This is a Validated Antibody Database (VAD) review about human TNF-alpha, based on 351 published articles (read how Labome selects the articles), using TNF-alpha antibody in all methods. It is aimed to help Labome visitors find the most suited TNF-alpha antibody. Please note the number of articles fluctuates since newly identified citations are added and citations for discontinued catalog numbers are removed regularly.
TNF-alpha synonym: DIF; TNF-alpha; TNFA; TNFSF2; TNLG1F

Knockout validation
Abcam
mouse monoclonal (52B83)
  • western blot knockout validation; mouse; loading ...; fig s7b
Abcam TNF-alpha antibody (Abcam, ab1793) was used in western blot knockout validation on mouse samples (fig s7b). Cell Discov (2020) ncbi
Novus Biologicals
domestic rabbit polyclonal
  • immunohistochemistry knockout validation; mouse; loading ...; fig s1a, s1b
Novus Biologicals TNF-alpha antibody (Novus, NBP1-19532) was used in immunohistochemistry knockout validation on mouse samples (fig s1a, s1b). Cell Discov (2020) ncbi
Cell Signaling Technology
domestic rabbit polyclonal
  • western blot knockout validation; human; loading ...; fig 4g
Cell Signaling Technology TNF-alpha antibody (Cell Signaling Technology, 3707) was used in western blot knockout validation on human samples (fig 4g). Nat Commun (2020) ncbi
others
TNF-alpha antibody (BioLegend, Mab11) was used . J Immunol (2019) ncbi
TNF-alpha antibody (BioLegend, Mab11) was used . Infect Immun (2019) ncbi
  • flow cytometry; human; loading ...; fig 6a
TNF-alpha antibody (BioLegend, MAb11) was used in flow cytometry on human samples (fig 6a). Immunol Cell Biol (2019) ncbi
TNF-alpha antibody (Biolegend, Mab11) was used . Nat Commun (2018) ncbi
TNF-alpha antibody (BioLegend, Mab11) was used . J Exp Med (2018) ncbi
Invitrogen
mouse monoclonal (MAb11)
  • flow cytometry; human; 1:100; loading ...; fig 2b
Invitrogen TNF-alpha antibody (eBioscience, 11-7349-41) was used in flow cytometry on human samples at 1:100 (fig 2b). Nat Commun (2022) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human; 1:1000; fig 6d
Invitrogen TNF-alpha antibody (Biosource, AHC3712) was used in ELISA on human samples at 1:1000 (fig 6d). Commun Biol (2022) ncbi
mouse monoclonal (68B 3C5)
  • ELISA; human; 1:1000; fig 6d
Invitrogen TNF-alpha antibody (Biosource, AHC3419) was used in ELISA on human samples at 1:1000 (fig 6d). Commun Biol (2022) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 1:200; loading ...; fig 6c, 6g
Invitrogen TNF-alpha antibody (eBioscience, 17-7349-82) was used in flow cytometry on human samples at 1:200 (fig 6c, 6g). Nat Commun (2021) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 1:40; fig 5e
Invitrogen TNF-alpha antibody (ThermoFisher Scientific, 12-7349-41) was used in flow cytometry on human samples at 1:40 (fig 5e). elife (2021) ncbi
domestic goat polyclonal
  • immunohistochemistry; mouse; 1:200; loading ...; fig 7
Invitrogen TNF-alpha antibody (Fisher, PIPA546945) was used in immunohistochemistry on mouse samples at 1:200 (fig 7). J Pharm Anal (2020) ncbi
mouse monoclonal (2C8)
  • immunohistochemistry - paraffin section; human; 1:1200; loading ...; fig 2f
Invitrogen TNF-alpha antibody (Thermo Fisher, 2C8) was used in immunohistochemistry - paraffin section on human samples at 1:1200 (fig 2f). BMC Nephrol (2020) ncbi
domestic goat polyclonal
  • immunohistochemistry; mouse; 1:40; loading ...; fig 5c
Invitrogen TNF-alpha antibody (Thermofisher, PA5-46945) was used in immunohistochemistry on mouse samples at 1:40 (fig 5c). Front Neurosci (2020) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; mouse; fig 3j
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on mouse samples (fig 3j). Nature (2019) ncbi
domestic rabbit polyclonal
  • blocking or activating experiments; human; 40 ug/ml; loading ...; fig 4c
Invitrogen TNF-alpha antibody (Thermo, P300A) was used in blocking or activating experiments on human samples at 40 ug/ml (fig 4c). Mol Cancer Res (2019) ncbi
mouse monoclonal (MAb11)
  • ELISA; human; loading ...; fig 5c
Invitrogen TNF-alpha antibody (eBioscience, MAB11) was used in ELISA on human samples (fig 5c). J Immunol (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 2a
Invitrogen TNF-alpha antibody (eBioscience, Mab11) was used in flow cytometry on human samples (fig 2a). J Immunol (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 6b
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig 6b). Sci Rep (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3d
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig 3d). Ann Rheum Dis (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 4f
Invitrogen TNF-alpha antibody (eBiosciences, MAb11) was used in flow cytometry on human samples (fig 4f). Nature (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3d
In order to evaluate the effectiveness of adoptive natural killer cell therapy against the pulmonary metastasis of Ewing sarcoma, Invitrogen TNF-alpha antibody (eBiosciences, MAb11) was used in flow cytometry on human samples (fig 3d). Oncoimmunology (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig s6d
In order to determine the role of PD-1 in regulating anti-tumor T cell reactivities, Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig s6d). Science (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; rhesus macaque; loading ...; fig s9
Invitrogen TNF-alpha antibody (eBiosciences, MAB11) was used in flow cytometry on rhesus macaque samples (fig s9). PLoS Pathog (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3b
Invitrogen TNF-alpha antibody (eBiosciences, Mab11) was used in flow cytometry on human samples (fig 3b). PLoS Pathog (2016) ncbi
domestic rabbit polyclonal
  • western blot; mouse; fig 2
In order to test the effects of flavonoids isolated from Abnormal Savda Munziq using the transplanted cervical cancer mouse model, Invitrogen TNF-alpha antibody (Thermo Scientific, PA5-19810) was used in western blot on mouse samples (fig 2). BMC Complement Altern Med (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 1a
In order to explore how HIV-1 alters immunity during latent tuberculosis, Invitrogen TNF-alpha antibody (eBiosciences, MAb11) was used in flow cytometry on human samples (fig 1a). Tuberculosis (Edinb) (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; tbl 1
In order to demonstrate that freezing already-stained samples suspended in 10% DMSO in FBS is practical and efficient way to preserve already-stained samples for mass cytometry assessment, Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (tbl 1). Cytometry A (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig s1d
In order to investigate the role of Eomes in the retention of liver natural killer cells, Invitrogen TNF-alpha antibody (eBiosciences, Mab11) was used in flow cytometry on human samples (fig s1d). J Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3a
In order to establish the T Cell receptor-inducible costimulator as a promising target for direct T regulatory cell-targeting therapeutic agents for gastric cancer, Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig 3a). Int J Cancer (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 2c
Invitrogen TNF-alpha antibody (eBioscience, Mab11) was used in flow cytometry on human samples (fig 2c). J Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 2a
In order to ask if CD2 is involved in the response of adaptive natural killer cells to HCMV, Invitrogen TNF-alpha antibody (eBiosciences, MAb11) was used in flow cytometry on human samples (fig 2a). Eur J Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 7b
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig 7b). J Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig s5c
In order to investigate NF-KB signaling in natural killer cells, Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig s5c). Nat Commun (2016) ncbi
mouse monoclonal (MAb11)
  • mass cytometry; human; loading ...; tbl 1, 3
In order to use elemental metal isotopes conjugated to monoclonal antibodies and study intracellular functional markers and surface phenotypic markers on natural killer cells, Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in mass cytometry on human samples (tbl 1, 3). Methods Mol Biol (2016) ncbi
mouse monoclonal (68B6A3 L1)
  • immunohistochemistry; pigs ; 1:75; tbl 2
In order to assess the impact of different porcine reproductive and respiratory syndrome virus strains to induce thymocyte loss, Invitrogen TNF-alpha antibody (Invitrogen, 68B6A3 L1) was used in immunohistochemistry on pigs samples at 1:75 (tbl 2). Vet Microbiol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 4a
In order to examine the expression of CD300 molecules on natural killer cells, Invitrogen TNF-alpha antibody (eBiosciences, MAb11) was used in flow cytometry on human samples (fig 4a). Sci Rep (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; African green monkey; loading ...; fig 5a
In order to report that B cells modulate the local granulomatous response in Mycobacterium tuberculosis-infected macaques during acute infection, Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on African green monkey samples (fig 5a). Infect Immun (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 7
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig 7). Eur J Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
In order to study the dynamics of Ag-specific CD4(+) T cells during antiretroviral therapy, Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples . J Immunol (2015) ncbi
mouse monoclonal (MAb1)
  • flow cytometry; human; fig s2c
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig s2c). Proc Natl Acad Sci U S A (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig s2c
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig s2c). Proc Natl Acad Sci U S A (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 1b
In order to elucidate Th17 cell polarization, depletion, and restoration in response to HIV infection and antiretroviral therapy, Invitrogen TNF-alpha antibody (eBioscience, Mab11) was used in flow cytometry on human samples (fig 1b). Retrovirology (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 1
In order to study the immune responses of HIV-infected volunteers vaccinated against tuberculosis, Invitrogen TNF-alpha antibody (eBio, 25-7349-82) was used in flow cytometry on human samples (fig 1). Clin Vaccine Immunol (2015) ncbi
mouse monoclonal (MAb1)
  • blocking or activating experiments; human; 10 ug/ml; fig 3
Invitrogen TNF-alpha antibody (eBioscience, MAb1) was used in blocking or activating experiments on human samples at 10 ug/ml (fig 3). J Immunol (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 2
In order to describe the phenotype and functional potential of metastatic differentiated thyroid cancer-associated PD-1 positive T cells, Invitrogen TNF-alpha antibody (eBioscience, Mab11) was used in flow cytometry on human samples (fig 2). Cancer Immunol Res (2015) ncbi
mouse monoclonal (2TNF-H34A)
  • blocking or activating experiments; human; fig 4f
In order to examine the role of PKCalpha in CRIg expression in human monocyte-derived macrophages, Invitrogen TNF-alpha antibody (Thermo Fisher Scientific, 2TNF-H34A) was used in blocking or activating experiments on human samples (fig 4f). J Immunol (2015) ncbi
mouse monoclonal (MAb1)
  • ELISA; human
In order to use of a microfluidic platform to test high-throughput multiplexed protein quantitation, Invitrogen TNF-alpha antibody (eBioscience, 16?C7384?C85) was used in ELISA on human samples . PLoS ONE (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 3
Invitrogen TNF-alpha antibody (eBioscience, Mab11) was used in flow cytometry on human samples (fig 3). J Immunol (2015) ncbi
mouse monoclonal (MAb1)
  • ELISA; human; 1:500
Invitrogen TNF-alpha antibody (eBioscience, MAb1) was used in ELISA on human samples at 1:500. Nat Commun (2014) ncbi
mouse monoclonal (MAb11)
  • ELISA; human; 1:250
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in ELISA on human samples at 1:250. Nat Commun (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 2
Invitrogen TNF-alpha antibody (eBioscience, Mab11) was used in flow cytometry on human samples (fig 2). J Infect Dis (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples . J Virol (2015) ncbi
mouse monoclonal (MAb1)
  • blocking or activating experiments; human; 5 ug/ml
Invitrogen TNF-alpha antibody (eBioscience, MAb1) was used in blocking or activating experiments on human samples at 5 ug/ml. J Immunol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
In order to test the safety and immunogenicity of an adenovirus 35-vectored tuberculosis vaccine candidate AERAS-402 in infants, Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples . Vaccine (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 1
In order to investigate the impact of CCR6(+)CXCR3(+)CCR4(-) cells in latent tuberculosis infection, Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig 1). J Immunol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples . J Virol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples . J Immunol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 2B
In order to investigate human T lymphotropic virus type 1 bZIP factor-specific CD4 T cell responses, Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig 2B). J Immunol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 1a
In order to assess the effect of delayed administration of the BCG vaccine on the induced immune response in Ugandan children, Invitrogen TNF-alpha antibody (eBiosciences, Mab11) was used in flow cytometry on human samples (fig 1a). J Infect Dis (2014) ncbi
mouse monoclonal (MAb11)
  • blocking or activating experiments; mouse
In order to investigate the role of microglial derived tumor necrosis factor alpha in neuronal cell cycle progression, Invitrogen TNF-alpha antibody (eBioscience, 14-7349-85) was used in blocking or activating experiments on mouse samples . Neurobiol Dis (2014) ncbi
mouse monoclonal (MAb1)
  • flow cytometry; human; 1 ug/ml; fig 3
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples at 1 ug/ml (fig 3). PLoS ONE (2013) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 1 ug/ml; fig 3
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples at 1 ug/ml (fig 3). PLoS ONE (2013) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 2
Invitrogen TNF-alpha antibody (eBioscience, MAb11) was used in flow cytometry on human samples (fig 2). Ann Rheum Dis (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 1C
In order to quantify the prevalence of Th1 and Th17 cells in the joints of rheumatoid arthritis patients, Invitrogen TNF-alpha antibody (e-Bioscience, MAb11) was used in flow cytometry on human samples (fig 1C). Ann Rheum Dis (2008) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 5b
In order to assess the effects of using GM-CSF DNA with the DNA prime for a simian-human immunodeficiency virus-89.6 vaccine, Invitrogen TNF-alpha antibody (eBiosciences, Mab11) was used in flow cytometry on human samples (fig 5b). Virology (2007) ncbi
mouse monoclonal (68B2B3)
  • immunohistochemistry - paraffin section; human; 1:200
In order to discuss if patients with Crohn's disease and orofacial granulomatosis should be considered as a unique subset, Invitrogen TNF-alpha antibody (BioSource, 68B2B3/68B6A3) was used in immunohistochemistry - paraffin section on human samples at 1:200. Inflamm Bowel Dis (2007) ncbi
mouse monoclonal (68B 3C5)
  • ELISA; human; 1:200; fig 2
In order to investigate the cross-talk between oligodeoxynucleotides, immune response modifiers, TLR7, and TLR8, Invitrogen TNF-alpha antibody (BioSource, AHC3419) was used in ELISA on human samples at 1:200 (fig 2). J Immunol (2006) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • immunohistochemistry; pigs ; 1:100; fig 4
In order to characterize implanted electrochemical glucose sensors in the subcutis of pigs and their biocompatibility, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in immunohistochemistry on pigs samples at 1:100 (fig 4). Diabetes Technol Ther (2006) ncbi
mouse monoclonal (68B6A3 L1)
  • immunohistochemistry; pigs ; 1:100; fig 4
In order to characterize implanted electrochemical glucose sensors in the subcutis of pigs and their biocompatibility, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in immunohistochemistry on pigs samples at 1:100 (fig 4). Diabetes Technol Ther (2006) ncbi
mouse monoclonal (68B2B3)
  • ELISA; human
In order to compare the ability of plasmacytoid dendritic cells and monocyte-derived dendritic cells to activate T cells, Invitrogen TNF-alpha antibody (Biosource, 68B2B3) was used in ELISA on human samples . Immunology (2006) ncbi
mouse monoclonal (68B 3C5)
  • ELISA; human; tbl 2
In order to develop an 96-well assay to quantitate DNA fragmentation in cells, Invitrogen TNF-alpha antibody (BioSource, AHC3419) was used in ELISA on human samples (tbl 2). J Biomol Screen (2006) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human; tbl 2
In order to develop an 96-well assay to quantitate DNA fragmentation in cells, Invitrogen TNF-alpha antibody (BioSource, AHC3712) was used in ELISA on human samples (tbl 2). J Biomol Screen (2006) ncbi
mouse monoclonal (68B2B3)
  • ELISA; human; 8 ug/ml
In order to examine the effect of age and inflammation on the induction of Hsp27 in human peripheral blood mononuclear cells, Invitrogen TNF-alpha antibody (Biosource, 68B 2B3) was used in ELISA on human samples at 8 ug/ml. Exp Gerontol (2006) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human; 8 ug/ml
In order to examine the effect of age and inflammation on the induction of Hsp27 in human peripheral blood mononuclear cells, Invitrogen TNF-alpha antibody (Biosource, 68B 6A3) was used in ELISA on human samples at 8 ug/ml. Exp Gerontol (2006) ncbi
mouse monoclonal (68B6A3 L1)
  • ELISA; human; 8 ug/ml
In order to examine the effect of age and inflammation on the induction of Hsp27 in human peripheral blood mononuclear cells, Invitrogen TNF-alpha antibody (Biosource, 68B 6A3) was used in ELISA on human samples at 8 ug/ml. Exp Gerontol (2006) ncbi
mouse monoclonal (68B6A3 L1)
  • ELISA; human; fig 4
In order to investigate if caspase-dependent apoptosis induction is a mechanism of action of infliximab, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in ELISA on human samples (fig 4). Clin Immunol (2005) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human; fig 4
In order to investigate if caspase-dependent apoptosis induction is a mechanism of action of infliximab, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in ELISA on human samples (fig 4). Clin Immunol (2005) ncbi
mouse monoclonal (68B2B3)
  • ELISA; human; fig 4
In order to investigate if caspase-dependent apoptosis induction is a mechanism of action of infliximab, Invitrogen TNF-alpha antibody (Biosource, 68B2B3) was used in ELISA on human samples (fig 4). Clin Immunol (2005) ncbi
mouse monoclonal (68B2B3)
  • ELISA; human; fig 4
In order to discuss the use of Adalimumab to treat Crohn's disease, Invitrogen TNF-alpha antibody (Biosource, 68B2B3) was used in ELISA on human samples (fig 4). Aliment Pharmacol Ther (2005) ncbi
mouse monoclonal (68B6A3 L1)
  • ELISA; human; fig 1
In order to examine the effect of haptoglobin on endotoxin-induced inflammatory responses, Invitrogen TNF-alpha antibody (BioSource, 68B6A3) was used in ELISA on human samples (fig 1). Immunology (2005) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human; fig 1
In order to examine the effect of haptoglobin on endotoxin-induced inflammatory responses, Invitrogen TNF-alpha antibody (BioSource, 68B6A3) was used in ELISA on human samples (fig 1). Immunology (2005) ncbi
mouse monoclonal (68B2B3)
  • ELISA; human; fig 1
In order to examine the effect of haptoglobin on endotoxin-induced inflammatory responses, Invitrogen TNF-alpha antibody (BioSource, 68B2B3) was used in ELISA on human samples (fig 1). Immunology (2005) ncbi
mouse monoclonal (68B 3C5)
  • ELISA; human
In order to isolate and characterize LGLB from Spirochaeta aurantia, Invitrogen TNF-alpha antibody (Biosource, 68B3C5) was used in ELISA on human samples . Eur J Biochem (2004) ncbi
mouse monoclonal (68B2B3)
  • ELISA; human
In order to isolate and characterize LGLB from Spirochaeta aurantia, Invitrogen TNF-alpha antibody (Biosource, 68B2B3) was used in ELISA on human samples . Eur J Biochem (2004) ncbi
mouse monoclonal (68B6A3 L1)
  • ELISA; human
In order to isolate and characterize LGLB from Spirochaeta aurantia, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in ELISA on human samples . Eur J Biochem (2004) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human
In order to isolate and characterize LGLB from Spirochaeta aurantia, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in ELISA on human samples . Eur J Biochem (2004) ncbi
mouse monoclonal (68B 3C5)
  • ELISA; human; 4 ug/ml; fig 1
In order to suggest that TNF-alpha-induced p38 MAPK activation regulates the induction of functionally active HA-binding form of CD44 by activating sialidase in LPS-stimulated human monocytic cells, Invitrogen TNF-alpha antibody (BIOSOURCE, AHC3419) was used in ELISA on human samples at 4 ug/ml (fig 1). J Biol Chem (2003) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human; 5 ug/ml; fig 1
In order to suggest that TNF-alpha-induced p38 MAPK activation regulates the induction of functionally active HA-binding form of CD44 by activating sialidase in LPS-stimulated human monocytic cells, Invitrogen TNF-alpha antibody (BIOSOURCE, AHC3712) was used in ELISA on human samples at 5 ug/ml (fig 1). J Biol Chem (2003) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human; 5 ug/ml; fig 2
In order to study CD44 in monocytic cells, Invitrogen TNF-alpha antibody (BioSource, AHC3712) was used in ELISA on human samples at 5 ug/ml (fig 2). J Immunol (2002) ncbi
mouse monoclonal (68B 3C5)
  • ELISA; human; 4 ug/ml; fig 2
In order to study CD44 in monocytic cells, Invitrogen TNF-alpha antibody (BioSource, AHC3419) was used in ELISA on human samples at 4 ug/ml (fig 2). J Immunol (2002) ncbi
mouse monoclonal (68B6A3 L1)
  • ELISA; human; 1 ug/ml
In order to examine the effect of in vivo changes in glucose availability and plasma insulin concentrations in humans, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in ELISA on human samples at 1 ug/ml. Am J Physiol Endocrinol Metab (2002) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human; 1 ug/ml
In order to examine the effect of in vivo changes in glucose availability and plasma insulin concentrations in humans, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in ELISA on human samples at 1 ug/ml. Am J Physiol Endocrinol Metab (2002) ncbi
mouse monoclonal (68B2B3)
  • ELISA; human; 1 ug/ml
In order to examine the effect of in vivo changes in glucose availability and plasma insulin concentrations in humans, Invitrogen TNF-alpha antibody (Biosource, 68B2B3) was used in ELISA on human samples at 1 ug/ml. Am J Physiol Endocrinol Metab (2002) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human
In order to examine the effects of IGF-I on in vitro apoptosis of human peripheral blood granulocytes, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in ELISA on human samples . Endocrinology (2002) ncbi
mouse monoclonal (68B6A3 L1)
  • ELISA; human
In order to examine the effects of IGF-I on in vitro apoptosis of human peripheral blood granulocytes, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in ELISA on human samples . Endocrinology (2002) ncbi
mouse monoclonal (68B2B3)
  • ELISA; human
In order to examine the effects of IGF-I on in vitro apoptosis of human peripheral blood granulocytes, Invitrogen TNF-alpha antibody (Biosource, 68B2B3) was used in ELISA on human samples . Endocrinology (2002) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human
In order to study the mechanism of HIV-mediated suppression of IL-12 production, Invitrogen TNF-alpha antibody (Biosource, AHC3712) was used in ELISA on human samples . Blood (2001) ncbi
mouse monoclonal (68B 3C5)
  • ELISA; human
In order to study the mechanism of HIV-mediated suppression of IL-12 production, Invitrogen TNF-alpha antibody (Biosource, AHC3419) was used in ELISA on human samples . Blood (2001) ncbi
mouse monoclonal (68B2B3)
  • ELISA; human; fig 1
In order to investigate the role of CD40/CD40L signaling on Th1 development in the presence of Th2 cytokines, Invitrogen TNF-alpha antibody (Biosource/Medgenix Diagnostics, clone 68B2B3/68B6A3) was used in ELISA on human samples (fig 1). Scand J Immunol (2001) ncbi
mouse monoclonal (68B 3C5)
  • ELISA; human; fig 2, 3
In order to examine the effects of co-stimulation by CD58 on the production of Th1-type or Th2 type cytokines, Invitrogen TNF-alpha antibody (Biosource, 68B3C5) was used in ELISA on human samples (fig 2, 3). Int Immunol (2001) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human; fig 2, 3
In order to examine the effects of co-stimulation by CD58 on the production of Th1-type or Th2 type cytokines, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in ELISA on human samples (fig 2, 3). Int Immunol (2001) ncbi
mouse monoclonal (68B6A3 L1)
  • ELISA; human; fig 2, 3
In order to examine the effects of co-stimulation by CD58 on the production of Th1-type or Th2 type cytokines, Invitrogen TNF-alpha antibody (Biosource, 68B6A3) was used in ELISA on human samples (fig 2, 3). Int Immunol (2001) ncbi
mouse monoclonal (68B2B3)
  • ELISA; human; fig 2, 3
In order to examine the effects of co-stimulation by CD58 on the production of Th1-type or Th2 type cytokines, Invitrogen TNF-alpha antibody (Biosource, 68B2B3) was used in ELISA on human samples (fig 2, 3). Int Immunol (2001) ncbi
mouse monoclonal (68B2B3)
  • immunohistochemistry - frozen section; human; 1:200; fig 2
In order to discuss the case of a patient who died 27 months after onset of acute multiple sclerosis despite treatment with interferon-beta, azathioprine, corticosteroids, and cyclophosphamide, Invitrogen TNF-alpha antibody (Biosource, noca) was used in immunohistochemistry - frozen section on human samples at 1:200 (fig 2). Neurochem Res (2000) ncbi
mouse monoclonal (68B6A3 L1)
  • ELISA; human; fig 1
In order to study the contribution of TLR2 and TLR4 to LPS-induced signaling, Invitrogen TNF-alpha antibody (BioSource, 68B6A3) was used in ELISA on human samples (fig 1). J Immunol (2000) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human; fig 1
In order to study the contribution of TLR2 and TLR4 to LPS-induced signaling, Invitrogen TNF-alpha antibody (BioSource, 68B6A3) was used in ELISA on human samples (fig 1). J Immunol (2000) ncbi
mouse monoclonal (68B2B3)
  • ELISA; human; fig 1
In order to study the contribution of TLR2 and TLR4 to LPS-induced signaling, Invitrogen TNF-alpha antibody (BioSource, 68B2B3) was used in ELISA on human samples (fig 1). J Immunol (2000) ncbi
mouse monoclonal (68B 3C5)
  • ELISA; human
In order to determine the ability of chemoattractants to affect IL-12 production by human monocytes and dendritic cells, Invitrogen TNF-alpha antibody (BioSource, AHC3419) was used in ELISA on human samples . J Immunol (2000) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human
In order to determine the ability of chemoattractants to affect IL-12 production by human monocytes and dendritic cells, Invitrogen TNF-alpha antibody (BioSource, AHC3712) was used in ELISA on human samples . J Immunol (2000) ncbi
mouse monoclonal (68B2B3 and 68B6A3)
  • ELISA; human
In order to show that cholera toxin inhibits the production of interleukin-12, Invitrogen TNF-alpha antibody (Biosource, AHC3712) was used in ELISA on human samples . J Exp Med (1999) ncbi
mouse monoclonal (68B 3C5)
  • ELISA; human
In order to show that cholera toxin inhibits the production of interleukin-12, Invitrogen TNF-alpha antibody (Biosource, AHC3419) was used in ELISA on human samples . J Exp Med (1999) ncbi
Abcam
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; human; 1:500; loading ...; fig 6e
Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry - paraffin section on human samples at 1:500 (fig 6e). Front Oncol (2022) ncbi
domestic rabbit polyclonal
  • western blot; mouse; loading ...; fig 7c
Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on mouse samples (fig 7c). Signal Transduct Target Ther (2022) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; mouse; 1:100; loading ...; fig 1b
  • immunocytochemistry; mouse; 1:100; loading ...; fig 3c
Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry - paraffin section on mouse samples at 1:100 (fig 1b) and in immunocytochemistry on mouse samples at 1:100 (fig 3c). Nutrients (2022) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; loading ...; fig 5i
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry on mouse samples (fig 5i). Sci Adv (2022) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry; rat; fig 5b
  • western blot; rat; 1:1000; loading ...; fig 1b
Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry on rat samples (fig 5b) and in western blot on rat samples at 1:1000 (fig 1b). J Neuroinflammation (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; loading ...; fig 13h
Abcam TNF-alpha antibody (Abcam, ab9739) was used in immunohistochemistry on mouse samples (fig 13h). Mol Metab (2021) ncbi
domestic rabbit polyclonal
  • western blot; rat; 1:1000; loading ...; fig 11a
Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on rat samples at 1:1000 (fig 11a). J Neuroinflammation (2021) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 1f
Abcam TNF-alpha antibody (Abcam, ab66579) was used in western blot on mouse samples at 1:1000 (fig 1f). Cell Death Dis (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; rat; 1:100; loading ...; fig 8c
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry on rat samples at 1:100 (fig 8c). J Neuroinflammation (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; 1:200; fig 3a
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 3a). BMC Musculoskelet Disord (2021) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 4d
Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on mouse samples at 1:1000 (fig 4d). Nanoscale Res Lett (2021) ncbi
domestic rabbit polyclonal
  • western blot; mouse; loading ...
Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on mouse samples . Redox Biol (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; loading ...; fig 3a
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry on mouse samples (fig 3a). Front Cell Dev Biol (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; human; loading ...; fig 1d
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry on human samples (fig 1d). Exp Ther Med (2021) ncbi
mouse monoclonal (2.1_4E10-1H11)
  • western blot; human; 1:1000; fig 5d
Abcam TNF-alpha antibody (Abcam, Ab8348) was used in western blot on human samples at 1:1000 (fig 5d). Aging (Albany NY) (2021) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:800; loading ...; fig 5a
Abcam TNF-alpha antibody (Abcam, Ab66579) was used in western blot on mouse samples at 1:800 (fig 5a). Brain Pathol (2021) ncbi
domestic rabbit polyclonal
  • western blot; domestic rabbit; 1:100; loading ...; fig 1f, 8b
Abcam TNF-alpha antibody (Abcam, ab66579) was used in western blot on domestic rabbit samples at 1:100 (fig 1f, 8b). Invest Ophthalmol Vis Sci (2020) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 4
Abcam TNF-alpha antibody (Abcam, ab9739) was used in immunohistochemistry - paraffin section on mouse samples (fig 4). Front Immunol (2020) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; mouse; 1:150; loading ...; fig 5d
Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry - paraffin section on mouse samples at 1:150 (fig 5d). Front Pharmacol (2020) ncbi
mouse monoclonal (52B83)
  • western blot knockout validation; mouse; loading ...; fig s7b
Abcam TNF-alpha antibody (Abcam, ab1793) was used in western blot knockout validation on mouse samples (fig s7b). Cell Discov (2020) ncbi
domestic rabbit monoclonal
  • western blot; mouse; loading ...; fig e5e
Abcam TNF-alpha antibody (Abcam, ab183218) was used in western blot on mouse samples (fig e5e). Nature (2020) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; human; loading ...; fig 6a
Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry - paraffin section on human samples (fig 6a). elife (2020) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; mouse; 1:500; loading ...; fig 6a
Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry - paraffin section on mouse samples at 1:500 (fig 6a). Front Neurosci (2019) ncbi
domestic rabbit polyclonal
  • western blot; human; 1:1000; loading ...; fig 3c
Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on human samples at 1:1000 (fig 3c). PLoS ONE (2020) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:800; loading ...; fig 2a
Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on mouse samples at 1:800 (fig 2a). Stem Cells Dev (2020) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - frozen section; mouse; 1:200; loading ...; fig 8a
  • western blot; mouse; loading ...; fig 8c
Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry - frozen section on mouse samples at 1:200 (fig 8a) and in western blot on mouse samples (fig 8c). Neurochem Res (2020) ncbi
domestic rabbit polyclonal
  • western blot; rat; 1:1000; loading ...; fig 2e
Abcam TNF-alpha antibody (Abcam, ab66579) was used in western blot on rat samples at 1:1000 (fig 2e). J Neuroinflammation (2020) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; 1:1000; loading ...; fig 6b
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry - paraffin section on mouse samples at 1:1000 (fig 6b). Nat Commun (2019) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 4e
Abcam TNF-alpha antibody (Abcam, ab9739) was used in western blot on mouse samples at 1:1000 (fig 4e). CNS Neurosci Ther (2020) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; 1:50; loading ...; fig 5c
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry - paraffin section on mouse samples at 1:50 (fig 5c). Oncotarget (2019) ncbi
domestic rabbit polyclonal
  • western blot; rat; 1:1000; loading ...; fig 5a
Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on rat samples at 1:1000 (fig 5a). Biosci Rep (2019) ncbi
domestic rabbit polyclonal
  • western blot; rat; 1:1000; loading ...; fig 3b
Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on rat samples at 1:1000 (fig 3b). BMC Biotechnol (2019) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 6a
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry - paraffin section on mouse samples (fig 6a). J Clin Invest (2019) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig s2a-c
Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on mouse samples at 1:1000 (fig s2a-c). Cell Death Dis (2018) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 2a
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry - paraffin section on mouse samples (fig 2a). J Mol Cell Cardiol (2018) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 1f
Abcam TNF-alpha antibody (Abcam, ab66579) was used in western blot on mouse samples at 1:1000 (fig 1f). Cell Death Dis (2018) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; 1:200; loading ...; fig 8c
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 8c). J Neuroinflammation (2018) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 3a
Abcam TNF-alpha antibody (Abcam, ab9739) was used in immunohistochemistry - paraffin section on mouse samples (fig 3a). Exp Cell Res (2018) ncbi
domestic rabbit polyclonal
  • western blot; human; loading ...; fig 5k
Abcam TNF-alpha antibody (Abcam, ab9635) was used in western blot on human samples (fig 5k). Sci Rep (2018) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; human; 1:250; loading ...; fig 6c
Abcam TNF-alpha antibody (Abcam, AB6671) was used in immunohistochemistry - paraffin section on human samples at 1:250 (fig 6c). Ann Rheum Dis (2018) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 4a
Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on mouse samples at 1:1000 (fig 4a). Int J Mol Sci (2017) ncbi
domestic rabbit polyclonal
  • western blot; rat; loading ...; fig 6a
In order to assess the critical role of programmed death protein 1/programmed death-ligand 1 in the polarization of microglia during intracerebral hemorrhage-induced secondary brain injury, Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on rat samples (fig 6a). J Neuroinflammation (2017) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; rat; 1:100; loading ...; fig 5
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry - paraffin section on rat samples at 1:100 (fig 5). Am J Transl Res (2016) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:2000; loading ...; fig 6a
In order to analyze the effect of a high-fat diet on liver morphology and physiology, lipid metabolism, immune signaling, energy homeostasis, and stress responses during acute Trypanosoma cruzi infection, Abcam TNF-alpha antibody (Abcam, AB6671) was used in western blot on mouse samples at 1:2000 (fig 6a). Parasitol Res (2017) ncbi
domestic rabbit polyclonal
  • western blot; human; loading ...; fig 4a
Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on human samples (fig 4a). Cell Death Dis (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; 1:100; loading ...; fig 6e
In order to study the contribution of IL-10 producing B cells on periodontal inflammation and bone loss in ligature-induced experimental periodontitis, Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry - paraffin section on mouse samples at 1:100 (fig 6e). Infect Immun (2017) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; rat; 1:2000; fig 5
Abcam TNF-alpha antibody (Abcam, ab66579) was used in immunohistochemistry - paraffin section on rat samples at 1:2000 (fig 5). J Neuroinflammation (2016) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry; mouse; loading ...; fig 3c
Abcam TNF-alpha antibody (Abcam, 52B83) was used in immunohistochemistry on mouse samples (fig 3c). Diabetes (2017) ncbi
mouse monoclonal (P/T2)
  • immunohistochemistry; human; 1:1000; loading ...; fig 6c
In order to examine gastrointestinal changes in a cohort of Thai acute HIV-infected patients and assess the effect of early combination antiretroviral treatment, Abcam TNF-alpha antibody (Abcam, ab9579) was used in immunohistochemistry on human samples at 1:1000 (fig 6c). JCI Insight (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; bovine; 1:100; loading ...; fig 2c
Abcam TNF-alpha antibody (Abcam, ab66579) was used in immunohistochemistry on bovine samples at 1:100 (fig 2c). Eur Cell Mater (2016) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 4
In order to assess the effects of statins on Trypanosoma cruzi infection-induced myocarditis, Abcam TNF-alpha antibody (Abcam, AB6671) was used in western blot on mouse samples at 1:1000 (fig 4). Microbes Infect (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; rat; 1:150; fig 3
  • western blot; rat; fig 4
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry on rat samples at 1:150 (fig 3) and in western blot on rat samples (fig 4). BMC Cancer (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; rat; 1:1000; loading ...; fig 3a
In order to test the effect of honey in a rat model of ulcerative colitis, Abcam TNF-alpha antibody (abcam, ab6671) was used in immunohistochemistry - paraffin section on rat samples at 1:1000 (fig 3a). Acta Histochem (2016) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; mouse; 1:500; fig 5
In order to characterize the spontaneous peripheral squamous cell lung cancer in mice by ablation of liver X receptors alpha and beta, Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry - paraffin section on mouse samples at 1:500 (fig 5). Proc Natl Acad Sci U S A (2016) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:500; loading ...; fig 2e
In order to discover that Bid is a positive regulator of mutant SOD1-induced Toll like receptor-nuclear factor-kappa-b signaling in microglia, Abcam TNF-alpha antibody (Abcam, ab9635) was used in western blot on mouse samples at 1:500 (fig 2e). Eneuro (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; fig 3b
In order to study the intestinal barrier function using Arhgap17-deficient mice, Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry on mouse samples (fig 3b). Sci Rep (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; fig 3
In order to identify transcription factors involved in pancreatic ductal adenocarcinoma pathogenesis, Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry on mouse samples (fig 3). Am J Physiol Gastrointest Liver Physiol (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; loading ...; fig 2d
Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry on mouse samples (fig 2d). PLoS ONE (2016) ncbi
domestic rabbit polyclonal
  • western blot; pigs ; 1:400; fig 4
In order to learn about the induction of inflammatory signaling in porcine skeletal muscle after twelve hours of heat stress, Abcam TNF-alpha antibody (Abcam, ab6671) was used in western blot on pigs samples at 1:400 (fig 4). Am J Physiol Regul Integr Comp Physiol (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; 10 ug/ml; fig 5
In order to investigate promotion of healing in a bacterial LPS model of delayed cutaneous wound repair by oestrogen, Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry - paraffin section on mouse samples at 10 ug/ml (fig 5). Lab Invest (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; 1:200; fig 6
Abcam TNF-alpha antibody (Abcam, ab9739) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 6). Sci Rep (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; fig 3
  • western blot; human; fig 3
Abcam TNF-alpha antibody (abcam, ab66579) was used in immunocytochemistry on human samples (fig 3) and in western blot on human samples (fig 3). PLoS ONE (2016) ncbi
mouse monoclonal (P/T2)
  • immunohistochemistry - paraffin section; human; 1:400; fig 1
Abcam TNF-alpha antibody (AbCam, P/T2) was used in immunohistochemistry - paraffin section on human samples at 1:400 (fig 1). BMC Gastroenterol (2015) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; human
In order to assess epithelial tight junctions, cytokine production, and matrix metalloproteinase profiles in patients undergoing chemotherapy, Abcam TNF-alpha antibody (Abcam, ab6671) was used in immunohistochemistry on human samples . Support Care Cancer (2016) ncbi
mouse monoclonal (52B83)
  • flow cytometry; human; fig 5a
In order to identify NFATc2 as a regulator of human melanoma dedifferentiation, Abcam TNF-alpha antibody (Abcam, ab1793) was used in flow cytometry on human samples (fig 5a). Oncogene (2016) ncbi
mouse monoclonal (52B83)
Abcam TNF-alpha antibody (Abcam, ab1793) was used . Gene (2016) ncbi
domestic rabbit polyclonal
  • western blot; rat; 1:1000
In order to study adriamycin in non-cancerous tissues, Abcam TNF-alpha antibody (Abcam, ab66579) was used in western blot on rat samples at 1:1000. Biol Trace Elem Res (2016) ncbi
rat monoclonal (MP6-XT3)
  • western blot; rat; 1:1000
In order to test if the effects of anxiogenic drugs can be mitigated using agents that minimize oxidative stress, Abcam TNF-alpha antibody (Abcam, ab11564) was used in western blot on rat samples at 1:1000. PLoS ONE (2015) ncbi
mouse monoclonal (52B83)
  • western blot; rat; 1:1000; fig 2
Abcam TNF-alpha antibody (Abcam, ab1793) was used in western blot on rat samples at 1:1000 (fig 2). Exp Ther Med (2015) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - free floating section; human; 1:10
In order to study neuroinflammation-related gene regulation during normal aging and in sporadic Alzheimer disease in mice, Abcam TNF-alpha antibody (Abcam, ab179) was used in immunohistochemistry - free floating section on human samples at 1:10. J Neuropathol Exp Neurol (2015) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; mouse; 1:100; fig 2
In order to investigate the role of Fsp27 in adipose inflammation and hepatic insulin resistance, Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry - paraffin section on mouse samples at 1:100 (fig 2). Nat Commun (2015) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry; rat; 1:150; fig 3a
Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry on rat samples at 1:150 (fig 3a). J Dent Res (2015) ncbi
mouse monoclonal (52B83)
  • western blot; mouse; 1:1000
Abcam TNF-alpha antibody (Abcam, ab1793) was used in western blot on mouse samples at 1:1000. Toxicology (2014) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry; human; 1:20
In order to describe the post-mortem neuropathological characteristics of five EHEC patients, Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry on human samples at 1:20. Brain Pathol (2015) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry; human; 1:100; fig 5c
Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry on human samples at 1:100 (fig 5c). Int Forum Allergy Rhinol (2014) ncbi
mouse monoclonal (P/T2)
  • immunohistochemistry; human; 1:1000
Abcam TNF-alpha antibody (Abcam, P/T2) was used in immunohistochemistry on human samples at 1:1000. PLoS Pathog (2014) ncbi
mouse monoclonal (52B83)
  • immunocytochemistry; mouse; 2 ug/ml
  • western blot; mouse; 1:1000
In order to investigate the role of microglial derived tumor necrosis factor alpha in neuronal cell cycle progression, Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunocytochemistry on mouse samples at 2 ug/ml and in western blot on mouse samples at 1:1000. Neurobiol Dis (2014) ncbi
mouse monoclonal (52B83)
  • western blot; mouse; 1:1000
Abcam TNF-alpha antibody (Abcam, ab1793) was used in western blot on mouse samples at 1:1000. Food Chem Toxicol (2013) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - frozen section; rat
  • immunocytochemistry; rat
Abcam TNF-alpha antibody (Abcam, ab1793) was used in immunohistochemistry - frozen section on rat samples and in immunocytochemistry on rat samples . Stroke (2013) ncbi
mouse monoclonal (52B83)
  • western blot; mouse; 1:1000
Abcam TNF-alpha antibody (Abcam, ab1793) was used in western blot on mouse samples at 1:1000. Toxicology (2013) ncbi
BioLegend
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 4i
BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on human samples (fig 4i). PLoS ONE (2022) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 1:20; loading ...; fig 6h
BioLegend TNF-alpha antibody (BioLegend, 502909) was used in flow cytometry on human samples at 1:20 (fig 6h). EMBO Mol Med (2022) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 1:100; fig 4i
BioLegend TNF-alpha antibody (Biolegend, 502940) was used in flow cytometry on human samples at 1:100 (fig 4i). Nat Med (2021) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 1c
BioLegend TNF-alpha antibody (Biolegend, 502930) was used in flow cytometry on human samples (fig 1c). Cell Host Microbe (2021) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig s11g
BioLegend TNF-alpha antibody (Biolegend, 502940) was used in flow cytometry on human samples (fig s11g). Science (2021) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 2d
BioLegend TNF-alpha antibody (Biolegend, Mab11) was used in flow cytometry on human samples (fig 2d). Acta Neuropathol (2021) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 3:50; loading ...; fig 4a
BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on human samples at 3:50 (fig 4a). elife (2020) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 7c
BioLegend TNF-alpha antibody (Biolegend, 502912) was used in flow cytometry on human samples (fig 7c). Am J Respir Crit Care Med (2021) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 4d
BioLegend TNF-alpha antibody (Biolegend, 502909) was used in flow cytometry on human samples (fig 4d). Cell (2020) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 4b
BioLegend TNF-alpha antibody (BioLegend, MAB11) was used in flow cytometry on human samples (fig 4b). J Immunother Cancer (2020) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 6d
BioLegend TNF-alpha antibody (BioLegend, Mab11) was used in flow cytometry on human samples (fig 6d). Nature (2019) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 4b
BioLegend TNF-alpha antibody (Biolegend, 502930) was used in flow cytometry on human samples (fig 4b). Cell Mol Gastroenterol Hepatol (2020) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 1b
BioLegend TNF-alpha antibody (BioLegend, Mab11) was used in flow cytometry on human samples (fig 1b). J Immunol (2019) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig s7d
BioLegend TNF-alpha antibody (BioLegend, 502909) was used in flow cytometry on human samples (fig s7d). Immunity (2019) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3b
BioLegend TNF-alpha antibody (BioLegend, Mab11) was used in flow cytometry on human samples (fig 3b). Infect Immun (2019) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3a
BioLegend TNF-alpha antibody (BioLegend, 502930) was used in flow cytometry on human samples (fig 3a). Cell (2019) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 6a
BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in flow cytometry on human samples (fig 6a). Immunol Cell Biol (2019) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 3f
BioLegend TNF-alpha antibody (Biolegend, Mab11) was used in flow cytometry on human samples (fig 3f). Cell Stem Cell (2019) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 2d
BioLegend TNF-alpha antibody (BioLegend, 502930) was used in flow cytometry on human samples (fig 2d). Cell Rep (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 8d
BioLegend TNF-alpha antibody (Biolegend, Mab11) was used in flow cytometry on human samples (fig 8d). Nat Commun (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 1:50; loading ...; fig 1e
BioLegend TNF-alpha antibody (Biolegend, 502928) was used in flow cytometry on human samples at 1:50 (fig 1e). Nat Med (2019) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3c
BioLegend TNF-alpha antibody (BioLegend, 502927) was used in flow cytometry on human samples (fig 3c). J Exp Med (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3a
BioLegend TNF-alpha antibody (BioLegend, 502909) was used in flow cytometry on human samples (fig 3a). J Clin Invest (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 7a
BioLegend TNF-alpha antibody (Biolegend, 502944) was used in flow cytometry on human samples (fig 7a). Cell Rep (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3b
BioLegend TNF-alpha antibody (BioLegend, Mab11) was used in flow cytometry on human samples (fig 3b). J Exp Med (2018) ncbi
mouse monoclonal (MAb11)
  • ELISA; human; loading ...; fig 3d
BioLegend TNF-alpha antibody (BioLegend, 502915) was used in ELISA on human samples (fig 3d). Nat Commun (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 2h
BioLegend TNF-alpha antibody (BioLegend, Mab11) was used in flow cytometry on human samples (fig 2h). J Clin Invest (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 1f
BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in flow cytometry on human samples (fig 1f). Immun Inflamm Dis (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 2b
In order to study the effect off HIV 1 vaccination in HIV carriers, BioLegend TNF-alpha antibody (Biolegend, Mab11) was used in flow cytometry on human samples (fig 2b). Front Immunol (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig s2b
In order to investigate the effectiveness of a neoantigen vaccine against melanoma, BioLegend TNF-alpha antibody (Biolegend, Mab11) was used in flow cytometry on human samples (fig s2b). Nature (2017) ncbi
mouse monoclonal (MAb11)
  • mass cytometry; human; loading ...; fig 2a
In order to investigate the immune composition of tumor microenvironment in hepatocellular carcinoma, BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in mass cytometry on human samples (fig 2a). Proc Natl Acad Sci U S A (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 5b
In order to study the the activation of T lymphocyte death by Ebola virus glycoprotein, BioLegend TNF-alpha antibody (Biolegend, 502920) was used in flow cytometry on human samples (fig 5b). PLoS Pathog (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 4c
BioLegend TNF-alpha antibody (BioLegend, 502920) was used in flow cytometry on human samples (fig 4c). Oncoimmunology (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 2a
BioLegend TNF-alpha antibody (BioLegend, 502920) was used in flow cytometry on human samples (fig 2a). Proc Natl Acad Sci U S A (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; tbl s9
In order to optimize and assess potential malaria vaccine regimens, BioLegend TNF-alpha antibody (BioLegend, 502937) was used in flow cytometry on human samples (tbl s9). Nature (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; rhesus macaque; loading ...
