This is a Validated Antibody Database (VAD) review about human c-Myc, based on 823 published articles (read how Labome selects the articles), using c-Myc antibody in all methods. It is aimed to help Labome visitors find the most suited c-Myc antibody. Please note the number of articles fluctuates since newly identified citations are added and citations for discontinued catalog numbers are removed regularly.
c-Myc synonym: MRTL; MYCC; bHLHe39; c-Myc

Knockout validation
Abcam
domestic rabbit monoclonal (Y69)
  • immunocytochemistry knockout validation; human; loading ...; fig 1c
  • western blot knockout validation; human; loading ...; fig 1b
Abcam c-Myc antibody (Abcam, ab32072) was used in immunocytochemistry knockout validation on human samples (fig 1c) and in western blot knockout validation on human samples (fig 1b). Open Biol (2019) ncbi
Cell Signaling Technology
domestic rabbit monoclonal (D3N8F)
  • western blot knockout validation; mouse; 1:1000; fig 2a
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13987) was used in western blot knockout validation on mouse samples at 1:1000 (fig 2a). Invest Ophthalmol Vis Sci (2022) ncbi
Cell Signaling Technology
domestic rabbit monoclonal (D84C12)
  • western blot knockout validation; mouse; fig s3b
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot knockout validation on mouse samples (fig s3b). J Clin Invest (2017) ncbi
Santa Cruz Biotechnology
mouse monoclonal (9E10)
  • western blot; human; 1:2000; loading ...; fig s3c
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on human samples at 1:2000 (fig s3c). iScience (2022) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig 3f
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used in western blot on human samples (fig 3f). Commun Biol (2022) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig 5a
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in western blot on human samples (fig 5a). Sci Adv (2021) ncbi
mouse monoclonal (9E10)
  • western blot; human; fig 4a, 4b
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on human samples (fig 4a, 4b). PLoS Pathog (2021) ncbi
mouse monoclonal (9E10)
  • immunohistochemistry - paraffin section; mouse; 1:250; loading ...; fig 2b
  • western blot; human; 1:500; loading ...; fig 5j
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in immunohistochemistry - paraffin section on mouse samples at 1:250 (fig 2b) and in western blot on human samples at 1:500 (fig 5j). Cancer Res (2021) ncbi
mouse monoclonal (9E10)
  • western blot; mouse; 1:1000; loading ...; fig 5b
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on mouse samples at 1:1000 (fig 5b). Front Cell Dev Biol (2021) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:1000; loading ...; fig 2d
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on human samples at 1:1000 (fig 2d). Cell Death Dis (2021) ncbi
mouse monoclonal (9E10)
  • western blot; mouse; 1:1000; loading ...; fig 2e
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used in western blot on mouse samples at 1:1000 (fig 2e). EBioMedicine (2021) ncbi
mouse monoclonal (9E10)
  • western blot; rat; loading ...; fig 3g
Santa Cruz Biotechnology c-Myc antibody (Santa, sc-40) was used in western blot on rat samples (fig 3g). Aging (Albany NY) (2020) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:500; loading ...; fig 2e
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used in western blot on human samples at 1:500 (fig 2e). elife (2020) ncbi
mouse monoclonal (9E10)
  • western blot; mouse; 1:1000; loading ...; fig 2c
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on mouse samples at 1:1000 (fig 2c). J Cancer (2020) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:2000; loading ...
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on human samples at 1:2000. J Exp Med (2020) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:1000; loading ...; fig 2e
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used in western blot on human samples at 1:1000 (fig 2e). elife (2020) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:500; loading ...; fig 7c
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on human samples at 1:500 (fig 7c). elife (2020) ncbi
mouse monoclonal (9E10)
  • immunohistochemistry - paraffin section; rat; 1:200; loading ...; fig 1e, 2e
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in immunohistochemistry - paraffin section on rat samples at 1:200 (fig 1e, 2e). Int J Nanomedicine (2020) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig 4a
  • western blot; mouse; 1:500; loading ...; fig 3b
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in western blot on human samples (fig 4a) and in western blot on mouse samples at 1:500 (fig 3b). Oncogenesis (2020) ncbi
mouse monoclonal (9E10)
  • western blot; mouse; loading ...; fig 1
  • immunoprecipitation; human; loading ...; fig 1, 4
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in western blot on mouse samples (fig 1) and in immunoprecipitation on human samples (fig 1, 4). Cell Death Dis (2020) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on human samples . elife (2020) ncbi
mouse monoclonal (9E10)
  • western blot; mouse; 1:500; loading ...; fig 3b, c, s8c
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on mouse samples at 1:500 (fig 3b, c, s8c). Nat Commun (2020) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig s2a
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used in western blot on human samples (fig s2a). EBioMedicine (2020) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; human; 1:20,000; loading ...; fig 3s1b
Santa Cruz Biotechnology c-Myc antibody (SCBT, SC-40) was used in immunocytochemistry on human samples at 1:20,000 (fig 3s1b). elife (2019) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig 4a
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in western blot on human samples (fig 4a). PLoS ONE (2019) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:1000; loading ...; fig 1b
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in western blot on human samples at 1:1000 (fig 1b). Acta Neuropathol (2019) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig 2k
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on human samples (fig 2k). Theranostics (2019) ncbi
mouse monoclonal (9E10)
  • western blot; mouse; loading ...; fig 4c
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in western blot on mouse samples (fig 4c). Cancer Cell (2019) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:1000; loading ...; fig 7a
Santa Cruz Biotechnology c-Myc antibody (Santa, sc-40) was used in western blot on human samples at 1:1000 (fig 7a). Nat Commun (2019) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig 4c
Santa Cruz Biotechnology c-Myc antibody (Santa, sc-40) was used in western blot on human samples (fig 4c). Oncogene (2019) ncbi
mouse monoclonal (C-33)
  • western blot; human; loading ...; fig 4e
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-42) was used in western blot on human samples (fig 4e). Cancer Lett (2019) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; human; 1:150; loading ...; fig s4i
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in immunocytochemistry on human samples at 1:150 (fig s4i). Science (2018) ncbi
mouse monoclonal (C-33)
  • western blot; human; loading ...; fig 1a
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, C33) was used in western blot on human samples (fig 1a). Oncotarget (2018) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Biochim Biophys Acta Mol Cell Biol Lipids (2018) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; mouse; 1:1000; fig 7g
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in immunocytochemistry on mouse samples at 1:1000 (fig 7g). Nat Commun (2017) ncbi
mouse monoclonal (9E10)
In order to investigate Rac1 activity and inhibition in gastric adenocarcinoma cells and mouse xenograft models for epithelial-to-mesenchymal transition and cancer stem-like cell phenotypes, Santa Cruz Biotechnology c-Myc antibody (SantaCruz, sc-40) was used . Mol Cancer Res (2017) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Mol Cancer (2017) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig 8a
Santa Cruz Biotechnology c-Myc antibody (SantaCruz, sc-40) was used in western blot on human samples (fig 8a). Reprod Fertil Dev (2017) ncbi
mouse monoclonal (C-8)
  • western blot; mouse; loading ...; fig 4d
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-41) was used in western blot on mouse samples (fig 4d). Nat Commun (2017) ncbi
mouse monoclonal (C-33)
  • EMSA; human; loading ...; fig 5d
Santa Cruz Biotechnology c-Myc antibody (SantaCruz, sc42x) was used in EMSA on human samples (fig 5d). Epigenetics (2017) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used . Nat Commun (2017) ncbi
mouse monoclonal (9E10)
In order to find AURKA activity as essential in non-small cell lung cancer cells lacking SMARCA4/BRG1, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nat Commun (2017) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40HRP) was used . Nat Commun (2017) ncbi
mouse monoclonal (9E10)
In order to find Notch signaling is integral for Wnt and Fgf signaling feedback loop coordinating cell migration, Santa Cruz Biotechnology c-Myc antibody (Santa cruz, 9E10) was used . elife (2017) ncbi
mouse monoclonal (9E10)
  • western blot; fruit fly ; 1:500; loading ...; fig 2d
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on fruit fly samples at 1:500 (fig 2d). Sci Rep (2017) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC40) was used . Sci Signal (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oncol Lett (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oncol Lett (2016) ncbi
mouse monoclonal (9E10)
In order to elucidate the regulation of PHF8 and KDM3A during neuroendocrine differentiation and castration-resistant prostate cancer, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used . Oncotarget (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Exp Cell Res (2016) ncbi
mouse monoclonal (9E10)
In order to report that TrkC contributes to tumorigenicity, metastasis, and self-renewal traits of metastatic breast cancer, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Sci Rep (2016) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; human; 1:200; loading ...; fig s4
  • western blot; human; 1:1000; loading ...; fig 6b
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc40) was used in immunocytochemistry on human samples at 1:200 (fig s4) and in western blot on human samples at 1:1000 (fig 6b). J Cell Sci (2016) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:500; loading ...; fig 2b
Santa Cruz Biotechnology c-Myc antibody (Santa cruz, 9E10) was used in western blot on human samples at 1:500 (fig 2b). J Cell Sci (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used . Sci Rep (2016) ncbi
mouse monoclonal (9E10)
  • blocking or activating experiments; human; loading ...
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in blocking or activating experiments on human samples . Oncotarget (2016) ncbi
mouse monoclonal (9E10)
In order to report that inhibition of PP2A kills PLK1-overexpressing breast, pancreatic, ovarian, glioblastoma, and prostate cancer cells, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oncotarget (2016) ncbi
mouse monoclonal (9E10)
In order to elucidate the role of the Ndel1-Tara complex in actin reorganization during cell movement, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Sci Rep (2016) ncbi
mouse monoclonal (9E11)
  • western blot; human; 1:2500; loading ...; fig 5a
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-47694) was used in western blot on human samples at 1:2500 (fig 5a). Mol Med Rep (2016) ncbi
mouse monoclonal (9E11)
  • western blot; human; loading ...; fig s1a
Santa Cruz Biotechnology c-Myc antibody (SantaCruz, sc-47694) was used in western blot on human samples (fig s1a). Oncotarget (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Genome Biol (2016) ncbi
mouse monoclonal (9E10)
In order to study the rewiring of upstream STAT3 for downstream STAT1 signaling that switches an IL6-type to IFN-gamma-like response by human cytomegalovirus immediate-early 1 protein, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . PLoS Pathog (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used . Aging (Albany NY) (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Sci Rep (2016) ncbi
mouse monoclonal (9E10)
In order to analyze inhibition of IL-17-mediated colon inflammation and tumorigenesis by ROR-gamma-t ubiquitination by Itch, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Nat Immunol (2016) ncbi
mouse monoclonal (9E10)
In order to study disruption of the cereblon-CD147-MCT1 axis to exert antitumor activity and teratogenicity due to immunomodulatory drugs, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Nat Med (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Development (2016) ncbi
mouse monoclonal (9E10)
In order to compare manganese detoxification/efflux proteins and molecular characterization of ZnT10 as a manganese transporter, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . J Biol Chem (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . J Biol Chem (2016) ncbi
mouse monoclonal (9E10)
In order to discuss the relationship between TGF-beta and MYC in basal subtype breast cancers, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Cancer Res (2016) ncbi
mouse monoclonal (9E10)
In order to determine how E3 ligase tethering by PCM1 promotes ciliogenesis and controls the abundance of centrosomal KIAA0586/Talpid3, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . elife (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotech, sc-40) was used . J Korean Med Sci (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . EMBO Rep (2016) ncbi
mouse monoclonal (9E10)
  • western blot; mouse; loading ...; fig s1b
In order to report how the parallel networks of necroptosis-induced CXCL1 and Mincle signaling promote pancreatic ductal adenocarcinoma progression, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in western blot on mouse samples (fig s1b). Nature (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oncotarget (2016) ncbi
mouse monoclonal (C-33)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-42) was used . PLoS ONE (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Nat Commun (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (SantaCruz, sc-40) was used . Oncol Lett (2016) ncbi
mouse monoclonal (C-33)
  • western blot; human; fig 6
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-42) was used in western blot on human samples (fig 6). Nucleic Acids Res (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Breast Cancer Res Treat (2016) ncbi
mouse monoclonal (9E10)
  • immunohistochemistry - paraffin section; mouse; fig 4a
Santa Cruz Biotechnology c-Myc antibody (SantaCruz, 9E10) was used in immunohistochemistry - paraffin section on mouse samples (fig 4a). Neoplasia (2016) ncbi
mouse monoclonal (9E11)
  • immunohistochemistry - paraffin section; human; fig 7
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-47694) was used in immunohistochemistry - paraffin section on human samples (fig 7). PLoS Genet (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oncotarget (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . J Biol Chem (2016) ncbi
mouse monoclonal (9E10)
In order to analyze the switch of balance from cholesterol to vitamin D synthesis by cholesterol-mediated degradation of 7-dehydrocholesterol reductase, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used . J Biol Chem (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oncotarget (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . PLoS ONE (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40HRP) was used . Oncotarget (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Nat Immunol (2016) ncbi
mouse monoclonal (9E10)
In order to determine how GSK3Beta and NDE1 associate with TRAK1 and regulate axonal mitochondrial motility and identify cyclic AMP as the novel modulator of axonal mitochondrial trafficking, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . ACS Chem Neurosci (2016) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human; loading ...; fig 4
  • western blot; human; loading ...; fig 4
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in immunoprecipitation on human samples (fig 4) and in western blot on human samples (fig 4). Cell Mol Life Sci (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Cell Cycle (2016) ncbi
mouse monoclonal (9E10)
In order to study initiation of autophagy by tethering Atg9-vesicles by the Atg1-kinase complex, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nat Commun (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nat Commun (2016) ncbi
mouse monoclonal (9E10)
In order to report the contribution of DYRK1A and DYRK1B in cancer stem cells, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Nature (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Nat Neurosci (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oxid Med Cell Longev (2016) ncbi
mouse monoclonal (C-33)
  • western blot; mouse; 1:500; fig 6
In order to examine the effect of glycogen synthase kinase 3 inhibition on definitive endoderm production, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc42) was used in western blot on mouse samples at 1:500 (fig 6). EMBO J (2016) ncbi
mouse monoclonal (9E10)
In order to report that USP17 interacts with HDAC2, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Int J Clin Exp Pathol (2015) ncbi
mouse monoclonal (9E10)
In order to investigate how IL-33 regulates IL-13 gene expression, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Int J Mol Sci (2015) ncbi
mouse monoclonal (9E11)
  • western blot; human; fig 7
In order to develop and characterize a protein delivery tool based on bacterial type III secretion, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-47694) was used in western blot on human samples (fig 7). J Cell Biol (2015) ncbi
mouse monoclonal (9E10)
In order to study the activation mechanisms of core Hippo pathway components, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . EMBO Rep (2016) ncbi
mouse monoclonal (9E10)
In order to characterize inhibition of clathrin-mediated and bulk endocytosis by synaptotagmin-11, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . EMBO Rep (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Mol Cell Biol (2016) ncbi
mouse monoclonal (9E10)
In order to assess the definition of obligate participation in multiple hallmarks of cancer by a comprehensive functional characterization of cancer-testis antigens, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Virol (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nucleic Acids Res (2016) ncbi
mouse monoclonal (C-33)
  • western blot; human; fig s3
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-42) was used in western blot on human samples (fig s3). Oncotarget (2015) ncbi
mouse monoclonal (C-33)
  • western blot; mouse; fig 1
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-42) was used in western blot on mouse samples (fig 1). Oncogene (2016) ncbi
mouse monoclonal (9E10)
In order to study the role of arsenic trioxide in glioma tumor growth disruption, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Oncotarget (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nature (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40AC) was used . Oncotarget (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa cruz, sc-40) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, SC-40) was used . Nucleic Acids Res (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (santa cruz, 9E10) was used . J Biol Chem (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, SC-40) was used . Oncogene (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Plant Physiol (2015) ncbi
mouse monoclonal (9E10)
In order to assess the effects of curcumin on lung cancer stem-like cells, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oncol Rep (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (santa cruz, SC-40) was used . Nat Cell Biol (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oncogene (2016) ncbi
mouse monoclonal (9E10)
In order to analyze myogenic differentiation promotion by syntaxin 4 regulation on the surface localization of Cdo, a promyogenic receptor, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Skelet Muscle (2015) ncbi
mouse monoclonal (9E10)
In order to investigate how ataxia-telangiectasia mutated signaling regulates pexophagy, Santa Cruz Biotechnology c-Myc antibody (santa cruz, sc-40) was used . Nat Cell Biol (2015) ncbi
mouse monoclonal (9E10)
In order to report the crystal structure of the mitochondrial calcium uniporter N-terminal domain and assess its function, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . EMBO Rep (2015) ncbi
mouse monoclonal (9E10)
In order to investigate how progerin contributes to Hutchinson-Gilford progeria, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . elife (2015) ncbi
mouse monoclonal (9E10)
In order to report that PAQR3 regulates cholesterol homeostasis by anchoring Scap/SREBP to the Golgi, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig 3d
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in western blot on human samples (fig 3d). BMC Cancer (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . J Biol Chem (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E10)
In order to study the role of transmembrane protein 33 in the unfolded protein response, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Breast Cancer Res Treat (2015) ncbi
mouse monoclonal (9E10)
In order to investigate the regulation of HIB, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Sci Rep (2015) ncbi
mouse monoclonal (9E10)
In order to report that RSF1 localizes at mitotic kinetochores and directly binds PLK1, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oncogene (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used . J Cell Sci (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Sci Rep (2015) ncbi
mouse monoclonal (C-8)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-41) was used . Oncol Lett (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa cruz, sc-40) was used . Nucleic Acids Res (2015) ncbi
mouse monoclonal (9E10)
In order to explore the mechanism by which HBx inhibits Myc ubiquitination, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Oncogene (2016) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Mol Cell Endocrinol (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Sci Rep (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nucleic Acids Res (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used . Int J Oncol (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oncotarget (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Oncotarget (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Biol Chem (2015) ncbi
mouse monoclonal (9E10)
In order to identify TRIM28/KAP1 as a novel ARF-binding protein and SUMO E3 ligase for NPM1/B23, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Mol Cell Biol (2015) ncbi
mouse monoclonal (9E10)
In order to study the binding of ICP0 to USP7, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . PLoS Pathog (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used . Oncogene (2016) ncbi
mouse monoclonal (9E10)
In order to identify an integrin-independent role of ERI complexes during keratinocyte differentiation, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Mol Biol Cell (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Cancer Cell Int (2015) ncbi
mouse monoclonal (9E10)
In order to discuss methods to study protein ubiquitination, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, SC-40) was used . Anal Biochem (2015) ncbi
mouse monoclonal (C-33)
  • western blot; human; loading ...; fig 7b
Santa Cruz Biotechnology c-Myc antibody (SantaCruz Technologies, sc-42) was used in western blot on human samples (fig 7b). Mol Cancer (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Kobe J Med Sci (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Biol Chem (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Acta Neuropathol Commun (2015) ncbi
mouse monoclonal (9E10)
In order to demonstrate that the AP-1 adaptor complex and Arf1 regulate PCP protein trafficking in vivo, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E10)
In order to determine how kainate receptors activate G-proteins, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Neurosci (2015) ncbi
mouse monoclonal (9E10)
In order to assess the function of Set-beta neuronal isoforms, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Biol Chem (2015) ncbi
mouse monoclonal (9E10)
In order to identify gene variants that contribute to amyotrophic lateral sclerosis, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nat Neurosci (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Proc Natl Acad Sci U S A (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Mutat Res (2015) ncbi
mouse monoclonal (9E10)
In order to study CDC26 phosphorylation and its effect on the tetratricopeptide repeat subcomplex of APC/C, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Methods Mol Biol (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Biol Open (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . J Biol Chem (2015) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig 1b
Santa Cruz Biotechnology c-Myc antibody (SantaCruz, 9E10) was used in western blot on human samples (fig 1b). Oncotarget (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology Inc., 9E10) was used . Mol Cancer Res (2015) ncbi
mouse monoclonal (C-33)
  • western blot; human; 1:1000; loading ...; fig 6e
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-42) was used in western blot on human samples at 1:1000 (fig 6e). Int J Oncol (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, Sc-40) was used . J Cell Biochem (2015) ncbi
mouse monoclonal (9E10)
In order to provide mechanistic insights into how Itch function is regulated during inflammatory signaling, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Immunol (2015) ncbi
mouse monoclonal (9E10)
In order to identify a homologue of the peptidyl-prolyl isomerase PIN1 in T. annulata and investigate how it affects oncogenic signaling pathways, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nature (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Plant Cell (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . J Biol Chem (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Mol Cell Biol (2015) ncbi
mouse monoclonal (9E10)
In order to test if brain-derived neurotrophic factor in the paraventricular nucleus of the hypothalamus contributes to increases in blood pressure, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Am J Physiol Heart Circ Physiol (2015) ncbi
mouse monoclonal (9E10)
In order to elucidate the tumor suppressor function of BTG3, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Cell Death Dis (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Biochim Biophys Acta (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . J Neurosci (2014) ncbi
mouse monoclonal (9E10)
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on human samples . Br J Cancer (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40 AC) was used . J Biol Chem (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . FEBS Lett (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nat Cell Biol (2015) ncbi
mouse monoclonal (9E10)
In order to show that the Rpb4/7 controls phosphorylation of the carboxy terminal domain of the Rpb1 subunit of RNAPII, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Nucleic Acids Res (2014) ncbi
mouse monoclonal (9E10)
In order to determine the contribution of Tut, Bam, and Bgcn in the proliferation and differentiation of the Drosophila germline stem cell lineage, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc40) was used . PLoS Genet (2014) ncbi
mouse monoclonal (9E10)
In order to identify the mechanistic link between Cullin neddylation and Myc ubiquitination/degradation, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Nat Commun (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Mol Cell Biol (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Nature (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nat Commun (2014) ncbi
mouse monoclonal (9E10)
  • western blot; mouse; fig 2e
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in western blot on mouse samples (fig 2e). J Immunol (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Biol Chem (2014) ncbi
mouse monoclonal (9E10)
In order to investigate how Plks are regulated during cytokinesis, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . J Cell Biol (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Gastric Cancer (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Biol Chem (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Cell Death Differ (2015) ncbi
mouse monoclonal (9E10)
In order to investigate the intracellular trafficking of an NF-kappaB-cleaving toxin from Photobacterium damselae subsp. piscicida, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Infect Immun (2014) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in immunoprecipitation on human samples and in western blot on human samples . J Gen Virol (2015) ncbi
mouse monoclonal (9E10)
  • western blot; mouse; 1:1000
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in western blot on mouse samples at 1:1000. PLoS ONE (2014) ncbi
mouse monoclonal (9E10)
In order to characterize inhibition of neuronal tumor cell proliferation by mitochondrial ferritin, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Cell Mol Life Sci (2015) ncbi
mouse monoclonal (9E10)
In order to study the effect of ubiquitination modification in regulating the protein stability and the nuclear function of IL-33, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Int J Clin Exp Pathol (2014) ncbi
mouse monoclonal (9E10)
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used in western blot on human samples . Biomed Res Int (2014) ncbi
mouse monoclonal (9E10)
