3547 pubmed publisher
  1150. Koga T, Hedrich C, Mizui M, Yoshida N, Otomo K, Lieberman L, et al. CaMK4-dependent activation of AKT/mTOR and CREM-? underlies autoimmunity-associated Th17 imbalance. J Clin Invest. 2014;124:2234-45 pubmed publisher
  1151. Frese Schaper M, Keil A, Yagita H, Steiner S, Falk W, Schmid R, et al. Influence of natural killer cells and perforin?mediated cytolysis on the development of chemically induced lung cancer in A/J mice. Cancer Immunol Immunother. 2014;63:571-80 pubmed
  1152. Takei S, Omoto C, Kitagawa K, Morishita N, Katayama T, Shigemura K, et al. Oral administration of genetically modified Bifidobacterium displaying HCV-NS3 multi-epitope fusion protein could induce an HCV-NS3-specific systemic immune response in mice. Vaccine. 2014;32:3066-74 pubmed publisher
  1153. Kawai Y, Ouchida R, Yamasaki S, Dragone L, Tsubata T, Wang J. LAPTM5 promotes lysosomal degradation of intracellular CD3? but not of cell surface CD3?. Immunol Cell Biol. 2014;92:527-34 pubmed publisher
  1154. León B, Bradley J, Lund F, Randall T, Ballesteros Tato A. FoxP3+ regulatory T cells promote influenza-specific Tfh responses by controlling IL-2 availability. Nat Commun. 2014;5:3495 pubmed publisher
  1155. Li J, Arévalo M, Chen Y, Posadas O, Smith J, Zeng M. Intranasal immunization with influenza antigens conjugated with cholera toxin subunit B stimulates broad spectrum immunity against influenza viruses. Hum Vaccin Immunother. 2014;10:1211-20 pubmed publisher
  1156. Yan J, Villarreal D, Racine T, Chu J, Walters J, Morrow M, et al. Protective immunity to H7N9 influenza viruses elicited by synthetic DNA vaccine. Vaccine. 2014;32:2833-42 pubmed publisher
  1157. Fu H, Kishore M, Gittens B, Wang G, Coe D, Komarowska I, et al. Self-recognition of the endothelium enables regulatory T-cell trafficking and defines the kinetics of immune regulation. Nat Commun. 2014;5:3436 pubmed publisher
  1158. Hirayama T, Asano Y, Iida H, Watanabe T, Nakamura T, Goitsuka R. Meis1 is required for the maintenance of postnatal thymic epithelial cells. PLoS ONE. 2014;9:e89885 pubmed publisher
  1159. Martins K, Steffens J, Van Tongeren S, Wells J, Bergeron A, Dickson S, et al. Toll-like receptor agonist augments virus-like particle-mediated protection from Ebola virus with transient immune activation. PLoS ONE. 2014;9:e89735 pubmed publisher
  1160. Vanoaica L, Richman L, Jaworski M, Darshan D, Luther S, Kühn L. Conditional deletion of ferritin h in mice reduces B and T lymphocyte populations. PLoS ONE. 2014;9:e89270 pubmed publisher
  1161. Okada T, Nitta T, Kaji K, Takashima A, Oda H, Tamehiro N, et al. Differential function of Themis CABIT domains during T cell development. PLoS ONE. 2014;9:e89115 pubmed publisher
  1162. Chognard G, Bellemare L, Pelletier A, Domínguez Punaro M, Beauchamp C, Guyon M, et al. The dichotomous pattern of IL-12r and IL-23R expression elucidates the role of IL-12 and IL-23 in inflammation. PLoS ONE. 2014;9:e89092 pubmed publisher
  1163. Nakahata S, Ichikawa T, Maneesaay P, Saito Y, Nagai K, Tamura T, et al. Loss of NDRG2 expression activates PI3K-AKT signalling via PTEN phosphorylation in ATLL and other cancers. Nat Commun. 2014;5:3393 pubmed publisher
  1164. Lee J, Walsh M, Hoehn K, James D, Wherry E, Choi Y. Regulator of fatty acid metabolism, acetyl coenzyme a carboxylase 1, controls T cell immunity. J Immunol. 2014;192:3190-9 pubmed publisher
  1165. Ataide M, Andrade W, Zamboni D, Wang D, Souza M, Franklin B, et al. Malaria-induced NLRP12/NLRP3-dependent caspase-1 activation mediates inflammation and hypersensitivity to bacterial superinfection. PLoS Pathog. 2014;10:e1003885 pubmed publisher
  1166. Misumi I, Whitmire J. B cell depletion curtails CD4+ T cell memory and reduces protection against disseminating virus infection. J Immunol. 2014;192:1597-608 pubmed publisher
  1167. Mercadante A, Perobelli S, Alves A, Gonçalves Silva T, Mello W, Gomes Santos A, et al. Oral combined therapy with probiotics and alloantigen induces B cell-dependent long-lasting specific tolerance. J Immunol. 2014;192:1928-37 pubmed publisher
  1168. Joedicke J, Dietze K, Zelinskyy G, Dittmer U. The phenotype and activation status of regulatory T cells during Friend retrovirus infection. Virol Sin. 2014;29:48-60 pubmed publisher
  1169. Xia S, Wei J, Wang J, Sun H, Zheng W, Li Y, et al. A requirement of dendritic cell-derived interleukin-27 for the tumor infiltration of regulatory T cells. J Leukoc Biol. 2014;95:733-742 pubmed
  1170. Brenndörfer E, Brass A, Karthe J, Ahlen G, Bode J, Sallberg M. Cleavage of the T cell protein tyrosine phosphatase by the hepatitis C virus nonstructural 3/4A protease induces a Th1 to Th2 shift reversible by ribavirin therapy. J Immunol. 2014;192:1671-80 pubmed publisher
  1171. Gaughan A, Wang J, Pelletier R, Nadasdy T, Brodsky S, Roy S, et al. Key role for CD4 T cells during mixed antibody-mediated rejection of renal allografts. Am J Transplant. 2014;14:284-94 pubmed publisher
  1172. Xiong H, Maraver A, Latkowski J, Henderson T, Schlessinger K, Ding Y, et al. Characterization of two distinct lymphoproliferative diseases caused by ectopic expression of the Notch ligand DLL4 on T cells. PLoS ONE. 2013;8:e84841 pubmed publisher
  1173. Hu Y, Xiao H, Shi T, Oppenheim J, Chen X. Progranulin promotes tumour necrosis factor-induced proliferation of suppressive mouse CD4? Foxp3? regulatory T cells. Immunology. 2014;142:193-201 pubmed publisher
  1174. Costa R, Bergwerf I, Santermans E, De Vocht N, Praet J, Daans J, et al. Distinct in vitro properties of embryonic and extraembryonic fibroblast-like cells are reflected in their in vivo behavior following grafting in the adult mouse brain. Cell Transplant. 2015;24:223-33 pubmed publisher
  1175. Qu S, Ou Yang H, He Y, Li Z, Shi J, Song L, et al. Der p2 recombinant bacille Calmette-Guerin priming of bone marrow-derived dendritic cells suppresses Der p2-induced T helper17 function in a mouse model of asthma. Respirology. 2014;19:122-31 pubmed publisher
  1176. Saligrama N, Case L, Krementsov D, Teuscher C. Histamine H₂ receptor signaling × environment interactions determine susceptibility to experimental allergic encephalomyelitis. FASEB J. 2014;28:1898-909 pubmed publisher
  1177. Kim E, Gasper D, Lee S, Plisch E, Svaren J, Suresh M. Bach2 regulates homeostasis of Foxp3+ regulatory T cells and protects against fatal lung disease in mice. J Immunol. 2014;192:985-95 pubmed publisher
  1178. McGuire D, Rowse A, Li H, Peng B, Sestero C, Cashman K, et al. CD5 enhances Th17-cell differentiation by regulating IFN-? response and ROR?t localization. Eur J Immunol. 2014;44:1137-42 pubmed publisher
  1179. Kim H, Lee H, Chang Y, Pichavant M, Shore S, Fitzgerald K, et al. Interleukin-17-producing innate lymphoid cells and the NLRP3 inflammasome facilitate obesity-associated airway hyperreactivity. Nat Med. 2014;20:54-61 pubmed publisher