In order to examine the kinetics of SIV-specific CD8+ T cell cytolytic factor expression in peripheral blood, lymph node, spleen, and gut mucosa from early acute infection through chronic infection, BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on rhesus macaque samples . PLoS Pathog (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; tbl 1
In order to report the function of CD70-CD27 signaling in patients infected with Epstein-Barr virus, BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in flow cytometry on human samples (tbl 1). J Exp Med (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 1a
In order to search for compounds that suppress pro-inflammatory cytokine production in the context of protein kinase C activation, BioLegend TNF-alpha antibody (Biolegend, 502906) was used in flow cytometry on human samples (fig 1a). Retrovirology (2016) ncbi
mouse monoclonal (MAb11)
  • blocking or activating experiments; human; loading ...; fig 6a
In order to determine the contribution of CD16 positive monocytes to antibody-dependent cellular cytotoxicity, BioLegend TNF-alpha antibody (BioLegend, Mab11) was used in blocking or activating experiments on human samples (fig 6a). Sci Rep (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 1:10; loading ...; fig 7b
In order to use flow cytometry and barcoded peptide-major histocompatibility complex multimers to screen for T cell specificities, BioLegend TNF-alpha antibody (BioLegend, 502930) was used in flow cytometry on human samples at 1:10 (fig 7b). Nat Biotechnol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 2e
In order to suggest that the BRD4-p300 signaling cascade promotes antitumor T cell grafts that could be used adoptive immunotherapy, BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in flow cytometry on human samples (fig 2e). J Clin Invest (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig s9f
In order to explore the role of exhausted CD8 positive CXCR5 positive T cells in mice chronically infected with lymphocytic choriomeningitis virus, BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on human samples (fig s9f). Nature (2016) ncbi
mouse monoclonal (MAb11)
BioLegend TNF-alpha antibody (Biolegend, 502929) was used . Nat Commun (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig s1e
BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on human samples (fig s1e). Eur J Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 6a
BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on human samples (fig 6a). PLoS ONE (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; rhesus macaque; loading ...
In order to optimize vaccination with Aventis Pasteur's canarypox vector-HIV, BioLegend TNF-alpha antibody (BioLegend, 502920) was used in flow cytometry on rhesus macaque samples . Nat Med (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; African green monkey; loading ...; fig 1b
In order to discuss the use of flow cytometry to examine common marmosets, BioLegend TNF-alpha antibody (BioLegend, Mab11) was used in flow cytometry on African green monkey samples (fig 1b). J Med Primatol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; pigs ; loading ...; fig 7d
In order to generate and characterize the immune system of CAG-LEA29Y transgenic pigs, BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on pigs samples (fig 7d). PLoS ONE (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 1
BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on human samples (fig 1). J Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 4b
BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in flow cytometry on human samples (fig 4b). Clin Cancer Res (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3a
In order to characterize innate lymphoid cell subpopulations isolated from patients with systemic sclerosis, BioLegend TNF-alpha antibody (biolegend, MAb11) was used in flow cytometry on human samples (fig 3a). J Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • immunocytochemistry; human; fig 6
BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in immunocytochemistry on human samples (fig 6). J Hematol Oncol (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 1
In order to investigate the dynamics and characteristics of natural killer cell types in the human ocular mucosal surface in situ during infection with group D human adenoviruses, BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on human samples (fig 1). Mucosal Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; pigs
BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in flow cytometry on pigs samples . Vet Res (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 2 ul/test
In order to analyze mucosal pinch biopsies collected predominantly during colonoscopies, BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on human samples at 2 ul/test. J Immunol Methods (2015) ncbi
mouse monoclonal (MAb11)
  • dot blot; human; tbl s1
In order to use polydimethylsiloxane microchambers to co-detect 42 immune effector proteins secreted from a single LPS-stimulation macrophage, BioLegend TNF-alpha antibody (Biolegend, 502902) was used in dot blot on human samples (tbl s1). Proc Natl Acad Sci U S A (2015) ncbi
mouse monoclonal (MAb1)
  • dot blot; human; tbl s1
In order to use polydimethylsiloxane microchambers to co-detect 42 immune effector proteins secreted from a single LPS-stimulation macrophage, BioLegend TNF-alpha antibody (Biolegend, 502802) was used in dot blot on human samples (tbl s1). Proc Natl Acad Sci U S A (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 1
BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on human samples (fig 1). J Infect Dis (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; pigs
In order to summarize the current knowledge on porcine alphabeta T cells, BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in flow cytometry on pigs samples . Mol Immunol (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 10,000 ug/ml; fig 3
BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in flow cytometry on human samples at 10,000 ug/ml (fig 3). J Surg Res (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 1:20
BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in flow cytometry on human samples at 1:20. Nat Med (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
BioLegend TNF-alpha antibody (BioLegend, Mab11) was used in flow cytometry on human samples . Virol J (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3a
In order to test if hip fracture and depressive symptoms had additive effects upon the aged immune system, BioLegend TNF-alpha antibody (BioLegend, MAb11) was used in flow cytometry on human samples (fig 3a). Exp Gerontol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; tbl 2
In order to correlate biomarkers associated with coagulation, monocyte activation, and inflammation in elite controllers of HIV infection, BioLegend TNF-alpha antibody (BioLegend, MAB11) was used in flow cytometry on human samples (tbl 2). J Infect Dis (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
BioLegend TNF-alpha antibody (Biolegend, MAb11) was used in flow cytometry on human samples . Tuberculosis (Edinb) (2013) ncbi
Santa Cruz Biotechnology
mouse monoclonal (4E1)
  • immunohistochemistry - paraffin section; mouse; 1:150; loading ...; fig 7a
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, 130349) was used in immunohistochemistry - paraffin section on mouse samples at 1:150 (fig 7a). Arthritis Res Ther (2022) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; rat; 1:25; loading ...; fig 1i
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc-52746) was used in immunohistochemistry - paraffin section on rat samples at 1:25 (fig 1i). Sci Rep (2022) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; rat; 1:100; loading ...; fig 7
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc-52746) was used in immunohistochemistry - paraffin section on rat samples at 1:100 (fig 7). Biomed Res Int (2022) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - frozen section; human; 1:150; loading ...; fig 1b, 4b, 7b
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc- 52746) was used in immunohistochemistry - frozen section on human samples at 1:150 (fig 1b, 4b, 7b). Cells (2021) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; mouse; 1:100; loading ...; fig 11a
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc-52746) was used in immunohistochemistry - paraffin section on mouse samples at 1:100 (fig 11a). Front Immunol (2021) ncbi
mouse monoclonal (52B83)
  • western blot; mouse; 1:100; loading ...; fig 5a
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc-52746) was used in western blot on mouse samples at 1:100 (fig 5a). Sci Rep (2021) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; African green monkey; 1:200; loading ...; fig 6j
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc-52746) was used in immunohistochemistry - paraffin section on African green monkey samples at 1:200 (fig 6j). Protein Cell (2021) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; mouse; 1:50; loading ...; fig 8o
Santa Cruz Biotechnology TNF-alpha antibody (Santa, sc52746) was used in immunohistochemistry - paraffin section on mouse samples at 1:50 (fig 8o). PLoS Pathog (2020) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; mouse; 1:200; loading ...; fig 7
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc-52746) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 7). Food Sci Nutr (2020) ncbi
mouse monoclonal (4E1)
  • immunohistochemistry; human; loading ...; fig 1
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc-130349) was used in immunohistochemistry on human samples (fig 1). PLoS ONE (2020) ncbi
mouse monoclonal (C-4)
  • immunohistochemistry - paraffin section; mouse; 1:100; loading ...; fig 4a
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc-133192) was used in immunohistochemistry - paraffin section on mouse samples at 1:100 (fig 4a). Cancers (Basel) (2020) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; rat; 1:400; loading ...; fig 3a
Santa Cruz Biotechnology TNF-alpha antibody (Santa, sc-52746) was used in immunohistochemistry - paraffin section on rat samples at 1:400 (fig 3a). J Inflamm (Lond) (2020) ncbi
mouse monoclonal (C-4)
  • western blot; mouse; 1:500; loading ...; fig 4b
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc-133192) was used in western blot on mouse samples at 1:500 (fig 4b). Neuropharmacology (2020) ncbi
mouse monoclonal (52B83)
  • western blot; rat; 1:500; loading ...; fig 6a
Santa Cruz Biotechnology TNF-alpha antibody (Santa, sc-52B83) was used in western blot on rat samples at 1:500 (fig 6a). J Pain Res (2018) ncbi
mouse monoclonal (52B83)
  • western blot; mouse; 1:3000; loading ...; fig 3c
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz Biotechnology, SC-52746) was used in western blot on mouse samples at 1:3000 (fig 3c). Arterioscler Thromb Vasc Biol (2018) ncbi
mouse monoclonal (52B83)
  • western blot; mouse; 1:1000; loading ...; fig 5a
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz Biotechnology, Inc, sc-52746) was used in western blot on mouse samples at 1:1000 (fig 5a). Mol Med Rep (2018) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry; rat; 1:100; loading ...; fig 4i
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc-52746) was used in immunohistochemistry on rat samples at 1:100 (fig 4i). Pharmacol Res (2018) ncbi
mouse monoclonal (52B83)
  • western blot; mouse; loading ...; fig 2b
In order to study the role of PPAR beta in PGC-1 alpha metabolism and mitochondria integrity, Santa Cruz Biotechnology TNF-alpha antibody (Bethyl, sc-52746) was used in western blot on mouse samples (fig 2b). Cell Metab (2017) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; mouse; 1:500; loading ...; fig 6g
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz Biotechnology, sc-52746) was used in immunohistochemistry - paraffin section on mouse samples at 1:500 (fig 6g). J Biomed Sci (2016) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - paraffin section; human; 1:100; fig 4
In order to assess modulation of cytokine expression in the intestine of patients with ulcerative colitis by bilberry-derived anthocyanins, Santa Cruz Biotechnology TNF-alpha antibody (santa Cruz, sc-52746) was used in immunohistochemistry - paraffin section on human samples at 1:100 (fig 4). PLoS ONE (2016) ncbi
mouse monoclonal (52B83)
  • immunohistochemistry - frozen section; mouse; 1:100; fig 5
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, sc-52746) was used in immunohistochemistry - frozen section on mouse samples at 1:100 (fig 5). Front Mol Neurosci (2016) ncbi
mouse monoclonal (52B83)
  • western blot; human; fig 1
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz, Sc52746) was used in western blot on human samples (fig 1). J Matern Fetal Neonatal Med (2016) ncbi
mouse monoclonal (4E1)
  • immunohistochemistry - paraffin section; mouse; 1:200; fig 7
Santa Cruz Biotechnology TNF-alpha antibody (santa Cruz, sc-130349) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 7). Oxid Med Cell Longev (2015) ncbi
mouse monoclonal (52B83)
  • western blot; mouse; fig 5
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz Biotechnology, sc-52746) was used in western blot on mouse samples (fig 5). Cell Death Dis (2015) ncbi
mouse monoclonal (52B83)
  • western blot; rat; 1:200
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz Biotechnology, SC52746) was used in western blot on rat samples at 1:200. J Pineal Res (2015) ncbi
mouse monoclonal (52B83)
  • western blot; mouse; loading ...; fig 6
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz Biotechnology, sc-52746) was used in western blot on mouse samples (fig 6). Respir Res (2014) ncbi
mouse monoclonal (4E1)
  • western blot; rat
Santa Cruz Biotechnology TNF-alpha antibody (Santa Cruz Biotechnology, sc-130349) was used in western blot on rat samples . Vascular (2015) ncbi
R&D Systems
domestic goat polyclonal
  • ELISA; human; loading ...; tbl s7
R&D Systems TNF-alpha antibody (R&D Systems, BAF210) was used in ELISA on human samples (tbl s7). Cell (2020) ncbi
domestic goat polyclonal
  • blocking or activating experiments; human; 3 ug/ml; loading ...; fig 4a
R&D Systems TNF-alpha antibody (R&D Systems, AF-410-NA) was used in blocking or activating experiments on human samples at 3 ug/ml (fig 4a). Oncogene (2019) ncbi
domestic goat polyclonal
  • blocking or activating experiments; mouse; 0.5 ug/ml; loading ...; fig 1f
R&D Systems TNF-alpha antibody (R&D Systems, AF-410-NA) was used in blocking or activating experiments on mouse samples at 0.5 ug/ml (fig 1f). Oxid Med Cell Longev (2019) ncbi
domestic goat polyclonal
  • blocking or activating experiments; human; loading ...; fig s2a
R&D Systems TNF-alpha antibody (R&D Systems, AF210) was used in blocking or activating experiments on human samples (fig s2a). Cell Death Dis (2017) ncbi
domestic goat polyclonal
  • blocking or activating experiments; human; loading ...; fig 4
In order to investigate TPM1 and TPM4 isoforms in leukocytes from Type 2 diabetic patients, R&D Systems TNF-alpha antibody (R&D Systems, AF-210-NA) was used in blocking or activating experiments on human samples (fig 4). PLoS ONE (2016) ncbi
mouse monoclonal (6402)
  • flow cytometry; human; fig 5
R&D Systems TNF-alpha antibody (R&D Systems, IC210P) was used in flow cytometry on human samples (fig 5). Stem Cell Reports (2016) ncbi
domestic goat polyclonal
  • ELISA; mouse; fig 6
R&D Systems TNF-alpha antibody (R&D Systems, AF-410-NA) was used in ELISA on mouse samples (fig 6). Acta Neuropathol Commun (2016) ncbi
domestic goat polyclonal
  • blocking or activating experiments; mouse; fig 5
R&D Systems TNF-alpha antibody (R&D Systems, AF-410-NA) was used in blocking or activating experiments on mouse samples (fig 5). Cell Mol Immunol (2017) ncbi
Novus Biologicals
domestic rabbit polyclonal
  • immunohistochemistry; mouse; 1:300; loading ...; fig 3a
Novus Biologicals TNF-alpha antibody (Novus Biologicals, NBP1-19532) was used in immunohistochemistry on mouse samples at 1:300 (fig 3a). Diabetologia (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry knockout validation; mouse; loading ...; fig s1a, s1b
Novus Biologicals TNF-alpha antibody (Novus, NBP1-19532) was used in immunohistochemistry knockout validation on mouse samples (fig s1a, s1b). Cell Discov (2020) ncbi
domestic rabbit polyclonal (L243)
  • blocking or activating experiments; mouse; loading ...; fig 5b
In order to elucidate the relationship between obesity and chronic kidney disease, Novus Biologicals TNF-alpha antibody (Novus Biologicals, NB600-587) was used in blocking or activating experiments on mouse samples (fig 5b). J Endocrinol (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; human; 1:100; fig 3
Novus Biologicals TNF-alpha antibody (Novus Biologicals, nbp1-19532) was used in immunohistochemistry on human samples at 1:100 (fig 3). Arch Med Sci (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - frozen section; rat; 1:200; fig 6
Novus Biologicals TNF-alpha antibody (Novus Biologicals, NBP1-19532) was used in immunohistochemistry - frozen section on rat samples at 1:200 (fig 6). Sci Rep (2016) ncbi
Sino Biological
mouse monoclonal (9A7A5G9)
  • flow cytometry; human
  • immunocytochemistry; human; fig 4
  • ELISA; human
  • flow cytometry; mouse
  • ELISA; mouse
In order to describe a lab-on-a-chip biosensor approach that is capable of performing near real-time diagnostics of cytokines and antibodies, Sino Biological TNF-alpha antibody (Sino Biological Inc, 10602-MM01) was used in flow cytometry on human samples , in immunocytochemistry on human samples (fig 4), in ELISA on human samples , in flow cytometry on mouse samples and in ELISA on mouse samples . Biosens Bioelectron (2015) ncbi
Wuhan Fine Biotech Co.,Ltd.
domestic rabbit polyclonal
  • immunohistochemistry; rat; 1:200; loading ...; fig 3
Wuhan Fine Biotech Co.,Ltd. TNF-alpha antibody (FineTest, FNab08821) was used in immunohistochemistry on rat samples at 1:200 (fig 3). Eur J Histochem (2021) ncbi
Bio-Rad
rat monoclonal (MP9-20A4)
  • blocking or activating experiments; human; loading ...; fig 5b
Bio-Rad TNF-alpha antibody (AbD Serotec, MCA1560) was used in blocking or activating experiments on human samples (fig 5b). Toxicol In Vitro (2014) ncbi
GeneTex
mouse monoclonal (F6C5)
  • immunocytochemistry; human; loading ...; fig 4b
  • ELISA; mouse; 1 ug/ml; fig 4a
GeneTex TNF-alpha antibody (Genetex, F6C5) was used in immunocytochemistry on human samples (fig 4b) and in ELISA on mouse samples at 1 ug/ml (fig 4a). Glia (2014) ncbi
Cell Signaling Technology
domestic rabbit polyclonal
  • western blot; mouse; loading ...; fig s3h
Cell Signaling Technology TNF-alpha antibody (Cell signaling, 3707) was used in western blot on mouse samples (fig s3h). Acta Pharm Sin B (2022) ncbi
domestic rabbit monoclonal (D5G9)
  • western blot; mouse; 1:1000; loading ...; fig 6a
Cell Signaling Technology TNF-alpha antibody (CST, 6945) was used in western blot on mouse samples at 1:1000 (fig 6a). J Exp Clin Cancer Res (2021) ncbi
domestic rabbit monoclonal (D5G9)
  • western blot; human; fig 1j
Cell Signaling Technology TNF-alpha antibody (Cell Signaling Technology, D5G9) was used in western blot on human samples (fig 1j). elife (2021) ncbi
domestic rabbit polyclonal
  • western blot; mouse; loading ...; fig 8b
Cell Signaling Technology TNF-alpha antibody (Cell Signaling Technology, 3707S) was used in western blot on mouse samples (fig 8b). Heliyon (2020) ncbi
domestic rabbit polyclonal
  • western blot; mouse; loading ...