In order to assess the role of the anaphase-promoting complex and Cdc20 in the primary cilium, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotech, sc40) was used . elife (2014) ncbi
mouse monoclonal (9E10)
In order to investigate the regulation of Celsr3 in the peripheral nervous system, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Nat Neurosci (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E-10) was used . Oncogene (2015) ncbi
mouse monoclonal (9E10)
In order to investigate the localization and function of yeast Hos3, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC-40) was used . Mol Biol Cell (2014) ncbi
mouse monoclonal (9E10)
  • chromatin immunoprecipitation; human
In order to study the inhibitory effect of hypoxia on gene transcription and its mechanism, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Technology, 9E10) was used in chromatin immunoprecipitation on human samples . Nucleic Acids Res (2014) ncbi
mouse monoclonal (C-33)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, C33) was used . Head Neck (2015) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Cell (2014) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used in immunoprecipitation on human samples and in western blot on human samples . FEBS J (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Int J Biochem Cell Biol (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Blood (2014) ncbi
mouse monoclonal (9E10)
In order to describe methods to examine nuclear pore complexes using Xenopus oocytes, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Methods Cell Biol (2014) ncbi
mouse monoclonal (9E10)
In order to examine the role of Set-beta in neurons, Santa Cruz Biotechnology c-Myc antibody (SCBT, sc-40) was used . J Neurosci (2014) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:1000
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used in western blot on human samples at 1:1000. PLoS ONE (2014) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human
  • western blot; human; fig 6
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in immunoprecipitation on human samples and in western blot on human samples (fig 6). Mol Cell Biol (2014) ncbi
mouse monoclonal (9E10)
In order to study the role of human endogenous retrovirus (HERV) envelope proteins in the uptake of exosomes, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc40) was used . FASEB J (2014) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used in immunoprecipitation on human samples and in western blot on human samples . Biochim Biophys Acta (2014) ncbi
mouse monoclonal (9E10)
In order to investigate the role of FUBP1 in the splicing of oncogene MDM2 pre-mRNA, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Biol Chem (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . elife (2014) ncbi
mouse monoclonal (9E10)
  • western blot; mouse
Santa Cruz Biotechnology c-Myc antibody (SCBT, SC-40) was used in western blot on mouse samples . Leukemia (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotech, 9E10) was used . Nature (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Cell Rep (2014) ncbi
mouse monoclonal (9E11)
In order to characterize a well-differentiated fetal lung adenocarcinoma from a human, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E11) was used . Chin J Cancer Res (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used . Microbiologyopen (2014) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; human; 1:200
In order to evaluate the effect of Noxa on the localization and stability of MCL-1 in small cell lung cancer, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used in immunocytochemistry on human samples at 1:200. Cell Death Dis (2014) ncbi
mouse monoclonal (9E10)
In order to study the role of Sox2 activity in neural differentiation, Santa Cruz Biotechnology c-Myc antibody (Santa, sc-40) was used . Proc Natl Acad Sci U S A (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Cell Physiol (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . FASEB J (2014) ncbi
mouse monoclonal (9E10)
In order to determine the cellular function of Lyar, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Genes Cells (2014) ncbi
mouse monoclonal (9E10)
In order to show that during cytokinesis aurora B coordinates with Plk1 to regulate MyoGEF activation and localization, Santa Cruz Biotechnology c-Myc antibody (Santa, sc-40) was used . J Biol Chem (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Mol Oncol (2014) ncbi
mouse monoclonal (9E10)
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, Sc-40) was used in western blot on human samples . Oncotarget (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa, sc-40) was used . Epigenetics (2014) ncbi
mouse monoclonal (9E11)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E11) was used . Mol Cancer Ther (2014) ncbi
mouse monoclonal (9E10)
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz biotechnology, sc-40) was used in western blot on human samples . PLoS ONE (2013) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Technology, 9E10) was used . Int J Oncol (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, SC-40) was used . Biochim Biophys Acta (2014) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in immunoprecipitation on human samples and in western blot on human samples . Mol Cell Biol (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Biol Chem (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . Cancer Res (2014) ncbi
mouse monoclonal (9E10)
In order to investigate MLQ as a regulator of mitochondrial ATP synthesis, Santa Cruz Biotechnology c-Myc antibody (SantaCruz, sc-40) was used . Genes Cells (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . J Biol Chem (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . J Biol Chem (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used . FEBS J (2014) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Int J Oncol (2014) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; human
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in immunocytochemistry on human samples and in western blot on human samples . J Biol Chem (2014) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in immunocytochemistry on human samples . Mol Cells (2013) ncbi
mouse monoclonal (9E10)
In order to describe a fast semi-quantitative colony immunoassay to detect intracellularly expressed proteins in both yeast and bacterial cells, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Anal Biochem (2014) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:500
In order to study the interaction of human papillomaviruse E7 protein with B-Myb-MuvB complex and its effect on gene expression, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40 HRP) was used in western blot on human samples at 1:500. Oncogene (2014) ncbi
mouse monoclonal (9E10)
  • chromatin immunoprecipitation; fission yeast
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used in chromatin immunoprecipitation on fission yeast samples . Mol Cell Biol (2013) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used . Oncogene (2014) ncbi
mouse monoclonal (9E10)
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in western blot on human samples . BMC Genomics (2013) ncbi
mouse monoclonal (9E10)
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, SC40) was used in western blot on human samples . Methods Mol Biol (2013) ncbi
mouse monoclonal (9E10)
  • western blot; mouse; 1:1000
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in western blot on mouse samples at 1:1000. PLoS ONE (2013) ncbi
mouse monoclonal (9E10)
  • flow cytometry; human; 1:100
  • immunocytochemistry; human; 1:100
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in flow cytometry on human samples at 1:100 and in immunocytochemistry on human samples at 1:100. PLoS ONE (2013) ncbi
mouse monoclonal (9E10)
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in western blot on human samples . J Biol Chem (2013) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human; 2 ugs
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in immunoprecipitation on human samples at 2 ugs. PLoS ONE (2013) ncbi
mouse monoclonal (9E10)
  • immunohistochemistry - paraffin section; mouse
  • western blot; human; fig 5
In order to study the role of DSG3 in cancer cell growth and invasion and its mechanism, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotech, 9E10) was used in immunohistochemistry - paraffin section on mouse samples and in western blot on human samples (fig 5). PLoS ONE (2013) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in immunoprecipitation on human samples and in western blot on human samples . J Biol Chem (2013) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in immunoprecipitation on human samples and in western blot on human samples . J Biol Chem (2013) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; mouse
  • western blot; mouse
In order to demonstrate the role of a dynamin 1/cortactin ring complex for the maintenance of growth cone filopodia, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in immunoprecipitation on mouse samples and in western blot on mouse samples . J Neurosci (2013) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; mouse
  • western blot; mouse; fig 6e
In order to examine the involvement of PACSIN 1 in the BDNF-induced spine formation, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used in immunocytochemistry on mouse samples and in western blot on mouse samples (fig 6e). J Biol Chem (2013) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in immunoprecipitation on human samples and in western blot on human samples . Cell Death Dis (2013) ncbi
mouse monoclonal (9E10)
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in western blot on human samples . Mol Oncol (2013) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; fruit fly ; 1:20
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in immunocytochemistry on fruit fly samples at 1:20. PLoS ONE (2012) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa, SC-40) was used . Mol Cell Biol (2012) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Breast Cancer (2014) ncbi
mouse monoclonal (9E10)
  • western blot; Xenopus laevis
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used in western blot on Xenopus laevis samples and in western blot on human samples . PLoS Biol (2012) ncbi
mouse monoclonal (9E11)
  • immunohistochemistry - paraffin section; mouse; 1:50
In order to study the low levels of 5-hydroxymethylcytosine observed in stem/progenitor cells and cancer cells as compared to normal tissues, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E11) was used in immunohistochemistry - paraffin section on mouse samples at 1:50. Oncotarget (2011) ncbi
mouse monoclonal (9E10)
  • chromatin immunoprecipitation; human
  • immunocytochemistry; human; 1:1000
  • western blot; human; 1:1000
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, Sc-40) was used in chromatin immunoprecipitation on human samples , in immunocytochemistry on human samples at 1:1000 and in western blot on human samples at 1:1000. Int J Biochem Cell Biol (2011) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:100
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used in western blot on human samples at 1:100. Eur J Cancer (2012) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human
  • western blot; human
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, sc-40) was used in immunoprecipitation on human samples and in western blot on human samples . J Biol Chem (2009) ncbi
mouse monoclonal (9E10)
In order to investigate the potential role of the proteasome in checkpoint activation and ATM/ATR signaling in response to UV light-induced DNA damage, Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . J Biol Chem (2008) ncbi
mouse monoclonal (9E10)
  • immunohistochemistry - frozen section; mouse; 1 ug/ml
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in immunohistochemistry - frozen section on mouse samples at 1 ug/ml. J Comp Neurol (2006) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; mouse
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in immunocytochemistry on mouse samples . Mol Cell Biol (2006) ncbi
mouse monoclonal (9E10)
  • western blot; rat
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, sc-40) was used in western blot on rat samples . J Neurosci (2005) ncbi
mouse monoclonal (9E10)
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . Cell (2002) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:500
Santa Cruz Biotechnology c-Myc antibody (Santa Cruz, 9E10) was used in western blot on human samples at 1:500. Genes Dev (2000) ncbi
Invitrogen
mouse monoclonal (9E10)
  • flow cytometry; human; 10 ug/ml; loading ...; fig 3b
Invitrogen c-Myc antibody (Thermo Scientific, MA1-980) was used in flow cytometry on human samples at 10 ug/ml (fig 3b). elife (2021) ncbi
mouse monoclonal (9E10)
Invitrogen c-Myc antibody (ThermoFisher, 13-C2500) was used . elife (2020) ncbi
mouse monoclonal (9E10)
Invitrogen c-Myc antibody (Invitrogen, 132500) was used . elife (2020) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; human; loading ...; fig 6c
Invitrogen c-Myc antibody (Thermo Fisher Scientific, PA1-981) was used in immunohistochemistry on human samples (fig 6c). PLoS Pathog (2019) ncbi
mouse monoclonal (9E10)
  • immunoprecipitation; human; loading ...; fig 2a
  • western blot; human; loading ...; fig 2a
In order to investigate the role of Rab35 in the exocytosis of Weibel-Palade bodies, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used in immunoprecipitation on human samples (fig 2a) and in western blot on human samples (fig 2a). J Biol Chem (2017) ncbi
mouse monoclonal (9E10)
In order to investigate the regulation of prostate epithelial cell proliferation and MYC oncoprotein metabolism by E3 ubiquitin ligase adaptor speckle-type POZ protein, Invitrogen c-Myc antibody (Thermo Scientific, #MA1-81357) was used . Oncogene (2017) ncbi
mouse monoclonal
In order to provide evidence for two ARL2-sensitive pathways in mitochondria, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . PLoS ONE (2017) ncbi
mouse monoclonal
In order to determine the capacity of the short isoform of DNAJB6 to protect against 1-methyl-4phenylpridinium ion-induced apoptosis in LN18 cells as a model for Parkinson's disease, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . Oxid Med Cell Longev (2017) ncbi
mouse monoclonal
In order to investigate the me3chanisms of the effects of WDR13 on intestinal homeostasis in mice, Invitrogen c-Myc antibody (Invitrogen, R951-25) was used . BMC Cancer (2017) ncbi
mouse monoclonal (9E10)
In order to analyze the expression and characteristics of the secreted metalloprotease ADAMTS17 in regards to fibrillin microfibrils, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . Sci Rep (2017) ncbi
mouse monoclonal (9E10)
In order to report that the intermembrane space domain of trypanosomal Tom22 binds mitochondrial precursor proteins and that it is essential for normal growth and mitochondrial protein import, Invitrogen c-Myc antibody (Invitrogen, 132500) was used . Sci Rep (2017) ncbi
mouse monoclonal (9E10)
In order to identify MAPKBP1 mutations as a genetic cause of juvenile or late-onset and cilia-independent nephronophthisis, Invitrogen c-Myc antibody (Fisher Scientific, MS-139-P1) was used . Am J Hum Genet (2017) ncbi
mouse monoclonal (9E10.3)
In order to identify MAPKBP1 mutations as a genetic cause of juvenile or late-onset and cilia-independent nephronophthisis, Invitrogen c-Myc antibody (Fisher Scientific, MS-139-P1) was used . Am J Hum Genet (2017) ncbi
domestic rabbit polyclonal
In order to suggest that DeltadivIVA mutations are not epistatic to DeltagpsB division-protein mutations in progenitor D39 and related genetic backgrounds, Invitrogen c-Myc antibody (Invitrogen, PA1-981) was used . Mol Microbiol (2017) ncbi
mouse monoclonal (Myc.A7)
In order to demonstrate that cyclic adenosine monophosphate-dependent Rap1 signaling to extracellular signal-regulated kinases and Rap1 is potentiated by PKA due to sustained binding of B-Raf to Rap1, Invitrogen c-Myc antibody (Thermo Fisher, MA1-21316) was used . J Biol Chem (2017) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; Trypanosoma brucei; 1:50; loading ...; fig 3b
  • western blot; Trypanosoma brucei; 1:2000; loading ...; fig 3a
In order to find non-canonical inner membrane protein translocation machinery in Trypanosoma brucei, Invitrogen c-Myc antibody (Invitrogen, 132500) was used in immunocytochemistry on Trypanosoma brucei samples at 1:50 (fig 3b) and in western blot on Trypanosoma brucei samples at 1:2000 (fig 3a). Nat Commun (2016) ncbi
mouse monoclonal (9E10)
In order to propose that postnatal gene therapy improves spatial learning even in the presence of neuronal ectopia, Invitrogen c-Myc antibody (ThermoFisher, MA1-980) was used . Genes (Basel) (2016) ncbi
domestic rabbit polyclonal
In order to show that recombinant pneumonia virus of mice NS proteins degrades the members of the IFN pathway, Invitrogen c-Myc antibody (Thermo scientific, PA1-981) was used . Sci Rep (2016) ncbi
mouse monoclonal (9E10)
In order to optimize a method to generate granulocyte lineage-committed progenitors from umbilical cord blood samples, Invitrogen c-Myc antibody (Thermo Scientific, 9E10) was used . N Biotechnol (2017) ncbi
mouse monoclonal (9E10)
In order to ask if selinexor, when combined with bortezomib or carfilzomib, attenuates resistance in multiple myeloma samples, Invitrogen c-Myc antibody (Fisher, MAI-980) was used . Oncotarget (2016) ncbi
mouse monoclonal
In order to study the secretion of the Staphylococcus aureus toxin, EsaD, Invitrogen c-Myc antibody (Invitrogen, R951-25) was used . Nat Microbiol (2016) ncbi
domestic rabbit polyclonal
In order to evaluate the capacity of interferon-induced proteins with tetratricopeptide repeats to inhibit the growth of human parainfluenza virus type 3, Invitrogen c-Myc antibody (Thermo-Scientific, PA1-981) was used . J Virol (2016) ncbi
mouse monoclonal (9E10)
In order to describe a role for ADAMTS9 in ocular morphogenesis, Invitrogen c-Myc antibody (Life Technologies, 9E10) was used . Sci Rep (2016) ncbi
chicken polyclonal
In order to study the role of Miro phosphorylation in Parkin-dependent mitochondrial arrest, Invitrogen c-Myc antibody (ThermoFisher Scientific, A21281) was used . Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (9E11)
In order to investigate the evolution of RIG-I-like receptors, Invitrogen c-Myc antibody (Life Technologies, MA1-16637) was used . Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (Myc.A7)
In order to demonstrate that both Ras and Rap1 are required for cyclic adenosine monophosphate signaling to extracellular signal-regulated kinase, Invitrogen c-Myc antibody (Thermo Fisher, MA1-21316) was used . J Biol Chem (2016) ncbi
mouse monoclonal (9E10)
In order to elucidate the role of ZC3H12D, Invitrogen c-Myc antibody (Thermo Scientific, MA1-980) was used . J Cell Biochem (2017) ncbi
mouse monoclonal (Myc.A7)
In order to elucidate how p21 is suppressed in embryonic stem cells, Invitrogen c-Myc antibody (Thermo Fisher Scientific, A7) was used . Sci Rep (2016) ncbi
mouse monoclonal
In order to study the influence of 80S ribosome assembly in saccharomyces cerevisiae by ribosomal protein Rps26, Invitrogen c-Myc antibody (Life Technologies, R951-25) was used . mSphere (2016) ncbi
mouse monoclonal (9E10)
In order to study regulation by pre-mRNA alternative splicing of Acrbp in the mouse by biogenesis of sperm acrosome, Invitrogen c-Myc antibody (ThermoFisher, 9E10) was used . Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (9E10)
In order to research stabilization and phosphorylation of SuFu by Nek2A as a strategy for regulating signaling of Gli2/hedgehog, Invitrogen c-Myc antibody (Invitrogen, 13-2500) was used . Cell Signal (2016) ncbi
mouse monoclonal (9E10.3)
In order to determine the link between nuclear egress and nucleocapsid maturation by human cytomegalovirus pUL93, Invitrogen c-Myc antibody (Thermo Fisher Scientific, 9E10.3) was used . J Virol (2016) ncbi
chicken polyclonal
In order to assess the discovery of high affinity anti-ricin antibodies by yeast display of combinatorial VH:VL libraries from immunized animals and B cell receptor sequencing, Invitrogen c-Myc antibody (Invitrogen, A-21281) was used . MAbs (2016) ncbi
mouse monoclonal (Myc.A7)
In order to describe a model for how super elongation complex functions as a Pol II elongation factor and suppresses Pol II pausing, Invitrogen c-Myc antibody (Thermo Scientific, Myc.A7) was used . Transcription (2016) ncbi
mouse monoclonal (9E10)
In order to study the formation of nuclear bodies and repression of a large number of protein-coding genes by arabidopsis AtMORC4 and AtMORC7, Invitrogen c-Myc antibody (Pierce, MA1-980) was used . PLoS Genet (2016) ncbi
mouse monoclonal (9E10)
In order to report that mammalian actin-binding protein-1 and FHL2 are binding partners that regulate Rho GTPase signaling and breast cancer cell invasion, Invitrogen c-Myc antibody (Thermo Fisher, 9E10) was used . J Biol Chem (2016) ncbi
mouse monoclonal (9E10)
In order to study promotion of proper chromosome segregation by the negatively charged carboxy-terminal tail of beta-tubulin, Invitrogen c-Myc antibody (Thermo, MA1-980) was used . Mol Biol Cell (2016) ncbi
mouse monoclonal (9E10)
In order to study the activity-driven interaction between presenilin 1 and synaptotagmin 1 and links to calcium, amyloid beta, and synapse, Invitrogen c-Myc antibody (Pierce, MA1-980) was used . BMC Biol (2016) ncbi
domestic rabbit monoclonal (27HCLC)
In order to investigate the role of sciellin in colorectal cancer, Invitrogen c-Myc antibody (Invitrogen, 710007) was used . Oncotarget (2016) ncbi
mouse monoclonal
In order to characterize the partial restriction of pseudotyped lentiviral vectors by human, mouse and pig interferon-induced transmembrane proteins, Invitrogen c-Myc antibody (Thermo Fisher, R950-25) was used . Hum Gene Ther (2016) ncbi
mouse monoclonal (9E10)
In order to discuss dog allergens such as Can f 1, Invitrogen c-Myc antibody (Thermo Fisher, 9E10) was used . Ann Allergy Asthma Immunol (2016) ncbi
mouse monoclonal (9E10.3)
In order to study the requirement of CLCA2 interactor EVA1 for mammary epithelial cell differentiation, Invitrogen c-Myc antibody (Neomarkers, 9E10.3) was used . PLoS ONE (2016) ncbi
mouse monoclonal
In order to elucidate how MYB-QKI fusions promote cancer, Invitrogen c-Myc antibody (Invitrogen, R951-25) was used . Nat Genet (2016) ncbi
mouse monoclonal (9E10)
In order to characterize an apical junctional complex with cytoskeletal associations and miRNA-mediated growth implications defined by PLEKHA7, Invitrogen c-Myc antibody (Zymed, 13-2500) was used . Cell Cycle (2016) ncbi
mouse monoclonal
In order to identify protein partners of DUX4, Invitrogen c-Myc antibody (Invitrogen, R951-25) was used . PLoS ONE (2016) ncbi
mouse monoclonal (9E10.3)
In order to identify Ssn6 as a regulator of Candida albicans white-opaque switching, Invitrogen c-Myc antibody (Invitrogen, AHO0062) was used . MBio (2016) ncbi
mouse monoclonal (9E10.3)
In order to identify Wor4 as a seventh regulator of Candida albicans white-opaque switching, Invitrogen c-Myc antibody (Invitrogen, AHO0062) was used . G3 (Bethesda) (2016) ncbi
mouse monoclonal
In order to elucidate the deubiquitinase inhibitor PR-619 and how it sensitizes normal human fibroblasts to tumor necrosis factor-related apoptosis-inducing ligand (TRAIL)-mediated cell death, Invitrogen c-Myc antibody (Life Technologies, R950-25) was used . J Biol Chem (2016) ncbi
chicken polyclonal
In order to determine the critical window for estrogen therapy, Invitrogen c-Myc antibody (Invitrogen, A21281) was used . J Neurosci (2015) ncbi
mouse monoclonal (9E10)
In order to show that beta-catenin and ZO-1 are targets of E7 of the oncogenic human papillomaviruses types 5 and 8, Invitrogen c-Myc antibody (Thermo Fisher, 9E10) was used . J Gen Virol (2016) ncbi
mouse monoclonal
In order to report that beta8 integrin and neuropilin 1 cooperatively promote angiogenesis in the central nervous system, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . Development (2015) ncbi
mouse monoclonal (9E10)
In order to study promotion of apoptosis by myeloid leukemia factor 1 interference with Bcl-XL and function regulated by 14-3-3, Invitrogen c-Myc antibody (Thermo Scientific, MA1-980) was used . J Physiol Biochem (2015) ncbi
mouse monoclonal (9E10)
In order to investigate the interaction between zyxin and Tes, Invitrogen c-Myc antibody (Life Technologies, 9E10) was used . PLoS ONE (2015) ncbi
mouse monoclonal
In order to characterize a bispecific scFv antibody targeting of human melanoma made in transgenic cattle called r28M, Invitrogen c-Myc antibody (Invitrogen/Life Technologies, R951-25) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E10)
In order to discuss factors that contribute to the onset and progression of oculopharyngeal muscular dystrophy, Invitrogen c-Myc antibody (Invitrogen, 13-2500) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E10)
In order to elucidate the regulation and dynamics of H2A-T120 phosphorylation by Bub1, Invitrogen c-Myc antibody (Thermo Scientific, 9E10) was used . Nat Commun (2015) ncbi
mouse monoclonal (Myc.A7)
In order to assess the effects of curcumin on lung cancer stem-like cells, Invitrogen c-Myc antibody (Invitrogen, MA1-21316-D680) was used . Oncol Rep (2015) ncbi
mouse monoclonal (9E10)
In order to show that Ajuba is a novel coactivator for liver X receptors, Invitrogen c-Myc antibody (Invitrogen, 13?C2500) was used . Mol Endocrinol (2015) ncbi
mouse monoclonal (9E11)
In order to demonstrate that LRIG1 functions as a growth suppressor in breast cancer cells, Invitrogen c-Myc antibody (Neomarkers, MS-127-P0) was used . Oncogene (2016) ncbi
mouse monoclonal
In order to examine the effect of reelin derivatives on macrophage cholesterol metabolism, Invitrogen c-Myc antibody (Life Technologies, R950-25) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E10)
In order to study how conformational changes control T cell receptor association and activity of Zap70, Invitrogen c-Myc antibody (Fisher Scientific, MA1-980) was used . Nat Immunol (2015) ncbi
mouse monoclonal
In order to report roles for kinesin and nuclear pore complexes in DNA repair by break-induced replication, Invitrogen c-Myc antibody (Invitrogen, R951-25) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E10)
In order to investigate markers expressed by stromal cells in breast cancer patients, Invitrogen c-Myc antibody (Thermo Fisher Scientific, MS139) was used . Mol Clin Oncol (2015) ncbi
mouse monoclonal (9E10)
In order to report that Ajuba regulates adipocyte differentiation via PPARgamma, Invitrogen c-Myc antibody (Invitrogen, 13-2500) was used . Cell Death Differ (2016) ncbi
chicken polyclonal
In order to discuss the key steps of enzyme engineering on the yeast cell surface, Invitrogen c-Myc antibody (Invitrogen, A-21281) was used . Methods Mol Biol (2015) ncbi
mouse monoclonal
In order to study the localization and function of Nuf2 during mouse oocyte meiotic maturation, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . Cell Cycle (2015) ncbi
mouse monoclonal (9E10.3)
In order to evaluate the antitumor efficacy of the bromodomain inhibitor JQ1 in pancreatic ductal adenocarcinoma patient-derived xenograft models, Invitrogen c-Myc antibody (Life Technologies, AHO0062) was used . Oncogene (2016) ncbi
mouse monoclonal
In order to investigate how RIG-I-like receptors prevent cancer, Invitrogen c-Myc antibody (Life Technologies, R951-25) was used . Cell Death Dis (2015) ncbi
mouse monoclonal
In order to study the localization and function of CK1alpha, CK1delta and CK1epsilon during mouse oocyte meiotic maturation, Invitrogen c-Myc antibody (Invitrogen, R953-25) was used . Cell Cycle (2015) ncbi
mouse monoclonal
In order to study the localization and function of CK1alpha, CK1delta and CK1epsilon during mouse oocyte meiotic maturation, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . Cell Cycle (2015) ncbi
mouse monoclonal (Myc.A7)
In order to determine if cyclophilin-D regulates mitochondrial gene expression, Invitrogen c-Myc antibody (Thermo, MA1-21316) was used . FASEB J (2015) ncbi
chicken polyclonal
In order to demonstrate that hMsd1/SSX2IP-mediated microtubule anchoring is required for proper centriole assembly and duplication, Invitrogen c-Myc antibody (Molecular Probes, A-21281) was used . Mol Biol Cell (2015) ncbi
mouse monoclonal (9E10)
In order to research kinetoplastids, mitochondrial protein import receptors, to reveal convergent evolution over vast phylogenetic distances, Invitrogen c-Myc antibody (Invitrogen, 132500) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; human; loading ...; fig 1b
  • western blot; human; loading ...; fig 2a
In order to explore the role of Mind bomb in centriole homeostasis, Invitrogen c-Myc antibody (Life Technologies, 9E10) was used in immunocytochemistry on human samples (fig 1b) and in western blot on human samples (fig 2a). J Cell Sci (2015) ncbi
mouse monoclonal (9E10)
In order to show that Che-1 inhibits mTOR activity in response to stress conditions, Invitrogen c-Myc antibody (life technologies, 13-2500) was used . EMBO J (2015) ncbi
mouse monoclonal (9E10)
In order to identify nsp16 binding partners using a yeast two-hybrid screen, Invitrogen c-Myc antibody (Thermo Fisher Scientific, MA1-980) was used . Biochem Biophys Res Commun (2015) ncbi
mouse monoclonal (9E10)
In order to use BioID to find novel components of the Toxoplasm inner membrane complex, Invitrogen c-Myc antibody (NeoMarkers, 9E10) was used . MBio (2015) ncbi
mouse monoclonal (9E10)
In order to describe a method to generate bispecific antibodies, Invitrogen c-Myc antibody (Invitrogen, 13?C2500) was used . Nat Commun (2015) ncbi
mouse monoclonal
In order to study the role of N-terminal acetylation in Ogden syndrome, Invitrogen c-Myc antibody (Life Technologies, R950-25) was used . Hum Mol Genet (2015) ncbi
mouse monoclonal
In order to study the application of thermally responsive protein microdomains in gene functional perturbation, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . Adv Funct Mater (2014) ncbi
mouse monoclonal (9E10.3)