  1180. Salem H, Trojanowski B, Fiedler K, Maier H, Schirmbeck R, Wagner M, et al. Long-term IKK2/NF-?B signaling in pancreatic ?-cells induces immune-mediated diabetes. Diabetes. 2014;63:960-75 pubmed publisher
  1181. Murphy K, Erickson J, Johnson C, Seiler C, Bedi J, Hu P, et al. CD8+ T cell-independent tumor regression induced by Fc-OX40L and therapeutic vaccination in a mouse model of glioma. J Immunol. 2014;192:224-33 pubmed publisher
  1182. Gujar S, Clements D, Dielschneider R, Helson E, Marcato P, Lee P. Gemcitabine enhances the efficacy of reovirus-based oncotherapy through anti-tumour immunological mechanisms. Br J Cancer. 2014;110:83-93 pubmed publisher
  1183. Chan I, Jain R, Tessmer M, Gorman D, Mangadu R, Sathe M, et al. Interleukin-23 is sufficient to induce rapid de novo gut tumorigenesis, independent of carcinogens, through activation of innate lymphoid cells. Mucosal Immunol. 2014;7:842-56 pubmed publisher
  1184. Lee P, Puppi M, Schluns K, Yu Lee L, Dong C, Lacorazza H. The transcription factor E74-like factor 4 suppresses differentiation of proliferating CD4+ T cells to the Th17 lineage. J Immunol. 2014;192:178-88 pubmed publisher
  1185. Rudell J, Borges L, Rudell J, Beck K, Ferns M. Determinants in the ? and ? subunit cytoplasmic loop regulate Golgi trafficking and surface expression of the muscle acetylcholine receptor. J Biol Chem. 2014;289:203-14 pubmed publisher
  1186. Fu G, Casas J, Rigaud S, Rybakin V, Lambolez F, Brzostek J, et al. Themis sets the signal threshold for positive and negative selection in T-cell development. Nature. 2013;504:441-5 pubmed publisher
  1187. Diaz de Durana Y, Lau J, Knee D, Filippi C, Londei M, McNamara P, et al. IL-2 immunotherapy reveals potential for innate beta cell regeneration in the non-obese diabetic mouse model of autoimmune diabetes. PLoS ONE. 2013;8:e78483 pubmed publisher
  1188. Griffiths K, Stylianou E, Poyntz H, Betts G, Fletcher H, McShane H. Cholera toxin enhances vaccine-induced protection against Mycobacterium tuberculosis challenge in mice. PLoS ONE. 2013;8:e78312 pubmed publisher
  1189. Moriya T, Fukatsu K, Noguchi M, Okamoto K, Murakoshi S, Saitoh D, et al. Intravenous administration of high-dose Paclitaxel reduces gut-associated lymphoid tissue cell number and respiratory immunoglobulin A concentrations in mice. Surg Infect (Larchmt). 2014;15:50-7 pubmed publisher
  1190. Schmitt E, Haribhai D, Jeschke J, Co D, Ziegelbauer J, Yan K, et al. Chronic follicular bronchiolitis requires antigen-specific regulatory T cell control to prevent fatal disease progression. J Immunol. 2013;191:5460-76 pubmed publisher
  1191. Iwata A, Kawashima S, Kobayashi M, Okubo A, Kawashima H, Suto A, et al. Th2-type inflammation instructs inflammatory dendritic cells to induce airway hyperreactivity. Int Immunol. 2014;26:103-14 pubmed publisher
  1192. Brunner S, Schiechl G, Kesselring R, Martin M, Balam S, Schlitt H, et al. IL-13 signaling via IL-13R?2 triggers TGF-?1-dependent allograft fibrosis. Transplant Res. 2013;2:16 pubmed publisher
  1193. Weng T, Huang S, Yen M, Lin C, Chen Y, Lin C, et al. A novel cancer therapeutic using thrombospondin 1 in dendritic cells. Mol Ther. 2014;22:292-302 pubmed publisher
  1194. Salinas N, Olguín J, Castellanos C, Saavedra R. T cell suppression in vitro during Toxoplasma gondii infection is the result of IL-2 competition between Tregs and T cells leading to death of proliferating T cells. Scand J Immunol. 2014;79:1-11 pubmed publisher
  1195. Chopra M, Lang I, Salzmann S, Pachel C, Kraus S, Bäuerlein C, et al. Tumor necrosis factor induces tumor promoting and anti-tumoral effects on pancreatic cancer via TNFR1. PLoS ONE. 2013;8:e75737 pubmed publisher
  1196. McPhee C, Bubier J, Sproule T, Park G, Steinbuck M, Schott W, et al. IL-21 is a double-edged sword in the systemic lupus erythematosus-like disease of BXSB.Yaa mice. J Immunol. 2013;191:4581-8 pubmed publisher
  1197. Nussbaum J, Van Dyken S, von Moltke J, Cheng L, Mohapatra A, Molofsky A, et al. Type 2 innate lymphoid cells control eosinophil homeostasis. Nature. 2013;502:245-8 pubmed publisher
  1198. Harimoto H, Shimizu M, Nakagawa Y, Nakatsuka K, Wakabayashi A, Sakamoto C, et al. Inactivation of tumor-specific CD8? CTLs by tumor-infiltrating tolerogenic dendritic cells. Immunol Cell Biol. 2013;91:545-55 pubmed publisher
  1199. Povinelli B, Nemeth M. Wnt5a regulates hematopoietic stem cell proliferation and repopulation through the Ryk receptor. Stem Cells. 2014;32:105-15 pubmed publisher
  1200. Bittner S, Ruck T, Schuhmann M, Herrmann A, Moha Ou Maati H, Bobak N, et al. Endothelial TWIK-related potassium channel-1 (TREK1) regulates immune-cell trafficking into the CNS. Nat Med. 2013;19:1161-5 pubmed publisher
  1201. Fuertbauer E, Zaujec J, Uhrin P, Raab I, Weber M, Schachner H, et al. Thymic medullar conduits-associated podoplanin promotes natural regulatory T cells. Immunol Lett. 2013;154:31-41 pubmed publisher
  1202. Sumitomo S, Fujio K, Okamura T, Morita K, Ishigaki K, Suzukawa K, et al. Transcription factor early growth response 3 is associated with the TGF-?1 expression and the regulatory activity of CD4-positive T cells in vivo. J Immunol. 2013;191:2351-9 pubmed publisher
  1203. Krementsov D, Wall E, Martin R, Subramanian M, Noubade R, del Rio R, et al. Histamine H(3) receptor integrates peripheral inflammatory signals in the neurogenic control of immune responses and autoimmune disease susceptibility. PLoS ONE. 2013;8:e62743 pubmed publisher
  1204. Pioli P, Dahlem T, Weis J, Weis J. Deletion of Snai2 and Snai3 results in impaired physical development compounded by lymphocyte deficiency. PLoS ONE. 2013;8:e69216 pubmed publisher
  1205. Saligrama N, Case L, del Rio R, Noubade R, Teuscher C. Systemic lack of canonical histamine receptor signaling results in increased resistance to autoimmune encephalomyelitis. J Immunol. 2013;191:614-22 pubmed publisher
  1206. Qiao G, Zhao Y, Li Z, Tang P, Langdon W, Yang T, et al. T cell activation threshold regulated by E3 ubiquitin ligase Cbl-b determines fate of inducible regulatory T cells. J Immunol. 2013;191:632-9 pubmed publisher
  1207. Redecke V, Wu R, Zhou J, Finkelstein D, Chaturvedi V, High A, et al. Hematopoietic progenitor cell lines with myeloid and lymphoid potential. Nat Methods. 2013;10:795-803 pubmed publisher
  1208. Lahiji A, Kucerova Levisohn M, Lovett J, Holmes R, Zuniga Pflucker J, Ortiz B. Complete TCR-? gene locus control region activity in T cells derived in vitro from embryonic stem cells. J Immunol. 2013;191:472-9 pubmed publisher
  1209. Cravens P, Kieseier B, Hussain R, Herndon E, Arellano B, Ben L, et al. The neonatal CNS is not conducive for encephalitogenic Th1 T cells and B cells during experimental autoimmune encephalomyelitis. J Neuroinflammation. 2013;10:67 pubmed publisher
  1210. Barron L, Smith A, El Kasmi K, Qualls J, Huang X, Cheever A, et al. Role of arginase 1 from myeloid cells in th2-dominated lung inflammation. PLoS ONE. 2013;8:e61961 pubmed publisher