Cell Signaling Technology TNF-alpha antibody (Cell Signaling Technology, 3707s) was used in western blot on mouse samples . J Cell Mol Med (2020) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 1a
Cell Signaling Technology TNF-alpha antibody (Cell Signaling, 3707) was used in western blot on mouse samples at 1:1000 (fig 1a). Mol Metab (2020) ncbi
domestic rabbit polyclonal
  • western blot knockout validation; human; loading ...; fig 4g
Cell Signaling Technology TNF-alpha antibody (Cell Signaling Technology, 3707) was used in western blot knockout validation on human samples (fig 4g). Nat Commun (2020) ncbi
domestic rabbit polyclonal
  • western blot; human; 1:1000; loading ...; fig 5d
Cell Signaling Technology TNF-alpha antibody (Cell Signaling, 3707) was used in western blot on human samples at 1:1000 (fig 5d). Radiat Res (2017) ncbi
domestic rabbit polyclonal
  • western blot; human; 1:1000; loading ...; fig s3j
In order to elucidate that mTORC1 presents tumor suppressor features in conditions of nutrient restrictions, Cell Signaling Technology TNF-alpha antibody (Cell Signaling, 3707) was used in western blot on human samples at 1:1000 (fig s3j). Nat Commun (2017) ncbi
domestic rabbit monoclonal (D1B4)
  • blocking or activating experiments; rat; loading ...; fig s3d
In order to identify an astrocyte subtype induced by activated microglia, Cell Signaling Technology TNF-alpha antibody (Cell Signaling, 7321) was used in blocking or activating experiments on rat samples (fig s3d). Nature (2017) ncbi
domestic rabbit monoclonal (D1B4)
  • blocking or activating experiments; human; fig 3b
Cell Signaling Technology TNF-alpha antibody (Cell Signaling, 7321) was used in blocking or activating experiments on human samples (fig 3b). Front Pharmacol (2016) ncbi
domestic rabbit polyclonal
  • western blot; mouse; fig 3
In order to analyze regulation of NLRP3 inflammasome in adipose tissue by phosphodiesterase 3B (PDE3B), Cell Signaling Technology TNF-alpha antibody (Cell Signaling Technology, 3707) was used in western blot on mouse samples (fig 3). Sci Rep (2016) ncbi
domestic rabbit polyclonal
  • western blot; rat; fig 3
Cell Signaling Technology TNF-alpha antibody (Cell Signaling, 3707) was used in western blot on rat samples (fig 3). Int J Mol Sci (2016) ncbi
domestic rabbit monoclonal (D1B4)
  • blocking or activating experiments; human; fig 10
Cell Signaling Technology TNF-alpha antibody (Cell Signaling Technology, 7321S) was used in blocking or activating experiments on human samples (fig 10). J Virol (2016) ncbi
domestic rabbit monoclonal (D5G9)
  • western blot; human
Cell Signaling Technology TNF-alpha antibody (Cell Signaling Technology, 6945) was used in western blot on human samples . Mol Biol Cell (2015) ncbi
domestic rabbit monoclonal (D1B4)
  • other; human; loading ...; fig 5c
Cell Signaling Technology TNF-alpha antibody (Cell signaling, 7321) was used in other on human samples (fig 5c). Anticancer Agents Med Chem (2015) ncbi
domestic rabbit monoclonal (D1B4)
  • blocking or activating experiments; human
Cell Signaling Technology TNF-alpha antibody (Cell Signaling Technology, D1B4) was used in blocking or activating experiments on human samples . J Biol Chem (2014) ncbi
BD Biosciences
mouse monoclonal (MAb11)
  • flow cytometry; mouse; fig 3e
BD Biosciences TNF-alpha antibody (BD Biosciences, Mab11) was used in flow cytometry on mouse samples (fig 3e). Mol Ther Oncolytics (2022) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 1:100; loading ...; fig 3a
BD Biosciences TNF-alpha antibody (BD Biosciences, 557647) was used in flow cytometry on human samples at 1:100 (fig 3a). J Immunother Cancer (2022) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 1:400; loading ...; fig s5f
BD Biosciences TNF-alpha antibody (BD Biosciences, Mab11) was used in flow cytometry on human samples at 1:400 (fig s5f). Nature (2021) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...
BD Biosciences TNF-alpha antibody (BD Bioscience, Mab11) was used in flow cytometry on human samples . Arthritis Res Ther (2021) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 2e
BD Biosciences TNF-alpha antibody (BD, Mab11) was used in flow cytometry on human samples (fig 2e). Rheumatology (Oxford) (2020) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 10e, 12e
BD Biosciences TNF-alpha antibody (BD Biosciences, 554512) was used in flow cytometry on human samples (fig 10e, 12e). Hum Vaccin Immunother (2020) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3b
BD Biosciences TNF-alpha antibody (BD, 554513) was used in flow cytometry on human samples (fig 3b). Front Immunol (2019) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3a
BD Biosciences TNF-alpha antibody (BD Biosciences, Mab11) was used in flow cytometry on human samples (fig 3a). Blood (2019) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 1b
BD Biosciences TNF-alpha antibody (BD, MAb11) was used in flow cytometry on human samples (fig 1b). J Virol (2019) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig s3a
BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on human samples (fig s3a). Proc Natl Acad Sci U S A (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 5d
BD Biosciences TNF-alpha antibody (BD, 554512) was used in flow cytometry on human samples (fig 5d). J Clin Invest (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 6h
BD Biosciences TNF-alpha antibody (BD, Mab11) was used in flow cytometry on human samples (fig 6h). Cancer Res (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3e
BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on human samples (fig 3e). J Clin Invest (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 2g
BD Biosciences TNF-alpha antibody (BD Biosciences, 554512) was used in flow cytometry on human samples (fig 2g). Cell (2018) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 4b
BD Biosciences TNF-alpha antibody (BD Biosciences, Mab11) was used in flow cytometry on human samples (fig 4b). Front Immunol (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 7a
BD Biosciences TNF-alpha antibody (BD, MAb11) was used in flow cytometry on human samples (fig 7a). J Immunol (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 1a
In order to detail MAIT cell responses to various microorganisms and cytokines, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on human samples (fig 1a). Proc Natl Acad Sci U S A (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 3
In order to investigate the expression of Toll-like receptors in satellite glial cells, BD Biosciences TNF-alpha antibody (BD Bioscience, MAb11) was used in flow cytometry on human samples (fig 3). Eur J Immunol (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 5a
In order to map the lineage of human dendritic cells, BD Biosciences TNF-alpha antibody (BD Biosciences, Mab11) was used in flow cytometry on human samples (fig 5a). Science (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 5d
In order to generate T cells from cord blood hematopoietic progenitor cells transduced to express an antigen receptor as assess their ability to limit malignant cells and graft versus host disease, BD Biosciences TNF-alpha antibody (BD Biosciences, 557647) was used in flow cytometry on human samples (fig 5d). Oncoimmunology (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; African green monkey; fig s4b
In order to optimize the dosing regimen of neutralizing anti-HIV-1 antibodies, BD Biosciences TNF-alpha antibody (BD Biosciences, Mab11) was used in flow cytometry on African green monkey samples (fig s4b). Nature (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 5
In order to elucidate the effects of pathogen recognition receptors on dendritic cell maturation, HIV infection, and on the quality of HIV-specific cytotoxic T-cell activation, BD Biosciences TNF-alpha antibody (BD, 557647) was used in flow cytometry on human samples (fig 5). Eur J Immunol (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...
BD Biosciences TNF-alpha antibody (BD, 554514) was used in flow cytometry on human samples . Cell (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; mouse; loading ...; fig s6d
In order to assess the effects of targeting the chimeric antigen receptors to the TRAC locus, BD Biosciences TNF-alpha antibody (BD pharmingen, MAb11) was used in flow cytometry on mouse samples (fig s6d). Nature (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 6c
In order to use CD49a expression to define subsets of tissue-resident memory T cells in the skin, BD Biosciences TNF-alpha antibody (BD Bioscience, MAb11) was used in flow cytometry on human samples (fig 6c). Immunity (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; rhesus macaque; loading ...; fig 3a
In order to study CXCR5+ CD8 T cells in SIV-infected animals, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on rhesus macaque samples (fig 3a). Proc Natl Acad Sci U S A (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...
In order to show T cell immunoglobulin and ITIM domain expression increases over time despite early initiation of antiretroviral treatment, BD Biosciences TNF-alpha antibody (BD Bioscience, MAb11) was used in flow cytometry on human samples . Sci Rep (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; rhesus macaque; loading ...; tbl 1
In order to establish the ability of the herpes simplex virus-1 VC2 vaccine to elicit immune responses in rhesus macaques, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on rhesus macaque samples (tbl 1). Vaccine (2017) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; black flying fox; loading ...; fig 6a
In order to describe the phenotypic and functional characterization of T cell subsets, B and NK cells in the fruit-eating bat Pteropus alecto, BD Biosciences TNF-alpha antibody (BD Biosciences, Mab11) was used in flow cytometry on black flying fox samples (fig 6a). Sci Rep (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; rhesus macaque; loading ...; fig 8b
BD Biosciences TNF-alpha antibody (BD, 557647) was used in flow cytometry on rhesus macaque samples (fig 8b). Sci Rep (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3b
In order to examine the effect of GM-CSF on TLR1, TLR2, and TLR4 using human monocytes, BD Biosciences TNF-alpha antibody (BD Biosciences, mAb11) was used in flow cytometry on human samples (fig 3b). PLoS ONE (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 1b
In order to determine the S. Typhi, S. Paratyphi A, and S. Paratyphi B cross-reactive CD4 positive T cell responses elicited by immunization with Ty21a, BD Biosciences TNF-alpha antibody (BD, MAb11) was used in flow cytometry on human samples (fig 1b). Clin Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3a
BD Biosciences TNF-alpha antibody (BD, 559321) was used in flow cytometry on human samples (fig 3a). Eur J Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 2g
BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on human samples (fig 2g). Sci Rep (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig s6
BD Biosciences TNF-alpha antibody (BD Biosciences, 554514) was used in flow cytometry on human samples (fig s6). Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 1
BD Biosciences TNF-alpha antibody (BD Pharmigen, 560679) was used in flow cytometry on human samples (fig 1). Oncoimmunology (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 6c
In order to report that IgA-producing plasma cells are a major source of inducible NO synthase in Helicobacter pylori-infected patients, BD Biosciences TNF-alpha antibody (BD, MAb11) was used in flow cytometry on human samples (fig 6c). J Immunol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 6
In order to study activation of myeloid dendritic cells, regulatory T cells and effector cells in lichen planus, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on human samples (fig 6). J Transl Med (2016) ncbi
mouse monoclonal (6401.1111)
  • flow cytometry; human; fig 1
In order to study activation of myeloid dendritic cells, regulatory T cells and effector cells in lichen planus, BD Biosciences TNF-alpha antibody (BD Biosciences, 6401.111) was used in flow cytometry on human samples (fig 1). J Transl Med (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 1:100; fig 3
In order to elucidate the marked reduction of Nkp44/Nkp46-double positive natural killer cells by celiac disease-related inflammation, BD Biosciences TNF-alpha antibody (Becton Dickinson, Mab11) was used in flow cytometry on human samples at 1:100 (fig 3). PLoS ONE (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; tbl 2
In order to characterize the immune responses of children immunized with Plasmodium falciparum apical membrane antigen 1, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on human samples (tbl 2). Vaccine (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; rhesus macaque; loading ...
BD Biosciences TNF-alpha antibody (BD Biosciences, Mab11) was used in flow cytometry on rhesus macaque samples . PLoS ONE (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; bovine; 1:10; loading ...; tbl 2
In order to assess the protective immunological events induced by vaccination with Leishmune in dogs, BD Biosciences TNF-alpha antibody (BD Biosciences, 559321) was used in flow cytometry on bovine samples at 1:10 (tbl 2). Vet Parasitol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
BD Biosciences TNF-alpha antibody (BD, 554512) was used in flow cytometry on human samples . Oncoimmunology (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 4a
In order to examine if pregnancy-related changes in disease activity are associated with changes in T cell populations, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on human samples (fig 4a). Arthritis Res Ther (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 3b
BD Biosciences TNF-alpha antibody (BD Pharmingen, MAb11) was used in flow cytometry on human samples (fig 3b). PLoS ONE (2016) ncbi
mouse monoclonal (MAb1)
  • flow cytometry; rhesus macaque; fig 3
In order to assess the ability of HIV-1 envelope glycoprotein-specific broadly neutralizing monoclonal antibodies to suppress acute simian-human immunodeficiency virus replication in rhesus macaques, BD Biosciences TNF-alpha antibody (BD Biosciences, Mab11) was used in flow cytometry on rhesus macaque samples (fig 3). J Virol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; rhesus macaque; fig 3
In order to assess the ability of HIV-1 envelope glycoprotein-specific broadly neutralizing monoclonal antibodies to suppress acute simian-human immunodeficiency virus replication in rhesus macaques, BD Biosciences TNF-alpha antibody (BD Biosciences, Mab11) was used in flow cytometry on rhesus macaque samples (fig 3). J Virol (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; dogs; fig 6
BD Biosciences TNF-alpha antibody (BD, 559321) was used in flow cytometry on dogs samples (fig 6). Acta Vet Scand (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; loading ...; fig 4c
In order to assess the efficacy of a single vaccination of the Yellow Fever vaccine, BD Biosciences TNF-alpha antibody (BD-PharMingen, 557647) was used in flow cytometry on human samples (fig 4c). Hum Vaccin Immunother (2016) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 3
In order to assess arming of MAIT cell cytolytic antimicrobial activity and induction by IL-7 and faulty in HIV-1 infection, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on human samples (fig 3). PLoS Pathog (2015) ncbi
mouse monoclonal (MAb1)
  • flow cytometry; human; fig 3
In order to assess arming of MAIT cell cytolytic antimicrobial activity and induction by IL-7 and faulty in HIV-1 infection, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on human samples (fig 3). PLoS Pathog (2015) ncbi
mouse monoclonal (6401.1111)
  • flow cytometry; human; 1:50; fig s3
BD Biosciences TNF-alpha antibody (BD, 340534) was used in flow cytometry on human samples at 1:50 (fig s3). Nat Commun (2015) ncbi
mouse monoclonal (MAb1)
  • flow cytometry; South American squirrel monkey
  • ELISA; South American squirrel monkey
BD Biosciences TNF-alpha antibody (BD Bioscience, mAb1) was used in flow cytometry on South American squirrel monkey samples and in ELISA on South American squirrel monkey samples . Malar J (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
BD Biosciences TNF-alpha antibody (BD, MAb11) was used in flow cytometry on human samples . J Immunol (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
In order to determine if HIV elite controllers have exhausted T cells, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on human samples . J Infect Dis (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
BD Biosciences TNF-alpha antibody (BD Biosciences, Mab11) was used in flow cytometry on human samples . J Immunol (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; 6:100; fig 3b
In order to show that hepatitis B virus exposure in utero enhances immunity to bacterial infections, BD Biosciences TNF-alpha antibody (Becton Dickinson, MAb11) was used in flow cytometry on human samples at 6:100 (fig 3b). Nat Commun (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
In order to examine the phenotype and function of peripheral gammadelta T cells in patients with chronic hepatitis B during pegylated-interferon-alpha treatment, BD Biosciences TNF-alpha antibody (BD, Mab11) was used in flow cytometry on human samples . PLoS ONE (2015) ncbi
mouse monoclonal (MAb1)
  • ELISA; human; fig 1
BD Biosciences TNF-alpha antibody (BD Pharmingen, 551220) was used in ELISA on human samples (fig 1). PLoS ONE (2015) ncbi
mouse monoclonal (MAb11)
  • ELISA; human; fig 1
BD Biosciences TNF-alpha antibody (BD Pharmingen, 554511) was used in ELISA on human samples (fig 1). PLoS ONE (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
BD Biosciences TNF-alpha antibody (BD Bioscience, MAb11) was used in flow cytometry on human samples . Immun Inflamm Dis (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
In order to discuss how inflammation contributes to pulmonary arterial hypertension, BD Biosciences TNF-alpha antibody (BD Pharmingen, MAb11) was used in flow cytometry on human samples . Chest (2015) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
In order to evaluate immune responses by monocyte isolated from young and old adults before and after influenza vaccination, BD Biosciences TNF-alpha antibody (BD Biosciences, MAB11) was used in flow cytometry on human samples . J Infect Dis (2015) ncbi
mouse monoclonal (MAb11)
  • immunocytochemistry; human
In order to study the role of dendritic cells in relation to T cells, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in immunocytochemistry on human samples . J Immunol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 2
In order to compare five SIV vaccine platforms, BD Biosciences TNF-alpha antibody (BD Pharmingen, clone Mab11) was used in flow cytometry on human samples (fig 2). Clin Immunol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
In order to test the safety and immunogenicity of an adenovirus 35-vectored tuberculosis vaccine candidate AERAS-402 in infants, BD Biosciences TNF-alpha antibody (BD Biosciences, Clone MAb11) was used in flow cytometry on human samples . Vaccine (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; rhesus macaque
In order to examine the effect of HMBPP-deficient Listeria mutant immunization, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on rhesus macaque samples . J Leukoc Biol (2014) ncbi
mouse monoclonal (MAb1)
  • flow cytometry; rhesus macaque
In order to examine the effect of HMBPP-deficient Listeria mutant immunization, BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on rhesus macaque samples . J Leukoc Biol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
BD Biosciences TNF-alpha antibody (BD Bioscience, MAb11) was used in flow cytometry on human samples . Med Microbiol Immunol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
BD Biosciences TNF-alpha antibody (BD Bioscience, MAb11) was used in flow cytometry on human samples . PLoS Pathog (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
BD Biosciences TNF-alpha antibody (BD, MAb11) was used in flow cytometry on human samples . Front Immunol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; rhesus macaque; loading ...; fig 5b