In order to investigate regulation of photosynthesis in rice, Invitrogen c-Myc antibody (Invitrogen, AHO0062) was used . Nat Commun (2014) ncbi
mouse monoclonal
In order to demonstrate that BNC2 regulates male germ stem cells, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . Development (2014) ncbi
mouse monoclonal
In order to study the function of the PHD motif of MEKK1, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . EMBO J (2014) ncbi
mouse monoclonal (9E10)
In order to investigate the role of asymmetric cell division during tumorigenesis, Invitrogen c-Myc antibody (Thermo Scientific, MA1-980) was used . Cancer Res (2014) ncbi
mouse monoclonal
In order to investigate peptidoglycan synthesis using Streptococcus pneumoniae, Invitrogen c-Myc antibody (Life Technologies, R950-25) was used . Mol Microbiol (2014) ncbi
mouse monoclonal
In order to report and characterize the interaction between BECN1 and PARK2, Invitrogen c-Myc antibody (Life Technologies, R950-25) was used . Autophagy (2014) ncbi
mouse monoclonal (9E10)
Invitrogen c-Myc antibody (Thermo Scientific, 9E10) was used . Eukaryot Cell (2014) ncbi
mouse monoclonal (9E10)
In order to determine the role of RON5 as a critical component for function and organization of the Toxoplasma moving junction complex, Invitrogen c-Myc antibody (Neomarkers, 9E10) was used . PLoS Pathog (2014) ncbi
mouse monoclonal
In order to characterize Huntington's disease pathogenesis and microRNAs located in Hox gene clusters, Invitrogen c-Myc antibody (Life Technologies, R950-25) was used . PLoS Genet (2014) ncbi
mouse monoclonal
In order to study the Nav channel Beta-3 subunit by crystal structure and molecular imaging indicates a trimeric assembly, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . J Biol Chem (2014) ncbi
mouse monoclonal
In order to study the role of TEAD proteins in regulating expression of other genes in vascular smooth muscle cells, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . J Biol Chem (2014) ncbi
mouse monoclonal (9E10)
In order to demonstrate that HMHA1 is a RhoGAP and regulates GTPase activity, cytoskeletal remodeling, and cell spreading, Invitrogen c-Myc antibody (Invitrogen, 13-2500) was used . PLoS ONE (2013) ncbi
mouse monoclonal (9E10)
In order to study the regulation of EHD2 plasma membrane localization due to phosphatidylinositol 4,5-bisphosphate, Invitrogen c-Myc antibody (Invitrogen, 13-2500) was used . PLoS ONE (2013) ncbi
mouse monoclonal
In order to study the role of SGO1 in maintaining bovine mitotic and meiotic centromeric cohesions of sister chromatids and directly affect embryo development, Invitrogen c-Myc antibody (Life Technologies, R950-25) was used . PLoS ONE (2013) ncbi
mouse monoclonal
In order to study how the Drosophila TRPL channel modulates food experience-induced taste desensitization, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . Nat Neurosci (2013) ncbi
mouse monoclonal
In order to assess how different subunit arrangements are adopted by N-methyl-D-aspartate (NMDA) and alpha-amino-3-hydroxy-5-methyl-4 isoxazole propionic acid (AMPA) receptors, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . J Biol Chem (2013) ncbi
mouse monoclonal (9E10)
  • western blot; human
In order to study the promotion of c-Myc degradation by BLM helicase and its effect on tumor initiation, Invitrogen c-Myc antibody (Invitrogen, 13-2500) was used in western blot on human samples . J Cell Sci (2013) ncbi
mouse monoclonal (9E10.3)
In order to study the interplay between ROCK-TPPP1-HDAC6 signaling and beta-catenin expression, Invitrogen c-Myc antibody (Life Technologies, AHO0062) was used . Biochem Biophys Res Commun (2013) ncbi
mouse monoclonal
In order to elucidate mechanisms by which Sox6 regulates skeletal muscle differentiation, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . Skelet Muscle (2013) ncbi
mouse monoclonal (9E10)
In order to discover that S18-2 overexpression results in immortalization and de-differentiation of primary rat embryonic fibroblasts, Invitrogen c-Myc antibody (Zymed Laboratories, 9E10) was used . Acta Naturae (2013) ncbi
mouse monoclonal (9E10)
In order to investigate the dynamics of the global cullin 1-RING ubiquitin ligase network, Invitrogen c-Myc antibody (Invitrogen, 13-2500) was used . Nat Commun (2013) ncbi
mouse monoclonal (9E10)
In order to describe Galpha12:RhoGEF complex and Galpha13:RhoGEF complexes, Invitrogen c-Myc antibody (Zymed, 9E10) was used . J Mol Signal (2013) ncbi
mouse monoclonal
In order to examine the role of APH-2 in basal and Tax2B-mediated activation of the AP-1 pathway, Invitrogen c-Myc antibody (Invitrogen, R950) was used . Retrovirology (2012) ncbi
mouse monoclonal
In order to examine the role of APH-2 in basal and Tax2B-mediated activation of the AP-1 pathway, Invitrogen c-Myc antibody (Invitrogen, R951) was used . Retrovirology (2012) ncbi
mouse monoclonal (9E10)
In order to elucidate how PACSIN2 regulates EGF receptor signaling, Invitrogen c-Myc antibody (Invitrogen, 13-2500) was used . J Biol Chem (2012) ncbi
mouse monoclonal
In order to examine the topology and orientation of LMTK2 within cellular membranes, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . Am J Physiol Cell Physiol (2013) ncbi
mouse monoclonal (9E10.3)
In order to investigate if subviral HBsAg particles are released into the bloodstream within exosomes and microvescicles, Invitrogen c-Myc antibody (Invitrogen, 9E10.3) was used . PLoS ONE (2012) ncbi
mouse monoclonal (9E10.3)
In order to determine the clinical significance of PPAR-gamma expression in non-small cell lung carcinoma, Invitrogen c-Myc antibody (Zymed, clone 9E10) was used . Pathol Oncol Res (2012) ncbi
mouse monoclonal
In order to examine the expression of three TrkB alternative transcripts in Alzheimer's disease, Invitrogen c-Myc antibody (Life Technologies, R95225) was used . Neuroscience (2012) ncbi
mouse monoclonal (9E10.3)
In order to demonstrate a critical role for the GPCR proteolysis site in autoproteolysis that mediates receptor signaling and cell activation, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . Mol Cell Biol (2012) ncbi
mouse monoclonal (9E10)
In order to investigate the relationship between HP1-KAP1 binding/ATM phosphorylation during DNA repair, Invitrogen c-Myc antibody (Zymed, 13-2500) was used . Mol Cancer Res (2012) ncbi
mouse monoclonal (9E10.3)
In order to study the role of a dominant negative zebrafish Ahr2 in protecting zebrafish from dioxin toxicity, Invitrogen c-Myc antibody (Lab Vision Corporation, MS-139-P0) was used . PLoS ONE (2011) ncbi
mouse monoclonal (9E10)
In order to study the role of a dominant negative zebrafish Ahr2 in protecting zebrafish from dioxin toxicity, Invitrogen c-Myc antibody (Lab Vision Corporation, MS-139-P0) was used . PLoS ONE (2011) ncbi
mouse monoclonal (9E10)
In order to identify diagnostic and prognostic markers for glioblastoma, Invitrogen c-Myc antibody (Lab Vision, MS-139) was used . Int J Oncol (2012) ncbi
mouse monoclonal
In order to determine the topology of insect gustatory receptors, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . PLoS ONE (2011) ncbi
mouse monoclonal
In order to identify binding partners of REIC/Dkk-3, Invitrogen c-Myc antibody (Invitrogen, R95025) was used . Biochem Biophys Res Commun (2011) ncbi
mouse monoclonal (9E10.3)
In order to investigate the relationship between c-Myc and ribosomal biogenesis, Invitrogen c-Myc antibody (Zymed, clone 9E10) was used . Mol Cell Biol (2011) ncbi
mouse monoclonal
In order to elucidate mechanisms that regulate increased blood pressure and sympathetic nerve activity caused by dehydration, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . J Physiol (2011) ncbi
mouse monoclonal
In order to identify Smad2 targets in early gastrulas, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . J Biol Chem (2011) ncbi
mouse monoclonal
In order to examine the murine synaptonemal complex, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . PLoS Genet (2011) ncbi
mouse monoclonal (9E10)
In order to identify survival-associated genomic biomarkers for malignant peripheral nerve sheath tumors, Invitrogen c-Myc antibody (Zymed, 9E10) was used . Clin Cancer Res (2011) ncbi
mouse monoclonal (9E11)
In order to construct a useful protein-depletion system for Shizosaccaromyces pombe, Invitrogen c-Myc antibody (NeoMarkers, 9E11) was used . BMC Cell Biol (2011) ncbi
mouse monoclonal (9E10)
In order to report and assess the most complete interactome of genes and proteins associated with Alzheimer's disease, Invitrogen c-Myc antibody (Invitrogen, 13-2500) was used . Genome Res (2011) ncbi
mouse monoclonal (9E10)
In order to characterize the exocytotic machinery in ribbon-containing neurons, Invitrogen c-Myc antibody (Zymed Laboratories, 13-2500) was used . Neural Dev (2010) ncbi
mouse monoclonal
In order to review the composition and functions of LINC complexes, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . PLoS ONE (2010) ncbi
mouse monoclonal (9E10)
In order to investigate the role of L11 in the regulation of c-Myc-driven transcription, Invitrogen c-Myc antibody (Zymed, 9E10) was used . J Biol Chem (2010) ncbi
mouse monoclonal (121SLE)
In order to test if carbohydrate antigen 19-9 is overproduced during cyst infection, Invitrogen c-Myc antibody (NeoMarkers, 121SLE) was used . Am J Kidney Dis (2010) ncbi
mouse monoclonal
In order to discuss the roles of DBC1/KIAA1967 (deleted in breast cancer 1) and other genes in breast cancer, Invitrogen c-Myc antibody (Invitrogen, R95025) was used . Br J Cancer (2010) ncbi
mouse monoclonal (9E10)
In order to characterize angiogenesis defects in ADAMTS9+/- mice, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . Am J Pathol (2010) ncbi
mouse monoclonal (9E10)
In order to show that Aurora-A in conjunction with oncogenic Ras enhances transformed cell growth, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . Mol Cell Biol (2010) ncbi
mouse monoclonal (9E10)
In order to discuss how factor Xa and thrombin regulate MMP-2 enzymatic activity, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . J Biol Chem (2009) ncbi
mouse monoclonal (9E10.3)
In order to investigate the biofilm matrix of Candida albicans, Invitrogen c-Myc antibody (Biosource, AHO0062) was used . PLoS Biol (2009) ncbi
mouse monoclonal (9E10)
In order to compare clathrin paralogues in functional assays for endocytosis and mitosis, Invitrogen c-Myc antibody (Zymed, 13-2500) was used . J Cell Sci (2009) ncbi
mouse monoclonal (9E10.3)
In order to study the function of human Fcalpha/microR, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . Cell Immunol (2009) ncbi
mouse monoclonal (9E10.3)
In order to study the localization of NFX1-123 and elucidate its function, Invitrogen c-Myc antibody (Invitrogen, 9E10.3) was used . J Virol (2009) ncbi
mouse monoclonal (9E10)
In order to demonstrate that Sam68-deficient cells exhibit loss of cell polarity and cell migration, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . Mol Cell Biol (2009) ncbi
mouse monoclonal (9E10)
In order to report on two cases of classic and desmoplastic medulloblastoma and the characterization of two new cell lines, Invitrogen c-Myc antibody (Zymed, 9E10) was used . Neuropathology (2009) ncbi
mouse monoclonal (9E10.3)
In order to test if c-Met expression is associated with overall survival and tumor invasiveness in patients with glioblastomas, Invitrogen c-Myc antibody (Neomarker, 9E10.3) was used . Cancer (2009) ncbi
mouse monoclonal (9E10.3)
In order to examine the role of mitochondrial p32 in ARF-induced apoptosis, Invitrogen c-Myc antibody (Lab Vision, 9E10.3) was used . Cancer Cell (2008) ncbi
mouse monoclonal
In order to develop and characterize a mouse model of distal spinal and bulbar muscular atrophy, Invitrogen c-Myc antibody (Invitrogen, R950-25) was used . Hum Mol Genet (2008) ncbi
mouse monoclonal (9E10)
In order to analyze the progression of flat and papillary preneoplastic lesions in intrahepatic cholangiocarcinogenesis in hepatolithiasis, Invitrogen c-Myc antibody (Zymed Laboratories, 9E10) was used . Liver Int (2007) ncbi
mouse monoclonal
In order to analyze the composition of functional gamma-secretase complexes, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Biol Chem (2007) ncbi
mouse monoclonal (9E10)
In order to perform a kinetic analysis of a recombinant motor domain of Chara myosin, Invitrogen c-Myc antibody (Zymed Laboratories, 13-2500) was used . J Biol Chem (2007) ncbi
mouse monoclonal (9E10)
In order to show that Che-1 is a new Pin1 and HDM2 target and has a role in the cellular response to DNA damage, Invitrogen c-Myc antibody (Invitrogen, 9e10) was used . J Biol Chem (2007) ncbi
mouse monoclonal (9E10)
In order to study ShcD/Shc4 interactions with the MuSK receptor, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . Mol Cell Biol (2007) ncbi
mouse monoclonal (9E10)
In order to examine the role of the ADAMTS9 propeptide in regulating its secretion and proteolytic activity, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . J Biol Chem (2007) ncbi
mouse monoclonal (9E10)
In order to investigate the contribution of PDLIM3 and MYOZ1 to dilated cardiomyopathy, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . Mol Genet Metab (2007) ncbi
mouse monoclonal (9E10)
In order to map the binding site for DYNLL2 within the myosin Va heavy chain, Invitrogen c-Myc antibody (Zymed, 13-2500) was used . Biochemistry (2006) ncbi
mouse monoclonal (9E10)
In order to show that that TFRC1 is a downstream target of c-Myc in models of B-cell lymphoma, Invitrogen c-Myc antibody (Zymed, 9E10) was used . Mol Cell Biol (2006) ncbi
mouse monoclonal (9E10.3)
In order to study the short-term regulation of the ACTH receptor human melanocortin receptor 2, Invitrogen c-Myc antibody (Zymed, 9E10) was used . Endocrinology (2006) ncbi
mouse monoclonal (9E10)
In order to determine the role of Krp1 in v-Fos-transformed rat fibroblast cells, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . Mol Cell Biol (2006) ncbi
mouse monoclonal (9E10)
In order to report that autophagy is induced by impaired ubiquitin proteasome system activity, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . J Biol Chem (2005) ncbi
mouse monoclonal (9E10)
In order to investigate the maturation of autotaxin, Invitrogen c-Myc antibody (Molecular Probes, 9E10) was used . J Cell Sci (2005) ncbi
mouse monoclonal (9E10.3)
In order to investigate miRNAs and c-Myc, Invitrogen c-Myc antibody (Zymed, 9E10) was used . Nature (2005) ncbi
mouse monoclonal (9E10)
In order to identify and characterize a Vps fifty-three tethering factor complex, Invitrogen c-Myc antibody (Zymed, 9E10) was used . Exp Cell Res (2005) ncbi
mouse monoclonal (9E10)
In order to characterize vacuolating cytotoxin from Helicobacter pylori, Invitrogen c-Myc antibody (Zymed, 9E10) was used . J Biol Chem (2005) ncbi
mouse monoclonal (9E10)
In order to report that Tumbleweed, Pavarotti, and their association are required for neuroblast proliferation in Drosophila, Invitrogen c-Myc antibody (Molecular Probes, 9E10) was used . Proc Natl Acad Sci U S A (2005) ncbi
mouse monoclonal
In order to generate an epitope tag system to examine the expression and subcellular compartmentalization of bacterial proteins during infection, Invitrogen c-Myc antibody (Invitrogen, no) was used . Infect Immun (2005) ncbi
mouse monoclonal (9E10)
In order to identify and characterize an ADF/cofilin phosphoregulatory complex, Invitrogen c-Myc antibody (Zymed, 9E10) was used . EMBO J (2005) ncbi
mouse monoclonal
In order to characterize V2R2, an atypical member of the V2R family, Invitrogen c-Myc antibody (Invitrogen, no) was used . Chem Senses (2005) ncbi
mouse monoclonal (9E10)
In order to investigate the function of gametogenetin protein 1, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . FEBS Lett (2005) ncbi
mouse monoclonal (9E10)
In order to investigate injury-induced collagen triple helix repeat containing 1 expression, Invitrogen c-Myc antibody (Zymed, 9E10) was used . Circ Res (2005) ncbi
mouse monoclonal (9E10)
In order to report that Notch1 forms homodimers via its EGF motifs, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . Exp Cell Res (2005) ncbi
mouse monoclonal (9E10)
In order to determine where prion protein is converted into the abnormal scrapie isoform intracellularly, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . J Biol Chem (2005) ncbi
mouse monoclonal (9E10)
In order to propose a direct role for DdCdk8 in spore formation, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . Dev Biol (2004) ncbi
mouse monoclonal
In order to study how changes in the amino acid sequence of the S locus cysteine-rich protein alters function, Invitrogen c-Myc antibody (Invitrogen, no) was used . Proc Natl Acad Sci U S A (2004) ncbi
mouse monoclonal (9E10.3)
In order to study how p120-catenin stabilizes epithelial cadherin, Invitrogen c-Myc antibody (Zymed, 9E10) was used . J Cell Biol (2003) ncbi
mouse monoclonal (9E10)
  • immunohistochemistry - paraffin section; human; fig 3
In order to examine the role of OGR1 and GPR4 in pH homeostasis, Invitrogen c-Myc antibody (Zymed, 132511) was used in immunohistochemistry - paraffin section on human samples (fig 3). Nature (2003) ncbi
mouse monoclonal
In order to investigate the role of RtsA and RtsB in Salmonella pathogenesis, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Bacteriol (2003) ncbi
mouse monoclonal
In order to study the Rta response element, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Virol (2003) ncbi
mouse monoclonal
In order to determine the interacting regions of Gag and LysRS, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Biol Chem (2003) ncbi
mouse monoclonal (9E10.3)
In order to investigate the mechanisms involved in activated AMP-activated protein kinase-induced apoptosis, Invitrogen c-Myc antibody (Biosource, 9E10??3) was used . J Mol Endocrinol (2003) ncbi
mouse monoclonal (9E10.3)
In order to investigate the tissue restriction of GRP94-elicited protective immunity using a 4T1 mammary carcinoma model, Invitrogen c-Myc antibody (Zymed, 9E10) was used . J Exp Med (2002) ncbi
mouse monoclonal (9E10)
In order to examine the similarity between apocrine cells and high-grade ductal carcinoma, Invitrogen c-Myc antibody (Zymed, 9E10) was used . Virchows Arch (2002) ncbi
mouse monoclonal
In order to study the effect of N-terminal domain of the mineralocorticoid on glucocorticoid-induced apoptosis, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Biol Chem (2002) ncbi
mouse monoclonal
In order to test if role of PDZ-interactions in the localization of Type IIa Na/P(i) cotransporter, Invitrogen c-Myc antibody (Invitrogen, no) was used . Proc Natl Acad Sci U S A (2002) ncbi
mouse monoclonal (9E10.3)
In order to examine how alpha(1) and beta subunits of voltage-gated Ca(2+) channels interact, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . FEBS Lett (2002) ncbi
mouse monoclonal
In order to investigate the physiological changes and the regulatory mechanisms of UCP2 down-regulation in LPS-stimulated RAW264 cells, Invitrogen c-Myc antibody (Invitrogen, no) was used . Proc Natl Acad Sci U S A (2002) ncbi
mouse monoclonal
In order to show that DNase gamma is responsible for DNA fragmentation during apoptosis associated with myogenic differentiation, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Biol Chem (2002) ncbi
mouse monoclonal
In order to investigate the role of Parkin in juvenile parkinsonism and nigral cell death, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Biol Chem (2002) ncbi
mouse monoclonal
In order to identify hZTL1 as a human zinc transporter, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Biol Chem (2002) ncbi
mouse monoclonal
In order to describe the NES of polypyrimidine tract-binding protein, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Biol Chem (2002) ncbi
mouse monoclonal
In order to establish a cell culture system with nuclear-targeted polyglutamine and determine the cellular changes, Invitrogen c-Myc antibody (Invitrogen, no) was used . Proc Natl Acad Sci U S A (2001) ncbi
mouse monoclonal (9E10.3)
In order to develop anti-ErbB-2 antibody assays using flow cytometry and ELISA, Invitrogen c-Myc antibody (Invitrogen, 9E10) was used . J Immunol Methods (2002) ncbi
mouse monoclonal
In order to study the effects of mitochondrial electron-transport chain inhibitors on the aggregation of alpha-synuclein and the formation of Lewy bodies, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Biol Chem (2002) ncbi
mouse monoclonal
In order to identify and study NEDD4 binding partners in the mid-gestation embryo, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Biol Chem (2002) ncbi
mouse monoclonal
In order to demonstrate that BACE1 is involved in the proteolytic cleavage of ST6Gal I, Invitrogen c-Myc antibody (Invitrogen, no) was used . Proc Natl Acad Sci U S A (2001) ncbi
mouse monoclonal (9E10.3)
In order to discuss macaque models of AIDS, Invitrogen c-Myc antibody (Zymed, 9E10) was used . J Virol (2001) ncbi
mouse monoclonal (9E10.3)
In order to elucidate Src- and PI3-kinase-dependent pathways in oestradiol-treated cells, Invitrogen c-Myc antibody (Zymed, 9E10) was used . EMBO J (2001) ncbi
mouse monoclonal
In order to determine the structure of the Abp1-SH3 domain solved at 1.3-A resolution and investigate important residues for ligand binding, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Biol Chem (2002) ncbi
mouse monoclonal (9E10)
In order to identify proteins selectively tyrosine-phosphorylated in response to ET-1 but not insulin, Invitrogen c-Myc antibody ((Molecular Probes, 9E10) was used . J Biol Chem (2001) ncbi
mouse monoclonal (9E10)
In order to show that PIP 5-kinase activity and PIP2 turnover are critical for trafficking through the Arf6 PM-endosomal recycling pathway, Invitrogen c-Myc antibody (Zymed, 9E10) was used . J Cell Biol (2001) ncbi
mouse monoclonal (9E10)
In order to study oligomerization and localization of the calcitonin receptor-like receptor, Invitrogen c-Myc antibody (noco, 9E10) was used . J Biol Chem (2001) ncbi
mouse monoclonal (9E10.3)
In order to study the role of the Fu protein kinase in hedgehog stimulation, Invitrogen c-Myc antibody (Zymed, 9E10) was used . J Biol Chem (2001) ncbi
mouse monoclonal (9E10)
In order to report that phospholipase D contributes to the activation of PI3K and Akt stimulation of EDG3 receptor, Invitrogen c-Myc antibody (noco, 9E10) was used . J Biol Chem (2001) ncbi
mouse monoclonal (9E10)
In order to study the roles of E-selectin and of stress-activated protein kinase-2 in modulating endothelial adhesion and transendothelial migration, Invitrogen c-Myc antibody (noco, 9E10) was used . J Biol Chem (2001) ncbi
mouse monoclonal
In order to demonstrate that OX40-gp34 interactions stimulate HIV-1 expression, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Virol (2001) ncbi
mouse monoclonal (9E10)
In order to show that the leucine zipper domain mediates the formation of betaPix-a homodimers, Invitrogen c-Myc antibody (noco, 9E10) was used . J Biol Chem (2001) ncbi
mouse monoclonal (9E10.3)
In order to examine the effect of individual VEGF isoform overexpression in neovascular disease models, Invitrogen c-Myc antibody (Zymed, 9E10) was used . Biochem Cell Biol (2001) ncbi
mouse monoclonal (9E10.3)
In order to determine the expression of c-myc in cells treated with microtubule stabilizing or depolymerizing agents, Invitrogen c-Myc antibody (Zymed, 9E10) was used . Eur J Cancer (2000) ncbi
mouse monoclonal
In order to investigate the relationship between Cds1 kinase (hCds1/Chk2) and BRCA1 during DNA damage, Invitrogen c-Myc antibody (Invitrogen, no) was used . Nature (2000) ncbi
mouse monoclonal
In order to use chimeric proteins of Rep and determine the oligomerization, DNA binding, and activation of reporter gene expression of these constructs, Invitrogen c-Myc antibody (Invitrogen, no) was used . J Virol (2000) ncbi
mouse monoclonal (9E10.3)
In order to characterize the functional activity of the Smad4 activation domain, Invitrogen c-Myc antibody (Zymed, 9E10) was used . J Biol Chem (2000) ncbi
mouse monoclonal
In order to study human RGS6, a GGL-domain-containing regulators of G protein signaling (RGS), Invitrogen c-Myc antibody (Invitrogen, no) was used . Proc Natl Acad Sci U S A (1999) ncbi
mouse monoclonal
In order to study the effect of TIRC7 modulation on T cell helper subsets and kidney allografts, Invitrogen c-Myc antibody (InVitrogen, no) was used . Immunity (1998) ncbi
mouse monoclonal
In order to identify a macrophage fusion receptor, Invitrogen c-Myc antibody (InVitrogen, no) was used . Mol Cell Biol (1998) ncbi
mouse monoclonal
In order to determine the localization and function of wildtype and EXT1 variants, Invitrogen c-Myc antibody (InVitrogen, no) was used . Nat Genet (1998) ncbi
mouse monoclonal (9E10.3)
In order to develop a cell culture model to study the N-terminal fragments of huntingtin with expanded glutamine repeats, Invitrogen c-Myc antibody (Zymed, 9E10) was used . Hum Mol Genet (1998) ncbi
mouse monoclonal
In order to discuss Sonic hedgehog interactions with Patched, Invitrogen c-Myc antibody (Invitrogen, noca) was used . Nature (1996) ncbi
mouse monoclonal (9E10)
In order to describe antibodies that can be used to quantitate p62c-myc in cells, Invitrogen c-Myc antibody (noco, 9E10) was used . Mol Cell Biol (1985) ncbi
Abcam
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; mouse; 1:100; fig 7d
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - paraffin section on mouse samples at 1:100 (fig 7d). Int J Biol Sci (2022) ncbi
domestic rabbit monoclonal (Y69)
  • chromatin immunoprecipitation; human; loading ...; fig 4g
  • western blot; mouse; loading ...; fig 4c
Abcam c-Myc antibody (Abcam, ab32072) was used in chromatin immunoprecipitation on human samples (fig 4g) and in western blot on mouse samples (fig 4c). Cell Death Dis (2022) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; mouse; 1:1000; loading ...; fig 4a
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on mouse samples at 1:1000 (fig 4a). Neurooncol Adv (2022) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (Abcam, ab32) was used . EMBO Mol Med (2022) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; loading ...; fig 3e
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples (fig 3e). Cell Death Dis (2021) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; human; 1:200; loading ...; fig 7a
  • western blot; human; 1:1000; loading ...; fig 4c
  • western blot; mouse; 1:1000; loading ...; fig s3b
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - paraffin section on human samples at 1:200 (fig 7a), in western blot on human samples at 1:1000 (fig 4c) and in western blot on mouse samples at 1:1000 (fig s3b). J Immunother Cancer (2021) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - frozen section; mouse; 1:200; loading ...; fig 4e
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - frozen section on mouse samples at 1:200 (fig 4e). elife (2021) ncbi
  • western blot; human; 1:1000; loading ...; fig 5j
Abcam c-Myc antibody (Abcam, ab51156) was used in western blot on human samples at 1:1000 (fig 5j). Cancer Res (2021) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:1000; loading ...; fig 2i
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 6e
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples at 1:1000 (fig 2i) and in immunohistochemistry - paraffin section on mouse samples (fig 6e). Front Oncol (2021) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; mouse; 1:200; loading ...; fig 7b
Abcam c-Myc antibody (abcam, ab32072) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 7b). Oncoimmunology (2021) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:10,000; fig s2b
Abcam c-Myc antibody (Abcam, 32072) was used in western blot on human samples at 1:10,000 (fig s2b). Neuro Oncol (2021) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:1000; loading ...; fig 3f
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples at 1:1000 (fig 3f). J Exp Clin Cancer Res (2021) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (Abcam, 9E10) was used . Nat Commun (2021) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; human; 1:100; loading ...; fig 6j
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - paraffin section on human samples at 1:100 (fig 6j). J Exp Clin Cancer Res (2021) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig s5d
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - paraffin section on mouse samples (fig s5d). Blood (2021) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; human; loading ...; fig 7c
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - paraffin section on human samples (fig 7c). J Exp Clin Cancer Res (2021) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; mouse; 1:200; loading ...; fig 1f
  • western blot; mouse; 1:1000; loading ...; fig 1c
  • western blot; human; 1:1000; loading ...; fig 6a
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 1f), in western blot on mouse samples at 1:1000 (fig 1c) and in western blot on human samples at 1:1000 (fig 6a). Bosn J Basic Med Sci (2021) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry; mouse; 1:100; loading ...; fig s7-1d
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry on mouse samples at 1:100 (fig s7-1d). elife (2020) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:1000; loading ...; fig 4g
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples at 1:1000 (fig 4g). Nat Commun (2020) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; fig 5a
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples (fig 5a). BMC Complement Med Ther (2020) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; mouse; 1:100; loading ...; fig 3b
  • western blot; human; 1:1000; loading ...; fig 3a
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on mouse samples at 1:100 (fig 3b) and in western blot on human samples at 1:1000 (fig 3a). PLoS ONE (2020) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry; mouse; 5 ug/ml; loading ...; fig 4a
  • western blot; mouse; loading ...; fig 4b
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry on mouse samples at 5 ug/ml (fig 4a) and in western blot on mouse samples (fig 4b). JCI Insight (2020) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (Abcam, ab32) was used . Int J Mol Sci (2020) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry; human; 1:100; loading ...; fig 2c