  1211. Clarke R, Yzaguirre A, Yashiro Ohtani Y, Bondue A, Blanpain C, Pear W, et al. The expression of Sox17 identifies and regulates haemogenic endothelium. Nat Cell Biol. 2013;15:502-10 pubmed publisher
  1212. Chaimowitz N, Falanga Y, Ryan J, Conrad D. Fyn kinase is required for optimal humoral responses. PLoS ONE. 2013;8:e60640 pubmed publisher
  1213. Billich A, Baumruker T, Beerli C, Bigaud M, Bruns C, Calzascia T, et al. Partial deficiency of sphingosine-1-phosphate lyase confers protection in experimental autoimmune encephalomyelitis. PLoS ONE. 2013;8:e59630 pubmed publisher
  1214. Vink P, Smout W, Driessen Engels L, de Bruin A, Delsing D, Krajnc Franken M, et al. In vivo knockdown of TAK1 accelerates bone marrow proliferation/differentiation and induces systemic inflammation. PLoS ONE. 2013;8:e57348 pubmed publisher
  1215. Koning J, Kooij G, de Vries H, Nolte M, Mebius R. Mesenchymal stem cells are mobilized from the bone marrow during inflammation. Front Immunol. 2013;4:49 pubmed publisher
  1216. Toker A, Engelbert D, Garg G, Polansky J, Floess S, Miyao T, et al. Active demethylation of the Foxp3 locus leads to the generation of stable regulatory T cells within the thymus. J Immunol. 2013;190:3180-8 pubmed publisher
  1217. Khan O, Akula M, Skålén K, Karlsson C, Ståhlman M, Young S, et al. Targeting GGTase-I activates RHOA, increases macrophage reverse cholesterol transport, and reduces atherosclerosis in mice. Circulation. 2013;127:782-90 pubmed publisher
  1218. Kipari T, Hadoke P, Iqbal J, Man T, Miller E, Coutinho A, et al. 11?-hydroxysteroid dehydrogenase type 1 deficiency in bone marrow-derived cells reduces atherosclerosis. FASEB J. 2013;27:1519-31 pubmed publisher
  1219. Kłossowicz M, Scirka B, Suchanek J, Marek Bukowiec K, Kisielow P, Aguado E, et al. Assessment of caspase mediated degradation of linker for activation of T cells (LAT) at a single cell level. J Immunol Methods. 2013;389:9-17 pubmed publisher
  1220. Mathew R, Seiler M, Scanlon S, Mao A, Constantinides M, Bertozzi Villa C, et al. BTB-ZF factors recruit the E3 ligase cullin 3 to regulate lymphoid effector programs. Nature. 2012;491:618-21 pubmed publisher
  1221. Powell N, Walker A, Stolarczyk E, Canavan J, Gökmen M, Marks E, et al. The transcription factor T-bet regulates intestinal inflammation mediated by interleukin-7 receptor+ innate lymphoid cells. Immunity. 2012;37:674-84 pubmed publisher
  1222. Yassai M, Cooley B, Gorski J. Developmental dynamics of post-selection thymic DN iNKT. PLoS ONE. 2012;7:e43509 pubmed publisher
  1223. Uto Konomi A, Miyauchi K, Ozaki N, Motomura Y, Suzuki Y, Yoshimura A, et al. Dysregulation of suppressor of cytokine signaling 3 in keratinocytes causes skin inflammation mediated by interleukin-20 receptor-related cytokines. PLoS ONE. 2012;7:e40343 pubmed publisher
  1224. Saligrama N, Noubade R, Case L, del Rio R, Teuscher C. Combinatorial roles for histamine H1-H2 and H3-H4 receptors in autoimmune inflammatory disease of the central nervous system. Eur J Immunol. 2012;42:1536-46 pubmed publisher
  1225. Atkinson S, Usher P, Kvist P, Markholst H, Haase C, Nansen A. Establishment and characterization of a sustained delayed-type hypersensitivity model with arthritic manifestations in C57BL/6J mice. Arthritis Res Ther. 2012;14:R134 pubmed publisher
  1226. Zhang N, Bevan M. TGF-? signaling to T cells inhibits autoimmunity during lymphopenia-driven proliferation. Nat Immunol. 2012;13:667-73 pubmed publisher
  1227. Golias J, Schwarzer M, Wallner M, Kverka M, Kozakova H, Srůtková D, et al. Heat-induced structural changes affect OVA-antigen processing and reduce allergic response in mouse model of food allergy. PLoS ONE. 2012;7:e37156 pubmed publisher
  1228. Jenkins C, Shevchuk O, Giambra V, Lam S, Carboni J, Gottardis M, et al. IGF signaling contributes to malignant transformation of hematopoietic progenitors by the MLL-AF9 oncoprotein. Exp Hematol. 2012;40:715-723.e6 pubmed publisher
  1229. Chevrier S, Genton C, Malissen B, Malissen M, Acha Orbea H. Dominant Role of CD80-CD86 Over CD40 and ICOSL in the Massive Polyclonal B Cell Activation Mediated by LAT(Y136F) CD4(+) T Cells. Front Immunol. 2012;3:27 pubmed publisher
  1230. Uchiyama M, Jin X, Zhang Q, Hirai T, Amano A, Bashuda H, et al. Auditory stimulation of opera music induced prolongation of murine cardiac allograft survival and maintained generation of regulatory CD4+CD25+ cells. J Cardiothorac Surg. 2012;7:26 pubmed publisher
  1231. Loebbermann J, Schnoeller C, Thornton H, Durant L, Sweeney N, Schuijs M, et al. IL-10 regulates viral lung immunopathology during acute respiratory syncytial virus infection in mice. PLoS ONE. 2012;7:e32371 pubmed publisher
  1232. Kyaw T, Tay C, Hosseini H, Kanellakis P, Gadowski T, Mackay F, et al. Depletion of B2 but not B1a B cells in BAFF receptor-deficient ApoE mice attenuates atherosclerosis by potently ameliorating arterial inflammation. PLoS ONE. 2012;7:e29371 pubmed publisher
  1233. Blankenhorn E, Butterfield R, Case L, Wall E, del Rio R, DIEHL S, et al. Genetics of experimental allergic encephalomyelitis supports the role of T helper cells in multiple sclerosis pathogenesis. Ann Neurol. 2011;70:887-96 pubmed publisher
  1234. del Rio R, Noubade R, Saligrama N, Wall E, Krementsov D, Poynter M, et al. Histamine H4 receptor optimizes T regulatory cell frequency and facilitates anti-inflammatory responses within the central nervous system. J Immunol. 2012;188:541-7 pubmed publisher
  1235. Liang H, Reinhardt R, Bando J, Sullivan B, Ho I, Locksley R. Divergent expression patterns of IL-4 and IL-13 define unique functions in allergic immunity. Nat Immunol. 2011;13:58-66 pubmed publisher
  1236. Salti S, Hammelev E, Grewal J, Reddy S, Zemple S, Grossman W, et al. Granzyme B regulates antiviral CD8+ T cell responses. J Immunol. 2011;187:6301-9 pubmed publisher
  1237. Badeaux A, Yang Y, Cardenas K, Vemulapalli V, Chen K, Kusewitt D, et al. Loss of the methyl lysine effector protein PHF20 impacts the expression of genes regulated by the lysine acetyltransferase MOF. J Biol Chem. 2012;287:429-37 pubmed publisher
  1238. Wang R, Xie H, Huang Z, Ma J, Fang X, Ding Y, et al. T cell factor 1 regulates thymocyte survival via a RORγt-dependent pathway. J Immunol. 2011;187:5964-73 pubmed publisher
  1239. McPhee C, Sproule T, Shin D, Bubier J, Schott W, Steinbuck M, et al. MHC class I family proteins retard systemic lupus erythematosus autoimmunity and B cell lymphomagenesis. J Immunol. 2011;187:4695-704 pubmed publisher
  1240. Galand C, Donnou S, Crozet L, Brunet S, Touitou V, Ouakrim H, et al. Th17 cells are involved in the local control of tumor progression in primary intraocular lymphoma. PLoS ONE. 2011;6:e24622 pubmed publisher
  1241. Suliman S, Tan J, Xu K, Kousis P, Kowalski P, Chang G, et al. Notch3 is dispensable for thymocyte ?-selection and Notch1-induced T cell leukemogenesis. PLoS ONE. 2011;6:e24937 pubmed publisher
  1242. Bunnell T, Burbach B, Shimizu Y, Ervasti J. ?-Actin specifically controls cell growth, migration, and the G-actin pool. Mol Biol Cell. 2011;22:4047-58 pubmed publisher