In order to explore germinal center-related hyperimmune responses and disease severity during viral infection, BD Biosciences TNF-alpha antibody (BD, Mab11) was used in flow cytometry on rhesus macaque samples (fig 5b). J Immunol (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
BD Biosciences TNF-alpha antibody (BD, Mab11) was used in flow cytometry on human samples . J Exp Med (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human
BD Biosciences TNF-alpha antibody (BD Biosciences, MAb11) was used in flow cytometry on human samples . J Immunol (2014) ncbi
mouse monoclonal (MAb11)
  • ELISA; human; fig 3
In order to report enhanced anticancer immunity using dendritic cells to present endocytosed material and initiate T cell immunity, BD Biosciences TNF-alpha antibody (BD Biosciences, mAb 11) was used in ELISA on human samples (fig 3). Sci Transl Med (2014) ncbi
mouse monoclonal (6401.1111)
  • flow cytometry; human
BD Biosciences TNF-alpha antibody (BD, 6401.1111) was used in flow cytometry on human samples . PLoS Pathog (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; rhesus macaque
In order to compare vaccination with highly conserved gag elements verses full-length gag DNA, BD Biosciences TNF-alpha antibody (BD, Mab11) was used in flow cytometry on rhesus macaque samples . PLoS ONE (2014) ncbi
mouse monoclonal (MAb11)
  • flow cytometry; human; fig 1
In order to study mucosal associated invariant T cells and B cell interactions, BD Biosciences TNF-alpha antibody (BD Pharmingen, clone MAb11) was used in flow cytometry on human samples (fig 1). Front Immunol (2014) ncbi
Articles Reviewed
  1. Pandey S, Shteinfer Kuzmine A, Chalifa Caspi V, Shoshan Barmatz V. Non-apoptotic activity of the mitochondrial protein SMAC/Diablo in lung cancer: Novel target to disrupt survival, inflammation, and immunosuppression. Front Oncol. 2022;12:992260 pubmed publisher
  2. Tong J, Li D, Meng H, Sun D, Lan X, Ni M, et al. Targeting a novel inducible GPX4 alternative isoform to alleviate ferroptosis and treat metabolic-associated fatty liver disease. Acta Pharm Sin B. 2022;12:3650-3666 pubmed publisher
  3. Jin Y, Lorvik K, Jin Y, Beck C, Sike A, Persiconi I, et al. Development of STEAP1 targeting chimeric antigen receptor for adoptive cell therapy against cancer. Mol Ther Oncolytics. 2022;26:189-206 pubmed publisher
  4. Zhang L, Zheng D, Yan Y, Yu Y, Chen R, Li Z, et al. Myeloid cell-specific deletion of Capns1 prevents macrophage polarization toward the M1 phenotype and reduces interstitial lung disease in the bleomycin model of systemic sclerosis. Arthritis Res Ther. 2022;24:148 pubmed publisher
  5. Shankar S, Stolp J, Juvet S, Beckett J, Macklin P, Issa F, et al. Ex vivo-expanded human CD19+TIM-1+ regulatory B cells suppress immune responses in vivo and are dependent upon the TIM-1/STAT3 axis. Nat Commun. 2022;13:3121 pubmed publisher
  6. Formigari G, D xe1 tilo M, Vareda B, Bonfante I, Cavaglieri C, Lopes de Faria J, et al. Renal protection induced by physical exercise may be mediated by the irisin/AMPK axis in diabetic nephropathy. Sci Rep. 2022;12:9062 pubmed publisher
  7. Hickman T, Choi E, Whiteman K, Muralidharan S, Pai T, Johnson T, et al. BOXR1030, an anti-GPC3 CAR with exogenous GOT2 expression, shows enhanced T cell metabolism and improved anti-cell line derived tumor xenograft activity. PLoS ONE. 2022;17:e0266980 pubmed publisher
  8. Yu L, Zhang J, Gao A, Wang Z, Yu F, Guo X, et al. An intersegmental single-cell profile reveals aortic heterogeneity and identifies a novel Malat1+ vascular smooth muscle subtype involved in abdominal aortic aneurysm formation. Signal Transduct Target Ther. 2022;7:125 pubmed publisher
  9. Gharanei S, Ramanjaneya M, Patel A, Patel V, Shabir K, Auld C, et al. NUCB2/Nesfatin-1 Reduces Obesogenic Diet Induced Inflammation in Mice Subcutaneous White Adipose Tissue. Nutrients. 2022;14: pubmed publisher
  10. Zhou Q, Li J, Xiang Z, Zou H, Shao X. Amelioration of Renal Injury by Resveratrol in a Rat Renal Transplantation Model via Activation of the SIRT1/NF-κB Signaling Pathway. Biomed Res Int. 2022;2022:7140961 pubmed publisher
  11. Xu J, Li Z, Tower R, Negri S, Wang Y, Meyers C, et al. NGF-p75 signaling coordinates skeletal cell migration during bone repair. Sci Adv. 2022;8:eabl5716 pubmed publisher
  12. Zinngrebe J, Moepps B, Monecke T, Gierschik P, Schlichtig F, Barth T, et al. Compound heterozygous variants in OTULIN are associated with fulminant atypical late-onset ORAS. EMBO Mol Med. 2022;14:e14901 pubmed publisher
  13. Bajor M, Graczyk Jarzynka A, Marhelava K, Burdzińska A, Muchowicz A, Góral A, et al. PD-L1 CAR effector cells induce self-amplifying cytotoxic effects against target cells. J Immunother Cancer. 2022;10: pubmed publisher
  14. Rodriguez E, Boelaars K, Brown K, Madunić K, van Ee T, Dijk F, et al. Analysis of the glyco-code in pancreatic ductal adenocarcinoma identifies glycan-mediated immune regulatory circuits. Commun Biol. 2022;5:41 pubmed publisher
  15. Yadav A, Huang T, Chen S, Ramasamy T, Hsueh Y, Lin S, et al. Sodium phenylbutyrate inhibits Schwann cell inflammation via HDAC and NFκB to promote axonal regeneration and remyelination. J Neuroinflammation. 2021;18:238 pubmed publisher
  16. Poletti F, González Fernández R, García M, Rotoli D, Avila J, Mobasheri A, et al. Molecular-Morphological Relationships of the Scaffold Protein FKBP51 and Inflammatory Processes in Knee Osteoarthritis. Cells. 2021;10: pubmed publisher
  17. Stoffel W, Binczek E, Schmidt Soltau I, Brodesser S, Wegner I. High fat / high cholesterol diet does not provoke atherosclerosis in the ω3-and ω6-polyunsaturated fatty acid synthesis-inactivated Δ6-fatty acid desaturase-deficient mouse. Mol Metab. 2021;54:101335 pubmed publisher
  18. Xu X, Lei Y, Chen L, Zhou H, Liu H, Jiang J, et al. Phosphorylation of NF-κBp65 drives inflammation-mediated hepatocellular carcinogenesis and is a novel therapeutic target. J Exp Clin Cancer Res. 2021;40:253 pubmed publisher
  19. Santana K, Righetti R, Breda C, Domínguez Amorocho O, Ramalho T, Dantas F, et al. Cholesterol-Ester Transfer Protein Alters M1 and M2 Macrophage Polarization and Worsens Experimental Elastase-Induced Pulmonary Emphysema. Front Immunol. 2021;12:684076 pubmed publisher
  20. Petley E, Koay H, Henderson M, Sek K, Todd K, Keam S, et al. MAIT cells regulate NK cell-mediated tumor immunity. Nat Commun. 2021;12:4746 pubmed publisher
  21. Mohamed A, El Magd M, El Said K, El Sharnouby M, Tousson E, Salama A. Potential therapeutic effect of thymoquinone and/or bee pollen on fluvastatin-induced hepatitis in rats. Sci Rep. 2021;11:15688 pubmed publisher
  22. Oberhardt V, Luxenburger H, Kemming J, Schulien I, Ciminski K, Giese S, et al. Rapid and stable mobilization of CD8+ T cells by SARS-CoV-2 mRNA vaccine. Nature. 2021;597:268-273 pubmed publisher
  23. Spiegel J, Patel S, Muffly L, Hossain N, Oak J, Baird J, et al. CAR T cells with dual targeting of CD19 and CD22 in adult patients with recurrent or refractory B cell malignancies: a phase 1 trial. Nat Med. 2021;27:1419-1431 pubmed publisher
  24. Xiao J, Cai T, Fang Y, Liu R, Flores J, Wang W, et al. Activation of GPR40 attenuates neuroinflammation and improves neurological function via PAK4/CREB/KDM6B pathway in an experimental GMH rat model. J Neuroinflammation. 2021;18:160 pubmed publisher
  25. Cao Y, Huang W, Wu F, Shang J, Ping F, Wang W, et al. ZFP36 protects lungs from intestinal I/R-induced injury and fibrosis through the CREBBP/p53/p21/Bax pathway. Cell Death Dis. 2021;12:685 pubmed publisher
  26. Li H, Yang Q, Wang W, Tian X, Feng F, Zhang S, et al. Red nucleus IL-33 facilitates the early development of mononeuropathic pain in male rats by inducing TNF-α through activating ERK, p38 MAPK, and JAK2/STAT3. J Neuroinflammation. 2021;18:150 pubmed publisher
  27. Jeong D, Kim H, Kim H, Kang M, Jung H, Oh Y, et al. Soluble Fas ligand drives autoantibody-induced arthritis by binding to DR5/TRAIL-R2. elife. 2021;10: pubmed publisher
  28. Motozono C, Toyoda M, Zahradník J, Saito A, Nasser H, Tan T, et al. SARS-CoV-2 spike L452R variant evades cellular immunity and increases infectivity. Cell Host Microbe. 2021;29:1124-1136.e11 pubmed publisher
  29. Ramos M, Tian L, de Ruiter E, Song C, Paucarmayta A, Singh A, et al. Cancer immunotherapy by NC410, a LAIR-2 Fc protein blocking human LAIR-collagen interaction. elife. 2021;10: pubmed publisher
  30. Zhang H, Li J, Ren J, Sun S, Ma S, Zhang W, et al. Single-nucleus transcriptomic landscape of primate hippocampal aging. Protein Cell. 2021;12:695-716 pubmed publisher
  31. Chen L, Cheng S, Sun K, Wang J, Liu X, Zhao Y, et al. Changes in macrophage and inflammatory cytokine expressions during fracture healing in an ovariectomized mice model. BMC Musculoskelet Disord. 2021;22:494 pubmed publisher
  32. Zhang W, Li J, Yao H, Li T. Restoring microRNA-499-5p Protects Sepsis-Induced Lung Injury Mice Via Targeting Sox6. Nanoscale Res Lett. 2021;16:89 pubmed publisher
  33. Lindfors S, Polianskyte Prause Z, Bouslama R, Lehtonen E, Mannerla M, Nisen H, et al. Adiponectin receptor agonist AdipoRon ameliorates renal inflammation in diet-induced obese mice and endotoxin-treated human glomeruli ex vivo. Diabetologia. 2021;64:1866-1879 pubmed publisher
  34. Liu Y, Cong P, Zhang T, Wang R, Wang X, Liu J, et al. Plasmalogen attenuates the development of hepatic steatosis and cognitive deficit through mechanism involving p75NTR inhibition. Redox Biol. 2021;43:102002 pubmed publisher
  35. Ye S, Su L, Shan P, Ye B, Wu S, Liang G, et al. LCZ696 Attenuated Doxorubicin-Induced Chronic Cardiomyopathy Through the TLR2-MyD88 Complex Formation. Front Cell Dev Biol. 2021;9:654051 pubmed publisher
  36. Weber E, Parker K, Sotillo E, Lynn R, Anbunathan H, Lattin J, et al. Transient rest restores functionality in exhausted CAR-T cells through epigenetic remodeling. Science. 2021;372: pubmed publisher
  37. Li Q, Cheng F, Zhou K, Fang L, Wu J, Xia Q, et al. Increased sensitivity to TNF-α promotes keloid fibroblast hyperproliferation by activating the NF-κB, JNK and p38 MAPK pathways. Exp Ther Med. 2021;21:502 pubmed publisher
  38. Ingelfinger F, Krishnarajah S, Kramer M, Utz S, Galli E, Lutz M, et al. Single-cell profiling of myasthenia gravis identifies a pathogenic T cell signature. Acta Neuropathol. 2021;141:901-915 pubmed publisher
  39. Jeong J, Choi S, Ahn S, Oh J, Kim Y, Lee C, et al. Neutrophil extracellular trap clearance by synovial macrophages in gout. Arthritis Res Ther. 2021;23:88 pubmed publisher
  40. Li X, Ye Z, Guo Q, Wang E, Pan Y. PDTC ameliorates neuropathic pain by inhibiting microglial activation <em>via</em> blockage of the TNFα-CX3CR1 pathway. Eur J Histochem. 2021;65: pubmed publisher
  41. Zhang Z, Zou X, Zhang R, Xie Y, Feng Z, Li F, et al. Human umbilical cord mesenchymal stem cell-derived exosomal miR-146a-5p reduces microglial-mediated neuroinflammation via suppression of the IRAK1/TRAF6 signaling pathway after ischemic stroke. Aging (Albany NY). 2021;13:3060-3079 pubmed publisher
  42. Tan X, Kobayashi K, Shen L, Inagaki J, Ide M, Hwang S, et al. Antioxidative attributes of rice bran extracts in ameliorative effects of atherosclerosis-associated risk factors. Heliyon. 2020;6:e05743 pubmed publisher
  43. Gregorova M, Morse D, Brignoli T, Steventon J, Hamilton F, Albur M, et al. Post-acute COVID-19 associated with evidence of bystander T-cell activation and a recurring antibiotic-resistant bacterial pneumonia. elife. 2020;9: pubmed publisher
  44. Snyder M, Sembrat J, Noda K, MYERBURG M, Craig A, Mitash N, et al. Human Lung-Resident Macrophages Colocalize with and Provide Costimulation to PD1hi Tissue-Resident Memory T Cells. Am J Respir Crit Care Med. 2021;203:1230-1244 pubmed publisher
  45. Drake L, Brooks A, Stauff J, Sherman P, Arteaga J, Koeppe R, et al. Strategies for PET imaging of the receptor for advanced glycation endproducts (RAGE). J Pharm Anal. 2020;10:452-465 pubmed publisher
  46. Kamali S, Rajendran R, Stadelmann C, Karnati S, Rajendran V, Giraldo Velasquez M, et al. Oligodendrocyte-specific deletion of FGFR2 ameliorates MOG35-55 -induced EAE through ERK and Akt signalling. Brain Pathol. 2021;31:297-311 pubmed publisher
  47. Zhao L, Fan M, Zhao L, Yun H, Yang Y, Wang C, et al. Fibroblast growth factor 1 ameliorates adipose tissue inflammation and systemic insulin resistance via enhancing adipocyte mTORC2/Rictor signal. J Cell Mol Med. 2020;24:12813-12825 pubmed publisher
  48. Wang Y, Gao G, Wu Y, Wang Y, Wu X, Zhou Q. S100A4 Silencing Facilitates Corneal Wound Healing After Alkali Burns by Promoting Autophagy via Blocking the PI3K/Akt/mTOR Signaling Pathway. Invest Ophthalmol Vis Sci. 2020;61:19 pubmed publisher
  49. Araújo L, Torquato B, da Silva C, Dos Reis Monteiro M, Dos Santos Martins A, da Silva M, et al. Renal expression of cytokines and chemokines in diabetic nephropathy. BMC Nephrol. 2020;21:308 pubmed publisher
  50. Bouhaddou M, Memon D, Meyer B, White K, Rezelj V, Correa Marrero M, et al. The Global Phosphorylation Landscape of SARS-CoV-2 Infection. Cell. 2020;182:685-712.e19 pubmed publisher
  51. Oh D, Kwek S, Raju S, Li T, McCarthy E, Chow E, et al. Intratumoral CD4+ T Cells Mediate Anti-tumor Cytotoxicity in Human Bladder Cancer. Cell. 2020;181:1612-1625.e13 pubmed publisher
  52. LeBlang C, Medalla M, Nicoletti N, Hays E, Zhao J, Shattuck J, et al. Reduction of the RNA Binding Protein TIA1 Exacerbates Neuroinflammation in Tauopathy. Front Neurosci. 2020;14:285 pubmed publisher
  53. Choudhuri S, Garg N. PARP1-cGAS-NF-κB pathway of proinflammatory macrophage activation by extracellular vesicles released during Trypanosoma cruzi infection and Chagas disease. PLoS Pathog. 2020;16:e1008474 pubmed publisher
  54. Jiao Q, Luo Y, Scheffel J, Geng P, Wang Y, Frischbutter S, et al. Skin Mast Cells Contribute to Sporothrix schenckii Infection. Front Immunol. 2020;11:469 pubmed publisher
  55. Tang Z, Xiong D, Song J, Ye M, Liu J, Wang Z, et al. Antitumor Drug Combretastatin-A4 Phosphate Aggravates the Symptoms of Dextran Sulfate Sodium-Induced Ulcerative Colitis in Mice. Front Pharmacol. 2020;11:339 pubmed publisher
  56. Oh W, Jung J, Choi Y, Mun J, Ku S, Song C. Protective effects of fermented rice extract on ulcerative colitis induced by dextran sodium sulfate in mice. Food Sci Nutr. 2020;8:1718-1728 pubmed publisher
  57. Xu M, Ge C, Qin Y, Lou D, Li Q, Feng J, et al. Functional loss of inactive rhomboid-like protein 2 mitigates obesity by suppressing pro-inflammatory macrophage activation-triggered adipose inflammation. Mol Metab. 2020;34:112-123 pubmed publisher
  58. Kim J, Jeong J, Jung J, Jeon H, Lee S, Lim J, et al. Immunological characteristics and possible pathogenic role of urinary CD11c+ macrophages in lupus nephritis. Rheumatology (Oxford). 2020;: pubmed publisher
  59. Fu X, Peng J, Wang A, Luo Z. Tumor necrosis factor alpha mediates neuromuscular synapse elimination. Cell Discov. 2020;6:9 pubmed publisher
  60. 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
  61. Tezera L, Bielecka M, Ogongo P, Walker N, Ellis M, Garay Baquero D, et al. Anti-PD-1 immunotherapy leads to tuberculosis reactivation via dysregulation of TNF-α. elife. 2020;9: pubmed publisher
  62. Chen K, Gu H, Zhu L, Feng D. A New Model of Repetitive Traumatic Brain Injury in Mice. Front Neurosci. 2019;13:1417 pubmed publisher
  63. Potilinski M, Ortiz G, Salica J, Lopez E, Fernández Acquier M, Chuluyan E, et al. Elucidating the mechanism of action of alpha-1-antitrypsin using retinal pigment epithelium cells exposed to high glucose. Potential use in diabetic retinopathy. PLoS ONE. 2020;15:e0228895 pubmed publisher
  64. Xie Y, Chen H, Luo D, Yang X, Yao J, Zhang C, et al. Inhibiting Necroptosis of Spermatogonial Stem Cell as a Novel Strategy for Male Fertility Preservation. Stem Cells Dev. 2020;29:475-487 pubmed publisher
  65. Marotte L, Simon S, Vignard V, Dupré E, Gantier M, Cruard J, et al. Increased antitumor efficacy of PD-1-deficient melanoma-specific human lymphocytes. J Immunother Cancer. 2020;8: pubmed publisher
  66. Baptista J, Traynelis V, Liberti E, Fontes R. Expression of degenerative markers in intervertebral discs of young and elderly asymptomatic individuals. PLoS ONE. 2020;15:e0228155 pubmed publisher
  67. Kim J, Byun M, Maeng C, Kim Y, Choi J. Selective Targeting of Cancer Stem Cells (CSCs) Based on Photodynamic Therapy (PDT) Penetration Depth Inhibits Colon Polyp Formation in Mice. Cancers (Basel). 2020;12: pubmed publisher
  68. Tang X, Yan K, Wang Y, Wang Y, Chen H, Xu J, et al. Activation of PPAR-β/δ Attenuates Brain Injury by Suppressing Inflammation and Apoptosis in a Collagenase-Induced Intracerebral Hemorrhage Mouse Model. Neurochem Res. 2020;45:837-850 pubmed publisher
  69. Lohard S, Bourgeois N, Maillet L, Gautier F, Fétiveau A, Lasla H, et al. STING-dependent paracriny shapes apoptotic priming of breast tumors in response to anti-mitotic treatment. Nat Commun. 2020;11:259 pubmed publisher
  70. Ding H, Chen J, Su M, Lin Z, Zhan H, Yang F, et al. BDNF promotes activation of astrocytes and microglia contributing to neuroinflammation and mechanical allodynia in cyclophosphamide-induced cystitis. J Neuroinflammation. 2020;17:19 pubmed publisher
  71. Wang G, Huang T, Hu Y, Wang K, Shi H, Yin L, et al. Corpus cavernosum smooth muscle cell dysfunction and phenotype transformation are related to erectile dysfunction in prostatitis rats with chronic prostatitis/chronic pelvic pain syndrome. J Inflamm (Lond). 2020;17:2 pubmed publisher
  72. Wei J, Long L, Zheng W, Dhungana Y, Lim S, Guy C, et al. Targeting REGNASE-1 programs long-lived effector T cells for cancer therapy. Nature. 2019;576:471-476 pubmed publisher
  73. Lynn R, Weber E, Sotillo E, Gennert D, Xu P, Good Z, et al. c-Jun overexpression in CAR T cells induces exhaustion resistance. Nature. 2019;576:293-300 pubmed publisher
  74. 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
  75. Wang X, Chang Y, He Y, Lyu C, Li H, Zhu J, et al. Glimepiride and glibenclamide have comparable efficacy in treating acute ischemic stroke in mice. Neuropharmacology. 2020;162:107845 pubmed publisher
  76. Ma A, Motyka B, Gutfreund K, Shi Y, George R. A dendritic cell receptor-targeted chimeric immunotherapeutic protein (C-HBV) for the treatment of chronic hepatitis B. Hum Vaccin Immunother. 2020;16:756-778 pubmed publisher
  77. Zhou Q, Wu X, Wang X, Yu Z, Pan T, Li Z, et al. The reciprocal interaction between tumor cells and activated fibroblasts mediated by TNF-α/IL-33/ST2L signaling promotes gastric cancer metastasis. Oncogene. 2019;: pubmed publisher
  78. Di Blasi D, Boldanova T, Mori L, Terracciano L, Heim M, De Libero G. Unique T-Cell Populations Define Immune-Inflamed Hepatocellular Carcinoma. Cell Mol Gastroenterol Hepatol. 2020;9:195-218 pubmed publisher
  79. Zhang R, Liu Y, Chen Y, Li Q, Marshall C, Wu T, et al. Aquaporin 4 deletion exacerbates brain impairments in a mouse model of chronic sleep disruption. CNS Neurosci Ther. 2020;26:228-239 pubmed publisher
  80. Meckiff B, Ladell K, McLaren J, Ryan G, Leese A, James E, et al. Primary EBV Infection Induces an Acute Wave of Activated Antigen-Specific Cytotoxic CD4+ T Cells. J Immunol. 2019;203:1276-1287 pubmed publisher
  81. Dosh R, Jordan Mahy N, Sammon C, Le Maitre C. Interleukin 1 is a key driver of inflammatory bowel disease-demonstration in a murine IL-1Ra knockout model. Oncotarget. 2019;10:3559-3575 pubmed publisher
  82. Sul O, Rajasekaran M, Park H, Suh J, Choi H. MicroRNA-29b Enhances Osteoclast Survival by Targeting BCL-2-Modifying Factor after Lipopolysaccharide Stimulation. Oxid Med Cell Longev. 2019;2019:6018180 pubmed publisher
  83. Wu J, Ma S, Sandhoff R, Ming Y, Hotz Wagenblatt A, Timmerman V, et al. Loss of Neurological Disease HSAN-I-Associated Gene SPTLC2 Impairs CD8+ T Cell Responses to Infection by Inhibiting T Cell Metabolic Fitness. Immunity. 2019;50:1218-1231.e5 pubmed publisher
  84. Oda H, Beck D, Kuehn H, Sampaio Moura N, Hoffmann P, Ibarra M, et al. Second Case of HOIP Deficiency Expands Clinical Features and Defines Inflammatory Transcriptome Regulated by LUBAC. Front Immunol. 2019;10:479 pubmed publisher
  85. van de Garde M, van Westen E, Poelen M, Rots N, van Els C. Prediction and Validation of Immunogenic Domains of Pneumococcal Proteins Recognized by Human CD4+ T Cells. Infect Immun. 2019;87: pubmed publisher