Abcam c-Myc antibody (Abcam, Y69) was used in immunohistochemistry on human samples at 1:100 (fig 2c). PLoS ONE (2020) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; human; 1:500; loading ...; fig 1b
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - paraffin section on human samples at 1:500 (fig 1b). Cell Death Dis (2020) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - frozen section; mouse; 1:200; loading ...; fig s4d
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - frozen section on mouse samples at 1:200 (fig s4d). Nat Commun (2020) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:1000; fig 7c
Abcam c-Myc antibody (Abcam, ab320702) was used in western blot on human samples at 1:1000 (fig 7c). Aging (Albany NY) (2019) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:1000; loading ...; fig 6b, 6d
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples at 1:1000 (fig 6b, 6d). Eur Rev Med Pharmacol Sci (2019) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:1000; loading ...; fig 2a
Abcam c-Myc antibody (Abcam, AB32072) was used in western blot on human samples at 1:1000 (fig 2a). EBioMedicine (2019) ncbi
domestic rabbit monoclonal (Y69)
  • immunocytochemistry knockout validation; human; loading ...; fig 1c
  • western blot knockout validation; human; loading ...; fig 1b
Abcam c-Myc antibody (Abcam, ab32072) was used in immunocytochemistry knockout validation on human samples (fig 1c) and in western blot knockout validation on human samples (fig 1b). Open Biol (2019) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry; mouse; loading ...; fig s1e
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry on mouse samples (fig s1e). Cell (2019) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; human; 1:25; loading ...; fig 5b
Abcam c-Myc antibody (Abcam, Y69) was used in immunohistochemistry - paraffin section on human samples at 1:25 (fig 5b). Nature (2019) ncbi
domestic rabbit monoclonal (EPR17924)
  • western blot; human; 1:2000; loading ...; fig 3c
Abcam c-Myc antibody (Abcam, ab185656) was used in western blot on human samples at 1:2000 (fig 3c). Front Endocrinol (Lausanne) (2019) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; human; 1:50; loading ...; fig 3f
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - paraffin section on human samples at 1:50 (fig 3f). Acta Neuropathol Commun (2019) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:500; loading ...; fig s2a
Abcam c-Myc antibody (Abcam, Y69) was used in western blot on human samples at 1:500 (fig s2a). Nat Commun (2019) ncbi
mouse monoclonal (9E10)
  • western blot; human; fig 4a
Abcam c-Myc antibody (Abcam, ab32) was used in western blot on human samples (fig 4a). iScience (2019) ncbi
mouse monoclonal (9E10)
  • immunohistochemistry - paraffin section; human; 1:100; loading ...; fig 1b
  • western blot; human; loading ...; fig 1a
Abcam c-Myc antibody (abcam, 9E10) was used in immunohistochemistry - paraffin section on human samples at 1:100 (fig 1b) and in western blot on human samples (fig 1a). Breast Cancer Res Treat (2019) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; fig 2a
Abcam c-Myc antibody (Epitomics, ab32072) was used in western blot on human samples (fig 2a). Blood Cancer J (2019) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 1j
  • immunohistochemistry - paraffin section; human; loading ...; fig 1j
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - paraffin section on mouse samples (fig 1j) and in immunohistochemistry - paraffin section on human samples (fig 1j). Nat Commun (2019) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:1000; loading ...; fig 6g
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples at 1:1000 (fig 6g). Nat Commun (2019) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; loading ...; fig 3g
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples (fig 3g). Cancer Res (2019) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; loading ...; fig 5f
Abcam c-Myc antibody (Abcam, Ab32072) was used in western blot on human samples (fig 5f). Oncogene (2019) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry; mouse; loading ...; fig 2b
Abcam c-Myc antibody (Abcam, Y69) was used in immunohistochemistry on mouse samples (fig 2b). Development (2018) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; loading ...; fig 2j
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples (fig 2j). Cancer Cell (2018) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; loading ...; fig 3f
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples (fig 3f). J Clin Invest (2018) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; fig 7e
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples (fig 7e). Cell (2018) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; human; 10 ug/ml; loading ...; fig s8a
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - paraffin section on human samples at 10 ug/ml (fig s8a). J Nucl Med (2018) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:5000; loading ...; fig 5f
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples at 1:5000 (fig 5f). Gut (2018) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; fig 1d
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples (fig 1d). Stem Cell Reports (2017) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; mouse; 1:50; fig 5b
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on mouse samples at 1:50 (fig 5b). J Cell Biol (2017) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . Sci Rep (2017) ncbi
domestic rabbit monoclonal (Y69)
In order to demonstrate that MYC persistently upregulates REV-ERBalpha, Abcam c-Myc antibody (Abcam, ab32072) was used . Nat Commun (2017) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . Am J Transl Res (2016) ncbi
monoclonal
  • western blot; human; loading ...; fig 5a
In order to research the role of MIR7-3HG in autophagy regulation, Abcam c-Myc antibody (Abcam, ab78318) was used in western blot on human samples (fig 5a). Autophagy (2017) ncbi
mouse monoclonal (9E10)
In order to study how the Notch-lncRNA axis mediates self-renewal of glioma cells, Abcam c-Myc antibody (Abcam, ab32) was used . Nat Commun (2016) ncbi
domestic rabbit monoclonal (Y69)
In order to find that TrpC5 regulates differentiation in colorectal cancer, Abcam c-Myc antibody (Abcam, ab32072) was used . Clin Sci (Lond) (2017) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry; mouse; 1:200; loading ...; fig 3b
  • western blot; mouse; 1:2000; loading ...; fig 3a
  • western blot; human; 1:2000; loading ...; fig 4c
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry on mouse samples at 1:200 (fig 3b), in western blot on mouse samples at 1:2000 (fig 3a) and in western blot on human samples at 1:2000 (fig 4c). Neoplasia (2016) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:1000; loading ...; fig 4e
Abcam c-Myc antibody (Abcam, ab32) was used in western blot on human samples at 1:1000 (fig 4e). Oncogene (2017) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . Oncotarget (2016) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (Abcam, ab32) was used . PLoS Biol (2016) ncbi
domestic rabbit monoclonal (Y69)
In order to characterize three immunocompetent patients with primary cardiac diffuse large B-cell lymphoma, Abcam c-Myc antibody (Abcam, Y69) was used . Ann Diagn Pathol (2016) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . Oncotarget (2016) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:5000; loading ...; fig 6a
In order to elucidate the mechanism by which GM-CSF decreases the leukemic potential of RE cells, Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples at 1:5000 (fig 6a). Leukemia (2017) ncbi
domestic rabbit polyclonal
Abcam c-Myc antibody (Abcam, ab9106) was used . PLoS Genet (2016) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; human; loading ...; tbl 1
Abcam c-Myc antibody (Abcam, Y69) was used in immunohistochemistry - paraffin section on human samples (tbl 1). Cancer Sci (2016) ncbi
mouse monoclonal (9E10)
In order to describe the antitumoral mechanism of vitamin C in KRAS mutant colorectal cancer that is related to the Warburg effect, Abcam c-Myc antibody (Abcam, ab32) was used . Oncotarget (2016) ncbi
domestic rabbit polyclonal
Abcam c-Myc antibody (Abcam, ab9106) was used . Nat Commun (2016) ncbi
domestic rabbit polyclonal
  • western blot; human; fig 5
Abcam c-Myc antibody (Abcam, ab28842) was used in western blot on human samples (fig 5). Cell Death Dis (2016) ncbi
  • western blot; human; fig 5
Abcam c-Myc antibody (Abcam, ab51156) was used in western blot on human samples (fig 5). Cell Death Dis (2016) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; loading ...; fig 6e
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples (fig 6e). Nat Genet (2016) ncbi
domestic rabbit monoclonal (Y69)
In order to find MYC-dependent regulatory events present in a fully developed carcinoma, Abcam c-Myc antibody (Abcam, ab32072) was used . Cancer Res (2016) ncbi
mouse monoclonal (9E10)
In order to study the formation of nuclear bodies and repression of a large number of protein-coding genes by arabidopsis AtMORC4 and AtMORC7, Abcam c-Myc antibody (Abcam, ab32) was used . PLoS Genet (2016) ncbi
domestic rabbit polyclonal
In order to analyze organ growth in drosophila regulating the Tctp-Rheb interaction by 14-3-3 proteins, Abcam c-Myc antibody (Abcam, ab9106) was used . Nat Commun (2016) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (Abcam, ab32) was used . Biochem Biophys Res Commun (2016) ncbi
domestic goat polyclonal
In order to characterize the response to electrophile stress by assembly stoichiometry and dynamics of the apoptosis signal-regulating kinase (ASK) signalosome, Abcam c-Myc antibody (Abcam, ab9132) was used . Mol Cell Proteomics (2016) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; 1:1000; loading ...; fig 4a
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples at 1:1000 (fig 4a). Nat Med (2016) ncbi
monoclonal
  • western blot; human; 1:1000; fig 3
Abcam c-Myc antibody (Abcam, ab78318) was used in western blot on human samples at 1:1000 (fig 3). Oncotarget (2016) ncbi
domestic rabbit polyclonal
Abcam c-Myc antibody (Abcam, ab9106) was used . Cell Cycle (2016) ncbi
domestic rabbit polyclonal
Abcam c-Myc antibody (Abcam, ab9106) was used . Sci Rep (2016) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, Y69) was used . MBio (2016) ncbi
domestic rabbit monoclonal (Y69)
In order to analyze the suppression of soft tissue sarcoma growth due to epigenetic re-expression of HIF-2 alpha, Abcam c-Myc antibody (Abcam, ab32072) was used . Nat Commun (2016) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . Int Braz J Urol (2015) ncbi
domestic rabbit monoclonal (Y69)
In order to assess non-small cell lung cancers using a breast cancer-risk predictor gene signature, Abcam c-Myc antibody (Abcam, ab32072) was used . Neoplasia (2015) ncbi
domestic rabbit monoclonal (EPR17924)
  • western blot; mouse; 1:1000; fig 6
In order to examine the effect of glycogen synthase kinase 3 inhibition on definitive endoderm production, Abcam c-Myc antibody (Abcam, ab185656) was used in western blot on mouse samples at 1:1000 (fig 6). EMBO J (2016) ncbi
domestic rabbit monoclonal (Y69)
In order to characterize human cardiac valve development by endocardial-to-mesenchymal transformation and mesenchymal cell colonization, Abcam c-Myc antibody (Abcam, ab32072) was used . Development (2016) ncbi
mouse monoclonal (9E10)
In order to research tandem fluorescent protein timers and incomplete proteasomal degradation of green fluorescent proteins, Abcam c-Myc antibody (abcam, 9E10) was used . Mol Biol Cell (2016) ncbi
domestic rabbit monoclonal (Y69)
In order to elucidate embryonic stem cell integration for selection and dynamics in early mouse embryos, Abcam c-Myc antibody (Abcam, ab32072) was used . Development (2016) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . Mol Oncol (2016) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (Abcam, ab62928) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (Abcam, ab32) was used . Cell Death Dis (2015) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . Mar Drugs (2015) ncbi
domestic rabbit monoclonal (Y69)
In order to determine the activation of PRC2, H3K27me3, and BMI1 in T and natural killer cell lymphomas, Abcam c-Myc antibody (Abcam, Y69) was used . Tumour Biol (2016) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:4000; fig 6k
  • western blot; mouse; 1:1000
Abcam c-Myc antibody (Abcam, ab62928) was used in western blot on human samples at 1:4000 (fig 6k) and in western blot on mouse samples at 1:1000. FASEB J (2016) ncbi
monoclonal
  • western blot; human
Abcam c-Myc antibody (Abcam, ab78318) was used in western blot on human samples . Sci Rep (2015) ncbi
mouse monoclonal (Myc.A7)
Abcam c-Myc antibody (Abcam, ab18185) was used . Br J Cancer (2015) ncbi
mouse monoclonal (9E10)
In order to study the role of 14-3-3sigma in tumor metabolism, Abcam c-Myc antibody (Abcam, ab32) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E+11)
Abcam c-Myc antibody (Abcam, 56) was used . J Biol Chem (2015) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (Abcam, ab32) was used . Sci Rep (2015) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; mouse; fig s5
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on mouse samples (fig s5). Proc Natl Acad Sci U S A (2015) ncbi
mouse monoclonal (Myc.A7)
  • western blot; fission yeast
Abcam c-Myc antibody (Abcam, ab18185) was used in western blot on fission yeast samples . Nucleic Acids Res (2015) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; human; fig 1
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on human samples (fig 1). Cell Cycle (2015) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . Oncotarget (2015) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:1500
In order to identify substrates of human PPT1 using neuronal cells, Abcam c-Myc antibody (Abcam plc, ab32) was used in western blot on human samples at 1:1500. J Proteomics (2015) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . Biochem Biophys Res Commun (2015) ncbi
mouse monoclonal (9E10)
In order to elucidate the contributions of Kid and CENP-E in chromosome congression, Abcam c-Myc antibody (Abcam, 9E10) was used . Nat Commun (2015) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Millipore, ab32072) was used . J Reprod Dev (2015) ncbi
domestic rabbit monoclonal (Y69)
In order to determine the prognostic role of the Wnt-signaling antagonist SFRP1 in bladder cancer, Abcam c-Myc antibody (Abcam, ab32072) was used . J Cancer Res Clin Oncol (2015) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (abcam, ab32) was used . Sci Rep (2015) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . J Cell Mol Med (2015) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (Abcam, clone 9E10) was used . Cell Cycle (2014) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, Y69) was used . Cell Cycle (2014) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (Abcam, ab32) was used . PLoS ONE (2014) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . Phytother Res (2015) ncbi
mouse monoclonal (9E10)
  • western blot; human; 1:500
Abcam c-Myc antibody (Abcam, 9E10) was used in western blot on human samples at 1:500. Int J Exp Pathol (2014) ncbi
domestic rabbit monoclonal (Y69)
Abcam c-Myc antibody (Abcam, ab32072) was used . J Neurosurg Pediatr (2014) ncbi
mouse monoclonal (9E10)
In order to isolate and characterize neuroligin-2-associated complexes, Abcam c-Myc antibody (Abcam, ab32) was used . J Biol Chem (2014) ncbi
  • immunocytochemistry; human
In order to investigate the role of asymmetric cell division during tumorigenesis, Abcam c-Myc antibody (Abcam, ab51156) was used in immunocytochemistry on human samples . Cancer Res (2014) ncbi
domestic rabbit monoclonal (Y69)
  • immunohistochemistry - paraffin section; human; 1:100
Abcam c-Myc antibody (Abcam, ab32072) was used in immunohistochemistry - paraffin section on human samples at 1:100. PLoS ONE (2014) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; human
In order to investigate the interaction between pestivirus N-terminal protease Npro and components of the host ribonucleoprotein complex, Abcam c-Myc antibody (Abcam, 9E10) was used in immunocytochemistry on human samples . J Virol (2014) ncbi
mouse monoclonal (9E10)
In order to investigate the relationship between cyclin D1 and the transcription factor C/EBPbeta in mammary epithelial cell differentiation, Abcam c-Myc antibody (Abcam, 9E10) was used . Mol Cell Biol (2014) ncbi
mouse monoclonal (9E+11)
Abcam c-Myc antibody (Abcam, 9E11) was used . J Cell Biochem (2014) ncbi
  • western blot; human
Abcam c-Myc antibody (Abcam, ab51156) was used in western blot on human samples . Clin Cancer Res (2014) ncbi
domestic rabbit monoclonal (Y69)
  • western blot; mouse
Abcam c-Myc antibody (Abcam, ab32072) was used in western blot on mouse samples . Drug Discov Ther (2014) ncbi
mouse monoclonal (9E10)
Abcam c-Myc antibody (Abcam, ab32) was used . Stem Cells Transl Med (2014) ncbi
mouse monoclonal (9E10)
  • western blot; human
Abcam c-Myc antibody (Abcam, ab32) was used in western blot on human samples . Neuro Oncol (2013) ncbi
mouse monoclonal (9E10)
  • immunohistochemistry - paraffin section; human; 1:250
In order to study the role of TORC1 in the fetal brain lesions observed in tuberous sclerosis complex, Abcam c-Myc antibody (Abcam, 9E10) was used in immunohistochemistry - paraffin section on human samples at 1:250. Brain Pathol (2013) ncbi
BioLegend
mouse monoclonal (9E10)
BioLegend c-Myc antibody (Biolegend, 626802) was used . Nat Commun (2019) ncbi
mouse monoclonal (9E10)
BioLegend c-Myc antibody (BioLegend, 9E10) was used . Sci Rep (2019) ncbi
mouse monoclonal (9E10)
BioLegend c-Myc antibody (BioLegend, 9E10) was used . Sci Adv (2019) ncbi
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig 5c
BioLegend c-Myc antibody (Biolegend, 9E10) was used in western blot on human samples (fig 5c). Nat Commun (2019) ncbi
mouse monoclonal (9E10)
BioLegend c-Myc antibody (Covance, 9E10) was used . Nat Commun (2017) ncbi
mouse monoclonal (9E10)
In order to analyze the requirement for SPO77 and SPS1 in Saccharomyces cerevisiae and the timely closure of the prospore membrane, BioLegend c-Myc antibody (Covance, 9E10) was used . Genetics (2016) ncbi
mouse monoclonal (9E10)
BioLegend c-Myc antibody (Covance, 9E10) was used . J Biol Chem (2015) ncbi
mouse monoclonal (9E10)
BioLegend c-Myc antibody (Covance, 9E10) was used . Mol Biol Cell (2015) ncbi
mouse monoclonal (9E10)
BioLegend c-Myc antibody (Covance, 9E10) was used . Mol Cell Biol (2015) ncbi
mouse monoclonal (9E10)
BioLegend c-Myc antibody (Covance, 9E10) was used . J Biol Chem (2015) ncbi
mouse monoclonal (9E10)
In order to study the interaction between F-box protein FBXL16 and PP2A-B55alpha and its effect on the differentiation of embryonic stem cells, BioLegend c-Myc antibody (Covance, AFC-150P-1000) was used . Mol Cell Proteomics (2014) ncbi
Bio-Rad
mouse monoclonal (9E10)
In order to determine the interactome of human VPS35, Bio-Rad c-Myc antibody (AbD Serotec, 9E10) was used . J Cell Sci (2014) ncbi
mouse monoclonal (9E10)
Bio-Rad c-Myc antibody (AbD Serotec, MCA2200GA) was used . Cell Death Dis (2013) ncbi
rat monoclonal (JAC6)
Bio-Rad c-Myc antibody (AbD Serotec, JAC6) was used . PLoS ONE (2012) ncbi
Novus Biologicals
domestic rabbit polyclonal
  • western blot; human; loading ...; fig 4c
Novus Biologicals c-Myc antibody (Novus Biologicals, NB600-336) was used in western blot on human samples (fig 4c). Mol Med Rep (2016) ncbi
domestic goat polyclonal (H3)
Novus Biologicals c-Myc antibody (Novus Biologicals, NB600-335) was used . elife (2015) ncbi
Abnova
domestic rabbit polyclonal
Abnova c-Myc antibody (Abnova, PAB0541) was used . N Biotechnol (2016) ncbi
Synaptic Systems
mouse monoclonal (9,00E+10)
Synaptic Systems c-Myc antibody (Synaptic Systems, 343 011) was used . Nat Commun (2019) ncbi
Cell Signaling Technology
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; loading ...; fig 5a, 5b
Cell Signaling Technology c-Myc antibody (CST, 5605) was used in western blot on human samples at 1:1000 (fig 5a, 5b). Cell Death Dis (2022) ncbi
domestic rabbit monoclonal (E5Q6W)
  • chromatin immunoprecipitation; human; loading ...; fig s5d, s5e
  • western blot; human; 1:1000; loading ...; fig 5b
Cell Signaling Technology c-Myc antibody (CST, 18583) was used in chromatin immunoprecipitation on human samples (fig s5d, s5e) and in western blot on human samples at 1:1000 (fig 5b). Nat Commun (2022) ncbi
domestic rabbit monoclonal (E5Q6W)
  • western blot; human; loading ...; fig 5f
Cell Signaling Technology c-Myc antibody (CST, 18583) was used in western blot on human samples (fig 5f). Cell Death Dis (2022) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; human; loading ...; fig 5a
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13987) was used in western blot on human samples (fig 5a). World J Gastroenterol (2022) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot knockout validation; mouse; 1:1000; fig 2a
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13987) was used in western blot knockout validation on mouse samples at 1:1000 (fig 2a). Invest Ophthalmol Vis Sci (2022) ncbi
domestic rabbit monoclonal (E1J4K)
  • western blot; mouse; 1:200; fig 3d
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13748) was used in western blot on mouse samples at 1:200 (fig 3d). Invest Ophthalmol Vis Sci (2022) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; human; loading ...; fig s3
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13987) was used in western blot on human samples (fig s3). Cell Death Dis (2021) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig s1e
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples (fig s1e). iScience (2021) ncbi
domestic rabbit polyclonal
  • chromatin immunoprecipitation; human; 1:50; loading ...; fig 5a
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used in chromatin immunoprecipitation on human samples at 1:50 (fig 5a). J Immunother Cancer (2021) ncbi
domestic rabbit polyclonal
  • chromatin immunoprecipitation; human; loading ...; fig 7b
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used in chromatin immunoprecipitation on human samples (fig 7b). Cell Death Dis (2021) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; fig 7g
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used in western blot on human samples at 1:1000 (fig 7g). Nat Commun (2021) ncbi
domestic rabbit monoclonal (D3N8F)
  • chromatin immunoprecipitation; mouse; 1:100; fig 5??s1.c
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13987S) was used in chromatin immunoprecipitation on mouse samples at 1:100 (fig 5??s1.c). elife (2021) ncbi
domestic rabbit polyclonal
  • western blot; human; loading ...; fig s3e
Cell Signaling Technology c-Myc antibody (CST, 9402) was used in western blot on human samples (fig s3e). Adv Sci (Weinh) (2021) ncbi
domestic rabbit polyclonal
  • western blot; human; 1:1000; loading ...; fig 5j
Cell Signaling Technology c-Myc antibody (CST, 9402-S) was used in western blot on human samples at 1:1000 (fig 5j). Cancer Res (2021) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 4d
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605S) was used in western blot on human samples (fig 4d). Sci Adv (2021) ncbi
domestic rabbit polyclonal
  • western blot; human; loading ...; fig 4e
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402S) was used in western blot on human samples (fig 4e). Cell Death Dis (2021) ncbi
domestic rabbit polyclonal
  • chromatin immunoprecipitation; human; loading ...; fig 5g
Cell Signaling Technology c-Myc antibody (CST, 9402S) was used in chromatin immunoprecipitation on human samples (fig 5g). Front Endocrinol (Lausanne) (2021) ncbi
domestic rabbit polyclonal
  • western blot; human; loading ...; fig s2a
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used in western blot on human samples (fig s2a). Breast Cancer Res (2021) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; mouse; 1:1000; loading ...; fig 3f
Cell Signaling Technology c-Myc antibody (CST, 5605S) was used in western blot on mouse samples at 1:1000 (fig 3f). Nature (2021) ncbi
domestic rabbit monoclonal (D3N8F)
  • immunocytochemistry; mouse; 1:400; fig 1b
  • western blot; mouse; 1:2000; loading ...; fig 10b, 10i
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13987) was used in immunocytochemistry on mouse samples at 1:400 (fig 1b) and in western blot on mouse samples at 1:2000 (fig 10b, 10i). Cell Biosci (2021) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; human; 1:1000; fig s3a
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 5a
Cell Signaling Technology c-Myc antibody (CST, 13987) was used in western blot on human samples at 1:1000 (fig s3a) and in immunohistochemistry - paraffin section on mouse samples (fig 5a). Mol Cancer (2021) ncbi
domestic rabbit polyclonal
  • western blot; human; 1:1000; loading ...; fig 5a
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used in western blot on human samples at 1:1000 (fig 5a). Cell Death Dis (2021) ncbi
domestic rabbit monoclonal (E5Q6W)
  • western blot; mouse; fig 2h
Cell Signaling Technology c-Myc antibody (CST, 18583) was used in western blot on mouse samples (fig 2h). Life Sci Alliance (2021) ncbi
domestic rabbit polyclonal
  • western blot; human; 1:1000; loading ...; fig 3s2b
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 9402) was used in western blot on human samples at 1:1000 (fig 3s2b). elife (2020) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; mouse; loading ...; fig 1c
  • western blot; human; loading ...; fig 6a
Cell Signaling Technology c-Myc antibody (CST, 5605) was used in western blot on mouse samples (fig 1c) and in western blot on human samples (fig 6a). Sci Rep (2020) ncbi
domestic rabbit monoclonal (D84C12)
  • immunocytochemistry; mouse; loading ...; fig 2b
Cell Signaling Technology c-Myc antibody (Cell signalling Technologies, D84C12) was used in immunocytochemistry on mouse samples (fig 2b). elife (2020) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; mouse; 1:1000; loading ...; fig 3c
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on mouse samples at 1:1000 (fig 3c). elife (2020) ncbi
domestic rabbit monoclonal (E1J4K)
  • western blot; human; fig 5a
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 13748) was used in western blot on human samples (fig 5a). BMC Complement Med Ther (2020) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 5b, 5c
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used in western blot on human samples (fig 5b, 5c). Signal Transduct Target Ther (2020) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 5a
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples (fig 5a). Sci Adv (2020) ncbi
domestic rabbit monoclonal (E5Q6W)
  • western blot; human; 1:1000; loading ...; fig 4e
Cell Signaling Technology c-Myc antibody (CST, E5Q6W) was used in western blot on human samples at 1:1000 (fig 4e). Onco Targets Ther (2020) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; human; 1:1000; loading ...; fig 1d, 3e
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13987) was used in western blot on human samples at 1:1000 (fig 1d, 3e). Cell Death Dis (2020) ncbi
domestic rabbit polyclonal
  • western blot; mouse; loading ...; fig 6i
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 9402) was used in western blot on mouse samples (fig 6i). Aging (Albany NY) (2020) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; human; loading ...; fig 4g
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13987) was used in western blot on human samples (fig 4g). Mol Oncol (2020) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 8f
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, D84C12) was used in western blot on human samples (fig 8f). Breast Cancer Res (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 1c
Cell Signaling Technology c-Myc antibody (CST, 5605) was used in western blot on human samples (fig 1c). Cell Rep (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; mouse; loading ...; fig 4h, s4f
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on mouse samples (fig 4h, s4f). Science (2019) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; human; loading ...; fig 1d, s2d, s2e, s2f
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13987) was used in western blot on human samples (fig 1d, s2d, s2e, s2f). Mol Cancer (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; loading ...; fig 8s1d
Cell Signaling Technology c-Myc antibody (CST, 5605) was used in western blot on human samples at 1:1000 (fig 8s1d). elife (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used in western blot on human samples at 1:1000. Nat Commun (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 3d
Cell Signaling Technology c-Myc antibody (CST, 5605) was used in western blot on human samples (fig 3d). Cell Commun Signal (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 5a
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used in western blot on human samples (fig 5a). Mod Pathol (2020) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 4h
Cell Signaling Technology c-Myc antibody (CST, 5605) was used in western blot on human samples (fig 4h). J Exp Clin Cancer Res (2019) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; mouse; 1:1000; fig 5f
Cell Signaling Technology c-Myc antibody (CST, CSD3N8F) was used in western blot on mouse samples at 1:1000 (fig 5f). EMBO Mol Med (2019) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; human; 1:1000; loading ...; fig 5c
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 13987) was used in western blot on human samples at 1:1000 (fig 5c). Am J Cancer Res (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; loading ...; fig 5e
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used in western blot on human samples at 1:1000 (fig 5e). Nat Commun (2019) ncbi
domestic rabbit polyclonal
  • ChIP-Seq; human; loading ...; fig 2b
  • chromatin immunoprecipitation; human; loading ...; fig 1d