  1243. Yan S, Wang L, Liu N, Wang Y, Chu Y. Critical role of interleukin-17/interleukin-17 receptor axis in mediating Con A-induced hepatitis. Immunol Cell Biol. 2012;90:421-8 pubmed publisher
  1244. Tousif S, Singh Y, Prasad D, Sharma P, Van Kaer L, Das G. T cells from Programmed Death-1 deficient mice respond poorly to Mycobacterium tuberculosis infection. PLoS ONE. 2011;6:e19864 pubmed publisher
  1245. Mota B, Gallardo Romero N, Trindade G, Keckler M, Karem K, Carroll D, et al. Adverse events post smallpox-vaccination: insights from tail scarification infection in mice with Vaccinia virus. PLoS ONE. 2011;6:e18924 pubmed publisher
  1246. Valentino M, Maben Z, Hensley L, Woolard M, Kawula T, Frelinger J, et al. Identification of T-cell epitopes in Francisella tularensis using an ordered protein array of serological targets. Immunology. 2011;132:348-60 pubmed publisher
  1247. Gibbert K, Dietze K, Zelinskyy G, Lang K, Barchet W, Kirschning C, et al. Polyinosinic-polycytidylic acid treatment of Friend retrovirus-infected mice improves functional properties of virus-specific T cells and prevents virus-induced disease. J Immunol. 2010;185:6179-89 pubmed publisher
  1248. Mandal M, Marzouk A, Donnelly R, Ponzio N. Maternal immune stimulation during pregnancy affects adaptive immunity in offspring to promote development of TH17 cells. Brain Behav Immun. 2011;25:863-71 pubmed publisher
  1249. Mohr C, Arapovic J, Mühlbach H, Panzer M, Weyn A, Dölken L, et al. A spread-deficient cytomegalovirus for assessment of first-target cells in vaccination. J Virol. 2010;84:7730-42 pubmed publisher
  1250. Coffey F, Manser T. Expression of cellular FLIP by B cells is required for their participation in an immune response. J Immunol. 2010;184:4871-9 pubmed publisher
  1251. Zavitz C, Bauer C, Gaschler G, Fraser K, Strieter R, Hogaboam C, et al. Dysregulated macrophage-inflammatory protein-2 expression drives illness in bacterial superinfection of influenza. J Immunol. 2010;184:2001-13 pubmed publisher
  1252. Kim S, Prout M, Ramshaw H, Lopez A, LeGros G, Min B. Cutting edge: basophils are transiently recruited into the draining lymph nodes during helminth infection via IL-3, but infection-induced Th2 immunity can develop without basophil lymph node recruitment or IL-3. J Immunol. 2010;184:1143-7 pubmed publisher
  1253. Schuhmann M, Stegner D, Berna Erro A, Bittner S, Braun A, Kleinschnitz C, et al. Stromal interaction molecules 1 and 2 are key regulators of autoreactive T cell activation in murine autoimmune central nervous system inflammation. J Immunol. 2010;184:1536-42 pubmed publisher
  1254. Fahl S, Crittenden R, Allman D, Bender T. c-Myb is required for pro-B cell differentiation. J Immunol. 2009;183:5582-92 pubmed publisher
  1255. Brucklacher Waldert V, Steinbach K, Lioznov M, Kolster M, Holscher C, Tolosa E. Phenotypical characterization of human Th17 cells unambiguously identified by surface IL-17A expression. J Immunol. 2009;183:5494-501 pubmed publisher
  1256. Guibal F, Alberich Jorda M, Hirai H, Ebralidze A, Levantini E, Di Ruscio A, et al. Identification of a myeloid committed progenitor as the cancer-initiating cell in acute promyelocytic leukemia. Blood. 2009;114:5415-25 pubmed publisher
  1257. Zumsteg A, Baeriswyl V, Imaizumi N, Schwendener R, Ruegg C, Christofori G. Myeloid cells contribute to tumor lymphangiogenesis. PLoS ONE. 2009;4:e7067 pubmed publisher
  1258. Wu S, Rhee K, Albesiano E, RABIZADEH S, Wu X, Yen H, et al. A human colonic commensal promotes colon tumorigenesis via activation of T helper type 17 T cell responses. Nat Med. 2009;15:1016-22 pubmed publisher
  1259. Garidou L, Heydari S, Truong P, Brooks D, McGavern D. Therapeutic memory T cells require costimulation for effective clearance of a persistent viral infection. J Virol. 2009;83:8905-15 pubmed publisher
  1260. Ellestad K, Tsutsui S, Noorbakhsh F, Warren K, Yong V, Pittman Q, et al. Early life exposure to lipopolysaccharide suppresses experimental autoimmune encephalomyelitis by promoting tolerogenic dendritic cells and regulatory T cells. J Immunol. 2009;183:298-309 pubmed publisher
  1261. Schaeffer M, Han S, Chtanova T, van Dooren G, Herzmark P, Chen Y, et al. Dynamic imaging of T cell-parasite interactions in the brains of mice chronically infected with Toxoplasma gondii. J Immunol. 2009;182:6379-93 pubmed publisher
  1262. Moon J, Chu H, Hataye J, Pagán A, Pepper M, McLachlan J, et al. Tracking epitope-specific T cells. Nat Protoc. 2009;4:565-81 pubmed publisher
  1263. Tseng K, Chung C, H ng W, Wang S. Early infection termination affects number of CD8+ memory T cells and protective capacities in listeria monocytogenes-infected mice upon rechallenge. J Immunol. 2009;182:4590-600 pubmed publisher
  1264. Rogers N, Lees M, Gabriel L, Maniati E, Rose S, Potter P, et al. A defect in Marco expression contributes to systemic lupus erythematosus development via failure to clear apoptotic cells. J Immunol. 2009;182:1982-90 pubmed publisher
  1265. Schartner J, Singh A, Dahlberg P, Nettenstrom L, Seroogy C. Recurrent superantigen exposure in vivo leads to highly suppressive CD4+CD25+ and CD4+CD25- T cells with anergic and suppressive genetic signatures. Clin Exp Immunol. 2009;155:348-56 pubmed publisher
  1266. Kanwar N, Fayyazi A, Backofen B, Nitsche M, Dressel R, von Mollard G. Thymic alterations in mice deficient for the SNARE protein VAMP8/endobrevin. Cell Tissue Res. 2008;334:227-42 pubmed publisher
  1267. Casiraghi F, Azzollini N, Cassis P, Imberti B, Morigi M, Cugini D, et al. Pretransplant infusion of mesenchymal stem cells prolongs the survival of a semiallogeneic heart transplant through the generation of regulatory T cells. J Immunol. 2008;181:3933-46 pubmed
  1268. Barron L, Knoechel B, Lohr J, Abbas A. Cutting edge: contributions of apoptosis and anergy to systemic T cell tolerance. J Immunol. 2008;180:2762-6 pubmed
  1269. Mochimaru H, Usui T, Yaguchi T, Nagahama Y, Hasegawa G, Usui Y, et al. Suppression of alkali burn-induced corneal neovascularization by dendritic cell vaccination targeting VEGF receptor 2. Invest Ophthalmol Vis Sci. 2008;49:2172-7 pubmed publisher
  1270. Ahonen C, Wasiuk A, Fuse S, Turk M, Ernstoff M, Suriawinata A, et al. Enhanced efficacy and reduced toxicity of multifactorial adjuvants compared with unitary adjuvants as cancer vaccines. Blood. 2008;111:3116-25 pubmed publisher
  1271. King S, Knorn A, Ohnmacht C, Voehringer D. Accumulation of effector CD4 T cells during type 2 immune responses is negatively regulated by Stat6. J Immunol. 2008;180:754-63 pubmed
  1272. Park S, Han Y, Aleyas A, George J, Yoon H, Lee J, et al. Low-dose antigen-experienced CD4+ T cells display reduced clonal expansion but facilitate an effective memory pool in response to secondary exposure. Immunology. 2008;123:426-37 pubmed
  1273. Jeannet G, Scheller M, Scarpellino L, Duboux S, Gardiol N, Back J, et al. Long-term, multilineage hematopoiesis occurs in the combined absence of beta-catenin and gamma-catenin. Blood. 2008;111:142-9 pubmed