  86. Vickman R, Yang J, Lanman N, Cresswell G, Zheng F, Zhang C, et al. Cholesterol Sulfotransferase SULT2B1b Modulates Sensitivity to Death Receptor Ligand TNFα in Castration-Resistant Prostate Cancer. Mol Cancer Res. 2019;17:1253-1263 pubmed publisher
  87. Lai X, Deng Z, Zhu X, Chen Z. Apc gene suppresses intracranial aneurysm formation and rupture through inhibiting the NF-κB signaling pathway mediated inflammatory response. Biosci Rep. 2019;39: pubmed publisher
  88. Mayassi T, Ladell K, Gudjonson H, McLaren J, Shaw D, Tran M, et al. Chronic Inflammation Permanently Reshapes Tissue-Resident Immunity in Celiac Disease. Cell. 2019;176:967-981.e19 pubmed publisher
  89. Banki Z, Krabbendam L, Klaver D, Leng T, Kruis S, Mehta H, et al. Antibody opsonization enhances MAIT cell responsiveness to bacteria via a TNF-dependent mechanism. Immunol Cell Biol. 2019;97:538-551 pubmed publisher
  90. Zhang G, Liu Y, Xu L, Sha C, Zhang H, Xu W. Resveratrol alleviates lipopolysaccharide-induced inflammation in PC-12 cells and in rat model. BMC Biotechnol. 2019;19:10 pubmed publisher
  91. Montel Hagen A, Seet C, Li S, Chick B, Zhu Y, Chang P, et al. Organoid-Induced Differentiation of Conventional T Cells from Human Pluripotent Stem Cells. Cell Stem Cell. 2019;24:376-389.e8 pubmed publisher
  92. Hallner A, Bernson E, Hussein B, Sander F, Brune M, Aurelius J, et al. The HLA-B -21 dimorphism impacts on NK cell education and clinical outcome of immunotherapy in acute myeloid leukemia. Blood. 2019;: pubmed publisher
  93. Hu Y, Guo F, Xu Y, Li P, Lu Z, McVey D, et al. Long noncoding RNA NEXN-AS1 mitigates atherosclerosis by regulating the actin-binding protein NEXN. J Clin Invest. 2019;129:1115-1128 pubmed publisher
  94. 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
  95. Amelio P, Portevin D, Hella J, Reither K, Kamwela L, Lweno O, et al. HIV Infection Functionally Impairs Mycobacterium tuberculosis-Specific CD4 and CD8 T-Cell Responses. J Virol. 2019;93: pubmed publisher
  96. Kim C, Hu B, Jadhav R, Jin J, Zhang H, Cavanagh M, et al. Activation of miR-21-Regulated Pathways in Immune Aging Selects against Signatures Characteristic of Memory T Cells. Cell Rep. 2018;25:2148-2162.e5 pubmed publisher
  97. Aulicino A, Rue Albrecht K, Preciado Llanes L, Napolitani G, Ashley N, Cribbs A, et al. Invasive Salmonella exploits divergent immune evasion strategies in infected and bystander dendritic cell subsets. Nat Commun. 2018;9:4883 pubmed publisher
  98. Dias J, Boulouis C, Gorin J, van den Biggelaar R, Lal K, Gibbs A, et al. The CD4-CD8- MAIT cell subpopulation is a functionally distinct subset developmentally related to the main CD8+ MAIT cell pool. Proc Natl Acad Sci U S A. 2018;115:E11513-E11522 pubmed publisher
  99. Wagner D, Amini L, Wendering D, Burkhardt L, Akyüz L, Reinke P, et al. High prevalence of Streptococcus pyogenes Cas9-reactive T cells within the adult human population. Nat Med. 2019;25:242-248 pubmed publisher
  100. Yang Z, Li C, Wang Y, Yang J, Yin Y, Liu M, et al. Melatonin attenuates chronic pain related myocardial ischemic susceptibility through inhibiting RIP3-MLKL/CaMKII dependent necroptosis. J Mol Cell Cardiol. 2018;125:185-194 pubmed publisher
  101. Kelly A, Günaltay S, McEntee C, Shuttleworth E, Smedley C, Houston S, et al. Human monocytes and macrophages regulate immune tolerance via integrin αvβ8-mediated TGFβ activation. J Exp Med. 2018;215:2725-2736 pubmed publisher
  102. Kuranda K, Jean Alphonse P, Leborgne C, Hardet R, Collaud F, Marmier S, et al. Exposure to wild-type AAV drives distinct capsid immunity profiles in humans. J Clin Invest. 2018;128:5267-5279 pubmed publisher
  103. Otsuka Y, Watanabe E, Shinya E, Okura S, Saeki H, Geijtenbeek T, et al. Differentiation of Langerhans Cells from Monocytes and Their Specific Function in Inducing IL-22-Specific Th Cells. J Immunol. 2018;201:3006-3016 pubmed publisher
  104. Qiu T, Pei P, Yao X, Jiang L, Wei S, Wang Z, et al. Taurine attenuates arsenic-induced pyroptosis and nonalcoholic steatohepatitis by inhibiting the autophagic-inflammasomal pathway. Cell Death Dis. 2018;9:946 pubmed publisher
  105. Han L, Wang L, Tang S, Yuan L, Wu S, Du X, et al. ITGB4 deficiency in bronchial epithelial cells directs airway inflammation and bipolar disorder-related behavior. J Neuroinflammation. 2018;15:246 pubmed publisher
  106. Qin C, Li M, Bai T, Yang K, Xu T, Zhang J. Tisp40 deficiency limits renal inflammation and promotes tubular cell proliferation in renal ischemia reperfusion injury. Exp Cell Res. 2018;371:255-261 pubmed publisher
  107. Burton A, Pallett L, McCoy L, Suveizdyte K, Amin O, Swadling L, et al. Circulating and intrahepatic antiviral B cells are defective in hepatitis B. J Clin Invest. 2018;128:4588-4603 pubmed publisher
  108. Yang T, St John L, Garber H, Kerros C, Ruisaard K, Clise Dwyer K, et al. Membrane-Associated Proteinase 3 on Granulocytes and Acute Myeloid Leukemia Inhibits T Cell Proliferation. J Immunol. 2018;201:1389-1399 pubmed publisher
  109. Jung I, Kim Y, Yu H, Lee M, Kim S, Lee J. CRISPR/Cas9-Mediated Knockout of DGK Improves Antitumor Activities of Human T Cells. Cancer Res. 2018;78:4692-4703 pubmed publisher
  110. Liu Q, Liu C, Jiang L, Li M, Long T, He W, et al. α7 Nicotinic acetylcholine receptor-mediated anti-inflammatory effect in a chronic migraine rat model via the attenuation of glial cell activation. J Pain Res. 2018;11:1129-1140 pubmed publisher
  111. Kirkling M, Cytlak U, Lau C, Lewis K, Resteu A, Khodadadi Jamayran A, et al. Notch Signaling Facilitates In Vitro Generation of Cross-Presenting Classical Dendritic Cells. Cell Rep. 2018;23:3658-3672.e6 pubmed publisher
  112. Dorraji S, Hovd A, Kanapathippillai P, Bakland G, Eilertsen G, Figenschau S, et al. Mesenchymal stem cells and T cells in the formation of Tertiary Lymphoid Structures in Lupus Nephritis. Sci Rep. 2018;8:7861 pubmed publisher
  113. Ray M, Gabunia K, Vrakas C, Herman A, Kako F, Kelemen S, et al. Genetic Deletion of IL-19 (Interleukin-19) Exacerbates Atherogenesis in Il19-/-×Ldlr-/- Double Knockout Mice by Dysregulation of mRNA Stability Protein HuR (Human Antigen R). Arterioscler Thromb Vasc Biol. 2018;38:1297-1308 pubmed publisher
  114. Zhang C, Peng Y, Hublitz P, Zhang H, Dong T. Genetic abrogation of immune checkpoints in antigen-specific cytotoxic T-lymphocyte as a potential alternative to blockade immunotherapy. Sci Rep. 2018;8:5549 pubmed publisher
  115. Zhang Z, Zhang H, Chen R, Wang Z. Oral supplementation with ursolic acid ameliorates sepsis-induced acute kidney injury in a mouse model by inhibiting oxidative stress and inflammatory responses. Mol Med Rep. 2018;17:7142-7148 pubmed publisher
  116. Li N, van Unen V, Höllt T, Thompson A, van Bergen J, Pezzotti N, et al. Mass cytometry reveals innate lymphoid cell differentiation pathways in the human fetal intestine. J Exp Med. 2018;215:1383-1396 pubmed publisher
  117. Wolf D, Anto Michel N, Blankenbach H, Wiedemann A, Buscher K, Hohmann J, et al. A ligand-specific blockade of the integrin Mac-1 selectively targets pathologic inflammation while maintaining protective host-defense. Nat Commun. 2018;9:525 pubmed publisher
  118. Giannelou A, Wang H, Zhou Q, Park Y, Abu Asab M, Ylaya K, et al. Aberrant tRNA processing causes an autoinflammatory syndrome responsive to TNF inhibitors. Ann Rheum Dis. 2018;77:612-619 pubmed publisher
  119. Rivino L, Le Bert N, Gill U, Kunasegaran K, Cheng Y, Tan D, et al. Hepatitis B virus-specific T cells associate with viral control upon nucleos(t)ide-analogue therapy discontinuation. J Clin Invest. 2018;128:668-681 pubmed publisher
  120. Pizzolla A, Nguyen T, Sant S, Jaffar J, Loudovaris T, Mannering S, et al. Influenza-specific lung-resident memory T cells are proliferative and polyfunctional and maintain diverse TCR profiles. J Clin Invest. 2018;128:721-733 pubmed publisher
  121. Gugliandolo E, Fusco R, D Amico R, Militi A, Oteri G, Wallace J, et al. Anti-inflammatory effect of ATB-352, a H2S -releasing ketoprofen derivative, on lipopolysaccharide-induced periodontitis in rats. Pharmacol Res. 2018;132:220-231 pubmed publisher
  122. Barrow A, Edeling M, Trifonov V, Luo J, Goyal P, Bohl B, et al. Natural Killer Cells Control Tumor Growth by Sensing a Growth Factor. Cell. 2018;172:534-548.e19 pubmed publisher
  123. Jeong J, Hong S, Kwon O, Ghang B, Hwang I, Kim Y, et al. CD14+ Cells with the Phenotype of Infiltrated Monocytes Consist of Distinct Populations Characterized by Anti-inflammatory as well as Pro-inflammatory Activity in Gouty Arthritis. Front Immunol. 2017;8:1260 pubmed publisher
  124. Hydes T, Noll A, Salinas Riester G, Abuhilal M, Armstrong T, Hamady Z, et al. IL-12 and IL-15 induce the expression of CXCR6 and CD49a on peripheral natural killer cells. Immun Inflamm Dis. 2018;6:34-46 pubmed publisher
  125. Molnar C, Scherer A, Baraliakos X, de Hooge M, Micheroli R, Exer P, et al. TNF blockers inhibit spinal radiographic progression in ankylosing spondylitis by reducing disease activity: results from the Swiss Clinical Quality Management cohort. Ann Rheum Dis. 2018;77:63-69 pubmed publisher
  126. Salio M, Gasser O, González López C, Martens A, Veerapen N, Gileadi U, et al. Activation of Human Mucosal-Associated Invariant T Cells Induces CD40L-Dependent Maturation of Monocyte-Derived and Primary Dendritic Cells. J Immunol. 2017;199:2631-2638 pubmed publisher
  127. Burr M, Sparbier C, Chan Y, Williamson J, Woods K, Beavis P, et al. CMTM6 maintains the expression of PD-L1 and regulates anti-tumour immunity. Nature. 2017;549:101-105 pubmed publisher
  128. Vitallé J, Zenarruzabeitia O, Terrén I, Plana M, Guardo A, Leal L, et al. Monocytes Phenotype and Cytokine Production in Human Immunodeficiency Virus-1 Infected Patients Receiving a Modified Vaccinia Ankara-Based HIV-1 Vaccine: Relationship to CD300 Molecules Expression. Front Immunol. 2017;8:836 pubmed publisher
  129. Ott P, Hu Z, Keskin D, Shukla S, Sun J, Bozym D, et al. An immunogenic personal neoantigen vaccine for patients with melanoma. Nature. 2017;547:217-221 pubmed publisher
  130. Chew V, Lai L, Pan L, Lim C, Li J, Ong R, et al. Delineation of an immunosuppressive gradient in hepatocellular carcinoma using high-dimensional proteomic and transcriptomic analyses. Proc Natl Acad Sci U S A. 2017;114:E5900-E5909 pubmed publisher
  131. Dias J, Leeansyah E, Sandberg J. Multiple layers of heterogeneity and subset diversity in human MAIT cell responses to distinct microorganisms and to innate cytokines. Proc Natl Acad Sci U S A. 2017;114:E5434-E5443 pubmed publisher
  132. Iampietro M, Younan P, Nishida A, Dutta M, Lubaki N, Santos R, et al. Ebola virus glycoprotein directly triggers T lymphocyte death despite of the lack of infection. PLoS Pathog. 2017;13:e1006397 pubmed publisher
  133. Mitterreiter J, Ouwendijk W, van Velzen M, van Nierop G, Osterhaus A, Verjans G. Satellite glial cells in human trigeminal ganglia have a broad expression of functional Toll-like receptors. Eur J Immunol. 2017;47:1181-1187 pubmed publisher
  134. Tong A, Hashem H, Eid S, Allen F, Kingsley D, Huang A. Adoptive natural killer cell therapy is effective in reducing pulmonary metastasis of Ewing sarcoma. Oncoimmunology. 2017;6:e1303586 pubmed publisher
  135. See P, Dutertre C, Chen J, Günther P, McGovern N, Irac S, et al. Mapping the human DC lineage through the integration of high-dimensional techniques. Science. 2017;356: pubmed publisher
  136. Koh J, Hancock C, Terada S, Higashida K, Holloszy J, Han D. PPARβ Is Essential for Maintaining Normal Levels of PGC-1α and Mitochondria and for the Increase in Muscle Mitochondria Induced by Exercise. Cell Metab. 2017;25:1176-1185.e5 pubmed publisher
  137. Stevanović S, Pasetto A, Helman S, Gartner J, Prickett T, Howie B, et al. Landscape of immunogenic tumor antigens in successful immunotherapy of virally induced epithelial cancer. Science. 2017;356:200-205 pubmed publisher
  138. Van Caeneghem Y, De Munter S, Tieppo P, Goetgeluk G, Weening K, Verstichel G, et al. Antigen receptor-redirected T cells derived from hematopoietic precursor cells lack expression of the endogenous TCR/CD3 receptor and exhibit specific antitumor capacities. Oncoimmunology. 2017;6:e1283460 pubmed publisher
  139. Nelde A, Walz J, Kowalewski D, Schuster H, Wolz O, Peper J, et al. HLA class I-restricted MYD88 L265P-derived peptides as specific targets for lymphoma immunotherapy. Oncoimmunology. 2017;6:e1219825 pubmed publisher
  140. Tsoutsou P, Annibaldi A, Viertl D, Ollivier J, Buchegger F, Vozenin M, et al. TAT-RasGAP317-326 Enhances Radiosensitivity of Human Carcinoma Cell Lines In Vitro and In Vivo through Promotion of Delayed Mitotic Cell Death. Radiat Res. 2017;187:562-569 pubmed publisher
  141. Nishimura Y, Gautam R, Chun T, Sadjadpour R, Foulds K, Shingai M, et al. Early antibody therapy can induce long-lasting immunity to SHIV. Nature. 2017;543:559-563 pubmed publisher
  142. Klinker M, Marklein R, Lo Surdo J, Wei C, Bauer S. Morphological features of IFN-γ-stimulated mesenchymal stromal cells predict overall immunosuppressive capacity. Proc Natl Acad Sci U S A. 2017;114:E2598-E2607 pubmed publisher
  143. Wang S, Wang B, Wang Y, Tong Q, Liu Q, Sun J, et al. Zinc Prevents the Development of Diabetic Cardiomyopathy in db/db Mice. Int J Mol Sci. 2017;18: pubmed publisher
  144. Cardinaud S, Urrutia A, Rouers A, Coulon P, Kervevan J, Richetta C, et al. Triggering of TLR-3, -4, NOD2, and DC-SIGN reduces viral replication and increases T-cell activation capacity of HIV-infected human dendritic cells. Eur J Immunol. 2017;47:818-829 pubmed publisher
  145. Israel L, Wang Y, Bulek K, Della Mina E, Zhang Z, Pedergnana V, et al. Human Adaptive Immunity Rescues an Inborn Error of Innate Immunity. Cell. 2017;168:789-800.e10 pubmed publisher
  146. Eyquem J, Mansilla Soto J, Giavridis T, van der Stegen S, Hamieh M, Cunanan K, et al. Targeting a CAR to the TRAC locus with CRISPR/Cas9 enhances tumour rejection. Nature. 2017;543:113-117 pubmed publisher
  147. Cheuk S, Schlums H, Gallais Sérézal I, Martini E, Chiang S, Marquardt N, et al. CD49a Expression Defines Tissue-Resident CD8+ T Cells Poised for Cytotoxic Function in Human Skin. Immunity. 2017;46:287-300 pubmed publisher
  148. Mordmuller B, Surat G, Lagler H, Chakravarty S, Ishizuka A, Lalremruata A, et al. Sterile protection against human malaria by chemoattenuated PfSPZ vaccine. Nature. 2017;542:445-449 pubmed publisher
  149. Wu J, Sun L, Li H, Shen H, Zhai W, Yu Z, et al. Roles of programmed death protein 1/programmed death-ligand 1 in secondary brain injury after intracerebral hemorrhage in rats: selective modulation of microglia polarization to anti-inflammatory phenotype. J Neuroinflammation. 2017;14:36 pubmed publisher
  150. Mylvaganam G, Rios D, Abdelaal H, Iyer S, Tharp G, Mavigner M, et al. Dynamics of SIV-specific CXCR5+ CD8 T cells during chronic SIV infection. Proc Natl Acad Sci U S A. 2017;114:1976-1981 pubmed publisher
  151. Villar V, Nguyen T, Delcroix V, Terés S, Bouchecareilh M, Salin B, et al. mTORC1 inhibition in cancer cells protects from glutaminolysis-mediated apoptosis during nutrient limitation. Nat Commun. 2017;8:14124 pubmed publisher
  152. Liddelow S, Guttenplan K, Clarke L, Bennett F, Bohlen C, Schirmer L, et al. Neurotoxic reactive astrocytes are induced by activated microglia. Nature. 2017;541:481-487 pubmed publisher
  153. Tauriainen J, Scharf L, Frederiksen J, Naji A, Ljunggren H, Sonnerborg A, et al. Perturbed CD8+ T cell TIGIT/CD226/PVR axis despite early initiation of antiretroviral treatment in HIV infected individuals. Sci Rep. 2017;7:40354 pubmed publisher
  154. Chen M, Chen Y, Fu R, Liu S, Yang Q, Shen T. Activation of 5-HT and NR2B contributes to visceral hypersensitivity in irritable bowel syndrome in rats. Am J Transl Res. 2016;8:5580-5590 pubmed
  155. Guicciardi M, Krishnan A, Bronk S, Hirsova P, Griffith T, Gores G. Biliary tract instillation of a SMAC mimetic induces TRAIL-dependent acute sclerosing cholangitis-like injury in mice. Cell Death Dis. 2017;8:e2535 pubmed publisher
  156. Roberts E, Carnathan D, Li H, Shaw G, Silvestri G, Betts M. Collapse of Cytolytic Potential in SIV-Specific CD8+ T Cells Following Acute SIV Infection in Rhesus Macaques. PLoS Pathog. 2016;12:e1006135 pubmed publisher
  157. Stanfield B, Pahar B, Chouljenko V, Veazey R, Kousoulas K. Vaccination of rhesus macaques with the live-attenuated HSV-1 vaccine VC2 stimulates the proliferation of mucosal T cells and germinal center responses resulting in sustained production of highly neutralizing antibodies. Vaccine. 2017;35:536-543 pubmed publisher
  158. Izawa K, Martin E, Soudais C, Bruneau J, Boutboul D, Rodriguez R, et al. Inherited CD70 deficiency in humans reveals a critical role for the CD70-CD27 pathway in immunity to Epstein-Barr virus infection. J Exp Med. 2017;214:73-89 pubmed publisher
  159. Berry N, Manoussaka M, Ham C, Ferguson D, Tudor H, Mattiuzzo G, et al. Role of Occult and Post-acute Phase Replication in Protective Immunity Induced with a Novel Live Attenuated SIV Vaccine. PLoS Pathog. 2016;12:e1006083 pubmed publisher
  160. Spivak A, Larragoite E, Coletti M, Macedo A, Martins L, Bosque A, et al. Janus kinase inhibition suppresses PKC-induced cytokine release without affecting HIV-1 latency reversal ex vivo. Retrovirology. 2016;13:88 pubmed publisher
  161. Lizardo K, Almonte V, Law C, Aiyyappan J, Cui M, Nagajyothi J. Diet regulates liver autophagy differentially in murine acute Trypanosoma cruzi infection. Parasitol Res. 2017;116:711-723 pubmed publisher
  162. Lin C, Lin W, Cho R, Wang C, Hsiao L, Yang C. TNF-?-Induced cPLA2 Expression via NADPH Oxidase/Reactive Oxygen Species-Dependent NF-?B Cascade on Human Pulmonary Alveolar Epithelial Cells. Front Pharmacol. 2016;7:447 pubmed
  163. Tomic A, Varanasi P, Golemac M, Malic S, Riese P, Borst E, et al. Activation of Innate and Adaptive Immunity by a Recombinant Human Cytomegalovirus Strain Expressing an NKG2D Ligand. PLoS Pathog. 2016;12:e1006015 pubmed publisher
  164. Martínez Gómez J, Periasamy P, Dutertre C, Irving A, Ng J, Crameri G, et al. Phenotypic and functional characterization of the major lymphocyte populations in the fruit-eating bat Pteropus alecto. Sci Rep. 2016;6:37796 pubmed publisher
  165. Omarniyaz Z, Yu Y, Yang T, Shan L, Miao W, Reyimu R, et al. Anti-tumor effects of Abnormal Savda Munziq on the transplanted cervical cancer (U27) mouse model. BMC Complement Altern Med. 2016;16:477 pubmed
  166. Riou C, Bunjun R, Müller T, Kiravu A, Ginbot Z, Oni T, et al. Selective reduction of IFN-γ single positive mycobacteria-specific CD4+ T cells in HIV-1 infected individuals with latent tuberculosis infection. Tuberculosis (Edinb). 2016;101:25-30 pubmed publisher
  167. Jiang D, Gao F, Zhang Y, Wong D, Li Q, Tse H, et al. Mitochondrial transfer of mesenchymal stem cells effectively protects corneal epithelial cells from mitochondrial damage. Cell Death Dis. 2016;7:e2467 pubmed publisher
  168. Sumatoh H, Teng K, Cheng Y, Newell E. Optimization of mass cytometry sample cryopreservation after staining. Cytometry A. 2017;91:48-61 pubmed publisher
  169. Cuff A, Robertson F, Stegmann K, Pallett L, Maini M, Davidson B, et al. Eomeshi NK Cells in Human Liver Are Long-Lived and Do Not Recirculate but Can Be Replenished from the Circulation. J Immunol. 2016;197:4283-4291 pubmed
  170. Yu P, Hu Y, Liu Z, Kawai T, Taubman M, Li W, et al. Local Induction of B Cell Interleukin-10 Competency Alleviates Inflammation and Bone Loss in Ligature-Induced Experimental Periodontitis in Mice. Infect Immun. 2017;85: pubmed publisher
  171. Nagase H, Takeoka T, Urakawa S, Morimoto Okazawa A, Kawashima A, Iwahori K, et al. ICOS+ Foxp3+ TILs in gastric cancer are prognostic markers and effector regulatory T cells associated with Helicobacter pylori. Int J Cancer. 2017;140:686-695 pubmed publisher
  172. Seemann S, Lupp A. Administration of AMD3100 in endotoxemia is associated with pro-inflammatory, pro-oxidative, and pro-apoptotic effects in vivo. J Biomed Sci. 2016;23:68 pubmed
  173. 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
  174. Sadeghi K, Wisgrill L, Wessely I, Diesner S, Schuller S, Dürr C, et al. GM-CSF Down-Regulates TLR Expression via the Transcription Factor PU.1 in Human Monocytes. PLoS ONE. 2016;11:e0162667 pubmed publisher