Cell Signaling Technology c-Myc antibody (CST, 9402) was used in ChIP-Seq on human samples (fig 2b) and in chromatin immunoprecipitation on human samples (fig 1d). Nat Commun (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 5a, 5c
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples (fig 5a, 5c). Breast Cancer (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • mass cytometry; human; loading ...; fig 3a
Cell Signaling Technology c-Myc antibody (Cell Signaling Technologies, 5605) was used in mass cytometry on human samples (fig 3a). Cell (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; mouse; 1:1000; loading ...; fig s12f
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used in western blot on mouse samples at 1:1000 (fig s12f). Science (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 7b
Cell Signaling Technology c-Myc antibody (CST, 5605S) was used in western blot on human samples (fig 7b). Cell Death Dis (2019) ncbi
domestic rabbit polyclonal
  • western blot; human; loading ...; fig 4b
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used in western blot on human samples (fig 4b). Br J Cancer (2019) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; loading ...; fig 5a, s5b
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples at 1:1000 (fig 5a, s5b). Cell Chem Biol (2019) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; loading ...; fig s8a
  • western blot; mouse; loading ...; fig s8b
  • western blot; human; fig s8c, s8d
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used in immunohistochemistry - paraffin section on mouse samples (fig s8a), in western blot on mouse samples (fig s8b) and in western blot on human samples (fig s8c, s8d). Hepatology (2018) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; mouse; loading ...; fig 3c
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 13987) was used in western blot on mouse samples (fig 3c). Cell Rep (2018) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; mouse; loading ...; fig 4h
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605S) was used in western blot on mouse samples (fig 4h). elife (2018) ncbi
domestic rabbit polyclonal
  • western blot; mouse; loading ...; fig 5h
  • western blot; human; fig 5g
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used in western blot on mouse samples (fig 5h) and in western blot on human samples (fig 5g). Genes Dev (2018) ncbi
domestic rabbit monoclonal (D84C12)
  • immunohistochemistry - paraffin section; human; 1:1000; fig 3d
  • western blot; human; 1:1000; loading ...; fig 4b
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, D84C1) was used in immunohistochemistry - paraffin section on human samples at 1:1000 (fig 3d) and in western blot on human samples at 1:1000 (fig 4b). Nucleic Acids Res (2018) ncbi
domestic rabbit polyclonal
  • western blot; mouse; loading ...; fig e8j
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 9402s) was used in western blot on mouse samples (fig e8j). Nature (2018) ncbi
domestic rabbit polyclonal
  • western blot; human; 1:1000; loading ...; fig 3b
Cell Signaling Technology c-Myc antibody (Cell Signalling Technologies, 9402) was used in western blot on human samples at 1:1000 (fig 3b). Nat Commun (2018) ncbi
domestic rabbit monoclonal (D3N8F)
  • immunohistochemistry - paraffin section; mouse; fig 7c
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13987) was used in immunohistochemistry - paraffin section on mouse samples (fig 7c). Cancer Cell (2018) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 4c
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605s) was used in western blot on human samples (fig 4c). Nat Med (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; mouse; 1:1000; loading ...; fig 10c
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on mouse samples at 1:1000 (fig 10c). Am J Physiol Renal Physiol (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:500; loading ...; fig s2c
Cell Signaling Technology c-Myc antibody (Cell Signaling, D84C12) was used in western blot on human samples at 1:500 (fig s2c). J Nucl Med (2018) ncbi
domestic rabbit monoclonal (E1J4K)
  • western blot; human; 1:1000; loading ...; fig 6d, 6e
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13748) was used in western blot on human samples at 1:1000 (fig 6d, 6e). Gut (2018) ncbi
domestic rabbit monoclonal (D3N8F)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 3f
Cell Signaling Technology c-Myc antibody (Cell signaling, 13987) was used in immunohistochemistry - paraffin section on mouse samples (fig 3f). Cancer Res (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot knockout validation; mouse; fig s3b
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot knockout validation on mouse samples (fig s3b). J Clin Invest (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 5a
Cell Signaling Technology c-Myc antibody (CST, 5605) was used in western blot on human samples (fig 5a). Oncotarget (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; loading ...; fig 3b
Cell Signaling Technology c-Myc antibody (cell signalling, 5605) was used in western blot on human samples at 1:1000 (fig 3b). Sci Rep (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; loading ...; fig 2i
Cell Signaling Technology c-Myc antibody (Cell Signaling, D84C12) was used in western blot on human samples at 1:1000 (fig 2i). Cell (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 3b
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples (fig 3b). J Biol Chem (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 1b
In order to observe that chronic presence of internalized Escherichia coli leads to enhanced oncogenicity in colon cancer cells, Cell Signaling Technology c-Myc antibody (cell signalling, 5605) was used in western blot on human samples (fig 1b). Cell Death Dis (2017) ncbi
domestic rabbit polyclonal
In order to characterize the molecular identity of uterine carcinosarcomas., Cell Signaling Technology c-Myc antibody (CST, 9402) was used . Cancer Cell (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig 3a
Cell Signaling Technology c-Myc antibody (CST, 5605) was used in western blot on human samples (fig 3a). Apoptosis (2017) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; mouse; loading ...; fig s5e
Cell Signaling Technology c-Myc antibody (Cell Signaling, 13987) was used in western blot on mouse samples (fig s5e). Nature (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; loading ...; fig 4a
Cell Signaling Technology c-Myc antibody (Cell signaling, D84C12) was used in western blot on human samples at 1:1000 (fig 4a). Oncol Lett (2016) ncbi
domestic rabbit monoclonal (D3N8F)
  • other; human; loading ...; fig 6-s3
Cell Signaling Technology c-Myc antibody (Cell Signaling, D3N8F) was used in other on human samples (fig 6-s3). elife (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • immunohistochemistry - frozen section; human; 1:500; loading ...; fig s1b
  • western blot; human; 1:1000; loading ...; fig 2f
In order to study how the Notch-lncRNA axis mediates self-renewal of glioma cells, Cell Signaling Technology c-Myc antibody (Cell signaling, 5605) was used in immunohistochemistry - frozen section on human samples at 1:500 (fig s1b) and in western blot on human samples at 1:1000 (fig 2f). Nat Commun (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • immunocytochemistry; human; loading ...; fig 2b
  • western blot; human; 1:1000; loading ...; fig 2a
Cell Signaling Technology c-Myc antibody (Cell signaling, 5605) was used in immunocytochemistry on human samples (fig 2b) and in western blot on human samples at 1:1000 (fig 2a). Front Physiol (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig 2h
Cell Signaling Technology c-Myc antibody (Cell signaling, 5605) was used in western blot on human samples (fig 2h). Nat Med (2017) ncbi
domestic rabbit polyclonal
In order to explore the role of the S100A7 in oral squamous cell carcinoma, Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used . Cancer Gene Ther (2016) ncbi
domestic rabbit polyclonal
In order to identify and characterize alterations in signal transduction that occur during the development Lapatinib resistance, Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used . Nat Commun (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; loading ...; fig 4c
In order to propose that leukemia inhibitory factor signaling confers a dormancy phenotype in breast cancer cells that have disseminated to bone, Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples at 1:1000 (fig 4c). Nat Cell Biol (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 1d
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples (fig 1d). Cell Death Discov (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; fig 3
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605S) was used in western blot on human samples at 1:1000 (fig 3). Biomed Res Int (2016) ncbi
domestic rabbit polyclonal
  • western blot; rat; loading ...; fig 5b
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used in western blot on rat samples (fig 5b). Sci Rep (2016) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; human; loading ...; fig 5i
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, D3N8F) was used in western blot on human samples (fig 5i). Nat Commun (2016) ncbi
domestic rabbit monoclonal (D3N8F)
  • western blot; human; 1:1000; fig 4b,5e,7b
Cell Signaling Technology c-Myc antibody (CST, 13987) was used in western blot on human samples at 1:1000 (fig 4b,5e,7b). Oncotarget (2016) ncbi
domestic rabbit polyclonal
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used . Sci Rep (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • immunocytochemistry; mouse; 1:100; fig 4
In order to study cancer-associated fibroblasts and Cdc42EP3 function regulated by Cdc42, Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in immunocytochemistry on mouse samples at 1:100 (fig 4). Small Gtpases (2017) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig 5g
In order to investigate the role of growth hormone in colon cancer, Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples (fig 5g). Proc Natl Acad Sci U S A (2016) ncbi
domestic rabbit polyclonal
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used . Nature (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; mouse; fig 7
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on mouse samples (fig 7). Nature (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; fig 2
Cell Signaling Technology c-Myc antibody (Cell Signaling, D84C12) was used in western blot on human samples at 1:1000 (fig 2). Nat Commun (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; rat; 1:1000; fig 6
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on rat samples at 1:1000 (fig 6). J Diabetes Res (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 6a
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples (fig 6a). Oncotarget (2016) ncbi
domestic rabbit polyclonal
Cell Signaling Technology c-Myc antibody (Cell Signaling, 9402) was used . Cancer Res (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig 4
In order to investigate the role of MycN in normal human neural crest development, Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, CSC5605P) was used in western blot on human samples (fig 4). PLoS ONE (2016) ncbi
domestic rabbit polyclonal
In order to investigate the role of FOXO1 in vascular growth, Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 9402) was used . Nature (2016) ncbi
domestic rabbit monoclonal (D84C12)
In order to determine a therapeutic strategy to target the IRF4 network in multiple myeloma by using the bromodomain inhibition of the transcriptional coactivators CBP/EP300, Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used . elife (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; mouse; 1:2000; loading ...; fig 7a
In order to study the role of DCAF1 in T-cell function through p53-dependent and -independent mechanisms, Cell Signaling Technology c-Myc antibody (Cell Signaling, D84C12) was used in western blot on mouse samples at 1:2000 (fig 7a). Nat Commun (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:750; loading ...; fig 1
In order to present the role of bromodomain and hedgehog pathway on small cell lung cancer, Cell Signaling Technology c-Myc antibody (cell signalling, 5605) was used in western blot on human samples at 1:750 (fig 1). Cancer Lett (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • immunocytochemistry; pigs ; fig 2
In order to elucidate mechanisms that regulate reprogramming of porcine primordial germ cells, Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used in immunocytochemistry on pigs samples (fig 2). Cell Tissue Res (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; fig 3b
Cell Signaling Technology c-Myc antibody (CellSignalling Technology, 5605) was used in western blot on human samples at 1:1000 (fig 3b). Nat Cell Biol (2015) ncbi
domestic rabbit polyclonal
Cell Signaling Technology c-Myc antibody (Cell Signaling Tech, 9402) was used . Oncogene (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; mouse
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on mouse samples . Sci Rep (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig 4d
In order to elucidate the reduction of chemotherap-enriched breast cancer stem-like cells in vivo and in vitro due to cardamonin, Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples (fig 4d). Oncotarget (2016) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig 5
Cell Signaling Technology c-Myc antibody (Cell Signaling, D84C12) was used in western blot on human samples (fig 5). PLoS ONE (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig 7a
In order to identify NFATc2 as a regulator of human melanoma dedifferentiation, Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used in western blot on human samples (fig 7a). Oncogene (2016) ncbi
domestic rabbit polyclonal
Cell Signaling Technology c-Myc antibody (Cell signaling, 9402) was used . Leukemia (2016) ncbi
domestic rabbit monoclonal (D84C12)
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used . Nat Commun (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; 1:1000; fig 4b
In order to optimize conditions to promote the proliferation of multipotent cardiovascular progenitor cells, Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605S) was used in western blot on human samples at 1:1000 (fig 4b). Nat Biotechnol (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; domestic rabbit; 1:500; fig 3
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on domestic rabbit samples at 1:500 (fig 3). Mol Med Rep (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig s1
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples (fig s1). Cell Death Dis (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig f4
Cell Signaling Technology c-Myc antibody (cell signaling technology, 5605S) was used in western blot on human samples (fig f4). Oncotarget (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig 5
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples (fig 5). Int J Mol Sci (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; mouse; loading ...; fig 6a
Cell Signaling Technology c-Myc antibody (Cell Signaling, D84C12) was used in western blot on mouse samples (fig 6a). Immunity (2015) ncbi
domestic rabbit monoclonal (D84C12)
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used . Clin Cancer Res (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig 2
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples (fig 2). Oncotarget (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; loading ...; fig 3c
Cell Signaling Technology c-Myc antibody (Cell signaling, 5605) was used in western blot on human samples (fig 3c). FASEB J (2015) ncbi
domestic rabbit monoclonal (D84C12)
In order to investigate the role of TLR3 signaling in breast cancer stem cells, Cell Signaling Technology c-Myc antibody (cell signaling, 5605) was used . Cell Death Differ (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • immunoprecipitation; human
  • western blot; human
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used in immunoprecipitation on human samples and in western blot on human samples . Biochem Biophys Res Commun (2014) ncbi
domestic rabbit monoclonal (D84C12)
  • immunohistochemistry - paraffin section; human
  • western blot; human
Cell Signaling Technology c-Myc antibody (Cell Signaling Technology, 5605) was used in immunohistochemistry - paraffin section on human samples and in western blot on human samples . Cancer Lett (2014) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human; fig 6c
Cell Signaling Technology c-Myc antibody (cell signaling, D84C12) was used in western blot on human samples (fig 6c). Oncogene (2015) ncbi
domestic rabbit monoclonal (D84C12)
  • western blot; human
Cell Signaling Technology c-Myc antibody (Cell Signaling, 5605) was used in western blot on human samples . PLoS ONE (2013) ncbi
Bioworld
  • western blot; human; loading ...; fig s1b
Bioworld c-Myc antibody (Bioworld Technology, BS2462) was used in western blot on human samples (fig s1b). PLoS Pathog (2016) ncbi
  • western blot; human; 1:500; fig 4
Bioworld c-Myc antibody (Bioworld Technology, BS2462) was used in western blot on human samples at 1:500 (fig 4). Oncotarget (2016) ncbi
Biocare Medical
  • immunohistochemistry - paraffin section; human; 1:30; tbl 2
Biocare Medical c-Myc antibody (Biocare Medical, CME415AK) was used in immunohistochemistry - paraffin section on human samples at 1:30 (tbl 2). Braz J Med Biol Res (2016) ncbi
MilliporeSigma
mouse monoclonal (90000000000)
  • immunoprecipitation; human; loading ...; fig 7c
  • western blot; human; 1:1000; loading ...; fig 7c
MilliporeSigma c-Myc antibody (Sigma, M5546) was used in immunoprecipitation on human samples (fig 7c) and in western blot on human samples at 1:1000 (fig 7c). Commun Biol (2021) ncbi
mouse monoclonal (90000000000)
  • western blot; human; loading ...; fig 1a
MilliporeSigma c-Myc antibody (Sigma, 9E10) was used in western blot on human samples (fig 1a). Am J Cancer Res (2020) ncbi
mouse monoclonal (90000000000)
  • western blot; human; 1:6000; loading ...; fig 2a
MilliporeSigma c-Myc antibody (Sigma Aldrich, 9E10) was used in western blot on human samples at 1:6000 (fig 2a). elife (2020) ncbi
mouse monoclonal (90000000000)
  • western blot; human; loading ...; fig 4f
MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used in western blot on human samples (fig 4f). Sci Adv (2018) ncbi
mouse monoclonal (90000000000)
In order to test if Dub3 contributes to Snail1 stability in cancer cells, MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . Nat Commun (2017) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . Nat Commun (2016) ncbi
mouse monoclonal (90000000000)
In order to study the degradation of ubiquitinated LRRK2 by selective autophagy, MilliporeSigma c-Myc antibody (Sigma, M5546) was used . PLoS ONE (2016) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . G3 (Bethesda) (2016) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma-Aldrich, M5546) was used . J Biol Chem (2016) ncbi
mouse monoclonal (90000000000)
In order to study acceleration of degradation of misfolded glycoproteins by a complex of Htm1 and the oxidoreductase Pdi1, MilliporeSigma c-Myc antibody (Sigma, M5546) was used . J Biol Chem (2016) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . Nature (2016) ncbi
mouse monoclonal (90000000000)
In order to analyze Crim1 regulations of integrin signaling in lens development of mice, MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . Development (2016) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . Cell Death Dis (2015) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . J Clin Invest (2015) ncbi
mouse monoclonal (90000000000)
In order to characterize the subunit composition of a DEG/ENaC Caenorhabditis elegans mechanosensory channel, MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . Proc Natl Acad Sci U S A (2015) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . FASEB J (2015) ncbi
mouse monoclonal (90000000000)
In order to study the role of Fft3 in chromatin organization, MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . PLoS Genet (2015) ncbi
mouse monoclonal (90000000000)
In order to describe the multiple lentiviral expression (MuLE) system that allows multiple genetic alterations to be introduced simultaneously into mammalian cells, MilliporeSigma c-Myc antibody (Sigma-Aldrich, M5546) was used . J Clin Invest (2015) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . PLoS ONE (2015) ncbi
mouse monoclonal (90000000000)
In order to test if extracellular signals orient the mitotic spindle of cells in the spinal cord, MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . Nat Commun (2015) ncbi
mouse monoclonal (90000000000)
In order to demonstrate that the dendrite branching promoting action of full length SAP97 is dependent on the PDZ3 domain, MilliporeSigma c-Myc antibody (Sigma, M5546) was used . Mol Cell Neurosci (2015) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . J Biol Chem (2015) ncbi
mouse monoclonal (90000000000)
In order to study recycling endosome transport requires EHD1 recruitment of phosphatidylserine translocase, MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . EMBO J (2015) ncbi
mouse monoclonal (90000000000)
In order to investigate which transcription-associated features accumulate condensin, MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . PLoS Genet (2014) ncbi
mouse monoclonal (90000000000)
In order to characterize the rabaptin-5gamma isoform, MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . Biochemistry (Mosc) (2014) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . Nat Neurosci (2014) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma-aldrich, M5546) was used . PLoS Genet (2014) ncbi
mouse monoclonal (90000000000)
In order to investigate the role of Rap1GAP in the cell cycle regulation, MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . PLoS ONE (2014) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . Hum Mutat (2014) ncbi
mouse monoclonal (90000000000)
In order to identify serines in the beta-catenin-binding domain of E-cadherin that are phosphorylated, MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . Mol Biol Cell (2014) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . Biochem Biophys Res Commun (2014) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . J Biol Chem (2014) ncbi
mouse monoclonal (90000000000)
In order to show that CDK regulates spindle assembly at mitotic entry by regulating Alp7-Alp14 complex phosphorylation, MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . Mol Biol Cell (2014) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma, M5546) was used . Nature (2014) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . J Biol Chem (2014) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . PLoS ONE (2014) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . FASEB J (2014) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma, 9E10) was used . Arch Biochem Biophys (2014) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . PLoS ONE (2013) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma Aldrich, 9E10) was used . J Biol Chem (2013) ncbi
mouse monoclonal (90000000000)
MilliporeSigma c-Myc antibody (Sigma-Aldrich, 9E10) was used . PLoS ONE (2012) ncbi
Developmental Studies Hybridoma Bank
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Developmental Studies Hybridoma Bank, 9E10) was used . Front Immunol (2021) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Developmental Studies Hybridoma Bank, 9E10) was used . elife (2020) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Cell Signaling, 9E10) was used . Nat Med (2017) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E10) was used . Microbiologyopen (2017) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Santa Cruz, 9E10) was used . Sci Rep (2016) ncbi
mouse monoclonal (9E 10)
In order to elucidate the role of ZC3H12D, Developmental Studies Hybridoma Bank c-Myc antibody (Sigma, 9E10) was used . J Cell Biochem (2017) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E10) was used . Sci Rep (2016) ncbi
mouse monoclonal (9E 10)
In order to investigate the role of Ire1 in endoplasmic reticulum differentiation in the developing Drosophila compound eye photoreceptors, Developmental Studies Hybridoma Bank c-Myc antibody (Developmental Studies Hybridoma Bank, 9E10) was used . J Cell Sci (2016) ncbi
mouse monoclonal (9E 10)
In order to determine enhancement of inter-male aggression in Drosophila by P1 interneurons that promote a persistent internal state, Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E10) was used . elife (2015) ncbi
mouse monoclonal (9E 10)
In order to identify and characterize a multiprotease complex containing both alpha- and gamma-secretase, Developmental Studies Hybridoma Bank c-Myc antibody (SCBT, 9E10) was used . J Cell Biol (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Developmental Studies Hybridoma Bank, 9E10) was used . PLoS Genet (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (hybridoma-conditioned medium, 9E10) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Sigma, 9E10) was used . Neuropharmacology (2016) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E10) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E10) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E10) was used . J Cell Sci (2015) ncbi
mouse monoclonal (9E 10)
In order to examine the relationship between NEDD4 and IFITM3, Developmental Studies Hybridoma Bank c-Myc antibody (Developmental Studies Hybridoma Bank, 9E 10) was used . PLoS Pathog (2015) ncbi
mouse monoclonal (9E 10)
In order to test if Drosophila neuropeptide F neurons are involved in classical olfactory conditioning, Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E10) was used . J Comp Neurol (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E 10) was used . J Clin Invest (2015) ncbi
mouse monoclonal (9E 10)
In order to elucidate the molecular mechanism by which histone KMTs and KDMs regulate MyoD transcriptional activity, Developmental Studies Hybridoma Bank c-Myc antibody (Developmental Studies Hybridoma Bank, 9E10) was used . Biochim Biophys Acta (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Santa Cruz, 9E10) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Sigma, 9E10) was used . PLoS ONE (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Santa Cruz, 9E10) was used . Cell Death Differ (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Santa Cruz, 9E10) was used . Oncotarget (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E 10-a) was used . Nat Struct Mol Biol (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E10) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Santa Cruz, 9E10) was used . Oncotarget (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Santa Cruz, 9E10) was used . Nucleic Acids Res (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Sigma, 9E10) was used . J Neurosci (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Santa Cruz Biotechnology, 9E10) was used . J Neurosci (2015) ncbi
mouse monoclonal (9E 10)
In order to determining the timing of abscission, Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E10) was used . Cell Cycle (2014) ncbi
mouse monoclonal (9E 10)
In order to show that TRF2 stimulates initial homologous recombination events and inhibits their resolution via its N-terminal domain, Developmental Studies Hybridoma Bank c-Myc antibody (Sigma, 9E10) was used . Cell Cycle (2014) ncbi
mouse monoclonal (9E 10)
In order to analyze the accumulation of intermediate filament protein accumulation in motor neurons obtained from giant axonal neuropathy iPSCs and the rescue by restoration of gigaxonin, Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E10-s) was used . Hum Mol Genet (2015) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Millipore, 9E10) was used . Mol Cell Biol (2015) ncbi
mouse monoclonal (9E 10)
In order to study tandem pore domain halothane-inhibited K(+) channel 1 (THIC1) and THIC2 interactions and localization, Developmental Studies Hybridoma Bank c-Myc antibody (Roche, 9E10) was used . J Biol Chem (2014) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Developmental Studies Hybridoma Bank, 9E10) was used . FEBS J (2014) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (UCSF hybridoma core, 9E10) was used . Nat Commun (2014) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Monoclonal Antibody Core Facility, 9E10) was used . J Biol Chem (2014) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (Developmental Studies Hybridoma Bank, 9E10) was used . Hum Gene Ther Methods (2014) ncbi
mouse monoclonal (9E 10)
Developmental Studies Hybridoma Bank c-Myc antibody (DSHB, 9E10) was used . PLoS ONE (2013) ncbi
BD Biosciences
mouse monoclonal (9E10)
  • western blot; human; loading ...; fig 7a
BD Biosciences c-Myc antibody (Santa Cruz, 551101) was used in western blot on human samples (fig 7a). Biomolecules (2020) ncbi
mouse monoclonal (9E10)
  • immunocytochemistry; domestic goat; 1:500; fig 1
  • western blot; domestic goat; 1:1000; fig 5C
BD Biosciences c-Myc antibody (BD, 551101) was used in immunocytochemistry on domestic goat samples at 1:500 (fig 1) and in western blot on domestic goat samples at 1:1000 (fig 5C). BMC Biotechnol (2017) ncbi
mouse monoclonal (9E10)
BD Biosciences c-Myc antibody (BD, 551101) was used . Cell Death Dis (2015) ncbi
mouse monoclonal (9E10)
In order to investigate how reprogramming of fibroblasts into cardiomyocytes requires suppression of pro-fibrotic signaling, BD Biosciences c-Myc antibody (BD Pharmingen, 551102) was used . Nat Commun (2015) ncbi
mouse monoclonal (9E10)
BD Biosciences c-Myc antibody (BD Biosciences, 551102) was used . Oncotarget (2015) ncbi
mouse monoclonal (9E10)
BD Biosciences c-Myc antibody (BD Biosciences, 551102) was used . Oncotarget (2015) ncbi
mouse monoclonal (9E10)
BD Biosciences c-Myc antibody (BD Pharmingen, 551101) was used . J Natl Cancer Inst (2014) ncbi
mouse monoclonal (9E10)
In order to study the relationship between USP2-MDM4 and p53 in tumorigenesis, BD Biosciences c-Myc antibody (Pharmingen, 9E10) was used . Carcinogenesis (2014) ncbi