  1274. Peng J, Kitchen S, West R, Sigler R, Eisenmann K, Alberts A. Myeloproliferative defects following targeting of the Drf1 gene encoding the mammalian diaphanous related formin mDia1. Cancer Res. 2007;67:7565-71 pubmed
  1275. Chen X, Vodanovic Jankovic S, Johnson B, Keller M, Komorowski R, Drobyski W. Absence of regulatory T-cell control of TH1 and TH17 cells is responsible for the autoimmune-mediated pathology in chronic graft-versus-host disease. Blood. 2007;110:3804-13 pubmed
  1276. Moulton R, Mashruwala M, Smith A, Lindsey D, Wetsel R, Haviland D, et al. Complement C5a anaphylatoxin is an innate determinant of dendritic cell-induced Th1 immunity to Mycobacterium bovis BCG infection in mice. J Leukoc Biol. 2007;82:956-67 pubmed
  1277. Bliss S, Bliss S, Beiting D, Alcaraz A, Appleton J. IL-10 regulates movement of intestinally derived CD4+ T cells to the liver. J Immunol. 2007;178:7974-83 pubmed
  1278. Walsh C, Smith P, Fallon P. Role for CTLA-4 but not CD25+ T cells during Schistosoma mansoni infection of mice. Parasite Immunol. 2007;29:293-308 pubmed
  1279. Zoja C, Casiraghi F, Conti S, Corna D, Rottoli D, Cavinato R, et al. Cyclin-dependent kinase inhibition limits glomerulonephritis and extends lifespan of mice with systemic lupus. Arthritis Rheum. 2007;56:1629-37 pubmed
  1280. Reese T, Liang H, Tager A, Luster A, Van Rooijen N, Voehringer D, et al. Chitin induces accumulation in tissue of innate immune cells associated with allergy. Nature. 2007;447:92-6 pubmed
  1281. Borsellino G, Kleinewietfeld M, Di Mitri D, Sternjak A, Diamantini A, Giometto R, et al. Expression of ectonucleotidase CD39 by Foxp3+ Treg cells: hydrolysis of extracellular ATP and immune suppression. Blood. 2007;110:1225-32 pubmed
  1282. Taylor R, Patel S, Lin E, Butler B, Lake J, Newberry R, et al. Lymphotoxin-independent expression of TNF-related activation-induced cytokine by stromal cells in cryptopatches, isolated lymphoid follicles, and Peyer's patches. J Immunol. 2007;178:5659-67 pubmed
  1283. MacKenzie D, Schartner J, Lin J, Timmel A, Jennens Clough M, Fathman C, et al. GRAIL is up-regulated in CD4+ CD25+ T regulatory cells and is sufficient for conversion of T cells to a regulatory phenotype. J Biol Chem. 2007;282:9696-702 pubmed
  1284. de Jersey J, Snelgrove S, Palmer S, Teteris S, Mullbacher A, Miller J, et al. Beta cells cannot directly prime diabetogenic CD8 T cells in nonobese diabetic mice. Proc Natl Acad Sci U S A. 2007;104:1295-300 pubmed
  1285. Hamdy S, Elamanchili P, Alshamsan A, Molavi O, Satou T, Samuel J. Enhanced antigen-specific primary CD4+ and CD8+ responses by codelivery of ovalbumin and toll-like receptor ligand monophosphoryl lipid A in poly(D,L-lactic-co-glycolic acid) nanoparticles. J Biomed Mater Res A. 2007;81:652-62 pubmed
  1286. Taylor P, Tsoni S, Willment J, Dennehy K, Rosas M, Findon H, et al. Dectin-1 is required for beta-glucan recognition and control of fungal infection. Nat Immunol. 2007;8:31-8 pubmed
  1287. Chang S, Wang K, Lu Y, Yang L, Chen W, Lin Y, et al. Characterization of early gamma interferon (IFN-gamma) expression during murine listeriosis: identification of NK1.1+ CD11c+ cells as the primary IFN-gamma-expressing cells. Infect Immun. 2007;75:1167-76 pubmed
  1288. Chen B, Deoliveira D, Cui X, Le N, Son J, Whitesides J, et al. Inability of memory T cells to induce graft-versus-host disease is a result of an abortive alloresponse. Blood. 2007;109:3115-23 pubmed
  1289. Yang Z, Day Y, Toufektsian M, Xu Y, Ramos S, Marshall M, et al. Myocardial infarct-sparing effect of adenosine A2A receptor activation is due to its action on CD4+ T lymphocytes. Circulation. 2006;114:2056-64 pubmed
  1290. Gebe J, Unrath K, Falk B, Ito K, Wen L, Daniels T, et al. Age-dependent loss of tolerance to an immunodominant epitope of glutamic acid decarboxylase in diabetic-prone RIP-B7/DR4 mice. Clin Immunol. 2006;121:294-304 pubmed
  1291. Cassan C, Piaggio E, Zappulla J, Mars L, Couturier N, Bucciarelli F, et al. Pertussis toxin reduces the number of splenic Foxp3+ regulatory T cells. J Immunol. 2006;177:1552-60 pubmed
  1292. Hu H, Wang B, Borde M, Nardone J, Maika S, Allred L, et al. Foxp1 is an essential transcriptional regulator of B cell development. Nat Immunol. 2006;7:819-26 pubmed
  1293. Irie J, Wu Y, Wicker L, Rainbow D, Nalesnik M, Hirsch R, et al. NOD.c3c4 congenic mice develop autoimmune biliary disease that serologically and pathogenetically models human primary biliary cirrhosis. J Exp Med. 2006;203:1209-19 pubmed
  1294. Fallon P, Ballantyne S, Mangan N, Barlow J, Dasvarma A, Hewett D, et al. Identification of an interleukin (IL)-25-dependent cell population that provides IL-4, IL-5, and IL-13 at the onset of helminth expulsion. J Exp Med. 2006;203:1105-16 pubmed
  1295. Day Y, Huang L, Ye H, Li L, Linden J, Okusa M. Renal ischemia-reperfusion injury and adenosine 2A receptor-mediated tissue protection: the role of CD4+ T cells and IFN-gamma. J Immunol. 2006;176:3108-14 pubmed
  1296. Luci C, Hervouet C, Rousseau D, Holmgren J, Czerkinsky C, Anjuere F. Dendritic cell-mediated induction of mucosal cytotoxic responses following intravaginal immunization with the nontoxic B subunit of cholera toxin. J Immunol. 2006;176:2749-57 pubmed
  1297. Zhang J, Raper A, Sugita N, Hingorani R, Salio M, Palmowski M, et al. Characterization of Siglec-H as a novel endocytic receptor expressed on murine plasmacytoid dendritic cell precursors. Blood. 2006;107:3600-8 pubmed
  1298. Fukatsu K, Sakamoto S, Hara E, Ueno C, Maeshima Y, Matsumoto I, et al. Gut ischemia-reperfusion affects gut mucosal immunity: a possible mechanism for infectious complications after severe surgical insults. Crit Care Med. 2006;34:182-7 pubmed
  1299. Mangan N, Van Rooijen N, McKenzie A, Fallon P. Helminth-modified pulmonary immune response protects mice from allergen-induced airway hyperresponsiveness. J Immunol. 2006;176:138-47 pubmed
  1300. Grisaru D, Pick M, Perry C, Sklan E, Almog R, Goldberg I, et al. Hydrolytic and nonenzymatic functions of acetylcholinesterase comodulate hemopoietic stress responses. J Immunol. 2006;176:27-35 pubmed
  1301. Gupta R, Karpatkin S, Basch R. Hematopoiesis and stem cell renewal in long-term bone marrow cultures containing catalase. Blood. 2006;107:1837-46 pubmed
  1302. Krieg C, Han P, Stone R, Goularte O, Kaye J. Functional analysis of B and T lymphocyte attenuator engagement on CD4+ and CD8+ T cells. J Immunol. 2005;175:6420-7 pubmed
  1303. Lu M, Tayu R, Ikawa T, Masuda K, Matsumoto I, Mugishima H, et al. The earliest thymic progenitors in adults are restricted to T, NK, and dendritic cell lineage and have a potential to form more diverse TCRbeta chains than fetal progenitors. J Immunol. 2005;175:5848-56 pubmed
  1304. Garcia Ojeda M, Dejbakhsh Jones S, Chatterjea Matthes D, Mukhopadhyay A, BitMansour A, Weissman I, et al. Stepwise development of committed progenitors in the bone marrow that generate functional T cells in the absence of the thymus. J Immunol. 2005;175:4363-73 pubmed