  175. Yeap W, Wong K, Shimasaki N, Teo E, Quek J, Yong H, et al. CD16 is indispensable for antibody-dependent cellular cytotoxicity by human monocytes. Sci Rep. 2016;6:34310 pubmed publisher
  176. Savill S, Leitch H, Harvey J, Thomas T. Inflammatory Adipokines Decrease Expression of Two High Molecular Weight Isoforms of Tropomyosin Similar to the Change in Type 2 Diabetic Patients. PLoS ONE. 2016;11:e0162908 pubmed publisher
  177. Sugita S, Iwasaki Y, Makabe K, Kimura T, Futagami T, Suegami S, et al. Lack of T Cell Response to iPSC-Derived Retinal Pigment Epithelial Cells from HLA Homozygous Donors. Stem Cell Reports. 2016;7:619-634 pubmed publisher
  178. Wahid R, Fresnay S, Levine M, Sztein M. Cross-reactive multifunctional CD4+ T cell responses against Salmonella enterica serovars Typhi, Paratyphi A and Paratyphi B in humans following immunization with live oral typhoid vaccine Ty21a. Clin Immunol. 2016;173:87-95 pubmed publisher
  179. Dadsetan S, Balzano T, Forteza J, Agusti A, Cabrera Pastor A, Taoro Gonzalez L, et al. Infliximab reduces peripheral inflammation, neuroinflammation, and extracellular GABA in the cerebellum and improves learning and motor coordination in rats with hepatic encephalopathy. J Neuroinflammation. 2016;13:245 pubmed publisher
  180. Fuchs S, Kaiser Labusch P, Bank J, Ammann S, Kolb Kokocinski A, Edelbusch C, et al. Tyrosine kinase 2 is not limiting human antiviral type III interferon responses. Eur J Immunol. 2016;46:2639-2649 pubmed publisher
  181. Jiang J, Chen X, An H, Yang B, Zhang F, Cheng X. Enhanced immune response of MAIT cells in tuberculous pleural effusions depends on cytokine signaling. Sci Rep. 2016;6:32320 pubmed publisher
  182. Bentzen A, Marquard A, Lyngaa R, Saini S, Ramskov S, Donia M, et al. Large-scale detection of antigen-specific T cells using peptide-MHC-I multimers labeled with DNA barcodes. Nat Biotechnol. 2016;34:1037-1045 pubmed publisher
  183. Zhou Q, Yu X, Demirkaya E, Deuitch N, Stone D, Tsai W, et al. Biallelic hypomorphic mutations in a linear deubiquitinase define otulipenia, an early-onset autoinflammatory disease. Proc Natl Acad Sci U S A. 2016;113:10127-32 pubmed publisher
  184. Kagoya Y, Nakatsugawa M, Yamashita Y, Ochi T, Guo T, Anczurowski M, et al. BET bromodomain inhibition enhances T cell persistence and function in adoptive immunotherapy models. J Clin Invest. 2016;126:3479-94 pubmed publisher
  185. Chen J, Jian D, Lien C, Lin Y, Ting C, Chen L, et al. Adipocytes play an etiological role in the podocytopathy of high-fat diet-fed rats. J Endocrinol. 2016;231:109-120 pubmed
  186. Hervier B, Perez M, Allenbach Y, Devilliers H, Cohen F, Uzunhan Y, et al. Involvement of NK Cells and NKp30 Pathway in Antisynthetase Syndrome. J Immunol. 2016;197:1621-30 pubmed publisher
  187. He R, Hou S, Liu C, Zhang A, Bai Q, Han M, et al. Follicular CXCR5- expressing CD8(+) T cells curtail chronic viral infection. Nature. 2016;537:412-428 pubmed publisher
  188. Portillo J, Lopez Corcino Y, Miao Y, Tang J, Sheibani N, Kern T, et al. CD40 in Retinal Müller Cells Induces P2X7-Dependent Cytokine Expression in Macrophages/Microglia in Diabetic Mice and Development of Early Experimental Diabetic Retinopathy. Diabetes. 2017;66:483-493 pubmed publisher
  189. Rölle A, Halenius A, Ewen E, Cerwenka A, Hengel H, Momburg F. CD2-CD58 interactions are pivotal for the activation and function of adaptive natural killer cells in human cytomegalovirus infection. Eur J Immunol. 2016;46:2420-2425 pubmed publisher
  190. Franzese O, Palermo B, Di Donna C, Sperduti I, Ferraresi V, Stabile H, et al. Polyfunctional Melan-A-specific tumor-reactive CD8(+) T cells elicited by dacarbazine treatment before peptide-vaccination depends on AKT activation sustained by ICOS. Oncoimmunology. 2016;5:e1114203 pubmed publisher
  191. Neumann L, Mueller M, Moos V, Heller F, Meyer T, Loddenkemper C, et al. Mucosal Inducible NO Synthase-Producing IgA+ Plasma Cells in Helicobacter pylori-Infected Patients. J Immunol. 2016;197:1801-8 pubmed publisher
  192. Deléage C, Schuetz A, Alvord W, Johnston L, Hao X, Morcock D, et al. Impact of early cART in the gut during acute HIV infection. JCI Insight. 2016;1: pubmed
  193. Walter B, Purmessur D, Moon A, Occhiogrosso J, Laudier D, Hecht A, et al. Reduced tissue osmolarity increases TRPV4 expression and pro-inflammatory cytokines in intervertebral disc cells. Eur Cell Mater. 2016;32:123-36 pubmed
  194. Zhao D, Lizardo K, Cui M, Ambadipudi K, Lora J, Jelicks L, et al. Antagonistic effect of atorvastatin on high fat diet induced survival during acute Chagas disease. Microbes Infect. 2016;18:675-686 pubmed publisher
  195. Suliman S, Geldenhuys H, Johnson J, Hughes J, Smit E, Murphy M, et al. Bacillus Calmette-Guérin (BCG) Revaccination of Adults with Latent Mycobacterium tuberculosis Infection Induces Long-Lived BCG-Reactive NK Cell Responses. J Immunol. 2016;197:1100-1110 pubmed publisher
  196. Chuang T, Guo Y, Seki S, Rosen A, Johanson D, Mandell J, et al. LRP1 expression in microglia is protective during CNS autoimmunity. Acta Neuropathol Commun. 2016;4:68 pubmed publisher
  197. Garcia P, Seiva F, Carniato A, de Mello Júnior W, Duran N, Macedo A, et al. Increased toll-like receptors and p53 levels regulate apoptosis and angiogenesis in non-muscle invasive bladder cancer: mechanism of action of P-MAPA biological response modifier. BMC Cancer. 2016;16:422 pubmed publisher
  198. Nooh H, Nour Eldien N. The dual anti-inflammatory and antioxidant activities of natural honey promote cell proliferation and neural regeneration in a rat model of colitis. Acta Histochem. 2016;118:588-595 pubmed publisher
  199. van Wilgenburg B, Scherwitzl I, Hutchinson E, Leng T, Kurioka A, Kulicke C, et al. MAIT cells are activated during human viral infections. Nat Commun. 2016;7:11653 pubmed publisher
  200. Dai Y, Miao Y, Wu W, Li Y, D Errico F, Su W, et al. Ablation of Liver X receptors ? and ? leads to spontaneous peripheral squamous cell lung cancer in mice. Proc Natl Acad Sci U S A. 2016;113:7614-9 pubmed publisher
  201. Cheng W, van Asten S, Burns L, Evans H, Walter G, Hashim A, et al. Periodontitis-associated pathogens P. gingivalis and A. actinomycetemcomitans activate human CD14(+) monocytes leading to enhanced Th17/IL-17 responses. Eur J Immunol. 2016;46:2211-21 pubmed publisher
  202. Ahmad F, Chung Y, Tang Y, Hockman S, Liu S, Khan Y, et al. Phosphodiesterase 3B (PDE3B) regulates NLRP3 inflammasome in adipose tissue. Sci Rep. 2016;6:28056 pubmed publisher
  203. Gadd V, Patel P, Jose S, Horsfall L, Powell E, Irvine K. Altered Peripheral Blood Monocyte Phenotype and Function in Chronic Liver Disease: Implications for Hepatic Recruitment and Systemic Inflammation. PLoS ONE. 2016;11:e0157771 pubmed publisher
  204. Domingues R, de Carvalho G, Aoki V, da Silva Duarte A, Sato M. Activation of myeloid dendritic cells, effector cells and regulatory T cells in lichen planus. J Transl Med. 2016;14:171 pubmed publisher
  205. Kinsella S, König H, Prehn J. Bid Promotes K63-Linked Polyubiquitination of Tumor Necrosis Factor Receptor Associated Factor 6 (TRAF6) and Sensitizes to Mutant SOD1-Induced Proinflammatory Signaling in Microglia. Eneuro. 2016;3: pubmed publisher
  206. Vaccari M, Gordon S, Fourati S, Schifanella L, Liyanage N, Cameron M, et al. Adjuvant-dependent innate and adaptive immune signatures of risk of SIVmac251 acquisition. Nat Med. 2016;22:762-70 pubmed publisher
  207. Lee S, Kim H, Kim K, Lee H, Lee S, Lee D. Arhgap17, a RhoGTPase activating protein, regulates mucosal and epithelial barrier function in the mouse colon. Sci Rep. 2016;6:26923 pubmed publisher
  208. Kwon H, Choi G, Ryu S, Kwon S, Kim S, Booth C, et al. Stepwise phosphorylation of p65 promotes NF-?B activation and NK cell responses during target cell recognition. Nat Commun. 2016;7:11686 pubmed publisher
  209. Neumann B, Shi T, Gan L, Klippert A, Daskalaki M, Stolte Leeb N, et al. Comprehensive panel of cross-reacting monoclonal antibodies for analysis of different immune cells and their distribution in the common marmoset (Callithrix jacchus). J Med Primatol. 2016;45:139-46 pubmed publisher
  210. Kay A, Strauss Albee D, Blish C. Application of Mass Cytometry (CyTOF) for Functional and Phenotypic Analysis of Natural Killer Cells. Methods Mol Biol. 2016;1441:13-26 pubmed publisher
  211. Bähr A, Käser T, Kemter E, Gerner W, Kurome M, Baars W, et al. Ubiquitous LEA29Y Expression Blocks T Cell Co-Stimulation but Permits Sexual Reproduction in Genetically Modified Pigs. PLoS ONE. 2016;11:e0155676 pubmed publisher
  212. Marafini I, Monteleone I, Di Fusco D, Sedda S, Cupi M, Fina D, et al. Celiac Disease-Related Inflammation Is Marked by Reduction of Nkp44/Nkp46-Double Positive Natural Killer Cells. PLoS ONE. 2016;11:e0155103 pubmed publisher
  213. Roth S, Spalinger M, Gottier C, Biedermann L, Zeitz J, Lang S, et al. Bilberry-Derived Anthocyanins Modulate Cytokine Expression in the Intestine of Patients with Ulcerative Colitis. PLoS ONE. 2016;11:e0154817 pubmed publisher
  214. Vorvis C, Hatziapostolou M, Mahurkar Joshi S, Koutsioumpa M, Williams J, Donahue T, et al. Transcriptomic and CRISPR/Cas9 technologies reveal FOXA2 as a tumor suppressor gene in pancreatic cancer. Am J Physiol Gastrointest Liver Physiol. 2016;310:G1124-37 pubmed publisher
  215. Amarilla S, Gómez Laguna J, Carrasco L, Rodríguez Gómez I, Caridad Y Ocerín J, Graham S, et al. Thymic depletion of lymphocytes is associated with the virulence of PRRSV-1 strains. Vet Microbiol. 2016;188:47-58 pubmed publisher
  216. Xu X, Meng Q, Erben U, Wang P, Glauben R, Kuhl A, et al. Myeloid-derived suppressor cells promote B-cell production of IgA in a TNFR2-dependent manner. Cell Mol Immunol. 2017;14:597-606 pubmed publisher
  217. Graves S, Kouriba B, Diarra I, Daou M, Niangaly A, Coulibaly D, et al. Strain-specific Plasmodium falciparum multifunctional CD4(+) T cell cytokine expression in Malian children immunized with the FMP2.1/AS02A vaccine candidate. Vaccine. 2016;34:2546-55 pubmed publisher
  218. Zurawski G, Zurawski S, Flamar A, Richert L, Wagner R, Tomaras G, et al. Targeting HIV-1 Env gp140 to LOX-1 Elicits Immune Responses in Rhesus Macaques. PLoS ONE. 2016;11:e0153484 pubmed publisher
  219. Dimitrova M, Zenarruzabeitia O, Borrego F, Simhadri V. CD300c is uniquely expressed on CD56 bright Natural Killer Cells and differs from CD300a upon ligand recognition. Sci Rep. 2016;6:23942 pubmed publisher
  220. Li J, Chen K, Li S, Liu T, Wang F, Xia Y, et al. Pretreatment with Fucoidan from Fucus vesiculosus Protected against ConA-Induced Acute Liver Injury by Inhibiting Both Intrinsic and Extrinsic Apoptosis. PLoS ONE. 2016;11:e0152570 pubmed publisher
  221. Ganesan S, Reynolds C, Hollinger K, Pearce S, Gabler N, Baumgard L, et al. Twelve hours of heat stress induces inflammatory signaling in porcine skeletal muscle. Am J Physiol Regul Integr Comp Physiol. 2016;310:R1288-96 pubmed publisher
  222. Moreira M, Costa Pereira C, Alves M, Marteleto B, Ribeiro V, Peruhype Magalhães V, et al. Vaccination against canine leishmaniosis increases the phagocytic activity, nitric oxide production and expression of cell activation/migration molecules in neutrophils and monocytes. Vet Parasitol. 2016;220:33-45 pubmed publisher
  223. Lee Chang C, Bodogai M, Moritoh K, Chen X, Wersto R, Sen R, et al. Aging Converts Innate B1a Cells into Potent CD8+ T Cell Inducers. J Immunol. 2016;196:3385-97 pubmed publisher
  224. Huang Y, Chen C, Tang K, Sheen J, Tiao M, Tain Y, et al. Postnatal High-Fat Diet Increases Liver Steatosis and Apoptosis Threatened by Prenatal Dexamethasone through the Oxidative Effect. Int J Mol Sci. 2016;17:369 pubmed publisher
  225. Gao J, Duan Z, Zhang L, Huang X, Long L, Tu J, et al. Failure recovery of circulating NKG2D+CD56dimNK cells in HBV-associated hepatocellular carcinoma after hepatectomy predicts early recurrence. Oncoimmunology. 2016;5:e1048061 pubmed
  226. Szylberg Å, Janiczek M, Popiel A, MarszaÅ‚ek A. Expression of COX-2, IL-1β, TNF-α and IL-4 in epithelium of serrated adenoma, adenoma and hyperplastic polyp. Arch Med Sci. 2016;12:172-8 pubmed publisher
  227. Phuah J, Wong E, Gideon H, Maiello P, Coleman M, Hendricks M, et al. Effects of B Cell Depletion on Early Mycobacterium tuberculosis Infection in Cynomolgus Macaques. Infect Immun. 2016;84:1301-1311 pubmed publisher
  228. Haas S, Zhou X, Machado V, Wree A, Krieglstein K, Spittau B. Expression of Tgfβ1 and Inflammatory Markers in the 6-hydroxydopamine Mouse Model of Parkinson's Disease. Front Mol Neurosci. 2016;9:7 pubmed publisher
  229. Crompton R, Williams H, Ansell D, Campbell L, Holden K, Cruickshank S, et al. Oestrogen promotes healing in a bacterial LPS model of delayed cutaneous wound repair. Lab Invest. 2016;96:439-49 pubmed publisher
  230. Vallera D, Felices M, McElmurry R, McCullar V, Zhou X, Schmohl J, et al. IL15 Trispecific Killer Engagers (TriKE) Make Natural Killer Cells Specific to CD33+ Targets While Also Inducing Persistence, In Vivo Expansion, and Enhanced Function. Clin Cancer Res. 2016;22:3440-50 pubmed publisher
  231. Roan F, Stoklasek T, Whalen E, Molitor J, Bluestone J, Buckner J, et al. CD4+ Group 1 Innate Lymphoid Cells (ILC) Form a Functionally Distinct ILC Subset That Is Increased in Systemic Sclerosis. J Immunol. 2016;196:2051-2062 pubmed publisher
  232. Tham M, Schlör G, Yerly D, Mueller C, Surbek D, Villiger P, et al. Reduced pro-inflammatory profile of γδT cells in pregnant patients with rheumatoid arthritis. Arthritis Res Ther. 2016;18:26 pubmed publisher
  233. Li L, Jiang Y, Lao S, Yang B, Yu S, Zhang Y, et al. Mycobacterium tuberculosis-Specific IL-21+IFN-γ+CD4+ T Cells Are Regulated by IL-12. PLoS ONE. 2016;11:e0147356 pubmed publisher
  234. Wu H, Shi L, Wang Q, Cheng L, Zhao X, Chen Q, et al. Mumps virus-induced innate immune responses in mouse Sertoli and Leydig cells. Sci Rep. 2016;6:19507 pubmed publisher
  235. Roth J, Köhler D, Schneider M, Granja T, Rosenberger P. Semaphorin 7A Aggravates Pulmonary Inflammation during Lung Injury. PLoS ONE. 2016;11:e0146930 pubmed publisher
  236. Vieira Ramos G, Pinheiro C, Messa S, Delfino G, Marqueti R, Salvini T, et al. Cryotherapy Reduces Inflammatory Response Without Altering Muscle Regeneration Process and Extracellular Matrix Remodeling of Rat Muscle. Sci Rep. 2016;6:18525 pubmed publisher
  237. Bolton D, Pegu A, Wang K, McGinnis K, Nason M, Foulds K, et al. Human Immunodeficiency Virus Type 1 Monoclonal Antibodies Suppress Acute Simian-Human Immunodeficiency Virus Viremia and Limit Seeding of Cell-Associated Viral Reservoirs. J Virol. 2016;90:1321-32 pubmed publisher
  238. Li Y, Long X, Huang L, Yang M, Yuan Y, Wang Y, et al. Epstein-Barr Virus BZLF1-Mediated Downregulation of Proinflammatory Factors Is Essential for Optimal Lytic Viral Replication. J Virol. 2016;90:887-903 pubmed publisher
  239. Eskicioğlu F, Özdemir A, Özdemir R, Turan G, Akan Z, Hasdemir S. The association of HLA-G and immune markers in recurrent miscarriages. J Matern Fetal Neonatal Med. 2016;29:3056-60 pubmed publisher
  240. 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
  241. Bass J, Friesen C, Deacy A, Neilan N, Bracken J, Shakhnovich V, et al. Investigation of potential early Histologic markers of pediatric inflammatory bowel disease. BMC Gastroenterol. 2015;15:129 pubmed publisher
  242. Wardill H, Logan R, Bowen J, Van Sebille Y, Gibson R. Tight junction defects are seen in the buccal mucosa of patients receiving standard dose chemotherapy for cancer. Support Care Cancer. 2016;24:1779-88 pubmed publisher
  243. Perotti V, Baldassari P, Molla A, Vegetti C, Bersani I, Maurichi A, et al. NFATc2 is an intrinsic regulator of melanoma dedifferentiation. Oncogene. 2016;35:2862-72 pubmed publisher
  244. Moreira M, Dorneles E, Soares R, Magalhães C, Costa Pereira C, Lage A, et al. Cross-reactivity of commercially available anti-human monoclonal antibodies with canine cytokines: establishment of a reliable panel to detect the functional profile of peripheral blood lymphocytes by intracytoplasmic staining. Acta Vet Scand. 2015;57:51 pubmed publisher
  245. Zhang Z, Yang P, Yao P, Dai D, Yu Y, Zhou Y, et al. Identification of transcription factors and gene clusters in rabbit smooth muscle cells during high flow-induced vascular remodeling via microarray. Gene. 2016;575:407-414 pubmed publisher
  246. Campi Azevedo A, Costa Pereira C, Antonelli L, Fonseca C, Teixeira Carvalho A, Villela Rezende G, et al. Booster dose after 10 years is recommended following 17DD-YF primary vaccination. Hum Vaccin Immunother. 2016;12:491-502 pubmed publisher
  247. Yapislar H, Taşkın E, Ozdas S, Akin D, Sonmez E. Counteraction of Apoptotic and Inflammatory Effects of Adriamycin in the Liver Cell Culture by Clinopitolite. Biol Trace Elem Res. 2016;170:373-81 pubmed publisher
  248. Leeansyah E, Svärd J, Dias J, Buggert M, Nyström J, Quigley M, et al. Arming of MAIT Cell Cytolytic Antimicrobial Activity Is Induced by IL-7 and Defective in HIV-1 Infection. PLoS Pathog. 2015;11:e1005072 pubmed publisher
  249. Schnorfeil F, Lichtenegger F, Emmerig K, Schlueter M, Neitz J, Draenert R, et al. T cells are functionally not impaired in AML: increased PD-1 expression is only seen at time of relapse and correlates with a shift towards the memory T cell compartment. J Hematol Oncol. 2015;8:93 pubmed publisher
  250. Riou C, Tanko R, Soares A, Masson L, Werner L, Garrett N, et al. Restoration of CD4+ Responses to Copathogens in HIV-Infected Individuals on Antiretroviral Therapy Is Dependent on T Cell Memory Phenotype. J Immunol. 2015;195:2273-2281 pubmed publisher
  251. Wang Y, Zhong H, Xie X, Chen C, Huang D, Shen L, et al. Long noncoding RNA derived from CD244 signaling epigenetically controls CD8+ T-cell immune responses in tuberculosis infection. Proc Natl Acad Sci U S A. 2015;112:E3883-92 pubmed publisher
  252. Yawata N, Selva K, Liu Y, Tan K, Lee A, Siak J, et al. Dynamic change in natural killer cell type in the human ocular mucosa in situ as means of immune evasion by adenovirus infection. Mucosal Immunol. 2016;9:159-70 pubmed publisher
  253. Kim J, Ku S, Kim K, Kim S, Han M, Kim G, et al. Schisandrae Fructus Supplementation Ameliorates Sciatic Neurectomy-Induced Muscle Atrophy in Mice. Oxid Med Cell Longev. 2015;2015:872428 pubmed publisher
  254. Talker S, Koinig H, Stadler M, Graage R, Klingler E, Ladinig A, et al. Magnitude and kinetics of multifunctional CD4+ and CD8β+ T cells in pigs infected with swine influenza A virus. Vet Res. 2015;46:52 pubmed publisher
  255. Wang Z, Wan Y, Qiu C, Quiñones Parra S, Zhu Z, Loh L, et al. Recovery from severe H7N9 disease is associated with diverse response mechanisms dominated by CD8⁺ T cells. Nat Commun. 2015;6:6833 pubmed publisher
  256. Riccio E, Pratt Riccio L, Bianco Júnior C, Sanchez V, Totino P, Carvalho L, et al. Molecular and immunological tools for the evaluation of the cellular immune response in the neotropical monkey Saimiri sciureus, a non-human primate model for malaria research. Malar J. 2015;14:166 pubmed publisher
  257. DaFonseca S, Niessl J, Pouvreau S, Wacleche V, Gosselin A, Cleret Buhot A, et al. Impaired Th17 polarization of phenotypically naive CD4(+) T-cells during chronic HIV-1 infection and potential restoration with early ART. Retrovirology. 2015;12:38 pubmed publisher
  258. Lenz N, Schindler T, Kagina B, Zhang J, Lukindo T, Mpina M, et al. Antiviral Innate Immune Activation in HIV-Infected Adults Negatively Affects H1/IC31-Induced Vaccine-Specific Memory CD4+ T Cells. Clin Vaccine Immunol. 2015;22:688-96 pubmed publisher
  259. Schmueck Henneresse M, Sharaf R, Vogt K, Weist B, Landwehr Kenzel S, Fuehrer H, et al. Peripheral blood-derived virus-specific memory stem T cells mature to functional effector memory subsets with self-renewal potency. J Immunol. 2015;194:5559-67 pubmed publisher
  260. Willy J, Young S, Stevens J, Masuoka H, Wek R. CHOP links endoplasmic reticulum stress to NF-κB activation in the pathogenesis of nonalcoholic steatohepatitis. Mol Biol Cell. 2015;26:2190-204 pubmed publisher
  261. Pombo C, Wherry E, Gostick E, Price D, Betts M. Elevated Expression of CD160 and 2B4 Defines a Cytolytic HIV-Specific CD8+ T-Cell Population in Elite Controllers. J Infect Dis. 2015;212:1376-86 pubmed publisher
  262. Zhou J, Amran F, Kramski M, Angelovich T, Elliott J, Hearps A, et al. An NK Cell Population Lacking FcRγ Is Expanded in Chronically Infected HIV Patients. J Immunol. 2015;194:4688-97 pubmed publisher