mouse monoclonal (9E10)
BD Biosciences c-Myc antibody (BD Biosciences, 551102) was used . Int J Cancer (2011) ncbi
Articles Reviewed
  1. Pan R, Yu Y, Zhu H, Zhang W, Qin Y, Ye L, et al. RSPO2 promotes progression of ovarian cancer through dual receptor-mediated FAK/Src signaling activation. iScience. 2022;25:105184 pubmed publisher
  2. Lei T, Zhang W, He Y, Wei S, Song X, Zhu Y, et al. ZNF276 promotes the malignant phenotype of breast carcinoma by activating the CYP1B1-mediated Wnt/β-catenin pathway. Cell Death Dis. 2022;13:781 pubmed publisher
  3. Tang Y, Dong L, Zhang C, Li X, Li R, Lin H, et al. PRMT5 acts as a tumor suppressor by inhibiting Wnt/β-catenin signaling in murine gastric tumorigenesis. Int J Biol Sci. 2022;18:4329-4340 pubmed publisher
  4. Wu T, Wang W, Shi G, Hao M, Wang Y, Yao M, et al. Targeting HIC1/TGF-β axis-shaped prostate cancer microenvironment restrains its progression. Cell Death Dis. 2022;13:624 pubmed publisher
  5. Turco C, Esposito G, Iaiza A, Goeman F, Benedetti A, Gallo E, et al. MALAT1-dependent hsa_circ_0076611 regulates translation rate in triple-negative breast cancer. Commun Biol. 2022;5:598 pubmed publisher
  6. Kohlmeyer J, Kaemmer C, Lingo J, Voigt E, Leidinger M, McGivney G, et al. Oncogenic RABL6A promotes NF1-associated MPNST progression in vivo. Neurooncol Adv. 2022;4:vdac047 pubmed publisher
  7. Yu B, Su J, Shi Q, Liu Q, Ma J, Ru G, et al. KMT5A-methylated SNIP1 promotes triple-negative breast cancer metastasis by activating YAP signaling. Nat Commun. 2022;13:2192 pubmed publisher
  8. Yu J, Yang K, Zheng J, Zhao P, Xia J, Sun X, et al. Activation of FXR and inhibition of EZH2 synergistically inhibit colorectal cancer through cooperatively accelerating FXR nuclear location and upregulating CDX2 expression. Cell Death Dis. 2022;13:388 pubmed publisher
  9. Marino M, Zhou L, Rincon M, Callaerts Vegh Z, Verhaert J, Wahis J, et al. AAV-mediated delivery of an anti-BACE1 VHH alleviates pathology in an Alzheimer's disease model. EMBO Mol Med. 2022;14:e09824 pubmed publisher
  10. Huang T, Li Y, Zhou M, Hu R, Zou G, Li J, et al. Focal adhesion kinase-related non-kinase ameliorates liver fibrosis by inhibiting aerobic glycolysis via the FAK/Ras/c-myc/ENO1 pathway. World J Gastroenterol. 2022;28:123-139 pubmed publisher
  11. Portal C, Wang Z, Scott D, Wolosin J, Iomini C. The c-Myc Oncogene Maintains Corneal Epithelial Architecture at Homeostasis, Modulates p63 Expression, and Enhances Proliferation During Tissue Repair. Invest Ophthalmol Vis Sci. 2022;63:3 pubmed publisher
  12. Guo E, Mao X, Wang X, Guo L, An C, Zhang C, et al. Alternatively spliced ANLN isoforms synergistically contribute to the progression of head and neck squamous cell carcinoma. Cell Death Dis. 2021;12:764 pubmed publisher
  13. Chen X, Miao M, Zhou M, Chen J, Li D, Zhang L, et al. Poly-L-arginine promotes asthma angiogenesis through induction of FGFBP1 in airway epithelial cells via activation of the mTORC1-STAT3 pathway. Cell Death Dis. 2021;12:761 pubmed publisher
  14. Mygland L, Brinch S, Strand M, Olsen P, Aizenshtadt A, Lund K, et al. Identification of response signatures for tankyrase inhibitor treatment in tumor cell lines. iScience. 2021;24:102807 pubmed publisher
  15. Wu S, Xiao Y, Wei J, Xu X, Jin X, Hu X, et al. MYC suppresses STING-dependent innate immunity by transcriptionally upregulating DNMT1 in triple-negative breast cancer. J Immunother Cancer. 2021;9: pubmed publisher
  16. Lee J, Hong J, Zhang Z, de la Peña Avalos B, Proietti C, Deamicis A, et al. Regulation of telomere homeostasis and genomic stability in cancer by N 6-adenosine methylation (m6A). Sci Adv. 2021;7: pubmed publisher
  17. Biswas A, Zhou D, Fiches G, Wu Z, Liu X, Ma Q, et al. Inhibition of polo-like kinase 1 (PLK1) facilitates reactivation of gamma-herpesviruses and their elimination. PLoS Pathog. 2021;17:e1009764 pubmed publisher
  18. Chen D, Zhao Z, Chen L, Li Q, Zou J, Liu S. PPM1G promotes the progression of hepatocellular carcinoma via phosphorylation regulation of alternative splicing protein SRSF3. Cell Death Dis. 2021;12:722 pubmed publisher
  19. Yin H, Wang J, Li H, Yu Y, Wang X, Lu L, et al. Extracellular matrix protein-1 secretory isoform promotes ovarian cancer through increasing alternative mRNA splicing and stemness. Nat Commun. 2021;12:4230 pubmed publisher
  20. Mathsyaraja H, Catchpole J, Freie B, Eastwood E, Babaeva E, Geuenich M, et al. Loss of MGA repression mediated by an atypical polycomb complex promotes tumor progression and invasiveness. elife. 2021;10: pubmed publisher
  21. Luo C, Xu X, Liu C, He S, Chen J, Feng Y, et al. RBFOX2/GOLIM4 Splicing Axis Activates Vesicular Transport Pathway to Promote Nasopharyngeal Carcinogenesis. Adv Sci (Weinh). 2021;8:e2004852 pubmed publisher
  22. Butti Z, Pan Y, Giacomotto J, Patten S. Reduced C9orf72 function leads to defective synaptic vesicle release and neuromuscular dysfunction in zebrafish. Commun Biol. 2021;4:792 pubmed publisher
  23. Shani O, Raz Y, Monteran L, Scharff Y, Levi Galibov O, Megides O, et al. Evolution of fibroblasts in the lung metastatic microenvironment is driven by stage-specific transcriptional plasticity. elife. 2021;10: pubmed publisher
  24. Laine A, Nagelli S, Farrington C, Butt U, Cvrljevic A, Vainonen J, et al. CIP2A Interacts with TopBP1 and Drives Basal-Like Breast Cancer Tumorigenesis. Cancer Res. 2021;81:4319-4331 pubmed publisher
  25. Wan C, Mahara S, Sun C, Doan A, Chua H, Xu D, et al. Genome-scale CRISPR-Cas9 screen of Wnt/β-catenin signaling identifies therapeutic targets for colorectal cancer. Sci Adv. 2021;7: pubmed publisher
  26. Dong F, Chen M, Jiang L, Shen Z, Ma L, Han C, et al. PRMT5 Is Involved in Spermatogonial Stem Cells Maintenance by Regulating Plzf Expression via Modulation of Lysine Histone Modifications. Front Cell Dev Biol. 2021;9:673258 pubmed publisher
  27. Zhao N, Wang F, Ahmed S, Liu K, Cathcart S, Dimaio D, et al. Androgen Receptor, Although Not a Specific Marker For, Is a Novel Target to Suppress Glioma Stem Cells as a Therapeutic Strategy for Glioblastoma. Front Oncol. 2021;11:616625 pubmed publisher
  28. Daks A, Petukhov A, Fedorova O, Shuvalov O, Kizenko A, Tananykina E, et al. The RNA-binding protein HuR is a novel target of Pirh2 E3 ubiquitin ligase. Cell Death Dis. 2021;12:581 pubmed publisher
  29. Zhang J, Yang P, Liu D, Gao M, Wang J, Wang X, et al. c-Myc Upregulated by High Glucose Inhibits HaCaT Differentiation by S100A6 Transcriptional Activation. Front Endocrinol (Lausanne). 2021;12:676403 pubmed publisher
  30. Wang K, Ding Y, Xu C, Hao M, Li H, Ding L. Cldn-7 deficiency promotes experimental colitis and associated carcinogenesis by regulating intestinal epithelial integrity. Oncoimmunology. 2021;10:1923910 pubmed publisher
  31. Gusyatiner O, Bady P, Pham M, Lei Y, Park J, Daniel R, et al. BET inhibitors repress expression of interferon-stimulated genes and synergize with HDAC inhibitors in glioblastoma. Neuro Oncol. 2021;23:1680-1692 pubmed publisher
  32. Qiu W, Luo S, Ma S, Saminathan P, Li H, Gunnersen J, et al. The Sez6 Family Inhibits Complement by Facilitating Factor I Cleavage of C3b and Accelerating the Decay of C3 Convertases. Front Immunol. 2021;12:607641 pubmed publisher
  33. Zhu X, Chen L, Huang B, Li X, Yang L, Hu X, et al. Efficacy and mechanism of the combination of PARP and CDK4/6 inhibitors in the treatment of triple-negative breast cancer. J Exp Clin Cancer Res. 2021;40:122 pubmed publisher
  34. Boulanger A, Thinat C, Zuchner S, Fradkin L, Lortat Jacob H, Dura J. Axonal chemokine-like Orion induces astrocyte infiltration and engulfment during mushroom body neuronal remodeling. Nat Commun. 2021;12:1849 pubmed publisher
  35. Hirano M, Imai Y, Kaito Y, Murayama T, Sato K, Ishida T, et al. Small-molecule HDAC and Akt inhibitors suppress tumor growth and enhance immunotherapy in multiple myeloma. J Exp Clin Cancer Res. 2021;40:110 pubmed publisher
  36. Sewastianik T, Straubhaar J, Zhao J, Samur M, Adler K, Tanton H, et al. miR-15a/16-1 deletion in activated B cells promotes plasma cell and mature B-cell neoplasms. Blood. 2021;137:1905-1919 pubmed publisher
  37. Shao N, Cheng J, Huang H, Gong X, Lu Y, Idris M, et al. GASC1 promotes hepatocellular carcinoma progression by inhibiting the degradation of ROCK2. Cell Death Dis. 2021;12:253 pubmed publisher
  38. Pairawan S, Zhao M, Yuca E, Annis A, Evans K, Sutton D, et al. First in class dual MDM2/MDMX inhibitor ALRN-6924 enhances antitumor efficacy of chemotherapy in TP53 wild-type hormone receptor-positive breast cancer models. Breast Cancer Res. 2021;23:29 pubmed publisher
  39. Yuan G, Flores N, Hausmann S, Lofgren S, Kharchenko V, Angulo Ibáñez M, et al. Elevated NSD3 histone methylation activity drives squamous cell lung cancer. Nature. 2021;590:504-508 pubmed publisher
  40. Xu L, Zhang M, Shi L, Yang X, Chen L, Cao N, et al. Neural stemness contributes to cell tumorigenicity. Cell Biosci. 2021;11:21 pubmed publisher
  41. Moser B, Hochreiter B, Basílio J, Gleitsmann V, Panhuber A, Pardo Garcia A, et al. The inflammatory kinase IKKα phosphorylates and stabilizes c-Myc and enhances its activity. Mol Cancer. 2021;20:16 pubmed publisher
  42. Lu M, Qin X, Zhou Y, Li G, Liu Z, Geng X, et al. Long non-coding RNA LINC00665 promotes gemcitabine resistance of Cholangiocarcinoma cells via regulating EMT and stemness properties through miR-424-5p/BCL9L axis. Cell Death Dis. 2021;12:72 pubmed publisher
  43. Lafouresse F, Jugele R, Müller S, Doineau M, Duplan Eche V, Espinosa E, et al. Stochastic asymmetric repartition of lytic machinery in dividing CD8+ T cells generates heterogeneous killing behavior. elife. 2021;10: pubmed publisher
  44. Lopušná K, Nowialis P, Opavska J, Abraham A, Riva A, Opavsky R. Dnmt3b catalytic activity is critical for its tumour suppressor function in lymphomagenesis and is associated with c-Met oncogenic signalling. EBioMedicine. 2021;63:103191 pubmed publisher
  45. Jiang Y, Han Q, Zhao H, Zhang J. Promotion of epithelial-mesenchymal transformation by hepatocellular carcinoma-educated macrophages through Wnt2b/β-catenin/c-Myc signaling and reprogramming glycolysis. J Exp Clin Cancer Res. 2021;40:13 pubmed publisher
  46. Redl E, Sheibani Tezerji R, Cardona C, Hamminger P, Timelthaler G, Hassler M, et al. Requirement of DNMT1 to orchestrate epigenomic reprogramming for NPM-ALK-driven lymphomagenesis. Life Sci Alliance. 2021;4: pubmed publisher
  47. Liu J, Feng W, Liu M, Rao H, Li X, Teng Y, et al. Stomach-specific c-Myc overexpression drives gastric adenoma in mice through AKT/mammalian target of rapamycin signaling. Bosn J Basic Med Sci. 2021;21:434-446 pubmed publisher
  48. Zhang E, Dong X, Chen S, Shao J, Zhang P, Wang Y, et al. Ubiquitin ligase KLHL2 promotes the degradation and ubiquitination of ARHGEF7 protein to suppress renal cell carcinoma progression. Am J Cancer Res. 2020;10:3345-3357 pubmed
  49. He F, Li L, Li P, Deng Y, Yang Y, Deng Y, et al. Cyclooxygenase-2/sclerostin mediates TGF-β1-induced calcification in vascular smooth muscle cells and rats undergoing renal failure. Aging (Albany NY). 2020;12:21220-21235 pubmed publisher
  50. Ruan H, Li X, Xu X, Leibowitz B, Tong J, Chen L, et al. eIF4E S209 phosphorylation licenses myc- and stress-driven oncogenesis. elife. 2020;9: pubmed publisher
  51. Zhang H, Zhang Y, Zhou X, Wright S, Hyle J, Zhao L, et al. Functional interrogation of HOXA9 regulome in MLLr leukemia via reporter-based CRISPR/Cas9 screen. elife. 2020;9: pubmed publisher
  52. Tan Y, Sementino E, Liu Z, Cai K, Testa J. Wnt signaling mediates oncogenic synergy between Akt and Dlx5 in T-cell lymphomagenesis by enhancing cholesterol synthesis. Sci Rep. 2020;10:15837 pubmed publisher
  53. Xi L, Carroll T, Matos I, Luo J, Polak L, Pasolli H, et al. m6A RNA methylation impacts fate choices during skin morphogenesis. elife. 2020;9: pubmed publisher
  54. Vatapalli R, Sagar V, Rodriguez Y, Zhao J, Unno K, Pamarthy S, et al. Histone methyltransferase DOT1L coordinates AR and MYC stability in prostate cancer. Nat Commun. 2020;11:4153 pubmed publisher
  55. Alladin A, Chaible L, Garcia Del Valle L, Sabine R, Loeschinger M, Wachsmuth M, et al. Tracking cells in epithelial acini by light sheet microscopy reveals proximity effects in breast cancer initiation. elife. 2020;9: pubmed publisher
  56. Au C, Furness J, Britt K, Oshchepkova S, Ladumor H, Soo K, et al. Three-dimensional growth of breast cancer cells potentiates the anti-tumor effects of unacylated ghrelin and AZP-531. elife. 2020;9: pubmed publisher
  57. Gu J, Zhang Y, Wang X, Xiang J, Deng S, Wu D, et al. Matrine inhibits the growth of natural killer/T-cell lymphoma cells by modulating CaMKIIγ-c-Myc signaling pathway. BMC Complement Med Ther. 2020;20:214 pubmed publisher
  58. Sato K, Hikita H, Myojin Y, Fukumoto K, Murai K, Sakane S, et al. Hyperglycemia enhances pancreatic cancer progression accompanied by elevations in phosphorylated STAT3 and MYC levels. PLoS ONE. 2020;15:e0235573 pubmed publisher
  59. Ouyang L, Yan B, Liu Y, Mao C, Wang M, Liu N, et al. The deubiquitylase UCHL3 maintains cancer stem-like properties by stabilizing the aryl hydrocarbon receptor. Signal Transduct Target Ther. 2020;5:78 pubmed publisher
  60. Du Z, Dong J, Li M, Zhang J, Bi J, Ren Y, et al. Overexpression of Platelet-Derived Growth Factor Receptor Α D842V Mutants Prevents Liver Regeneration and Chemically Induced Hepatocarcinogenesis via Inhibition of MET and EGFR. J Cancer. 2020;11:4614-4624 pubmed publisher
  61. Li W, Zhang N, Jin C, Long M, Rajabi H, Yasumizu Y, et al. MUC1-C drives stemness in progression of colitis to colorectal cancer. JCI Insight. 2020;5: pubmed publisher
  62. Manage K, Rogers A, Wallis D, Uebel C, Anderson D, Nguyen D, et al. A tudor domain protein, SIMR-1, promotes siRNA production at piRNA-targeted mRNAs in C. elegans. elife. 2020;9: pubmed publisher
  63. An L, Nie P, Chen M, Tang Y, Zhang H, Guan J, et al. MST4 kinase suppresses gastric tumorigenesis by limiting YAP activation via a non-canonical pathway. J Exp Med. 2020;217: pubmed publisher
  64. Ali A, Stenglein M, Spencer T, Bouma G, Anthony R, Winger Q. Trophectoderm-Specific Knockdown of LIN28 Decreases Expression of Genes Necessary for Cell Proliferation and Reduces Elongation of Sheep Conceptus. Int J Mol Sci. 2020;21: pubmed publisher
  65. Wang X, Garvanska D, Nasa I, Ueki Y, Zhang G, Kettenbach A, et al. A dynamic charge-charge interaction modulates PP2A:B56 substrate recruitment. elife. 2020;9: pubmed publisher
  66. Rübben A, Wahl R, Eggermann T, Dahl E, Ortiz Brüchle N, Cacchi C. Mutation analysis of multiple pilomatricomas in a patient with myotonic dystrophy type 1 suggests a DM1-associated hypermutation phenotype. PLoS ONE. 2020;15:e0230003 pubmed publisher
  67. Montellese C, van den Heuvel J, Ashiono C, Dörner K, Melnik A, Jonas S, et al. USP16 counteracts mono-ubiquitination of RPS27a and promotes maturation of the 40S ribosomal subunit. elife. 2020;9: pubmed publisher
  68. Reynders M, Matsuura B, Bérouti M, Simoneschi D, Marzio A, Pagano M, et al. PHOTACs enable optical control of protein degradation. Sci Adv. 2020;6:eaay5064 pubmed publisher
  69. von Känel C, Muñoz Gómez S, Oeljeklaus S, Wenger C, Warscheid B, Wideman J, et al. Homologue replacement in the import motor of the mitochondrial inner membrane of trypanosomes. elife. 2020;9: pubmed publisher
  70. Zhang J, Yu W, Wang X, Hu B, Wu D, Shi G. KLF16 Affects the MYC Signature and Tumor Growth in Prostate Cancer. Onco Targets Ther. 2020;13:1303-1310 pubmed publisher
  71. Lin Y, Huang X, Chang K, Liao K, Tsai N. Encapsulated n-Butylidenephthalide Efficiently Crosses the Blood-Brain Barrier and Suppresses Growth of Glioblastoma. Int J Nanomedicine. 2020;15:749-760 pubmed publisher
  72. Ailiken G, Kitamura K, Hoshino T, Satoh M, Tanaka N, Minamoto T, et al. Post-transcriptional regulation of BRG1 by FIRΔexon2 in gastric cancer. Oncogenesis. 2020;9:26 pubmed publisher
  73. Dragan M, Nguyen M, Guzman S, Goertzen C, Brackstone M, Dhillo W, et al. G protein-coupled kisspeptin receptor induces metabolic reprograming and tumorigenesis in estrogen receptor-negative breast cancer. Cell Death Dis. 2020;11:106 pubmed publisher
  74. Zhen X, Choi H, Kim J, Kim S, Liu R, Yun B, et al. Machilin D, a Lignin Derived from Saururus chinensis, Suppresses Breast Cancer Stem Cells and Inhibits NF-κB Signaling. Biomolecules. 2020;10: pubmed publisher
  75. Coccia E, Planells Ferrer L, Badillos Rodríguez R, Pascual M, Segura M, Fernández Hernández R, et al. SIVA-1 regulates apoptosis and synaptic function by modulating XIAP interaction with the death receptor antagonist FAIM-L. Cell Death Dis. 2020;11:82 pubmed publisher
  76. Garshott D, Sundaramoorthy E, Leonard M, Bennett E. Distinct regulatory ribosomal ubiquitylation events are reversible and hierarchically organized. elife. 2020;9: pubmed publisher
  77. Gulmez Karaca K, Kupke J, Brito D, Zeuch B, Thome C, Weichenhan D, et al. Neuronal ensemble-specific DNA methylation strengthens engram stability. Nat Commun. 2020;11:639 pubmed publisher
  78. Ballabio C, Anderle M, Gianesello M, Lago C, Miele E, Cardano M, et al. Modeling medulloblastoma in vivo and with human cerebellar organoids. Nat Commun. 2020;11:583 pubmed publisher
  79. Cui J, Duan J, Chu J, Guo C, Xi M, Li Y, et al. Chikusetsu saponin IVa protects pancreatic β cell against intermittent high glucose-induced injury by activating Wnt/β-catenin/TCF7L2 pathway. Aging (Albany NY). 2020;12:1591-1609 pubmed publisher
  80. Yang H, Pérez Hernández M, Sanchez Alonso J, Shevchuk A, Gorelik J, Rothenberg E, et al. Ankyrin-G mediates targeting of both Na+ and KATP channels to the rat cardiac intercalated disc. elife. 2020;9: pubmed publisher
  81. Liu Q, Borcherding N, Shao P, Maina P, Zhang W, Qi H. Contribution of synergism between PHF8 and HER2 signalling to breast cancer development and drug resistance. EBioMedicine. 2020;51:102612 pubmed publisher
  82. Elkahlah N, Rogow J, Ahmed M, Clowney E. Presynaptic developmental plasticity allows robust sparse wiring of the Drosophila mushroom body. elife. 2020;9: pubmed publisher
  83. Tang L, Li J, Fu W, Wu W, Xu J. Suppression of FADS1 induces ROS generation, cell cycle arrest, and apoptosis in melanocytes: implications for vitiligo. Aging (Albany NY). 2019;11:11829-11843 pubmed publisher
  84. Wang H, Chen Z, Wang S, Gao X, Qian M, Qiu W, et al. TGFβ1-induced beta-site APP-cleaving enzyme 2 upregulation promotes tumorigenesis through the NF-κB signalling pathway in human gliomas. Mol Oncol. 2020;14:407-425 pubmed publisher
  85. Quach C, Song Y, Guo H, Li S, Maazi H, Fung M, et al. A truncating mutation in the autophagy gene UVRAG drives inflammation and tumorigenesis in mice. Nat Commun. 2019;10:5681 pubmed publisher
  86. Young R, Ewan K, Ferrer V, Allende M, Godovac Zimmermann J, Dale T, et al. Developmentally regulated Tcf7l2 splice variants mediate transcriptional repressor functions during eye formation. elife. 2019;8: pubmed publisher
  87. Lee Y, Ho S, Graves J, Xiao Y, Huang S, Lin W. CGRRF1, a growth suppressor, regulates EGFR ubiquitination in breast cancer. Breast Cancer Res. 2019;21:134 pubmed publisher
  88. Manjunath H, Zhang H, Rehfeld F, Han J, Chang T, Mendell J. Suppression of Ribosomal Pausing by eIF5A Is Necessary to Maintain the Fidelity of Start Codon Selection. Cell Rep. 2019;29:3134-3146.e6 pubmed publisher
  89. Jiang K, Zhi X, Ma Y, Zhou L. Long non-coding RNA TOB1-AS1 modulates cell proliferation, apoptosis, migration and invasion through miR-23a/NEU1 axis via Wnt/b-catenin pathway in gastric cancer. Eur Rev Med Pharmacol Sci. 2019;23:9890-9899 pubmed publisher
  90. Leone R, Zhao L, Englert J, Sun I, Oh M, Sun I, et al. Glutamine blockade induces divergent metabolic programs to overcome tumor immune evasion. Science. 2019;366:1013-1021 pubmed publisher
  91. Lin Q, Chen X, Meng F, Ogawa K, Li M, Song R, et al. ASPH-notch Axis guided Exosomal delivery of Prometastatic Secretome renders breast Cancer multi-organ metastasis. Mol Cancer. 2019;18:156 pubmed publisher
  92. Liu Y, Jiang Q, Liu X, Lin X, Tang Z, Liu C, et al. Cinobufotalin powerfully reversed EBV-miR-BART22-induced cisplatin resistance via stimulating MAP2K4 to antagonize non-muscle myosin heavy chain IIA/glycogen synthase 3β/β-catenin signaling pathway. EBioMedicine. 2019;48:386-404 pubmed publisher
  93. Götzke H, Kilisch M, Martínez Carranza M, Sograte Idrissi S, Rajavel A, Schlichthaerle T, et al. The ALFA-tag is a highly versatile tool for nanobody-based bioscience applications. Nat Commun. 2019;10:4403 pubmed publisher
  94. Diaz Osterman C, Ozmadenci D, Kleinschmidt E, Taylor K, Barrie A, Jiang S, et al. FAK activity sustains intrinsic and acquired ovarian cancer resistance to platinum chemotherapy. elife. 2019;8: pubmed publisher
  95. Matsumoto S, Yamamichi T, Shinzawa K, Kasahara Y, Nojima S, Kodama T, et al. GREB1 induced by Wnt signaling promotes development of hepatoblastoma by suppressing TGFβ signaling. Nat Commun. 2019;10:3882 pubmed publisher
  96. Jiang S, Zhang M, Zhang Y, Zhou W, Zhu T, Ruan Q, et al. WNT5B governs the phenotype of basal-like breast cancer by activating WNT signaling. Cell Commun Signal. 2019;17:109 pubmed publisher
  97. Littler S, Sloss O, Geary B, Pierce A, Whetton A, Taylor S. Oncogenic MYC amplifies mitotic perturbations. Open Biol. 2019;9:190136 pubmed publisher
  98. Sanghvi V, Leibold J, Mina M, Mohan P, Berishaj M, Li Z, et al. The Oncogenic Action of NRF2 Depends on De-glycation by Fructosamine-3-Kinase. Cell. 2019;178:807-819.e21 pubmed publisher
  99. Basturk O, Weigelt B, Adsay V, Benhamida J, Askan G, Wang L, et al. Sclerosing epithelioid mesenchymal neoplasm of the pancreas - a proposed new entity. Mod Pathol. 2020;33:456-467 pubmed publisher
  100. Horova V, Lyoo H, Różycki B, Chalupska D, Smola M, Humpolickova J, et al. Convergent evolution in the mechanisms of ACBD3 recruitment to picornavirus replication sites. PLoS Pathog. 2019;15:e1007962 pubmed publisher
  101. Li Q, Lai Q, He C, Fang Y, Yan Q, Zhang Y, et al. RUNX1 promotes tumour metastasis by activating the Wnt/β-catenin signalling pathway and EMT in colorectal cancer. J Exp Clin Cancer Res. 2019;38:334 pubmed publisher
  102. Hovestadt V, Smith K, Bihannic L, Filbin M, Shaw M, Baumgartner A, et al. Resolving medulloblastoma cellular architecture by single-cell genomics. Nature. 2019;572:74-79 pubmed publisher
  103. Morabito M, Larcher M, Cavalli F, Foray C, Forget A, Mirabal Ortega L, et al. An autocrine ActivinB mechanism drives TGFβ/Activin signaling in Group 3 medulloblastoma. EMBO Mol Med. 2019;11:e9830 pubmed publisher
  104. Wang S, Yao F, Lu X, Li Q, Su Z, Lee J, et al. Temozolomide promotes immune escape of GBM cells via upregulating PD-L1. Am J Cancer Res. 2019;9:1161-1171 pubmed
  105. Suo L, Chang X, Xu N, Ji H. The Anti-proliferative Activity of GnRH Through Downregulation of the Akt/ERK Pathways in Pancreatic Cancer. Front Endocrinol (Lausanne). 2019;10:370 pubmed publisher
  106. Farmer G, Amune A, Bachelor M, Duong P, Yuan J, Cunningham J. Sniffer cells for the detection of neural Angiotensin II in vitro. Sci Rep. 2019;9:8820 pubmed publisher
  107. Minuesa G, Albanese S, Xie W, Kazansky Y, Worroll D, Chow A, et al. Small-molecule targeting of MUSASHI RNA-binding activity in acute myeloid leukemia. Nat Commun. 2019;10:2691 pubmed publisher
  108. Merve A, Zhang X, Pomella N, Acquati S, Hoeck J, Dumas A, et al. c-MYC overexpression induces choroid plexus papillomas through a T-cell mediated inflammatory mechanism. Acta Neuropathol Commun. 2019;7:2 pubmed publisher
  109. Bentz G, Lowrey A, Horne D, Nguyen V, Satterfield A, Ross T, et al. Using glycyrrhizic acid to target sumoylation processes during Epstein-Barr virus latency. PLoS ONE. 2019;14:e0217578 pubmed publisher
  110. Umlauf B, Clark P, Lajoie J, Georgieva J, Bremner S, Herrin B, et al. Identification of variable lymphocyte receptors that can target therapeutics to pathologically exposed brain extracellular matrix. Sci Adv. 2019;5:eaau4245 pubmed publisher
  111. Weissmiller A, Wang J, Lorey S, Howard G, Martinez E, Liu Q, et al. Inhibition of MYC by the SMARCB1 tumor suppressor. Nat Commun. 2019;10:2014 pubmed publisher
  112. Gao X, Liu X, Lu Y, Wang Y, Cao W, Liu X, et al. PIM1 is responsible for IL-6-induced breast cancer cell EMT and stemness via c-myc activation. Breast Cancer. 2019;: pubmed publisher
  113. Wagner J, Rapsomaniki M, Chevrier S, Anzeneder T, Langwieder C, Dykgers A, et al. A Single-Cell Atlas of the Tumor and Immune Ecosystem of Human Breast Cancer. Cell. 2019;177:1330-1345.e18 pubmed publisher
  114. Hu D, Sun X, Liao X, Zhang X, Zarabi S, Schimmer A, et al. Alpha-synuclein suppresses mitochondrial protease ClpP to trigger mitochondrial oxidative damage and neurotoxicity. Acta Neuropathol. 2019;137:939-960 pubmed publisher
  115. Chakraborty A, Laukka T, Myllykoski M, Ringel A, Booker M, Tolstorukov M, et al. Histone demethylase KDM6A directly senses oxygen to control chromatin and cell fate. Science. 2019;363:1217-1222 pubmed publisher
  116. Patel N, Wang J, Shiozawa K, Jones K, Zhang Y, Prokop J, et al. HDAC2 Regulates Site-Specific Acetylation of MDM2 and Its Ubiquitination Signaling in Tumor Suppression. iScience. 2019;13:43-54 pubmed publisher
  117. Guillon J, Petit C, Moreau M, Toutain B, Henry C, Roche H, et al. Regulation of senescence escape by TSP1 and CD47 following chemotherapy treatment. Cell Death Dis. 2019;10:199 pubmed publisher
  118. Cao J, Zhao M, Liu J, Zhang X, Pei Y, Wang J, et al. RACK1 Promotes Self-Renewal and Chemoresistance of Cancer Stem Cells in Human Hepatocellular Carcinoma through Stabilizing Nanog. Theranostics. 2019;9:811-828 pubmed publisher
  119. Dufour F, Silina L, Neyret Kahn H, Moreno Vega A, Krucker C, Karboul N, et al. TYRO3 as a molecular target for growth inhibition and apoptosis induction in bladder cancer. Br J Cancer. 2019;120:555-564 pubmed publisher
  120. Carugo A, Minelli R, Sapio L, Soeung M, Carbone F, Robinson F, et al. p53 Is a Master Regulator of Proteostasis in SMARCB1-Deficient Malignant Rhabdoid Tumors. Cancer Cell. 2019;35:204-220.e9 pubmed publisher
  121. Savva C, De Souza K, Ali R, Rakha E, Green A, Madhusudan S. Clinicopathological significance of ataxia telangiectasia-mutated (ATM) kinase and ataxia telangiectasia-mutated and Rad3-related (ATR) kinase in MYC overexpressed breast cancers. Breast Cancer Res Treat. 2019;175:105-115 pubmed publisher
  122. Zhu Y, Shi C, Bruins L, Wang X, Riggs D, Porter B, et al. Identification of lenalidomide resistance pathways in myeloma and targeted resensitization using cereblon replacement, inhibition of STAT3 or targeting of IRF4. Blood Cancer J. 2019;9:19 pubmed publisher
  123. Haikala H, Anttila J, Marques E, Raatikainen T, Ilander M, Hakanen H, et al. Pharmacological reactivation of MYC-dependent apoptosis induces susceptibility to anti-PD-1 immunotherapy. Nat Commun. 2019;10:620 pubmed publisher
  124. Ji Q, Xu X, Kang L, Xu Y, Xiao J, Goodman S, et al. Hematopoietic PBX-interacting protein mediates cartilage degeneration during the pathogenesis of osteoarthritis. Nat Commun. 2019;10:313 pubmed publisher
  125. Ge Y, Schuster M, Pundhir S, Rapin N, Bagger F, Sidiropoulos N, et al. The splicing factor RBM25 controls MYC activity in acute myeloid leukemia. Nat Commun. 2019;10:172 pubmed publisher
  126. LI Y, Du L, Wang J, Vega R, Lee T, Miao Y, et al. Allosteric Inhibition of Ubiquitin-like Modifications by a Class of Inhibitor of SUMO-Activating Enzyme. Cell Chem Biol. 2019;26:278-288.e6 pubmed publisher
  127. Yang F, Fang E, Mei H, Chen Y, Li H, Li D, et al. Cis-Acting circ-CTNNB1 Promotes β-Catenin Signaling and Cancer Progression via DDX3-Mediated Transactivation of YY1. Cancer Res. 2019;79:557-571 pubmed publisher
  128. Wang Y, Du L, Liang X, Meng P, Bi L, Wang Y, et al. Sirtuin 4 Depletion Promotes Hepatocellular Carcinoma Tumorigenesis Through Regulating Adenosine-Monophosphate-Activated Protein Kinase Alpha/Mammalian Target of Rapamycin Axis in Mice. Hepatology. 2018;: pubmed publisher
  129. Simula L, Pacella I, Colamatteo A, Procaccini C, Cancila V, Bordi M, et al. Drp1 Controls Effective T Cell Immune-Surveillance by Regulating T Cell Migration, Proliferation, and cMyc-Dependent Metabolic Reprogramming. Cell Rep. 2018;25:3059-3073.e10 pubmed publisher
  130. Urtishak K, Wang L, Culjkovic Kraljacic B, Davenport J, Porazzi P, Vincent T, et al. Targeting EIF4E signaling with ribavirin in infant acute lymphoblastic leukemia. Oncogene. 2019;38:2241-2262 pubmed publisher
  131. Song X, Chen H, Zhang C, Yu Y, Chen Z, Liang H, et al. SRC-3 inhibition blocks tumor growth of pancreatic ductal adenocarcinoma. Cancer Lett. 2019;442:310-319 pubmed publisher
  132. Zhu H, Zhang L, Wu Y, Dong B, Guo W, Wang M, et al. T-ALL leukemia stem cell 'stemness' is epigenetically controlled by the master regulator SPI1. elife. 2018;7: pubmed publisher
  133. Chuang H, Tsai C, Hsueh C, Tan T. GLK-IKKβ signaling induces dimerization and translocation of the AhR-RORγt complex in IL-17A induction and autoimmune disease. Sci Adv. 2018;4:eaat5401 pubmed publisher
  134. Gut G, Herrmann M, Pelkmans L. Multiplexed protein maps link subcellular organization to cellular states. Science. 2018;361: pubmed publisher
  135. Mastromina I, Verrier L, Silva J, Storey K, Dale J. Myc activity is required for maintenance of the neuromesodermal progenitor signalling network and for segmentation clock gene oscillations in mouse. Development. 2018;145: pubmed publisher
  136. Nakagawa M, Shaffer A, Ceribelli M, Zhang M, Wright G, Huang D, et al. Targeting the HTLV-I-Regulated BATF3/IRF4 Transcriptional Network in Adult T Cell Leukemia/Lymphoma. Cancer Cell. 2018;34:286-297.e10 pubmed publisher
  137. Kim S, Knight D, Jones L, Vervoort S, Ng A, Seymour J, et al. JAK2 is dispensable for maintenance of JAK2 mutant B-cell acute lymphoblastic leukemias. Genes Dev. 2018;32:849-864 pubmed publisher
  138. LI Y, Du L, Aldana Masangkay G, Wang X, Urak R, Forman S, et al. Regulation of miR-34b/c-targeted gene expression program by SUMOylation. Nucleic Acids Res. 2018;: pubmed publisher
  139. Weniger M, Tiacci E, Schneider S, Arnolds J, Rüschenbaum S, Duppach J, et al. Human CD30+ B cells represent a unique subset related to Hodgkin lymphoma cells. J Clin Invest. 2018;128:2996-3007 pubmed publisher