  1305. Koyama K. Dendritic cell expansion occurs in mesenteric lymph nodes of B10.BR mice infected with the murine nematode parasite Trichuris muris. Parasitol Res. 2005;97:186-90 pubmed
  1306. Tivol E, Komorowski R, Drobyski W. Emergent autoimmunity in graft-versus-host disease. Blood. 2005;105:4885-91 pubmed
  1307. Hoffmann P, Kench J, Vondracek A, Kruk E, Daleke D, Jordan M, et al. Interaction between phosphatidylserine and the phosphatidylserine receptor inhibits immune responses in vivo. J Immunol. 2005;174:1393-404 pubmed
  1308. Mischenko V, Kapina M, Eruslanov E, Kondratieva E, Lyadova I, Young D, et al. Mycobacterial dissemination and cellular responses after 1-lobe restricted tuberculosis infection of genetically susceptible and resistant mice. J Infect Dis. 2004;190:2137-45 pubmed
  1309. Mangan N, Fallon R, Smith P, Van Rooijen N, McKenzie A, Fallon P. Helminth infection protects mice from anaphylaxis via IL-10-producing B cells. J Immunol. 2004;173:6346-56 pubmed
  1310. Zheng S, Jiang J, Shen H, Chen Y. Reduced apoptosis and ameliorated listeriosis in TRAIL-null mice. J Immunol. 2004;173:5652-8 pubmed
  1311. Koschmieder S, Gottgens B, Zhang P, Iwasaki Arai J, Akashi K, Kutok J, et al. Inducible chronic phase of myeloid leukemia with expansion of hematopoietic stem cells in a transgenic model of BCR-ABL leukemogenesis. Blood. 2005;105:324-34 pubmed
  1312. Smith P, Walsh C, Mangan N, Fallon R, Sayers J, McKenzie A, et al. Schistosoma mansoni worms induce anergy of T cells via selective up-regulation of programmed death ligand 1 on macrophages. J Immunol. 2004;173:1240-8 pubmed
  1313. Apostolaki M, Williams N. Nasal delivery of antigen with the B subunit of Escherichia coli heat-labile enterotoxin augments antigen-specific T-cell clonal expansion and differentiation. Infect Immun. 2004;72:4072-80 pubmed
  1314. Seroogy C, Soares L, Ranheim E, Su L, Holness C, Bloom D, et al. The gene related to anergy in lymphocytes, an E3 ubiquitin ligase, is necessary for anergy induction in CD4 T cells. J Immunol. 2004;173:79-85 pubmed
  1315. Selleri L, DiMartino J, van Deursen J, Brendolan A, Sanyal M, Boon E, et al. The TALE homeodomain protein Pbx2 is not essential for development and long-term survival. Mol Cell Biol. 2004;24:5324-31 pubmed
  1316. Hequet O, Vocanson M, Saint Mezard P, Kaiserlian D, Nicolas J, Berard F. CD4+ T cells prevent skin autoimmunity during chronic autologous graft-versus-host-disease. Am J Transplant. 2004;4:872-8 pubmed
  1317. Yuan Y, Shen H, Franklin D, Scadden D, Cheng T. In vivo self-renewing divisions of haematopoietic stem cells are increased in the absence of the early G1-phase inhibitor, p18INK4C. Nat Cell Biol. 2004;6:436-42 pubmed
  1318. Cabarrocas J, Piaggio E, Zappulla J, Desbois S, Mars L, Lassmann H, et al. A transgenic mouse model for T-cell ignorance of a glial autoantigen. J Autoimmun. 2004;22:179-89 pubmed
  1319. Steptoe R, Stankovic S, Lopaticki S, Jones L, Harrison L, Morahan G. Persistence of recipient lymphocytes in NOD mice after irradiation and bone marrow transplantation. J Autoimmun. 2004;22:131-8 pubmed
  1320. Ishihara K, Sawa S, Ikushima H, Hirota S, Atsumi T, Kamimura D, et al. The point mutation of tyrosine 759 of the IL-6 family cytokine receptor gp130 synergizes with HTLV-1 pX in promoting rheumatoid arthritis-like arthritis. Int Immunol. 2004;16:455-65 pubmed
  1321. Chen B, Cui X, Sempowski G, Domen J, Chao N. Hematopoietic stem cell dose correlates with the speed of immune reconstitution after stem cell transplantation. Blood. 2004;103:4344-52 pubmed
  1322. Eruslanov E, Majorov K, Orlova M, Mischenko V, Kondratieva T, Apt A, et al. Lung cell responses to M. tuberculosis in genetically susceptible and resistant mice following intratracheal challenge. Clin Exp Immunol. 2004;135:19-28 pubmed
  1323. Sun J, Alison Stalls M, Thompson K, Fisher Van Houten N. Cell cycle block in anergic T cells during tolerance induction. Cell Immunol. 2003;225:33-41 pubmed
  1324. Chen B, Cui X, Sempowski G, Chao N. Growth hormone accelerates immune recovery following allogeneic T-cell-depleted bone marrow transplantation in mice. Exp Hematol. 2003;31:953-8 pubmed
  1325. Maris C, Miller J, Altman J, Jacob J. A transgenic mouse model genetically tags all activated CD8 T cells. J Immunol. 2003;171:2393-401 pubmed
  1326. Lugering A, Kucharzik T, Soler D, Picarella D, Hudson J, Williams I. Lymphoid precursors in intestinal cryptopatches express CCR6 and undergo dysregulated development in the absence of CCR6. J Immunol. 2003;171:2208-15 pubmed
  1327. Germeraad W, Kawamoto H, Itoi M, Jiang Y, Amagai T, Katsura Y, et al. Development of thymic microenvironments in vitro is oxygen-dependent and requires permanent presence of T-cell progenitors. J Histochem Cytochem. 2003;51:1225-35 pubmed
  1328. Mendes da Cruz D, De Meis J, Cotta de Almeida V, Savino W. Experimental Trypanosoma cruzi infection alters the shaping of the central and peripheral T-cell repertoire. Microbes Infect. 2003;5:825-32 pubmed
  1329. Richards M, Liu F, Iwasaki H, Akashi K, Link D. Pivotal role of granulocyte colony-stimulating factor in the development of progenitors in the common myeloid pathway. Blood. 2003;102:3562-8 pubmed
  1330. Reading P, Smith G. A kinetic analysis of immune mediators in the lungs of mice infected with vaccinia virus and comparison with intradermal infection. J Gen Virol. 2003;84:1973-83 pubmed
  1331. Koyama K. NK1.1+ cell depletion in vivo fails to prevent protection against infection with the murine nematode parasite Trichuris muris. Parasite Immunol. 2002;24:527-33 pubmed
  1332. Egan P, Lawlor K, Alexander W, Wicks I. Suppressor of cytokine signaling-1 regulates acute inflammatory arthritis and T cell activation. J Clin Invest. 2003;111:915-24 pubmed
  1333. Kawamoto H, Ohmura K, Fujimoto S, Lu M, Ikawa T, Katsura Y. Extensive proliferation of T cell lineage-restricted progenitors in the thymus: an essential process for clonal expression of diverse T cell receptor beta chains. Eur J Immunol. 2003;33:606-15 pubmed
  1334. Yamasaki M, Chujo H, Hirao A, Koyanagi N, Okamoto T, Tojo N, et al. Immunoglobulin and cytokine production from spleen lymphocytes is modulated in C57BL/6J mice by dietary cis-9, trans-11 and trans-10, cis-12 conjugated linoleic acid. J Nutr. 2003;133:784-8 pubmed
  1335. Shinkai K, Mohrs M, Locksley R. Helper T cells regulate type-2 innate immunity in vivo. Nature. 2002;420:825-9 pubmed
  1336. Angulo I, Jiménez Díaz M, García Bustos J, Gargallo D, de las Heras F, Muñoz Fernández M, et al. Candida albicans infection enhances immunosuppression induced by cyclophosphamide by selective priming of suppressive myeloid progenitors for NO production. Cell Immunol. 2002;218:46-58 pubmed
  1337. Culley F, Pollott J, Openshaw P. Age at first viral infection determines the pattern of T cell-mediated disease during reinfection in adulthood. J Exp Med. 2002;196:1381-6 pubmed