  263. Hong M, Sandalova E, Low D, Gehring A, Fieni S, Amadei B, et al. Trained immunity in newborn infants of HBV-infected mothers. Nat Commun. 2015;6:6588 pubmed publisher
  264. Patki G, Salvi A, Liu H, Atrooz F, Alkadhi I, Kelly M, et al. Tempol treatment reduces anxiety-like behaviors induced by multiple anxiogenic drugs in rats. PLoS ONE. 2015;10:e0117498 pubmed publisher
  265. Lin Y, Chen L, Li W, Fang J. Role of high-mobility group box-1 in myocardial ischemia/reperfusion injury and the effect of ethyl pyruvate. Exp Ther Med. 2015;9:1537-1541 pubmed
  266. Chen M, Hu P, Ling N, Peng H, Lei Y, Hu H, et al. Enhanced functions of peripheral γδ T cells in chronic hepatitis B infection during interferon α treatment in vivo and in vitro. PLoS ONE. 2015;10:e0120086 pubmed publisher
  267. Bowcutt R, Malter L, Chen L, Wolff M, Robertson I, Rifkin D, et al. Isolation and cytokine analysis of lamina propria lymphocytes from mucosal biopsies of the human colon. J Immunol Methods. 2015;421:27-35 pubmed publisher
  268. López González I, Schlüter A, Aso E, Garcia Esparcia P, Ansoleaga B, Llorens F, et al. Neuroinflammatory signals in Alzheimer disease and APP/PS1 transgenic mice: correlations with plaques, tangles, and oligomeric species. J Neuropathol Exp Neurol. 2015;74:319-44 pubmed publisher
  269. Tsai C, Liong K, Gunalan M, Li N, Lim D, Fisher D, et al. Type I IFNs and IL-18 regulate the antiviral response of primary human γδ T cells against dendritic cells infected with Dengue virus. J Immunol. 2015;194:3890-900 pubmed publisher
  270. Rodriguez J, Marchicio J, López M, Ziblat A, Elias F, Fló J, et al. PyNTTTTGT and CpG immunostimulatory oligonucleotides: effect on granulocyte/monocyte colony-stimulating factor (GM-CSF) secretion by human CD56+ (NK and NKT) cells. PLoS ONE. 2015;10:e0117484 pubmed publisher
  271. Severson J, Serracino H, Mateescu V, Raeburn C, McIntyre R, Sams S, et al. PD-1+Tim-3+ CD8+ T Lymphocytes Display Varied Degrees of Functional Exhaustion in Patients with Regionally Metastatic Differentiated Thyroid Cancer. Cancer Immunol Res. 2015;3:620-30 pubmed publisher
  272. Ma Y, Usuwanthim K, Munawara U, Quach A, Gorgani N, Abbott C, et al. Protein kinase cα regulates the expression of complement receptor Ig in human monocyte-derived macrophages. J Immunol. 2015;194:2855-61 pubmed publisher
  273. Volpetti F, Garcia Cordero J, Maerkl S. A microfluidic platform for high-throughput multiplexed protein quantitation. PLoS ONE. 2015;10:e0117744 pubmed publisher
  274. Marquardt N, Béziat V, Nyström S, Hengst J, Ivarsson M, Kekäläinen E, et al. Cutting edge: identification and characterization of human intrahepatic CD49a+ NK cells. J Immunol. 2015;194:2467-71 pubmed publisher
  275. Lu Y, Xue Q, Eisele M, Sulistijo E, Brower K, Han L, et al. Highly multiplexed profiling of single-cell effector functions reveals deep functional heterogeneity in response to pathogenic ligands. Proc Natl Acad Sci U S A. 2015;112:E607-15 pubmed publisher
  276. Boyle M, Jagannathan P, Bowen K, McIntyre T, Vance H, Farrington L, et al. Effector Phenotype of Plasmodium falciparum-Specific CD4+ T Cells Is Influenced by Both Age and Transmission Intensity in Naturally Exposed Populations. J Infect Dis. 2015;212:416-25 pubmed publisher
  277. Saveljeva S, Mc Laughlin S, Vandenabeele P, Samali A, Bertrand M. Endoplasmic reticulum stress induces ligand-independent TNFR1-mediated necroptosis in L929 cells. Cell Death Dis. 2015;6:e1587 pubmed publisher
  278. Zhou L, Park S, Xu L, Xia X, Ye J, Su L, et al. Insulin resistance and white adipose tissue inflammation are uncoupled in energetically challenged Fsp27-deficient mice. Nat Commun. 2015;6:5949 pubmed publisher
  279. Heninger A, Wentrup S, Al Saeedi M, Schiessling S, Giese T, Wartha F, et al. Immunomodulation of human intestinal T cells by the synthetic CD80 antagonist RhuDex®. Immun Inflamm Dis. 2014;2:166-80 pubmed publisher
  280. Cohen N, Sabhachandani P, Golberg A, Konry T. Approaching near real-time biosensing: microfluidic microsphere based biosensor for real-time analyte detection. Biosens Bioelectron. 2015;66:454-60 pubmed publisher
  281. Gerner W, Talker S, Koinig H, Sedlak C, Mair K, Saalmüller A. Phenotypic and functional differentiation of porcine αβ T cells: current knowledge and available tools. Mol Immunol. 2015;66:3-13 pubmed publisher
  282. Zhang P, Lu X, Tao K, Shi L, Li W, Wang G, et al. Siglec-10 is associated with survival and natural killer cell dysfunction in hepatocellular carcinoma. J Surg Res. 2015;194:107-13 pubmed publisher
  283. Hautefort A, Girerd B, Montani D, Cohen Kaminsky S, Price L, Lambrecht B, et al. T-helper 17 cell polarization in pulmonary arterial hypertension. Chest. 2015;147:1610-1620 pubmed publisher
  284. Vogelpoel L, Hansen I, Rispens T, Muller F, van Capel T, Turina M, et al. Fc gamma receptor-TLR cross-talk elicits pro-inflammatory cytokine production by human M2 macrophages. Nat Commun. 2014;5:5444 pubmed publisher
  285. Ortiz F, Acuña Castroviejo D, Doerrier C, Dayoub J, López L, Venegas C, et al. Melatonin blunts the mitochondrial/NLRP3 connection and protects against radiation-induced oral mucositis. J Pineal Res. 2015;58:34-49 pubmed publisher
  286. Mohanty S, Joshi S, Ueda I, Wilson J, Blevins T, Siconolfi B, et al. Prolonged proinflammatory cytokine production in monocytes modulated by interleukin 10 after influenza vaccination in older adults. J Infect Dis. 2015;211:1174-84 pubmed publisher
  287. Boltjes A, van Montfoort N, Biesta P, Op den Brouw M, Kwekkeboom J, van der Laan L, et al. Kupffer cells interact with hepatitis B surface antigen in vivo and in vitro, leading to proinflammatory cytokine production and natural killer cell function. J Infect Dis. 2015;211:1268-78 pubmed publisher
  288. Bodine B, Bennion B, Leatham E, Jimenez F, Wright A, Jergensen Z, et al. Conditionally induced RAGE expression by proximal airway epithelial cells in transgenic mice causes lung inflammation. Respir Res. 2014;15:133 pubmed publisher
  289. He D, Kou X, Luo Q, Yang R, Liu D, Wang X, et al. Enhanced M1/M2 macrophage ratio promotes orthodontic root resorption. J Dent Res. 2015;94:129-39 pubmed publisher
  290. Weiskopf D, Angelo M, Bangs D, Sidney J, Paul S, Peters B, et al. The human CD8+ T cell responses induced by a live attenuated tetravalent dengue vaccine are directed against highly conserved epitopes. J Virol. 2015;89:120-8 pubmed publisher
  291. Lim D, Yawata N, Selva K, Li N, Tsai C, Yeong L, et al. The combination of type I IFN, TNF-α, and cell surface receptor engagement with dendritic cells enables NK cells to overcome immune evasion by dengue virus. J Immunol. 2014;193:5065-75 pubmed publisher
  292. Yu C, Becker C, Metang P, Marches F, Wang Y, Toshiyuki H, et al. Human CD141+ dendritic cells induce CD4+ T cells to produce type 2 cytokines. J Immunol. 2014;193:4335-43 pubmed publisher
  293. Gibbons D, Fleming P, Virasami A, Michel M, Sebire N, Costeloe K, et al. Interleukin-8 (CXCL8) production is a signatory T cell effector function of human newborn infants. Nat Med. 2014;20:1206-10 pubmed publisher
  294. Valentin A, McKinnon K, Li J, Rosati M, Kulkarni V, Pilkington G, et al. Comparative analysis of SIV-specific cellular immune responses induced by different vaccine platforms in rhesus macaques. Clin Immunol. 2014;155:91-107 pubmed publisher
  295. Kagina B, Tameris M, Geldenhuys H, Hatherill M, Abel B, Hussey G, et al. The novel tuberculosis vaccine, AERAS-402, is safe in healthy infants previously vaccinated with BCG, and induces dose-dependent CD4 and CD8T cell responses. Vaccine. 2014;32:5908-17 pubmed publisher
  296. Frencher J, Shen H, Yan L, Wilson J, Freitag N, Rizzo A, et al. HMBPP-deficient Listeria mutant immunization alters pulmonary/systemic responses, effector functions, and memory polarization of Vγ2Vδ2 T cells. J Leukoc Biol. 2014;96:957-67 pubmed publisher
  297. Arlehamn C, Seumois G, Gerasimova A, Huang C, Fu Z, Yue X, et al. Transcriptional profile of tuberculosis antigen-specific T cells reveals novel multifunctional features. J Immunol. 2014;193:2931-40 pubmed publisher
  298. Weist B, Schmueck M, Fuehrer H, Sattler A, Reinke P, Babel N. The role of CD4(+) T cells in BKV-specific T cell immunity. Med Microbiol Immunol. 2014;203:395-408 pubmed publisher
  299. Domitrovic R, Cvijanovic O, Susnić V, Katalinić N. Renoprotective mechanisms of chlorogenic acid in cisplatin-induced kidney injury. Toxicology. 2014;324:98-107 pubmed publisher
  300. Buggert M, Tauriainen J, Yamamoto T, Frederiksen J, Ivarsson M, Michaelsson J, et al. T-bet and Eomes are differentially linked to the exhausted phenotype of CD8+ T cells in HIV infection. PLoS Pathog. 2014;10:e1004251 pubmed publisher
  301. Booth J, Toapanta F, Salerno Goncalves R, Patil S, Kader H, Safta A, et al. Characterization and functional properties of gastric tissue-resident memory T cells from children, adults, and the elderly. Front Immunol. 2014;5:294 pubmed publisher
  302. Hagel C, Krasemann S, Löffler J, Puschel K, Magnus T, Glatzel M. Upregulation of Shiga toxin receptor CD77/Gb3 and interleukin-1? expression in the brain of EHEC patients with hemolytic uremic syndrome and neurologic symptoms. Brain Pathol. 2015;25:146-56 pubmed publisher
  303. Benzina S, Harquail J, Jean S, Beauregard A, Colquhoun C, Carroll M, et al. Deoxypodophyllotoxin isolated from Juniperus communis induces apoptosis in breast cancer cells. Anticancer Agents Med Chem. 2015;15:79-88 pubmed
  304. Hong J, Amancha P, Rogers K, Courtney C, Havenar Daughton C, Crotty S, et al. Early lymphoid responses and germinal center formation correlate with lower viral load set points and better prognosis of simian immunodeficiency virus infection. J Immunol. 2014;193:797-806 pubmed publisher
  305. Payne T, Blackinton J, Frisbee A, Pickeral J, Sawant S, Vandergrift N, et al. Transcriptional and posttranscriptional regulation of cytokine gene expression in HIV-1 antigen-specific CD8+ T cells that mediate virus inhibition. J Virol. 2014;88:9514-28 pubmed publisher
  306. Sueur C, Lupo J, Mas P, Morand P, Boyer V. Difference in cytokine production and cell cycle progression induced by Epstein-Barr virus Lmp1 deletion variants in Kmh2, a Hodgkin lymphoma cell line. Virol J. 2014;11:94 pubmed publisher
  307. 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
  308. Poussin C, Gallitz I, Schlage W, Steffen Y, Stolle K, Lebrun S, et al. Mechanism of an indirect effect of aqueous cigarette smoke extract on the adhesion of monocytic cells to endothelial cells in an in vitro assay revealed by transcriptomics analysis. Toxicol In Vitro. 2014;28:896-908 pubmed publisher
  309. Buggert M, Norstr m M, Salemi M, Hecht F, Karlsson A. Functional avidity and IL-2/perforin production is linked to the emergence of mutations within HLA-B*5701-restricted epitopes and HIV-1 disease progression. J Immunol. 2014;192:4685-96 pubmed publisher
  310. Dhodapkar M, Sznol M, Zhao B, Wang D, Carvajal R, Keohan M, et al. Induction of antigen-specific immunity with a vaccine targeting NY-ESO-1 to the dendritic cell receptor DEC-205. Sci Transl Med. 2014;6:232ra51 pubmed publisher
  311. Aksu V, Yuksel V, Chousein S, Tastekin E, Iscan S, Sagiroglu G, et al. The effects of sildenafil and n-acetylcysteine on ischemia and reperfusion injury in gastrocnemius muscle and femoral artery endothelium. Vascular. 2015;23:21-30 pubmed publisher
  312. Duggal N, Beswetherick A, Upton J, Hampson P, Phillips A, Lord J. Depressive symptoms in hip fracture patients are associated with reduced monocyte superoxide production. Exp Gerontol. 2014;54:27-34 pubmed publisher
  313. Chen D, Mao M, Bellussi L, Passali D, Chen L. Increase of high mobility group box chromosomal protein 1 in eosinophilic chronic rhinosinusitis with nasal polyps. Int Forum Allergy Rhinol. 2014;4:453-62 pubmed publisher
  314. Altonsy M, Sasse S, Phang T, Gerber A. Context-dependent cooperation between nuclear factor ?B (NF-?B) and the glucocorticoid receptor at a TNFAIP3 intronic enhancer: a mechanism to maintain negative feedback control of inflammation. J Biol Chem. 2014;289:8231-9 pubmed publisher
  315. Sereti I, Estes J, Thompson W, Morcock D, Fischl M, Croughs T, et al. Decreases in colonic and systemic inflammation in chronic HIV infection after IL-7 administration. PLoS Pathog. 2014;10:e1003890 pubmed publisher
  316. Kulkarni V, Valentin A, Rosati M, Alicea C, Singh A, Jalah R, et al. Altered response hierarchy and increased T-cell breadth upon HIV-1 conserved element DNA vaccination in macaques. PLoS ONE. 2014;9:e86254 pubmed publisher
  317. Salerno Goncalves R, Rezwan T, Sztein M. B cells modulate mucosal associated invariant T cell immune responses. Front Immunol. 2014;4:511 pubmed publisher
  318. Narita T, Ishida T, Masaki A, Suzuki S, Ito A, Mori F, et al. HTLV-1 bZIP factor-specific CD4 T cell responses in adult T cell leukemia/lymphoma patients after allogeneic hematopoietic stem cell transplantation. J Immunol. 2014;192:940-7 pubmed publisher
  319. Fischer R, Wajant H, Kontermann R, Pfizenmaier K, Maier O. Astrocyte-specific activation of TNFR2 promotes oligodendrocyte maturation by secretion of leukemia inhibitory factor. Glia. 2014;62:272-83 pubmed publisher
  320. Krishnan S, Wilson E, Sheikh V, Rupert A, Mendoza D, Yang J, et al. Evidence for innate immune system activation in HIV type 1-infected elite controllers. J Infect Dis. 2014;209:931-9 pubmed publisher
  321. Lutwama F, Kagina B, Wajja A, Waiswa F, Mansoor N, Kirimunda S, et al. Distinct T-cell responses when BCG vaccination is delayed from birth to 6 weeks of age in Ugandan infants. J Infect Dis. 2014;209:887-97 pubmed publisher
  322. Bhaskar K, Maphis N, Xu G, Varvel N, Kokiko Cochran O, Weick J, et al. Microglial derived tumor necrosis factor-? drives Alzheimer's disease-related neuronal cell cycle events. Neurobiol Dis. 2014;62:273-85 pubmed publisher
  323. Domitrovic R, Cvijanovic O, Pernjak Pugel E, Skoda M, Mikelić L, Crncevic Orlic Z. Berberine exerts nephroprotective effect against cisplatin-induced kidney damage through inhibition of oxidative/nitrosative stress, inflammation, autophagy and apoptosis. Food Chem Toxicol. 2013;62:397-406 pubmed publisher
  324. Nagy L, Grishina I, Macal M, Hirao L, Hu W, Sankaran Walters S, et al. Chronic HIV infection enhances the responsiveness of antigen presenting cells to commensal Lactobacillus. PLoS ONE. 2013;8:e72789 pubmed publisher
  325. Ishikawa H, Tajiri N, Vasconcellos J, Kaneko Y, Mimura O, Dezawa M, et al. Ischemic stroke brain sends indirect cell death signals to the heart. Stroke. 2013;44:3175-82 pubmed publisher
  326. Domitrovic R, Cvijanovic O, Pugel E, Zagorac G, Mahmutefendić H, Skoda M. Luteolin ameliorates cisplatin-induced nephrotoxicity in mice through inhibition of platinum accumulation, inflammation and apoptosis in the kidney. Toxicology. 2013;310:115-23 pubmed publisher
  327. Melis L, Van Praet L, Pircher H, Venken K, Elewaut D. Senescence marker killer cell lectin-like receptor G1 (KLRG1) contributes to TNF-? production by interaction with its soluble E-cadherin ligand in chronically inflamed joints. Ann Rheum Dis. 2014;73:1223-31 pubmed publisher
  328. Marin N, Paris S, Rojas M, Garcia L. Functional profile of CD4+ and CD8+ T cells in latently infected individuals and patients with active TB. Tuberculosis (Edinb). 2013;93:155-66 pubmed publisher
  329. Yamada H, Nakashima Y, Okazaki K, Mawatari T, Fukushi J, Kaibara N, et al. Th1 but not Th17 cells predominate in the joints of patients with rheumatoid arthritis. Ann Rheum Dis. 2008;67:1299-304 pubmed
  330. Lai L, Vödrös D, Kozlowski P, Montefiori D, Wilson R, Akerstrom V, et al. GM-CSF DNA: an adjuvant for higher avidity IgG, rectal IgA, and increased protection against the acute phase of a SHIV-89.6P challenge by a DNA/MVA immunodeficiency virus vaccine. Virology. 2007;369:153-67 pubmed
  331. Freysdottir J, Zhang S, Tilakaratne W, Fortune F. Oral biopsies from patients with orofacial granulomatosis with histology resembling Crohn's disease have a prominent Th1 environment. Inflamm Bowel Dis. 2007;13:439-45 pubmed
  332. Gorden K, Qiu X, Battiste J, Wightman P, Vasilakos J, Alkan S. Oligodeoxynucleotides differentially modulate activation of TLR7 and TLR8 by imidazoquinolines. J Immunol. 2006;177:8164-70 pubmed
  333. Kvist P, Iburg T, Bielecki M, Gerstenberg M, Buch Rasmussen T, Hasselager E, et al. Biocompatibility of electrochemical glucose sensors implanted in the subcutis of pigs. Diabetes Technol Ther. 2006;8:463-75 pubmed
  334. Janke M, Witsch E, Mages H, Hutloff A, Kroczek R. Eminent role of ICOS costimulation for T cells interacting with plasmacytoid dendritic cells. Immunology. 2006;118:353-60 pubmed
  335. Inglefield J, Larson C, Gibson S, Lebrec H, Miller R. Apoptotic responses in squamous carcinoma and epithelial cells to small-molecule toll-like receptor agonists evaluated with automated cytometry. J Biomol Screen. 2006;11:575-85 pubmed
  336. Njemini R, Lambert M, Demanet C, Mets T. The effect of aging and inflammation on heat shock protein 27 in human monocytes and lymphocytes. Exp Gerontol. 2006;41:312-9 pubmed
  337. Shen C, Maerten P, Geboes K, Van Assche G, Rutgeerts P, Ceuppens J. Infliximab induces apoptosis of monocytes and T lymphocytes in a human-mouse chimeric model. Clin Immunol. 2005;115:250-9 pubmed
  338. Shen C, Assche G, Colpaert S, Maerten P, Geboes K, Rutgeerts P, et al. Adalimumab induces apoptosis of human monocytes: a comparative study with infliximab and etanercept. Aliment Pharmacol Ther. 2005;21:251-8 pubmed
  339. Arredouani M, Kasran A, Vanoirbeek J, Berger F, Baumann H, Ceuppens J. Haptoglobin dampens endotoxin-induced inflammatory effects both in vitro and in vivo. Immunology. 2005;114:263-71 pubmed
  340. Vinogradov E, Paul C, Li J, Zhou Y, Lyle E, Tapping R, et al. The structure and biological characteristics of the Spirochaeta aurantia outer membrane glycolipid LGLB. Eur J Biochem. 2004;271:4685-95 pubmed
  341. Gee K, Kozlowski M, Kumar A. Tumor necrosis factor-alpha induces functionally active hyaluronan-adhesive CD44 by activating sialidase through p38 mitogen-activated protein kinase in lipopolysaccharide-stimulated human monocytic cells. J Biol Chem. 2003;278:37275-87 pubmed
  342. Gee K, Lim W, Ma W, Nandan D, Diaz Mitoma F, Kozlowski M, et al. Differential regulation of CD44 expression by lipopolysaccharide (LPS) and TNF-alpha in human monocytic cells: distinct involvement of c-Jun N-terminal kinase in LPS-induced CD44 expression. J Immunol. 2002;169:5660-72 pubmed
  343. Soop M, Duxbury H, Agwunobi A, Gibson J, Hopkins S, Childs C, et al. Euglycemic hyperinsulinemia augments the cytokine and endocrine responses to endotoxin in humans. Am J Physiol Endocrinol Metab. 2002;282:E1276-85 pubmed
  344. Kooijman R, Coppens A, Hooghe Peters E. Igf-I inhibits spontaneous apoptosis in human granulocytes. Endocrinology. 2002;143:1206-12 pubmed
  345. Braun M, Wang J, Lahey E, Rabin R, Kelsall B. Activation of the formyl peptide receptor by the HIV-derived peptide T-20 suppresses interleukin-12 p70 production by human monocytes. Blood. 2001;97:3531-6 pubmed
  346. Bullens D, Kasran A, Thielemans K, Bakkus M, Ceuppens J. CD40L-induced IL-12 production is further enhanced by the Th2 cytokines IL-4 and IL-13. Scand J Immunol. 2001;53:455-63 pubmed
  347. Bullens D, Rafiq K, Charitidou L, Peng X, Kasran A, Warmerdam P, et al. Effects of co-stimulation by CD58 on human T cell cytokine production: a selective cytokine pattern with induction of high IL-10 production. Int Immunol. 2001;13:181-91 pubmed
  348. Shields D, Avgeropoulos N, Banik N, Tyor W. Acute multiple sclerosis characterized by extensive mononuclear phagocyte infiltration. Neurochem Res. 2000;25:1517-20 pubmed
  349. Tapping R, Akashi S, Miyake K, Godowski P, Tobias P. Toll-like receptor 4, but not toll-like receptor 2, is a signaling receptor for Escherichia and Salmonella lipopolysaccharides. J Immunol. 2000;165:5780-7 pubmed
  350. Braun M, Lahey E, Kelsall B. Selective suppression of IL-12 production by chemoattractants. J Immunol. 2000;164:3009-17 pubmed
  351. Braun M, He J, Wu C, Kelsall B. Cholera toxin suppresses interleukin (IL)-12 production and IL-12 receptor beta1 and beta2 chain expression. J Exp Med. 1999;189:541-52 pubmed