  140. Du X, Wen J, Wang Y, Karmaus P, Khatamian A, Tan H, et al. Hippo/Mst signalling couples metabolic state and immune function of CD8α+ dendritic cells. Nature. 2018;558:141-145 pubmed publisher
  141. Sevin M, Kubovcakova L, Pernet N, Causse S, Vitte F, Villeval J, et al. HSP27 is a partner of JAK2-STAT5 and a potential therapeutic target in myelofibrosis. Nat Commun. 2018;9:1431 pubmed publisher
  142. Andricovich J, Perkail S, Kai Y, Casasanta N, Peng W, Tzatsos A. Loss of KDM6A Activates Super-Enhancers to Induce Gender-Specific Squamous-like Pancreatic Cancer and Confers Sensitivity to BET Inhibitors. Cancer Cell. 2018;33:512-526.e8 pubmed publisher
  143. Rossetti S, Wierzbicki A, Sacchi N. Undermining ribosomal RNA transcription in both the nucleolus and mitochondrion: an offbeat approach to target MYC-driven cancer. Oncotarget. 2018;9:5016-5031 pubmed publisher
  144. Blunsom N, Gomez Espinosa E, Ashlin T, Cockcroft S. Mitochondrial CDP-diacylglycerol synthase activity is due to the peripheral protein, TAMM41 and not due to the integral membrane protein, CDP-diacylglycerol synthase 1. Biochim Biophys Acta Mol Cell Biol Lipids. 2018;1863:284-298 pubmed publisher
  145. Su R, Dong L, Li C, Nachtergaele S, Wunderlich M, Qing Y, et al. R-2HG Exhibits Anti-tumor Activity by Targeting FTO/m6A/MYC/CEBPA Signaling. Cell. 2018;172:90-105.e23 pubmed publisher
  146. Vu L, Pickering B, Cheng Y, Zaccara S, Nguyen D, Minuesa G, et al. The N6-methyladenosine (m6A)-forming enzyme METTL3 controls myeloid differentiation of normal hematopoietic and leukemia cells. Nat Med. 2017;23:1369-1376 pubmed publisher
  147. Hama T, Nakanishi K, Sato M, Mukaiyama H, Togawa H, Shima Y, et al. Aberrant Smad3 phosphoisoforms in cyst-lining epithelial cells in the cpk mouse, a model of autosomal recessive polycystic kidney disease. Am J Physiol Renal Physiol. 2017;:ajprenal.00697.2016 pubmed publisher
  148. Henry K, Dilling T, Abdel Atti D, Edwards K, Evans M, Lewis J. Noninvasive 89Zr-Transferrin PET Shows Improved Tumor Targeting Compared with 18F-FDG PET in MYC-Overexpressing Human Triple-Negative Breast Cancer. J Nucl Med. 2018;59:51-57 pubmed publisher
  149. Chong I, Aronson L, Bryant H, Gulati A, Campbell J, Elliott R, et al. Mapping genetic vulnerabilities reveals BTK as a novel therapeutic target in oesophageal cancer. Gut. 2018;67:1780-1792 pubmed publisher
  150. Hu J, Guan W, Liu P, Dai J, Tang K, Xiao H, et al. Endoglin Is Essential for the Maintenance of Self-Renewal and Chemoresistance in Renal Cancer Stem Cells. Stem Cell Reports. 2017;9:464-477 pubmed publisher
  151. Takano T, Wu M, Nakamuta S, Naoki H, Ishizawa N, Namba T, et al. Discovery of long-range inhibitory signaling to ensure single axon formation. Nat Commun. 2017;8:33 pubmed publisher
  152. Akiel M, Guo C, Li X, Rajasekaran D, Mendoza R, Robertson C, et al. IGFBP7 Deletion Promotes Hepatocellular Carcinoma. Cancer Res. 2017;77:4014-4025 pubmed publisher
  153. Biesemann A, Gorontzi A, Barr F, Gerke V. Rab35 protein regulates evoked exocytosis of endothelial Weibel-Palade bodies. J Biol Chem. 2017;292:11631-11640 pubmed publisher
  154. Bae S, Lee M, Mun S, Giannopoulou E, Yong Gonzalez V, Cross J, et al. MYC-dependent oxidative metabolism regulates osteoclastogenesis via nuclear receptor ERR?. J Clin Invest. 2017;127:2555-2568 pubmed publisher
  155. Yoon C, Cho S, Chang K, Park D, Ryeom S, Yoon S. Role of Rac1 Pathway in Epithelial-to-Mesenchymal Transition and Cancer Stem-like Cell Phenotypes in Gastric Adenocarcinoma. Mol Cancer Res. 2017;15:1106-1116 pubmed publisher
  156. Riemer P, Rydenfelt M, Marks M, van Eunen K, Thedieck K, Herrmann B, et al. Oncogenic β-catenin and PIK3CA instruct network states and cancer phenotypes in intestinal organoids. J Cell Biol. 2017;216:1567-1577 pubmed publisher
  157. Kitazawa S, Ebara S, Ando A, Baba Y, Satomi Y, Soga T, et al. Succinate dehydrogenase B-deficient cancer cells are highly sensitive to bromodomain and extra-terminal inhibitors. Oncotarget. 2017;8:28922-28938 pubmed publisher
  158. Sandén E, Dyberg C, Krona C, Gallo Oller G, Olsen T, Enríquez Pérez J, et al. Establishment and characterization of an orthotopic patient-derived Group 3 medulloblastoma model for preclinical drug evaluation. Sci Rep. 2017;7:46366 pubmed publisher
  159. Geng C, Kaochar S, Li M, Rajapakshe K, Fiskus W, Dong J, et al. SPOP regulates prostate epithelial cell proliferation and promotes ubiquitination and turnover of c-MYC oncoprotein. Oncogene. 2017;36:4767-4777 pubmed publisher
  160. Daley D, Mani V, Mohan N, Akkad N, Ochi A, Heindel D, et al. Dectin 1 activation on macrophages by galectin 9 promotes pancreatic carcinoma and peritumoral immune tolerance. Nat Med. 2017;23:556-567 pubmed publisher
  161. Slobodin B, Han R, Calderone V, Vrielink J, Loayza Puch F, Elkon R, et al. Transcription Impacts the Efficiency of mRNA Translation via Co-transcriptional N6-adenosine Methylation. Cell. 2017;169:326-337.e12 pubmed publisher
  162. Mauriac S, Hien Y, Bird J, Carvalho S, Peyroutou R, Lee S, et al. Defective Gpsm2/Gαi3 signalling disrupts stereocilia development and growth cone actin dynamics in Chudley-McCullough syndrome. Nat Commun. 2017;8:14907 pubmed publisher
  163. Newman L, Schiavon C, Zhou C, Kahn R. The abundance of the ARL2 GTPase and its GAP, ELMOD2, at mitochondria are modulated by the fusogenic activity of mitofusins and stressors. PLoS ONE. 2017;12:e0175164 pubmed publisher
  164. Yuan H, Krawczyk E, Blancato J, Albanese C, Zhou D, Wang N, et al. HPV positive neuroendocrine cervical cancer cells are dependent on Myc but not E6/E7 viral oncogenes. Sci Rep. 2017;7:45617 pubmed publisher
  165. Altman B, Hsieh A, Gouw A, Dang C. Correspondence: Oncogenic MYC persistently upregulates the molecular clock component REV-ERB?. Nat Commun. 2017;8:14862 pubmed publisher
  166. Juhasz A, Markel S, Gaur S, Liu H, Lu J, Jiang G, et al. NADPH oxidase 1 supports proliferation of colon cancer cells by modulating reactive oxygen species-dependent signal transduction. J Biol Chem. 2017;292:7866-7887 pubmed publisher
  167. Sahu U, Choudhury A, Parvez S, Biswas S, Kar S. Induction of intestinal stemness and tumorigenicity by aberrant internalization of commensal non-pathogenic E. coli. Cell Death Dis. 2017;8:e2667 pubmed publisher
  168. Cherniack A, Shen H, Walter V, Stewart C, Murray B, Bowlby R, et al. Integrated Molecular Characterization of Uterine Carcinosarcoma. Cancer Cell. 2017;31:411-423 pubmed publisher
  169. Taoka R, Jinesh G, Xue W, Safe S, Kamat A. CF3DODA-Me induces apoptosis, degrades Sp1, and blocks the transformation phase of the blebbishield emergency program. Apoptosis. 2017;22:719-729 pubmed publisher
  170. Hong Y, Hong Y, Choi Y, Yeo S, Jin S, Lee S, et al. The Short Isoform of DNAJB6 Protects against 1-Methyl-4-phenylpridinium Ion-Induced Apoptosis in LN18 Cells via Inhibiting Both ROS Formation and Mitochondrial Membrane Potential Loss. Oxid Med Cell Longev. 2017;2017:7982389 pubmed publisher
  171. Liu Y, Liu R, Yang F, Cheng R, Chen X, Cui S, et al. miR-19a promotes colorectal cancer proliferation and migration by targeting TIA1. Mol Cancer. 2017;16:53 pubmed publisher
  172. Anilkumar T, Devi A, Pillai S, Jayakrishnan K, Oommen O, Kumar P. Expression of protocadherin 11Yb (PCDH11Yb) in seminal germ cells is correlated with fertility status in men. Reprod Fertil Dev. 2017;29:2100-2111 pubmed publisher
  173. Singh V, Katta S, Kumar S. WD-repeat protein WDR13 is a novel transcriptional regulator of c-Jun and modulates intestinal homeostasis in mice. BMC Cancer. 2017;17:148 pubmed publisher
  174. Teng Y, Ren Y, Hu X, Mu J, Samykutty A, Zhuang X, et al. MVP-mediated exosomal sorting of miR-193a promotes colon cancer progression. Nat Commun. 2017;8:14448 pubmed publisher
  175. Wu Y, Wang Y, Lin Y, Liu Y, Wang Y, Jia J, et al. Dub3 inhibition suppresses breast cancer invasion and metastasis by promoting Snail1 degradation. Nat Commun. 2017;8:14228 pubmed publisher
  176. Chen H, Zuo Q, Wang Y, Song J, Yang H, Zhang Y, et al. Inducing goat pluripotent stem cells with four transcription factor mRNAs that activate endogenous promoters. BMC Biotechnol. 2017;17:11 pubmed publisher
  177. Genovese G, Carugo A, TEPPER J, Robinson F, Li L, Svelto M, et al. Synthetic vulnerabilities of mesenchymal subpopulations in pancreatic cancer. Nature. 2017;542:362-366 pubmed publisher
  178. Hubmacher D, Schneider M, Berardinelli S, Takeuchi H, Willard B, Reinhardt D, et al. Unusual life cycle and impact on microfibril assembly of ADAMTS17, a secreted metalloprotease mutated in genetic eye disease. Sci Rep. 2017;7:41871 pubmed publisher
  179. Hu T, Zhu X, Pi W, Yu M, Shi H, Tuan D. Hypermethylated LTR retrotransposon exhibits enhancer activity. Epigenetics. 2017;12:226-237 pubmed publisher
  180. Cayrol F, Praditsuktavorn P, Fernando T, Kwiatkowski N, Marullo R, Calvo Vidal M, et al. THZ1 targeting CDK7 suppresses STAT transcriptional activity and sensitizes T-cell lymphomas to BCL2 inhibitors. Nat Commun. 2017;8:14290 pubmed publisher
  181. Liu G, Xiang T, Wu Q, Wang W. Curcumin suppresses the proliferation of gastric cancer cells by downregulating H19. Oncol Lett. 2016;12:5156-5162 pubmed publisher
  182. Tagal V, Wei S, Zhang W, Brekken R, Posner B, Peyton M, et al. SMARCA4-inactivating mutations increase sensitivity to Aurora kinase A inhibitor VX-680 in non-small cell lung cancers. Nat Commun. 2017;8:14098 pubmed publisher
  183. Mani J, Rout S, Desy S, Schneider A. Mitochondrial protein import - Functional analysis of the highly diverged Tom22 orthologue of Trypanosoma brucei. Sci Rep. 2017;7:40738 pubmed publisher
  184. Xu X, Fan Z, Liang C, Li L, Wang L, Liang Y, et al. A signature motif in LIM proteins mediates binding to checkpoint proteins and increases tumour radiosensitivity. Nat Commun. 2017;8:14059 pubmed publisher
  185. Macia M, Halbritter J, Delous M, Bredrup C, Gutter A, Filhol E, et al. Mutations in MAPKBP1 Cause Juvenile or Late-Onset Cilia-Independent Nephronophthisis. Am J Hum Genet. 2017;100:323-333 pubmed publisher
  186. Kozlovskaja GumbrienÄ— A, Yi R, Alexander R, Aman A, Jiskra R, Nagelberg D, et al. Proliferation-independent regulation of organ size by Fgf/Notch signaling. elife. 2017;6: pubmed publisher
  187. Skene P, Henikoff S. An efficient targeted nuclease strategy for high-resolution mapping of DNA binding sites. elife. 2017;6: pubmed publisher
  188. Zhu J, Wang P, Yu Z, Lai W, Cao Y, Huang P, et al. Advanced glycosylation end product promotes forkhead box O1 and inhibits Wnt pathway to suppress capacities of epidermal stem cells. Am J Transl Res. 2016;8:5569-5579 pubmed
  189. Capizzi M, Strappazzon F, Cianfanelli V, Papaleo E, Cecconi F. MIR7-3HG, a MYC-dependent modulator of cell proliferation, inhibits autophagy by a regulatory loop involving AMBRA1. Autophagy. 2017;13:554-566 pubmed publisher
  190. Xi X, Lu L, Zhuge C, Chen X, Zhai Y, Cheng J, et al. The hypoparathyroidism-associated mutation in Drosophila Gcm compromises protein stability and glial cell formation. Sci Rep. 2017;7:39856 pubmed publisher
  191. Rued B, Zheng J, Mura A, Tsui H, Boersma M, Mazny J, et al. Suppression and synthetic-lethal genetic relationships of ΔgpsB mutations indicate that GpsB mediates protein phosphorylation and penicillin-binding protein interactions in Streptococcus pneumoniae D39. Mol Microbiol. 2017;103:931-957 pubmed publisher
  192. Takahashi M, Li Y, Dillon T, Stork P. Phosphorylation of Rap1 by cAMP-dependent Protein Kinase (PKA) Creates a Binding Site for KSR to Sustain ERK Activation by cAMP. J Biol Chem. 2017;292:1449-1461 pubmed publisher
  193. Harsman A, Oeljeklaus S, Wenger C, Huot J, Warscheid B, Schneider A. The non-canonical mitochondrial inner membrane presequence translocase of trypanosomatids contains two essential rhomboid-like proteins. Nat Commun. 2016;7:13707 pubmed publisher
  194. Katsushima K, Natsume A, Ohka F, Shinjo K, Hatanaka A, Ichimura N, et al. Targeting the Notch-regulated non-coding RNA TUG1 for glioma treatment. Nat Commun. 2016;7:13616 pubmed publisher
  195. Hu H, Liu Y, Bampoe K, He Y, Yu M. Postnatal Gene Therapy Improves Spatial Learning Despite the Presence of Neuronal Ectopia in a Model of Neuronal Migration Disorder. Genes (Basel). 2016;7: pubmed
  196. Dhar J, Barik S. Unique nonstructural proteins of Pneumonia Virus of Mice (PVM) promote degradation of interferon (IFN) pathway components and IFN-stimulated gene proteins. Sci Rep. 2016;6:38139 pubmed publisher
  197. Shahani N, Swarnkar S, Giovinazzo V, Morgenweck J, Bohn L, Scharager Tapia C, et al. RasGRP1 promotes amphetamine-induced motor behavior through a Rhes interaction network ("Rhesactome") in the striatum. Sci Signal. 2016;9:ra111 pubmed
  198. Xiao Y, Yang X, Miao Y, He X, Wang M, Sha W. Inhibition of cell proliferation and tumor growth of colorectal cancer by inhibitors of Wnt and Notch signaling pathways. Oncol Lett. 2016;12:3695-3700 pubmed
  199. Prieto P, Fernandez Velasco M, Fernández Santos M, Sanchez P, Terrón V, Martín Sanz P, et al. Cell Expansion-Dependent Inflammatory and Metabolic Profile of Human Bone Marrow Mesenchymal Stem Cells. Front Physiol. 2016;7:548 pubmed
  200. Chen Z, Tang C, Zhu Y, Xie M, He D, Pan Q, et al. TrpC5 regulates differentiation through the Ca2+/Wnt5a signalling pathway in colorectal cancer. Clin Sci (Lond). 2017;131:227-237 pubmed publisher
  201. Cramer S, Saha A, Liu J, Tadi S, Tiziani S, Yan W, et al. Systemic depletion of L-cyst(e)ine with cyst(e)inase increases reactive oxygen species and suppresses tumor growth. Nat Med. 2017;23:120-127 pubmed publisher
  202. Casamayor Genescà A, Pla A, Oliver Vila I, Pujals Fonts N, Marín Gallén S, Caminal M, et al. Clinical-scale expansion of CD34+ cord blood cells amplifies committed progenitors and rapid scid repopulation cells. N Biotechnol. 2017;35:19-29 pubmed publisher
  203. Turner J, Kashyap T, Dawson J, Gomez J, Bauer A, Grant S, et al. XPO1 inhibitor combination therapy with bortezomib or carfilzomib induces nuclear localization of IκBα and overcomes acquired proteasome inhibitor resistance in human multiple myeloma. Oncotarget. 2016;7:78896-78909 pubmed publisher
  204. Ölmezer G, Levikova M, Klein D, Falquet B, Fontana G, Cejka P, et al. Replication intermediates that escape Dna2 activity are processed by Holliday junction resolvase Yen1. Nat Commun. 2016;7:13157 pubmed publisher
  205. Dey K, Bharti R, Dey G, Pal I, Rajesh Y, Chavan S, et al. S100A7 has an oncogenic role in oral squamous cell carcinoma by activating p38/MAPK and RAB2A signaling pathway. Cancer Gene Ther. 2016;23:382-391 pubmed publisher
  206. Zhang Q, Zhang Y, Parsels J, Lohse I, Lawrence T, Pasca di Magliano M, et al. Fbxw7 Deletion Accelerates KrasG12D-Driven Pancreatic Tumorigenesis via Yap Accumulation. Neoplasia. 2016;18:666-673 pubmed publisher
  207. Ren K, Zhang W, Chen X, Ma Y, Dai Y, Fan Y, et al. An Epigenetic Compound Library Screen Identifies BET Inhibitors That Promote HSV-1 and -2 Replication by Bridging P-TEFb to Viral Gene Promoters through BRD4. PLoS Pathog. 2016;12:e1005950 pubmed publisher
  208. Rofe A, Davis L, Whittingham J, Latimer Bowman E, Wilkinson A, Pryor P. The Rhodococcus equi virulence protein VapA disrupts endolysosome function and stimulates lysosome biogenesis. Microbiologyopen. 2017;6: pubmed publisher
  209. Yang L, Liu Y, Wang M, Qian Y, Dong X, Gu H, et al. Quercetin-induced apoptosis of HT-29 colon cancer cells via inhibition of the Akt-CSN6-Myc signaling axis. Mol Med Rep. 2016;14:4559-4566 pubmed publisher
  210. Harrod A, Fulton J, Nguyen V, Periyasamy M, Ramos Garcia L, Lai C, et al. Genomic modelling of the ESR1 Y537S mutation for evaluating function and new therapeutic approaches for metastatic breast cancer. Oncogene. 2017;36:2286-2296 pubmed publisher
  211. Nowacka J, Baumgartner C, Pelorosso C, Roth M, Zuber J, Baccarini M. MEK1 is required for the development of NRAS-driven leukemia. Oncotarget. 2016;7:80113-80130 pubmed publisher
  212. Cao Z, Casabona M, Kneuper H, Chalmers J, Palmer T. The type VII secretion system of Staphylococcus aureus secretes a nuclease toxin that targets competitor bacteria. Nat Microbiol. 2016;2:16183 pubmed publisher
  213. Rabbani M, Ribaudo M, Guo J, Barik S. Identification of Interferon-Stimulated Gene Proteins That Inhibit Human Parainfluenza Virus Type 3. J Virol. 2016;90:11145-11156 pubmed
  214. Zhang L, Bai Y, Yang Y. Thymoquinone chemosensitizes colon cancer cells through inhibition of NF-?B. Oncol Lett. 2016;12:2840-2845 pubmed
  215. Maina P, Shao P, Liu Q, Fazli L, Tyler S, Nasir M, et al. c-MYC drives histone demethylase PHF8 during neuroendocrine differentiation and in castration-resistant prostate cancer. Oncotarget. 2016;7:75585-75602 pubmed publisher
  216. Yamaguchi T, Yamauchi Y, Furukawa K, Ohmi Y, Ohkawa Y, Zhang Q, et al. Expression of B4GALNT1, an essential glycosyltransferase for the synthesis of complex gangliosides, suppresses BACE1 degradation and modulates APP processing. Sci Rep. 2016;6:34505 pubmed publisher
  217. Dubail J, Vasudevan D, Wang L, Earp S, Jenkins M, Haltiwanger R, et al. Impaired ADAMTS9 secretion: A potential mechanism for eye defects in Peters Plus Syndrome. Sci Rep. 2016;6:33974 pubmed publisher
  218. Shlevkov E, Kramer T, Schapansky J, LaVoie M, Schwarz T. Miro phosphorylation sites regulate Parkin recruitment and mitochondrial motility. Proc Natl Acad Sci U S A. 2016;113:E6097-E6106 pubmed
  219. Zhao G, Zhu P, Renvoisé B, Maldonado Baez L, Park S, Blackstone C. Mammalian knock out cells reveal prominent roles for atlastin GTPases in ER network morphology. Exp Cell Res. 2016;349:32-44 pubmed publisher
  220. Treindl F, Ruprecht B, Beiter Y, Schultz S, Döttinger A, Staebler A, et al. A bead-based western for high-throughput cellular signal transduction analyses. Nat Commun. 2016;7:12852 pubmed publisher
  221. Alavi M, Song M, King G, Gillis T, Propst R, Lamanuzzi M, et al. Dscam1 Forms a Complex with Robo1 and the N-Terminal Fragment of Slit to Promote the Growth of Longitudinal Axons. PLoS Biol. 2016;14:e1002560 pubmed publisher
  222. Kim M, Jeong J, Seo J, Kim H, Kim S, Jin W. Dysregulated JAK2 expression by TrkC promotes metastasis potential, and EMT program of metastatic breast cancer. Sci Rep. 2016;6:33899 pubmed publisher
  223. Soon G, Ow G, Chan H, Ng S, Wang S. Primary cardiac diffuse large B-cell lymphoma in immunocompetent patients: clinical, histologic, immunophenotypic, and genotypic features of 3 cases. Ann Diagn Pathol. 2016;24:40-6 pubmed publisher
  224. Johnson R, Finger E, Olcina M, Vilalta M, Aguilera T, Miao Y, et al. Induction of LIFR confers a dormancy phenotype in breast cancer cells disseminated to the bone marrow. Nat Cell Biol. 2016;18:1078-1089 pubmed publisher
  225. Madugula V, Lu L. A ternary complex comprising transportin1, Rab8 and the ciliary targeting signal directs proteins to ciliary membranes. J Cell Sci. 2016;129:3922-3934 pubmed
  226. Park S, Han S, Choi I, Kim B, Park S, Joe E, et al. Interplay between Leucine-Rich Repeat Kinase 2 (LRRK2) and p62/SQSTM-1 in Selective Autophagy. PLoS ONE. 2016;11:e0163029 pubmed publisher
  227. Xu L, Yu D, Fan Y, Peng L, Wu Y, Yao Y. Loss of RIG-I leads to a functional replacement with MDA5 in the Chinese tree shrew. Proc Natl Acad Sci U S A. 2016;113:10950-5 pubmed publisher
  228. Handhle A, Ormonde C, Thomas N, Bralesford C, Williams A, Lai F, et al. Calsequestrin interacts directly with the cardiac ryanodine receptor luminal domain. J Cell Sci. 2016;129:3983-3988 pubmed
  229. Wang Q, Zhang X, Han Y, Wang X, Gao G. M2BP inhibits HIV-1 virion production in a vimentin filaments-dependent manner. Sci Rep. 2016;6:32736 pubmed publisher
  230. Hsu Y, Shi G, Wang K, Ma C, Cheng T, Wu H. Thrombomodulin promotes focal adhesion kinase activation and contributes to angiogenesis by binding to fibronectin. Oncotarget. 2016;7:68122-68139 pubmed publisher
  231. Cunningham C, Li S, Vizeacoumar F, Bhanumathy K, Lee J, Parameswaran S, et al. Therapeutic relevance of the protein phosphatase 2A in cancer. Oncotarget. 2016;7:61544-61561 pubmed publisher
  232. Jinesh G, Molina J, Huang L, Laing N, Mills G, Bar Eli M, et al. Mitochondrial oligomers boost glycolysis in cancer stem cells to facilitate blebbishield-mediated transformation after apoptosis. Cell Death Discov. 2016;2:16003 pubmed publisher
  233. Hong J, Kwak Y, Woo Y, Park C, Lee S, Lee H, et al. Regulation of the actin cytoskeleton by the Ndel1-Tara complex is critical for cell migration. Sci Rep. 2016;6:31827 pubmed publisher
  234. Li Y, Dillon T, Takahashi M, Earley K, Stork P. Protein Kinase A-independent Ras Protein Activation Cooperates with Rap1 Protein to Mediate Activation of the Extracellular Signal-regulated Kinases (ERK) by cAMP. J Biol Chem. 2016;291:21584-21595 pubmed
  235. Li L, Liu H, Wang C, Liu X, Hu F, Xie N, et al. Overexpression of ?-Catenin Induces Cisplatin Resistance in Oral Squamous Cell Carcinoma. Biomed Res Int. 2016;2016:5378567 pubmed publisher
  236. Gao S, Yang X, Wang M. Inhibitory effects of B?cell translocation gene 2 on skin cancer cells via the Wnt/??catenin signaling pathway. Mol Med Rep. 2016;14:3464-8 pubmed publisher
  237. Ogasawara R, Fujita S, Hornberger T, Kitaoka Y, Makanae Y, Nakazato K, et al. The role of mTOR signalling in the regulation of skeletal muscle mass in a rodent model of resistance exercise. Sci Rep. 2016;6:31142 pubmed publisher
  238. Shen H, Zhao L, Feng X, Xu C, Li C, Niu Y. Lin28A activates androgen receptor via regulation of c-myc and promotes malignancy of ER-/Her2+ breast cancer. Oncotarget. 2016;7:60407-60418 pubmed publisher
  239. Liang J, Cao R, Zhang Y, Xia Y, Zheng Y, Li X, et al. PKM2 dephosphorylation by Cdc25A promotes the Warburg effect and tumorigenesis. Nat Commun. 2016;7:12431 pubmed publisher
  240. Wawro M, Kochan J, Krzanik S, Jura J, Kasza A. Intact NYN/PIN-Like Domain is Crucial for the Degradation of Inflammation-Related Transcripts by ZC3H12D. J Cell Biochem. 2017;118:487-498 pubmed publisher
  241. Ho J, Hsu R, Wu C, Liao G, Gao H, Wang T, et al. Reduced miR-550a-3p leads to breast cancer initiation, growth, and metastasis by increasing levels of ERK1 and 2. Oncotarget. 2016;7:53853-53868 pubmed publisher
  242. Nelson D, Jaber Hijazi F, Cole J, Robertson N, Pawlikowski J, Norris K, et al. Mapping H4K20me3 onto the chromatin landscape of senescent cells indicates a function in control of cell senescence and tumor suppression through preservation of genetic and epigenetic stability. Genome Biol. 2016;17:158 pubmed publisher
  243. Grinshtein N, Rioseco C, Marcellus R, UEHLING D, Aman A, Lun X, et al. Small molecule epigenetic screen identifies novel EZH2 and HDAC inhibitors that target glioblastoma brain tumor-initiating cells. Oncotarget. 2016;7:59360-59376 pubmed publisher
  244. Weng S, Matsuura S, Mowery C, Stoner S, Lam K, Ran D, et al. Restoration of MYC-repressed targets mediates the negative effects of GM-CSF on RUNX1-ETO leukemogenicity. Leukemia. 2017;31:159-169 pubmed publisher
  245. Harwardt T, Lukas S, Zenger M, Reitberger T, Danzer D, Übner T, et al. Human Cytomegalovirus Immediate-Early 1 Protein Rewires Upstream STAT3 to Downstream STAT1 Signaling Switching an IL6-Type to an IFNγ-Like Response. PLoS Pathog. 2016;12:e1005748 pubmed publisher
  246. Smirnov A, Panatta E, Lena A, Castiglia D, Di Daniele N, Melino G, et al. FOXM1 regulates proliferation, senescence and oxidative stress in keratinocytes and cancer cells. Aging (Albany NY). 2016;8:1384-97 pubmed publisher
  247. Hayashi S, Akiyama R, Wong J, Tahara N, Kawakami H, Kawakami Y. Gata6-Dependent GLI3 Repressor Function is Essential in Anterior Limb Progenitor Cells for Proper Limb Development. PLoS Genet. 2016;12:e1006138 pubmed publisher
  248. Takagi Y, Shimada K, Shimada S, Sakamoto A, Naoe T, Nakamura S, et al. SPIB is a novel prognostic factor in diffuse large B-cell lymphoma that mediates apoptosis via the PI3K-AKT pathway. Cancer Sci. 2016;107:1270-80 pubmed publisher
  249. Itahana Y, Zhang J, Göke J, Vardy L, Han R, Iwamoto K, et al. Histone modifications and p53 binding poise the p21 promoter for activation in human embryonic stem cells. Sci Rep. 2016;6:28112 pubmed publisher
  250. Li H, Mai R, Huang H, Chou C, Chang Y, Chang Y, et al. DDX3 Represses Stemness by Epigenetically Modulating Tumor-suppressive miRNAs in Hepatocellular Carcinoma. Sci Rep. 2016;6:28637 pubmed publisher
  251. Chiba T, Ishihara E, Miyamura N, Narumi R, Kajita M, Fujita Y, et al. MDCK cells expressing constitutively active Yes-associated protein (YAP) undergo apical extrusion depending on neighboring cell status. Sci Rep. 2016;6:28383 pubmed publisher
  252. Aguilera O, Muñoz Sagastibelza M, Torrejón B, Borrero Palacios A, del Puerto Nevado L, Martínez Useros J, et al. Vitamin C uncouples the Warburg metabolic switch in KRAS mutant colon cancer. Oncotarget. 2016;7:47954-47965 pubmed publisher
  253. Kathania M, Khare P, Zeng M, Cantarel B, Zhang H, Ueno H, et al. Itch inhibits IL-17-mediated colon inflammation and tumorigenesis by ROR-?t ubiquitination. Nat Immunol. 2016;17:997-1004 pubmed publisher
  254. Belyy A, Levanova N, Tabakova I, Rospert S, Belyi Y. Ribosomal Protein Rps26 Influences 80S Ribosome Assembly in Saccharomyces cerevisiae. mSphere. 2016;1: pubmed publisher
  255. Kanemori Y, Koga Y, Sudo M, Kang W, Kashiwabara S, Ikawa M, et al. Biogenesis of sperm acrosome is regulated by pre-mRNA alternative splicing of Acrbp in the mouse. Proc Natl Acad Sci U S A. 2016;113:E3696-705 pubmed publisher
  256. Wang Y, Li Y, Hu G, Huang X, Rao H, Xiong X, et al. Nek2A phosphorylates and stabilizes SuFu: A new strategy of Gli2/Hedgehog signaling regulatory mechanism. Cell Signal. 2016;28:1304-13 pubmed publisher
  257. Eichner R, Heider M, Fernández Sáiz V, van Bebber F, Garz A, Lemeer S, et al. Immunomodulatory drugs disrupt the cereblon-CD147-MCT1 axis to exert antitumor activity and teratogenicity. Nat Med. 2016;22:735-43 pubmed publisher
  258. Qi Y, Yu J, Han W, Fan X, Qian H, Wei H, et al. A splicing isoform of TEAD4 attenuates the Hippo-YAP signalling to inhibit tumour proliferation. Nat Commun. 2016;7:ncomms11840 pubmed publisher
  259. Zhang J, Jiang Z, Liu X, Meng A. Eph/ephrin signaling maintains the boundary of dorsal forerunner cell cluster during morphogenesis of the zebrafish embryonic left-right organizer. Development. 2016;143:2603-15 pubmed publisher
  260. Xi Z, Yao M, Li Y, Xie C, Holst J, Liu T, et al. Guttiferone K impedes cell cycle re-entry of quiescent prostate cancer cells via stabilization of FBXW7 and subsequent c-MYC degradation. Cell Death Dis. 2016;7:e2252 pubmed publisher
  261. Farrugia A, Calvo F. Cdc42 regulates Cdc42EP3 function in cancer-associated fibroblasts. Small Gtpases. 2017;8:49-57 pubmed publisher
  262. Nishito Y, Tsuji N, Fujishiro H, Takeda T, Yamazaki T, Teranishi F, et al. Direct Comparison of Manganese Detoxification/Efflux Proteins and Molecular Characterization of ZnT10 Protein as a Manganese Transporter. J Biol Chem. 2016;291:14773-87 pubmed publisher
  263. Choi S, Park S, Yoo H, Pi J, Kang C. Charged Amino Acid-rich Leucine Zipper-1 (Crlz-1) as a Target of Wnt Signaling Pathway Controls Pre-B Cell Proliferation by Affecting Runx/CBF?-targeted VpreB and ?5 Genes. J Biol Chem. 2016;291:15008-19 pubmed publisher
  264. Derussy B, Boland M, Tandon R. Human Cytomegalovirus pUL93 Links Nucleocapsid Maturation and Nuclear Egress. J Virol. 2016;90:7109-7117 pubmed publisher
  265. Chesnokova V, Zonis S, Zhou C, Recouvreux M, Ben Shlomo A, Araki T, et al. Growth hormone is permissive for neoplastic colon growth. Proc Natl Acad Sci U S A. 2016;113:E3250-9 pubmed publisher
  266. Wang B, Lee C, Johnson E, Kluwe C, Cunningham J, Tanno H, et al. Discovery of high affinity anti-ricin antibodies by B cell receptor sequencing and by yeast display of combinatorial VH:VL libraries from immunized animals. MAbs. 2016;8:1035-44 pubmed publisher
  267. Knutson B, Smith M, Walker Kopp N, Xu X. Super elongation complex contains a TFIIF-related subcomplex. Transcription. 2016;7:133-40 pubmed publisher
  268. Zheng J, Huang X, Tan W, Yu D, Du Z, Chang J, et al. Pancreatic cancer risk variant in LINC00673 creates a miR-1231 binding site and interferes with PTPN11 degradation. Nat Genet. 2016;48:747-57 pubmed publisher
  269. Cichon M, Moruzzi M, Shqau T, Miller E, Mehner C, Ethier S, et al. MYC Is a Crucial Mediator of TGF?-Induced Invasion in Basal Breast Cancer. Cancer Res. 2016;76:3520-30 pubmed publisher
  270. Kress T, Pellanda P, Pellegrinet L, Bianchi V, Nicoli P, Doni M, et al. Identification of MYC-Dependent Transcriptional Programs in Oncogene-Addicted Liver Tumors. Cancer Res. 2016;76:3463-72 pubmed publisher
  271. Paulissen S, Slubowski C, Roesner J, Huang L. Timely Closure of the Prospore Membrane Requires SPS1 and SPO77 in Saccharomyces cerevisiae. Genetics. 2016;203:1203-16 pubmed publisher
  272. Chen Y, Bharill S, O HAGAN R, Isacoff E, Chalfie M. MEC-10 and MEC-19 Reduce the Neurotoxicity of the MEC-4(d) DEG/ENaC Channel in Caenorhabditis elegans. G3 (Bethesda). 2016;6:1121-30 pubmed publisher
  273. Harris C, Husmann D, Liu W, Kasmi F, Wang H, Papikian A, et al. Arabidopsis AtMORC4 and AtMORC7 Form Nuclear Bodies and Repress a Large Number of Protein-Coding Genes. PLoS Genet. 2016;12:e1005998 pubmed publisher
  274. Le T, Vuong L, Kim A, Hsu Y, Choi K. 14-3-3 proteins regulate Tctp-Rheb interaction for organ growth in Drosophila. Nat Commun. 2016;7:11501 pubmed publisher
  275. Wang L, Lee K, Malonis R, SANCHEZ I, Dynlacht B. Tethering of an E3 ligase by PCM1 regulates the abundance of centrosomal KIAA0586/Talpid3 and promotes ciliogenesis. elife. 2016;5: pubmed publisher
  276. Xiang J, Guo S, Jiang S, Xu Y, Li J, Li L, et al. Silencing of Long Non-Coding RNA MALAT1 Promotes Apoptosis of Glioma Cells. J Korean Med Sci. 2016;31:688-94 pubmed publisher
  277. Boateng L, Bennin D, de Oliveira S, Huttenlocher A. Mammalian Actin-binding Protein-1/Hip-55 Interacts with FHL2 and Negatively Regulates Cell Invasion. J Biol Chem. 2016;291:13987-98 pubmed publisher
  278. Di Lascio S, Belperio D, Benfante R, Fornasari D. Alanine Expansions Associated with Congenital Central Hypoventilation Syndrome Impair PHOX2B Homeodomain-mediated Dimerization and Nuclear Import. J Biol Chem. 2016;291:13375-93 pubmed publisher