  1338. Hsu S, Wu C, Han J, Lai M. Involvement of p38 mitogen-activated protein kinase in different stages of thymocyte development. Blood. 2003;101:970-6 pubmed
  1339. Carrithers M, Visintin I, Viret C, Janeway C. Role of genetic background in P selectin-dependent immune surveillance of the central nervous system. J Neuroimmunol. 2002;129:51-7 pubmed
  1340. Yu C, Feng M, Shih H, Lai M. Increased p300 expression inhibits glucocorticoid receptor-T-cell receptor antagonism but does not affect thymocyte positive selection. Mol Cell Biol. 2002;22:4556-66 pubmed
  1341. Carter R, Campbell I, O Donnel K, Wicks I. Vascular cell adhesion molecule-1 (VCAM-1) blockade in collagen-induced arthritis reduces joint involvement and alters B cell trafficking. Clin Exp Immunol. 2002;128:44-51 pubmed
  1342. Roach D, Bean A, Demangel C, France M, Briscoe H, Britton W. TNF regulates chemokine induction essential for cell recruitment, granuloma formation, and clearance of mycobacterial infection. J Immunol. 2002;168:4620-7 pubmed
  1343. Pan L, Hanrahan J, Li J, Hale L, Zhuang Y. An analysis of T cell intrinsic roles of E2A by conditional gene disruption in the thymus. J Immunol. 2002;168:3923-32 pubmed
  1344. Xu H, Wipasa J, Yan H, Zeng M, Makobongo M, Finkelman F, et al. The mechanism and significance of deletion of parasite-specific CD4(+) T cells in malaria infection. J Exp Med. 2002;195:881-92 pubmed
  1345. Chen Y, Ma Y, Chen Y. Roles of cytotoxic T-lymphocyte-associated antigen-4 in the inductive phase of oral tolerance. Immunology. 2002;105:171-80 pubmed
  1346. Chen B, Cui X, Sempowski G, Gooding M, Liu C, Haynes B, et al. A comparison of murine T-cell-depleted adult bone marrow and full-term fetal blood cells in hematopoietic engraftment and immune reconstitution. Blood. 2002;99:364-71 pubmed
  1347. Kovalev G, Franklin D, Coffield V, Xiong Y, Su L. An important role of CDK inhibitor p18(INK4c) in modulating antigen receptor-mediated T cell proliferation. J Immunol. 2001;167:3285-92 pubmed
  1348. Tourneur L, Malassagne B, Batteux F, Fabre M, Mistou S, Lallemand E, et al. Transgenic expression of CD95 ligand on thyroid follicular cells confers immune privilege upon thyroid allografts. J Immunol. 2001;167:1338-46 pubmed
  1349. Roach D, Martin E, Bean A, Rennick D, Briscoe H, Britton W. Endogenous inhibition of antimycobacterial immunity by IL-10 varies between mycobacterial species. Scand J Immunol. 2001;54:163-70 pubmed
  1350. Campbell I, O DONNELL K, Lawlor K, Wicks I. Severe inflammatory arthritis and lymphadenopathy in the absence of TNF. J Clin Invest. 2001;107:1519-27 pubmed
  1351. Zhang J, Kabra N, Cado D, Kang C, Winoto A. FADD-deficient T cells exhibit a disaccord in regulation of the cell cycle machinery. J Biol Chem. 2001;276:29815-8 pubmed
  1352. Radoja S, Saio M, Frey A. CD8+ tumor-infiltrating lymphocytes are primed for Fas-mediated activation-induced cell death but are not apoptotic in situ. J Immunol. 2001;166:6074-83 pubmed
  1353. Farrar J, Ouyang W, Lohning M, Assenmacher M, Radbruch A, Kanagawa O, et al. An instructive component in T helper cell type 2 (Th2) development mediated by GATA-3. J Exp Med. 2001;193:643-50 pubmed
  1354. Leite De Moraes M, Hameg A, Pacilio M, Koezuka Y, Taniguchi M, van Kaer L, et al. IL-18 enhances IL-4 production by ligand-activated NKT lymphocytes: a pro-Th2 effect of IL-18 exerted through NKT cells. J Immunol. 2001;166:945-51 pubmed
  1355. Shimizu C, Kawamoto H, Yamashita M, Kimura M, Kondou E, Kaneko Y, et al. Progression of T cell lineage restriction in the earliest subpopulation of murine adult thymus visualized by the expression of lck proximal promoter activity. Int Immunol. 2001;13:105-17 pubmed
  1356. Izeradjene K, Revillard J, Genestier L. Inhibition of thymidine synthesis by folate analogues induces a Fas-Fas ligand-independent deletion of superantigen-reactive peripheral T cells. Int Immunol. 2001;13:85-93 pubmed
  1357. Chen B, Liu C, Cui X, Fidler J, Chao N. Prevention of graft-versus-host disease by a novel immunosuppressant, PG490-88, through inhibition of alloreactive T cell expansion. Transplantation. 2000;70:1442-7 pubmed
  1358. Panus J, McHeyzer Williams L, McHeyzer Williams M. Antigen-specific T helper cell function: differential cytokine expression in primary and memory responses. J Exp Med. 2000;192:1301-16 pubmed
  1359. Jelley Gibbs D, Lepak N, Yen M, Swain S. Two distinct stages in the transition from naive CD4 T cells to effectors, early antigen-dependent and late cytokine-driven expansion and differentiation. J Immunol. 2000;165:5017-26 pubmed
  1360. Martin P, del Hoyo G, Anjuere F, Ruiz S, Arias C, Marín A, et al. Concept of lymphoid versus myeloid dendritic cell lineages revisited: both CD8alpha(-) and CD8alpha(+) dendritic cells are generated from CD4(low) lymphoid-committed precursors. Blood. 2000;96:2511-9 pubmed
  1361. Anjuere F, del Hoyo G, Martin P, Ardavin C. Langerhans cells develop from a lymphoid-committed precursor. Blood. 2000;96:1633-7 pubmed
  1362. Bauman S, Nichols K, Murphy J. Dendritic cells in the induction of protective and nonprotective anticryptococcal cell-mediated immune responses. J Immunol. 2000;165:158-67 pubmed
  1363. Feng C, Britton W, Palendira U, Groat N, Briscoe H, Bean A. Up-regulation of VCAM-1 and differential expansion of beta integrin-expressing T lymphocytes are associated with immunity to pulmonary Mycobacterium tuberculosis infection. J Immunol. 2000;164:4853-60 pubmed
  1364. de Oca R, Buendia A, Del Rio L, Sanchez J, Salinas J, Navarro J. Polymorphonuclear neutrophils are necessary for the recruitment of CD8(+) T cells in the liver in a pregnant mouse model of Chlamydophila abortus (Chlamydia psittaci serotype 1) infection. Infect Immun. 2000;68:1746-51 pubmed
  1365. Lepault F, Gagnerault M. Characterization of peripheral regulatory CD4+ T cells that prevent diabetes onset in nonobese diabetic mice. J Immunol. 2000;164:240-7 pubmed
  1366. Dejbakhsh Jones S, Strober S. Identification of an early T cell progenitor for a pathway of T cell maturation in the bone marrow. Proc Natl Acad Sci U S A. 1999;96:14493-8 pubmed
  1367. Ikawa T, Kawamoto H, Fujimoto S, Katsura Y. Commitment of common T/Natural killer (NK) progenitors to unipotent T and NK progenitors in the murine fetal thymus revealed by a single progenitor assay. J Exp Med. 1999;190:1617-26 pubmed
  1368. Paz Miguel J, Flores R, Sanchez Velasco P, Ocejo Vinyals G, Escribano de Diego J, López de Rego J, et al. Reactive oxygen intermediates during programmed cell death induced in the thymus of the Ts(1716)65Dn mouse, a murine model for human Down's syndrome. J Immunol. 1999;163:5399-410 pubmed
  1369. Ohmura K, Kawamoto H, Fujimoto S, Ozaki S, Nakao K, Katsura Y. Emergence of T, B, and myeloid lineage-committed as well as multipotent hemopoietic progenitors in the aorta-gonad-mesonephros region of day 10 fetuses of the mouse. J Immunol. 1999;163:4788-95 pubmed
  1370. Pan L, Sato S, Frederick J, Sun X, Zhuang Y. Impaired immune responses and B-cell proliferation in mice lacking the Id3 gene. Mol Cell Biol. 1999;19:5969-80 pubmed
  1371. Penttilä J, Anttila M, Varkila K, Puolakkainen M, Sarvas M, Makela P, et al. Depletion of CD8+ cells abolishes memory in acquired immunity against Chlamydia pneumoniae in BALB/c mice. Immunology. 1999;97:490-6 pubmed
  1372. Rouleau M, Cottrez F, Bigler M, Antonenko S, Carballido J, Zlotnik A, et al. IL-10 transgenic mice present a defect in T cell development reminiscent of SCID patients. J Immunol. 1999;163:1420-7 pubmed
  1373. Inaba M, Kurasawa K, Mamura M, Kumano K, Saito Y, Iwamoto I. Primed T cells are more resistant to Fas-mediated activation-induced cell death than naive T cells. J Immunol. 1999;163:1315-20 pubmed
  1374. Masurier C, Pioche Durieu C, Colombo B, Lacave R, Lemoine F, Klatzmann D, et al. Immunophenotypical and functional heterogeneity of dendritic cells generated from murine bone marrow cultured with different cytokine combinations: implications for anti-tumoral cell therapy. Immunology. 1999;96:569-77 pubmed
  1375. Kawamoto H, Ohmura K, Fujimoto S, Katsura Y. Emergence of T cell progenitors without B cell or myeloid differentiation potential at the earliest stage of hematopoiesis in the murine fetal liver. J Immunol. 1999;162:2725-31 pubmed
  1376. Clark L, Appleby M, Brunkow M, Wilkinson J, Ziegler S, Ramsdell F. Cellular and molecular characterization of the scurfy mouse mutant. J Immunol. 1999;162:2546-54 pubmed
  1377. Sasaki T, Kanke Y, Kudoh K, Misawa Y, Shimizu J, Takita T. Effects of dietary docosahexaenoic acid on surface molecules involved in T cell proliferation. Biochim Biophys Acta. 1999;1436:519-30 pubmed
  1378. Timm J, Thoman M. Maturation of CD4+ lymphocytes in the aged microenvironment results in a memory-enriched population. J Immunol. 1999;162:711-7 pubmed
  1379. Batteux F, Tourneur L, Trebeden H, Charreire J, Chiocchia G. Gene therapy of experimental autoimmune thyroiditis by in vivo administration of plasmid DNA coding for Fas ligand. J Immunol. 1999;162:603-8 pubmed
  1380. Samoilova E, Horton J, Hilliard B, Liu T, Chen Y. IL-6-deficient mice are resistant to experimental autoimmune encephalomyelitis: roles of IL-6 in the activation and differentiation of autoreactive T cells. J Immunol. 1998;161:6480-6 pubmed
  1381. Bix M, Wang Z, Thiel B, Schork N, Locksley R. Genetic regulation of commitment to interleukin 4 production by a CD4(+) T cell-intrinsic mechanism. J Exp Med. 1998;188:2289-99 pubmed
  1382. Liu L, Rich B, Inobe J, Chen W, Weiner H. Induction of Th2 cell differentiation in the primary immune response: dendritic cells isolated from adherent cell culture treated with IL-10 prime naive CD4+ T cells to secrete IL-4. Int Immunol. 1998;10:1017-26 pubmed
  1383. Ferrero I, Anjuere F, Azcoitia I, Renno T, MacDonald H, Ardavin C. Viral superantigen-induced negative selection of TCR transgenic CD4+ CD8+ thymocytes depends on activation, but not proliferation. Blood. 1998;91:4248-54 pubmed
  1384. Guttormsen H, Wetzler L, Finberg R, Kasper D. Immunologic memory induced by a glycoconjugate vaccine in a murine adoptive lymphocyte transfer model. Infect Immun. 1998;66:2026-32 pubmed
  1385. Contractor N, Bassiri H, Reya T, Park A, Baumgart D, Wasik M, et al. Lymphoid hyperplasia, autoimmunity, and compromised intestinal intraepithelial lymphocyte development in colitis-free gnotobiotic IL-2-deficient mice. J Immunol. 1998;160:385-94 pubmed
  1386. Salomon B, Cohen J, Masurier C, Klatzmann D. Three populations of mouse lymph node dendritic cells with different origins and dynamics. J Immunol. 1998;160:708-17 pubmed
  1387. Roark J, Park S, Jayawardena J, Kavita U, Shannon M, Bendelac A. CD1.1 expression by mouse antigen-presenting cells and marginal zone B cells. J Immunol. 1998;160:3121-7 pubmed
  1388. Samoilova E, Horton J, Bassiri H, Zhang H, Linsley P, Carding S, et al. B7 blockade prevents activation-induced cell death of thymocytes. Int Immunol. 1997;9:1663-8 pubmed
  1389. Aiba Y, Hirayama F, Ogawa M. Clonal proliferation and cytokine requirement of murine progenitors for natural killer cells. Blood. 1997;89:4005-12 pubmed
  1390. Postel Vinay M, de Mello Coelho V, Gagnerault M, Dardenne M. Growth hormone stimulates the proliferation of activated mouse T lymphocytes. Endocrinology. 1997;138:1816-20 pubmed
  1391. Baxter A, Kinder S, Hammond K, Scollay R, Godfrey D. Association between alphabetaTCR+CD4-CD8- T-cell deficiency and IDDM in NOD/Lt mice. Diabetes. 1997;46:572-82 pubmed
  1392. Barrat F, Lesourd B, Louise A, Boulouis H, Vincent Naulleau S, Thibault D, et al. Surface antigen expression in spleen cells of C57B1/6 mice during ageing: influence of sex and parity. Clin Exp Immunol. 1997;107:593-600 pubmed
  1393. Lin K, Abraham K. Targets of p56(lck) activity in immature thymoblasts: stimulation of the Ras/Raf/MAPK pathway. Int Immunol. 1997;9:291-306 pubmed
  1394. Hattori N, Kawamoto H, Katsura Y. Isolation of the most immature population of murine fetal thymocytes that includes progenitors capable of generating T, B, and myeloid cells. J Exp Med. 1996;184:1901-8 pubmed
  1395. Moore T, von Freeden Jeffry U, Murray R, Zlotnik A. Inhibition of gamma delta T cell development and early thymocyte maturation in IL-7 -/- mice. J Immunol. 1996;157:2366-73 pubmed
  1396. Agata Y, Kawasaki A, Nishimura H, Ishida Y, Tsubata T, Yagita H, et al. Expression of the PD-1 antigen on the surface of stimulated mouse T and B lymphocytes. Int Immunol. 1996;8:765-72 pubmed
  1397. Pear W, Aster J, Scott M, Hasserjian R, Soffer B, Sklar J, et al. Exclusive development of T cell neoplasms in mice transplanted with bone marrow expressing activated Notch alleles. J Exp Med. 1996;183:2283-91 pubmed
  1398. Shimada A, Rohane P, Fathman C, Charlton B. Pathogenic and protective roles of CD45RB(low) CD4+ cells correlate with cytokine profiles in the spontaneously autoimmune diabetic mouse. Diabetes. 1996;45:71-8 pubmed
  1399. Dejbakhsh Jones S, Jerabek L, Weissman I, Strober S. Extrathymic maturation of alpha beta T cells from hemopoietic stem cells. J Immunol. 1995;155:3338-44 pubmed
  1400. Wadsworth S, Chang A, Hong M, Halvorson M, Otto S, Coligan J. Expression of a novel integrin beta 1 chain epitope and anti-beta 1 antibody-mediated enhancement of fibronectin binding are dependent on the stage of T cell differentiation. J Immunol. 1995;154:2125-33 pubmed
  1401. Godfrey D, Kennedy J, Mombaerts P, Tonegawa S, Zlotnik A. Onset of TCR-beta gene rearrangement and role of TCR-beta expression during CD3-CD4-CD8- thymocyte differentiation. J Immunol. 1994;152:4783-92 pubmed
  1402. Wu L, Scollay R, Egerton M, Pearse M, Spangrude G, Shortman K. CD4 expressed on earliest T-lineage precursor cells in the adult murine thymus. Nature. 1991;349:71-4 pubmed
  1403. Schuyler M, Gott K, Shopp G, Crooks L. CD3+ and CD4+ cells adoptively transfer experimental hypersensitivity pneumonitis. Am Rev Respir Dis. 1992;146:1582-8 pubmed