  279. Zhao Z, Lee R, Pusapati G, Iyu A, Rohatgi R, Ingham P. An essential role for Grk2 in Hedgehog signalling downstream of Smoothened. EMBO Rep. 2016;17:739-52 pubmed publisher
  280. Verbist K, Guy C, Milasta S, Liedmann S, Kaminski M, Wang R, et al. Metabolic maintenance of cell asymmetry following division in activated T lymphocytes. Nature. 2016;532:389-93 pubmed publisher
  281. Xiong W, Li J, Zhang E, Huang H. BMAL1 regulates transcription initiation and activates circadian clock gene expression in mammals. Biochem Biophys Res Commun. 2016;473:1019-1025 pubmed publisher
  282. Fees C, Aiken J, O TOOLE E, Giddings T, Moore J. The negatively charged carboxy-terminal tail of ?-tubulin promotes proper chromosome segregation. Mol Biol Cell. 2016;27:1786-96 pubmed publisher
  283. Pfeiffer A, Stephanowitz H, Krause E, Volkwein C, Hirsch C, Jarosch E, et al. A Complex of Htm1 and the Oxidoreductase Pdi1 Accelerates Degradation of Misfolded Glycoproteins. J Biol Chem. 2016;291:12195-207 pubmed publisher
  284. Seifert L, Werba G, Tiwari S, Giao Ly N, Alothman S, Alqunaibit D, et al. The necrosome promotes pancreatic oncogenesis via CXCL1 and Mincle-induced immune suppression. Nature. 2016;532:245-9 pubmed publisher
  285. Kuzuya A, Zoltowska K, Post K, Arimon M, Li X, Svirsky S, et al. Identification of the novel activity-driven interaction between synaptotagmin 1 and presenilin 1 links calcium, synapse, and amyloid beta. BMC Biol. 2016;14:25 pubmed publisher
  286. An X, Zhao Z, Luo Y, Zhang R, Tang X, Hao D, et al. Netrin-1 suppresses the MEK/ERK pathway and ITGB4 in pancreatic cancer. Oncotarget. 2016;7:24719-33 pubmed publisher
  287. Ren S, Wang J, Chen T, Li H, Wan Y, Peng N, et al. Hepatitis B Virus Stimulated Fibronectin Facilitates Viral Maintenance and Replication through Two Distinct Mechanisms. PLoS ONE. 2016;11:e0152721 pubmed publisher
  288. Chou C, Fan C, Lin P, Liao P, Tung J, Hsieh C, et al. Sciellin mediates mesenchymal-to-epithelial transition in colorectal cancer hepatic metastasis. Oncotarget. 2016;7:25742-54 pubmed publisher
  289. Chen Y, Zhou C, Ji W, Mei Z, Hu B, Zhang W, et al. ELL targets c-Myc for proteasomal degradation and suppresses tumour growth. Nat Commun. 2016;7:11057 pubmed publisher
  290. Ongaratti B, Silva C, Trott G, Haag T, Leães C, Ferreira N, et al. Expression of merlin, NDRG2, ERBB2, and c-MYC in meningiomas: relationship with tumor grade and recurrence. Braz J Med Biol Res. 2016;49:e5125 pubmed publisher
  291. Federspiel J, Codreanu S, Palubinsky A, Winland A, Betanzos C, McLaughlin B, et al. Assembly Dynamics and Stoichiometry of the Apoptosis Signal-regulating Kinase (ASK) Signalosome in Response to Electrophile Stress. Mol Cell Proteomics. 2016;15:1947-61 pubmed publisher
  292. Hornick A, Li N, Oakland M, McCray P, Sinn P. Human, Pig, and Mouse Interferon-Induced Transmembrane Proteins Partially Restrict Pseudotyped Lentiviral Vectors. Hum Gene Ther. 2016;27:354-62 pubmed publisher
  293. Park S, Kim J, Kim N, Yang K, Shim J, Heo K. Estradiol, TGF-?1 and hypoxia promote breast cancer stemness and EMT-mediated breast cancer migration. Oncol Lett. 2016;11:1895-1902 pubmed
  294. Khurana T, Newman Lindsay S, Young P, Slater J. The NPC2 protein: A novel dog allergen. Ann Allergy Asthma Immunol. 2016;116:440-446.e2 pubmed publisher
  295. Prause M, Mayer C, Brorsson C, Frederiksen K, Billestrup N, Størling J, et al. JNK1 Deficient Insulin-Producing Cells Are Protected against Interleukin-1β-Induced Apoptosis Associated with Abrogated Myc Expression. J Diabetes Res. 2016;2016:1312705 pubmed publisher
  296. Mitxelena J, Apraiz A, Vallejo Rodríguez J, Malumbres M, Zubiaga A. E2F7 regulates transcription and maturation of multiple microRNAs to restrain cell proliferation. Nucleic Acids Res. 2016;: pubmed
  297. Pandiri I, Chen Y, Joe Y, Kim H, Park J, Chung H, et al. Tristetraprolin mediates the anti-proliferative effects of metformin in breast cancer cells. Breast Cancer Res Treat. 2016;156:57-64 pubmed publisher
  298. Camarda R, Zhou A, Kohnz R, Balakrishnan S, Mahieu C, Anderton B, et al. Inhibition of fatty acid oxidation as a therapy for MYC-overexpressing triple-negative breast cancer. Nat Med. 2016;22:427-32 pubmed publisher
  299. Hu W, Xiao L, Cao C, Hua S, Wu D. UBE2T promotes nasopharyngeal carcinoma cell proliferation, invasion, and metastasis by activating the AKT/GSK3β/β-catenin pathway. Oncotarget. 2016;7:15161-72 pubmed publisher
  300. Huang L, Mokkapati S, Hu Q, Ruteshouser E, Hicks M, Huff V. Nephron Progenitor But Not Stromal Progenitor Cells Give Rise to Wilms Tumors in Mouse Models with β-Catenin Activation or Wt1 Ablation and Igf2 Upregulation. Neoplasia. 2016;18:71-81 pubmed publisher
  301. Ramena G, Yin Y, Yu Y, Walia V, Elble R. CLCA2 Interactor EVA1 Is Required for Mammary Epithelial Cell Differentiation. PLoS ONE. 2016;11:e0147489 pubmed publisher
  302. Shin M, He Y, Marrogi E, Piperdi S, Ren L, Khanna C, et al. A RUNX2-Mediated Epigenetic Regulation of the Survival of p53 Defective Cancer Cells. PLoS Genet. 2016;12:e1005884 pubmed publisher
  303. Han H, Chen Y, Cheng L, Prochownik E, Li Y. microRNA-206 impairs c-Myc-driven cancer in a synthetic lethal manner by directly inhibiting MAP3K13. Oncotarget. 2016;7:16409-19 pubmed publisher
  304. McLaughlin D, Coey C, Yang W, Drohat A, Matunis M. Characterizing Requirements for Small Ubiquitin-like Modifier (SUMO) Modification and Binding on Base Excision Repair Activity of Thymine-DNA Glycosylase in Vivo. J Biol Chem. 2016;291:9014-24 pubmed publisher
  305. Xu M, Bian S, Li J, He J, Chen H, Ge L, et al. MeCP2 suppresses LIN28A expression via binding to its methylated-CpG islands in pancreatic cancer cells. Oncotarget. 2016;7:14476-85 pubmed publisher
  306. Katoh I, Fukunishi N, Fujimuro M, Kasai H, Moriishi K, Hata R, et al. Repression of Wnt/β-catenin response elements by p63 (TP63). Cell Cycle. 2016;15:699-710 pubmed publisher
  307. Prabhu A, Luu W, Sharpe L, Brown A. Cholesterol-mediated Degradation of 7-Dehydrocholesterol Reductase Switches the Balance from Cholesterol to Vitamin D Synthesis. J Biol Chem. 2016;291:8363-73 pubmed publisher
  308. Perumal D, Kuo P, Leshchenko V, Jiang Z, Divakar S, Cho H, et al. Dual Targeting of CDK4 and ARK5 Using a Novel Kinase Inhibitor ON123300 Exerts Potent Anticancer Activity against Multiple Myeloma. Cancer Res. 2016;76:1225-36 pubmed publisher
  309. Carrero Z, Kollareddy M, Chauhan K, Ramakrishnan G, Martinez L. Mutant p53 protects ETS2 from non-canonical COP1/DET1 dependent degradation. Oncotarget. 2016;7:12554-67 pubmed publisher
  310. Wu T, Li Y, Liu B, Zhang S, Wu L, Zhu X, et al. Expression of Ferritin Light Chain (FTL) Is Elevated in Glioblastoma, and FTL Silencing Inhibits Glioblastoma Cell Proliferation via the GADD45/JNK Pathway. PLoS ONE. 2016;11:e0149361 pubmed publisher
  311. Xu J, Wang N, Luo J, Xia J. Syntabulin regulates the trafficking of PICK1-containing vesicles in neurons. Sci Rep. 2016;6:20924 pubmed publisher
  312. Estruch S, Graham S, Deriziotis P, Fisher S. The language-related transcription factor FOXP2 is post-translationally modified with small ubiquitin-like modifiers. Sci Rep. 2016;6:20911 pubmed publisher
  313. Zhang Y, Liu J, Lin J, Zhou L, Song Y, Wei B, et al. The transcription factor GATA1 and the histone methyltransferase SET7 interact to promote VEGF-mediated angiogenesis and tumor growth and predict clinical outcome of breast cancer. Oncotarget. 2016;7:9859-75 pubmed publisher
  314. Franco M, Panas M, Marino N, Lee M, Buchholz K, Kelly F, et al. A Novel Secreted Protein, MYR1, Is Central to Toxoplasma's Manipulation of Host Cells. MBio. 2016;7:e02231-15 pubmed publisher
  315. Nakazawa M, Eisinger Mathason T, Sadri N, Ochocki J, Gade T, Amin R, et al. Epigenetic re-expression of HIF-2α suppresses soft tissue sarcoma growth. Nat Commun. 2016;7:10539 pubmed publisher
  316. Xia P, Ye B, Wang S, Zhu X, Du Y, Xiong Z, et al. Glutamylation of the DNA sensor cGAS regulates its binding and synthase activity in antiviral immunity. Nat Immunol. 2016;17:369-78 pubmed publisher
  317. Bandopadhayay P, Ramkissoon L, Jain P, Bergthold G, Wala J, Zeid R, et al. MYB-QKI rearrangements in angiocentric glioma drive tumorigenicity through a tripartite mechanism. Nat Genet. 2016;48:273-82 pubmed publisher
  318. Kourtidis A, Anastasiadis P. PLEKHA7 defines an apical junctional complex with cytoskeletal associations and miRNA-mediated growth implications. Cell Cycle. 2016;15:498-505 pubmed publisher
  319. Ansseau E, Eidahl J, Lancelot C, Tassin A, Mattéotti C, Yip C, et al. Homologous Transcription Factors DUX4 and DUX4c Associate with Cytoplasmic Proteins during Muscle Differentiation. PLoS ONE. 2016;11:e0146893 pubmed publisher
  320. Zhang J, Weng Z, Tsang K, Tsang L, Chan H, Jiang X. MycN Is Critical for the Maintenance of Human Embryonic Stem Cell-Derived Neural Crest Stem Cells. PLoS ONE. 2016;11:e0148062 pubmed publisher
  321. Ogawa F, Murphy L, Malavasi E, O Sullivan S, Torrance H, Porteous D, et al. NDE1 and GSK3? Associate with TRAK1 and Regulate Axonal Mitochondrial Motility: Identification of Cyclic AMP as a Novel Modulator of Axonal Mitochondrial Trafficking. ACS Chem Neurosci. 2016;7:553-64 pubmed publisher
  322. Hernday A, Lohse M, Nobile C, Noiman L, Laksana C, Johnson A. Ssn6 Defines a New Level of Regulation of White-Opaque Switching in Candida albicans and Is Required For the Stochasticity of the Switch. MBio. 2016;7:e01565-15 pubmed publisher
  323. Lechtenberg B, Rajput A, Sanishvili R, Dobaczewska M, Ware C, Mace P, et al. Structure of a HOIP/E2~ubiquitin complex reveals RBR E3 ligase mechanism and regulation. Nature. 2016;529:546-50 pubmed publisher
  324. Xu Z, Chikka M, Xia H, Ready D. Ire1 supports normal ER differentiation in developing Drosophila photoreceptors. J Cell Sci. 2016;129:921-9 pubmed publisher
  325. Larisch N, Kirsch S, Schambony A, Studtrucker T, Böckmann R, Dietrich P. The function of the two-pore channel TPC1 depends on dimerization of its carboxy-terminal helix. Cell Mol Life Sci. 2016;73:2565-81 pubmed publisher
  326. Lohse M, Johnson A. Identification and Characterization of Wor4, a New Transcriptional Regulator of White-Opaque Switching. G3 (Bethesda). 2016;6:721-9 pubmed publisher
  327. Venegas L, Pershad K, Bankole O, Shah N, Kay B. A comparison of phosphospecific affinity reagents reveals the utility of recombinant Forkhead-associated domains in recognizing phosphothreonine-containing peptides. N Biotechnol. 2016;33:537-43 pubmed publisher
  328. Kuo C, Li X, Stark J, Shih H, Ann D. RNF4 regulates DNA double-strand break repair in a cell cycle-dependent manner. Cell Cycle. 2016;15:787-98 pubmed publisher
  329. Crowder R, Dicker D, El Deiry W. The Deubiquitinase Inhibitor PR-619 Sensitizes Normal Human Fibroblasts to Tumor Necrosis Factor-related Apoptosis-inducing Ligand (TRAIL)-mediated Cell Death. J Biol Chem. 2016;291:5960-70 pubmed publisher
  330. Rao Y, Perna M, Hofmann B, Beier V, Wollert T. The Atg1-kinase complex tethers Atg9-vesicles to initiate autophagy. Nat Commun. 2016;7:10338 pubmed publisher
  331. Arimoto Matsuzaki K, Saito H, Takekawa M. TIA1 oxidation inhibits stress granule assembly and sensitizes cells to stress-induced apoptosis. Nat Commun. 2016;7:10252 pubmed publisher
  332. Lee S, Frattini V, Bansal M, Castano A, Sherman D, Hutchinson K, et al. An ID2-dependent mechanism for VHL inactivation in cancer. Nature. 2016;529:172-7 pubmed publisher
  333. Wilhelm K, Happel K, Eelen G, Schoors S, Oellerich M, Lim R, et al. FOXO1 couples metabolic activity and growth state in the vascular endothelium. Nature. 2016;529:216-20 pubmed publisher
  334. Conery A, Centore R, Neiss A, Keller P, Joshi S, Spillane K, et al. Bromodomain inhibition of the transcriptional coactivators CBP/EP300 as a therapeutic strategy to target the IRF4 network in multiple myeloma. elife. 2016;5: pubmed publisher
  335. Guo Z, Kong Q, Liu C, Zhang S, Zou L, Yan F, et al. DCAF1 controls T-cell function via p53-dependent and -independent mechanisms. Nat Commun. 2016;7:10307 pubmed publisher
  336. Hoopfer E, Jung Y, Inagaki H, Rubin G, Anderson D. P1 interneurons promote a persistent internal state that enhances inter-male aggression in Drosophila. elife. 2015;4: pubmed publisher
  337. Chen A, Kim S, Shepardson N, Patel S, Hong S, Selkoe D. Physical and functional interaction between the α- and γ-secretases: A new model of regulated intramembrane proteolysis. J Cell Biol. 2015;211:1157-76 pubmed publisher
  338. Schwenk J, Pérez Garci E, Schneider A, Kollewe A, Gauthier Kemper A, Fritzius T, et al. Modular composition and dynamics of native GABAB receptors identified by high-resolution proteomics. Nat Neurosci. 2016;19:233-42 pubmed publisher
  339. Silva M, Matheus W, Garcia P, Stopiglia R, Billis A, Ferreira U, et al. Characterization of reactive stroma in prostate cancer: involvement of growth factors, metalloproteinase matrix, sexual hormones receptors and prostatic stem cells. Int Braz J Urol. 2015;41:849-58 pubmed publisher
  340. Kaur G, Reinhart R, Monks A, Evans D, Morris J, Polley E, et al. Bromodomain and hedgehog pathway targets in small cell lung cancer. Cancer Lett. 2016;371:225-39 pubmed publisher
  341. Borriello A, Naviglio S, Bencivenga D, Caldarelli I, Tramontano A, Speranza M, et al. Histone Deacetylase Inhibitors Increase p27(Kip1) by Affecting Its Ubiquitin-Dependent Degradation through Skp2 Downregulation. Oxid Med Cell Longev. 2016;2016:2481865 pubmed publisher
  342. Zhang Y, Fan J, Ho J, Hu T, Kneeland S, Fan X, et al. Crim1 regulates integrin signaling in murine lens development. Development. 2016;143:356-66 pubmed publisher
  343. Siegfried J, Lin Y, Diergaarde B, Lin H, Dacic S, Pennathur A, et al. Expression of PAM50 Genes in Lung Cancer: Evidence that Interactions between Hormone Receptors and HER2/HER3 Contribute to Poor Outcome. Neoplasia. 2015;17:817-25 pubmed publisher
  344. Morrison G, Scognamiglio R, Trumpp A, Smith A. Convergence of cMyc and β-catenin on Tcf7l1 enables endoderm specification. EMBO J. 2016;35:356-68 pubmed publisher
  345. Monaghan M, Linneweh M, Liebscher S, Van Handel B, Layland S, Schenke Layland K. Endocardial-to-mesenchymal transformation and mesenchymal cell colonization at the onset of human cardiac valve development. Development. 2016;143:473-82 pubmed publisher
  346. Brunati M, Perucca S, Han L, Cattaneo A, Consolato F, Andolfo A, et al. The serine protease hepsin mediates urinary secretion and polymerisation of Zona Pellucida domain protein uromodulin. elife. 2015;4:e08887 pubmed publisher
  347. Bean L, Kumar A, Rani A, Guidi M, Rosario A, Cruz P, et al. Re-Opening the Critical Window for Estrogen Therapy. J Neurosci. 2015;35:16077-93 pubmed publisher
  348. Heuser S, Hufbauer M, Marx B, Tok A, Majewski S, Pfister H, et al. The levels of epithelial anchor proteins β-catenin and zona occludens-1 are altered by E7 of human papillomaviruses 5 and 8. J Gen Virol. 2016;97:463-72 pubmed publisher
  349. Shamay Ramot A, Khermesh K, Porath H, Barak M, Pinto Y, Wachtel C, et al. Fmrp Interacts with Adar and Regulates RNA Editing, Synaptic Density and Locomotor Activity in Zebrafish. PLoS Genet. 2015;11:e1005702 pubmed publisher
  350. Verdone L, La Fortezza M, Ciccarone F, Caiafa P, Zampieri M, Caserta M. Poly(ADP-Ribosyl)ation Affects Histone Acetylation and Transcription. PLoS ONE. 2015;10:e0144287 pubmed publisher
  351. Choi J, Park J, Park S, Lee H, Han S, Park K, et al. Regulation of mGluR7 trafficking by SUMOylation in neurons. Neuropharmacology. 2016;102:229-35 pubmed publisher
  352. Song H, Tao L, Chen C, Pan L, Hao J, Ni Y, et al. USP17-mediated deubiquitination and stabilization of HDAC2 in cigarette smoke extract-induced inflammation. Int J Clin Exp Pathol. 2015;8:10707-15 pubmed
  353. Zhang Y, Ma J, Li H, Lv J, Wei R, Cong Y, et al. bFGF signaling-mediated reprogramming of porcine primordial germ cells. Cell Tissue Res. 2016;364:429-41 pubmed publisher
  354. Kim H, An S, Ro S, Teixeira F, Park G, Kim C, et al. Janus-faced Sestrin2 controls ROS and mTOR signalling through two separate functional domains. Nat Commun. 2015;6:10025 pubmed publisher
  355. Ni Y, Tao L, Chen C, Song H, Li Z, Gao Y, et al. The Deubiquitinase USP17 Regulates the Stability and Nuclear Function of IL-33. Int J Mol Sci. 2015;16:27956-66 pubmed publisher
  356. Khmelinskii A, Meurer M, Ho C, Besenbeck B, Füller J, Lemberg M, et al. Incomplete proteasomal degradation of green fluorescent proteins in the context of tandem fluorescent protein timers. Mol Biol Cell. 2016;27:360-70 pubmed publisher
  357. Ittig S, Schmutz C, Kasper C, Amstutz M, Schmidt A, Sauteur L, et al. A bacterial type III secretion-based protein delivery tool for broad applications in cell biology. J Cell Biol. 2015;211:913-31 pubmed publisher
  358. Kim M, Kim M, Park S, Lee C, Lim D. Role of Angiomotin-like 2 mono-ubiquitination on YAP inhibition. EMBO Rep. 2016;17:64-78 pubmed publisher
  359. Tardito S, Oudin A, Ahmed S, Fack F, Keunen O, Zheng L, et al. Glutamine synthetase activity fuels nucleotide biosynthesis and supports growth of glutamine-restricted glioblastoma. Nat Cell Biol. 2015;17:1556-68 pubmed publisher
  360. Diersch S, Wirth M, Schneeweis C, Jörs S, Geisler F, Siveke J, et al. Kras(G12D) induces EGFR-MYC cross signaling in murine primary pancreatic ductal epithelial cells. Oncogene. 2016;35:3880-6 pubmed publisher
  361. Wang C, Wang Y, Hu M, Chai Z, Wu Q, Huang R, et al. Synaptotagmin-11 inhibits clathrin-mediated and bulk endocytosis. EMBO Rep. 2016;17:47-63 pubmed publisher
  362. Hirota S, Clements T, Tang L, Morales J, Lee H, Oh S, et al. Neuropilin 1 balances β8 integrin-activated TGFβ signaling to control sprouting angiogenesis in the brain. Development. 2015;142:4363-73 pubmed publisher
  363. Alexandrova S, Kalkan T, Humphreys P, Riddell A, Scognamiglio R, Trumpp A, et al. Selection and dynamics of embryonic stem cell integration into early mouse embryos. Development. 2016;143:24-34 pubmed publisher
  364. Matsunuma R, Niida H, Ohhata T, Kitagawa K, Sakai S, Uchida C, et al. UV Damage-Induced Phosphorylation of HBO1 Triggers CRL4DDB2-Mediated Degradation To Regulate Cell Proliferation. Mol Cell Biol. 2016;36:394-406 pubmed publisher
  365. Maxfield K, Taus P, Corcoran K, Wooten J, Macion J, Zhou Y, et al. Comprehensive functional characterization of cancer-testis antigens defines obligate participation in multiple hallmarks of cancer. Nat Commun. 2015;6:8840 pubmed publisher
  366. Hu X, Garcia C, Fazli L, Gleave M, Vitek M, Jansen M, et al. Inhibition of Pten deficient Castration Resistant Prostate Cancer by Targeting of the SET - PP2A Signaling axis. Sci Rep. 2015;5:15182 pubmed publisher
  367. Sun Y, Fu A, Xu W, Chao J, Moshiach S, Morris S. Myeloid leukemia factor 1 interfered with Bcl-XL to promote apoptosis and its function was regulated by 14-3-3. J Physiol Biochem. 2015;71:807-21 pubmed publisher
  368. He Q, Liu K, Tian Z, Du S. The Effects of Hsp90α1 Mutations on Myosin Thick Filament Organization. PLoS ONE. 2015;10:e0142573 pubmed publisher
  369. Carpentieri A, Cozzoli E, Scimeca M, Bonanno E, Sardanelli A, Gambacurta A. Differentiation of human neuroblastoma cells toward the osteogenic lineage by mTOR inhibitor. Cell Death Dis. 2015;6:e1974 pubmed publisher
  370. Vijayalingam S, Subramanian T, Zhao L, Chinnadurai G. The Cellular Protein Complex Associated with a Transforming Region of E1A Contains c-MYC. J Virol. 2016;90:1070-9 pubmed publisher
  371. Yu Z, Huang Y, Shieh S. Requirement for human Mps1/TTK in oxidative DNA damage repair and cell survival through MDM2 phosphorylation. Nucleic Acids Res. 2016;44:1133-50 pubmed publisher
  372. Xiao D, Ren P, Su H, Yue M, Xiu R, Hu Y, et al. Myc promotes glutaminolysis in human neuroblastoma through direct activation of glutaminase 2. Oncotarget. 2015;6:40655-66 pubmed publisher
  373. Pai P, Rachagani S, Lakshmanan I, Macha M, Sheinin Y, Smith L, et al. The canonical Wnt pathway regulates the metastasis-promoting mucin MUC4 in pancreatic ductal adenocarcinoma. Mol Oncol. 2016;10:224-39 pubmed publisher
  374. Hunter J, Butterworth J, Zhao B, Sellier H, Campbell K, Thomas H, et al. The NF-κB subunit c-Rel regulates Bach2 tumour suppressor expression in B-cell lymphoma. Oncogene. 2016;35:3476-84 pubmed publisher
  375. Zhou W, Cheng L, Shi Y, Ke S, Huang Z, Fang X, et al. Arsenic trioxide disrupts glioma stem cells via promoting PML degradation to inhibit tumor growth. Oncotarget. 2015;6:37300-15 pubmed publisher
  376. Hadzic E, Catillon M, Halavatyi A, Medves S, Van Troys M, Moes M, et al. Delineating the Tes Interaction Site in Zyxin and Studying Cellular Effects of Its Disruption. PLoS ONE. 2015;10:e0140511 pubmed publisher
  377. Jia D, Tan Y, Liu H, Ooi S, Li L, Wright K, et al. Cardamonin reduces chemotherapy-enriched breast cancer stem-like cells in vitro and in vivo. Oncotarget. 2016;7:771-85 pubmed publisher
  378. Thorslund T, Ripplinger A, Hoffmann S, Wild T, Uckelmann M, Villumsen B, et al. Histone H1 couples initiation and amplification of ubiquitin signalling after DNA damage. Nature. 2015;527:389-93 pubmed publisher
  379. Albertos P, Romero Puertas M, Tatematsu K, Mateos I, Sánchez Vicente I, Nambara E, et al. S-nitrosylation triggers ABI5 degradation to promote seed germination and seedling growth. Nat Commun. 2015;6:8669 pubmed publisher
  380. Liu C, Zheng L, Wang H, Ran X, Liu H, Sun X. The RCAN1 inhibits NF-κB and suppresses lymphoma growth in mice. Cell Death Dis. 2015;6:e1929 pubmed publisher
  381. Spiesberger K, Paulfranz F, Egger A, Reiser J, Vogl C, Rudolf Scholik J, et al. Large-Scale Purification of r28M: A Bispecific scFv Antibody Targeting Human Melanoma Produced in Transgenic Cattle. PLoS ONE. 2015;10:e0140471 pubmed publisher
  382. Magron A, Elowe S, Carreau M. The Fanconi Anemia C Protein Binds to and Regulates Stathmin-1 Phosphorylation. PLoS ONE. 2015;10:e0140612 pubmed publisher
  383. Lv X, Wu W, Tang X, Wu Y, Zhu Y, Liu Y, et al. Regulation of SOX10 stability via ubiquitination-mediated degradation by Fbxw7α modulates melanoma cell migration. Oncotarget. 2015;6:36370-82 pubmed publisher
  384. Chen J, Wang C, Lan W, Huang C, Lin M, Wang Z, et al. Gliotoxin Inhibits Proliferation and Induces Apoptosis in Colorectal Cancer Cells. Mar Drugs. 2015;13:6259-73 pubmed publisher
  385. Hwang J, Sung W, Tu H, Hsieh K, Yeh C, Chen C, et al. The Overexpression of FEN1 and RAD54B May Act as Independent Prognostic Factors of Lung Adenocarcinoma. PLoS ONE. 2015;10:e0139435 pubmed publisher
  386. Yun J, Song S, Kang J, Park J, Kim H, Han S, et al. Reduced cohesin destabilizes high-level gene amplification by disrupting pre-replication complex bindings in human cancers with chromosomal instability. Nucleic Acids Res. 2016;44:558-72 pubmed publisher
  387. Guo Y, Feng W, Sy S, Huen M. ATM-dependent Phosphorylation of the Fanconi Anemia Protein PALB2 Promotes the DNA Damage Response. J Biol Chem. 2015;290:27545-56 pubmed publisher
  388. Qin J, Zhou Z, Chen W, Wang C, Zhang H, Ge G, et al. BAP1 promotes breast cancer cell proliferation and metastasis by deubiquitinating KLF5. Nat Commun. 2015;6:8471 pubmed publisher
  389. Daou S, Hammond Martel I, Mashtalir N, Barbour H, Gagnon J, Iannantuono N, et al. The BAP1/ASXL2 Histone H2A Deubiquitinase Complex Regulates Cell Proliferation and Is Disrupted in Cancer. J Biol Chem. 2015;290:28643-63 pubmed publisher
  390. Shi C, Huang X, Zhang B, Zhu D, Luo H, Lu Q, et al. The Inhibition of Heat Shock Protein 90 Facilitates the Degradation of Poly-Alanine Expanded Poly (A) Binding Protein Nuclear 1 via the Carboxyl Terminus of Heat Shock Protein 70-Interacting Protein. PLoS ONE. 2015;10:e0138936 pubmed publisher
  391. Li Z, Hao Q, Luo J, Xiong J, Zhang S, Wang T, et al. USP4 inhibits p53 and NF-κB through deubiquitinating and stabilizing HDAC2. Oncogene. 2016;35:2902-12 pubmed publisher
  392. Gou M, Zhang Z, Zhang N, Huang Q, Monaghan J, Yang H, et al. Opposing Effects on Two Phases of Defense Responses from Concerted Actions of HEAT SHOCK COGNATE70 and BONZAI1 in Arabidopsis. Plant Physiol. 2015;169:2304-23 pubmed publisher
  393. Liu L, Zhang J, Yang X, Fang C, Xu H, Xi X. SALL4 as an Epithelial-Mesenchymal Transition and Drug Resistance Inducer through the Regulation of c-Myc in Endometrial Cancer. PLoS ONE. 2015;10:e0138515 pubmed publisher
  394. Bi H, Li S, Qu X, Wang M, Bai X, Xu Z, et al. DEC1 regulates breast cancer cell proliferation by stabilizing cyclin E protein and delays the progression of cell cycle S phase. Cell Death Dis. 2015;6:e1891 pubmed publisher
  395. Asghar A, Lajeunesse A, Dulla K, Combes G, Thebault P, Nigg E, et al. Bub1 autophosphorylation feeds back to regulate kinetochore docking and promote localized substrate phosphorylation. Nat Commun. 2015;6:8364 pubmed publisher
  396. Wu L, Guo L, Liang Y, Liu X, Jiang L, Wang L. Curcumin suppresses stem-like traits of lung cancer cells via inhibiting the JAK2/STAT3 signaling pathway. Oncol Rep. 2015;34:3311-7 pubmed publisher
  397. Fan H, Dong W, Li Q, Zou X, Zhang Y, Wang J, et al. Ajuba Preferentially Binds LXRα/RXRγ Heterodimer to Enhance LXR Target Gene Expression in Liver Cells. Mol Endocrinol. 2015;29:1608-18 pubmed publisher
  398. Bézie S, Picarda E, Ossart J, Tesson L, Usal C, Renaudin K, et al. IL-34 is a Treg-specific cytokine and mediates transplant tolerance. J Clin Invest. 2015;125:3952-64 pubmed publisher
  399. Raman M, Sergeev M, Garnaas M, Lydeard J, Huttlin E, Goessling W, et al. Systematic proteomics of the VCP-UBXD adaptor network identifies a role for UBXN10 in regulating ciliogenesis. Nat Cell Biol. 2015;17:1356-69 pubmed publisher
  400. Yokdang N, Hatakeyama J, Wald J, Simion C, Tellez J, Chang D, et al. LRIG1 opposes epithelial-to-mesenchymal transition and inhibits invasion of basal-like breast cancer cells. Oncogene. 2016;35:2932-47 pubmed publisher
  401. 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
  402. Qiao Y, Lin S, Chen Y, Voon D, Zhu F, Chuang L, et al. RUNX3 is a novel negative regulator of oncogenic TEAD-YAP complex in gastric cancer. Oncogene. 2016;35:2664-74 pubmed publisher
  403. Zhao Y, Londono P, Cao Y, Sharpe E, Proenza C, O Rourke R, et al. High-efficiency reprogramming of fibroblasts into cardiomyocytes requires suppression of pro-fibrotic signalling. Nat Commun. 2015;6:8243 pubmed publisher
  404. Yoo M, Kim B, Lee S, Jeong H, Park J, Seo D, et al. Syntaxin 4 regulates the surface localization of a promyogenic receptor Cdo thereby promoting myogenic differentiation. Skelet Muscle. 2015;5:28 pubmed publisher
  405. Zhang J, Tripathi D, Jing J, Alexander A, Kim J, Powell R, et al. ATM functions at the peroxisome to induce pexophagy in response to ROS. Nat Cell Biol. 2015;17:1259-1269 pubmed publisher
  406. Lee Y, Min C, Kim T, Song H, Lim Y, Kim D, et al. Structure and function of the N-terminal domain of the human mitochondrial calcium uniporter. EMBO Rep. 2015;16:1318-33 pubmed publisher
  407. Kim S, Yang W, Min Y, Ko Y, Yoon S. The role of the polycomb repressive complex pathway in T and NK cell lymphoma: biological and prognostic implications. Tumour Biol. 2016;37:2037-47 pubmed publisher
  408. Sharma B, Kolhe R, Black S, Keller J, Mivechi N, Satyanarayana A. Inhibitor of differentiation 1 transcription factor promotes metabolic reprogramming in hepatocellular carcinoma cells. FASEB J. 2016;30:262-75 pubmed publisher
  409. Chen Y, Bharill S, Isacoff E, Chalfie M. Subunit composition of a DEG/ENaC mechanosensory channel of Caenorhabditis elegans. Proc Natl Acad Sci U S A. 2015;112:11690-5 pubmed publisher
  410. Okoro E, Zhang H, Guo Z, Yang F, Smith C, Yang H. A Subregion of Reelin Suppresses Lipoprotein-Induced Cholesterol Accumulation in Macrophages. PLoS ONE. 2015;10:e0136895 pubmed publisher
  411. Chojnowski A, Ong P, Wong E, Lim J, Mutalif R, Navasankari R, et al. Progerin reduces LAP2α-telomere association in Hutchinson-Gilford progeria. elife. 2015;4: pubmed publisher
  412. Xu D, Wang Z, Zhang Y, Jiang W, Pan Y, Song B, et al. PAQR3 modulates cholesterol homeostasis by anchoring Scap/SREBP complex to the Golgi apparatus. Nat Commun. 2015;6:8100 pubmed publisher
  413. Kumarasamy V, Shin Y, White J, Sun D. Selective repression of RET proto-oncogene in medullary thyroid carcinoma by a natural alkaloid berberine. BMC Cancer. 2015;15:599 pubmed publisher
  414. He J, Xia M, Tsang W, Chow K, Xia J. ICA1L forms BAR-domain complexes with PICK1 and is crucial for acrosome formation in spermiogenesis. J Cell Sci. 2015;128:3822-36 pubmed publisher
  415. Rouka E, Simister P, Janning M, Kumbrink J, Konstantinou T, Muniz J, et al. Differential Recognition Preferences of the Three Src Homology 3 (SH3) Domains from the Adaptor CD2-associated Protein (CD2AP) and Direct Association with Ras and Rab Interactor 3 (RIN3). J Biol Chem. 2015;290:25275-92 pubmed publisher
  416. Kauko O, Laajala T, Jumppanen M, Hintsanen P, Suni V, Haapaniemi P, et al. Label-free quantitative phosphoproteomics with novel pairwise abundance normalization reveals synergistic RAS and CIP2A signaling. Sci Rep. 2015;5:13099 pubmed publisher
  417. Vitorino M, Silva A, Inácio J, Ramalho J, Gur M, Fainsod A, et al. Xenopus Pkdcc1 and Pkdcc2 Are Two New Tyrosine Kinases Involved in the Regulation of JNK Dependent Wnt/PCP Signaling Pathway. PLoS ONE. 2015;10:e0135504 pubmed publisher
  418. Sakabe I, Hu R, Jin L, Clarke R, Kasid U. TMEM33: a new stress-inducible endoplasmic reticulum transmembrane protein and modulator of the unfolded protein response signaling. Breast Cancer Res Treat. 2015;153:285-97 pubmed publisher
  419. Zhou Z, Xu C, Chen P, Liu C, Pang S, Yao X, et al. Stability of HIB-Cul3 E3 ligase adaptor HIB Is Regulated by Self-degradation and Availability of Its Substrates. Sci Rep. 2015;5:12709 pubmed publisher
  420. Chesarino N, McMichael T, Yount J. E3 Ubiquitin Ligase NEDD4 Promotes Influenza Virus Infection by Decreasing Levels of the Antiviral Protein IFITM3. PLoS Pathog. 2015;11:e1005095 pubmed publisher
  421. Lee H, Park Y, Cho M, Chae S, Yoo Y, Kwon M, et al. The chromatin remodeller RSF1 is essential for PLK1 deposition and function at mitotic kinetochores. Nat Commun. 2015;6:7904 pubmed publisher
  422. Hermanova I, Arruabarrena Aristorena A, Valis K, Nůsková H, Alberich Jorda M, Fiser K, et al. Pharmacological inhibition of fatty-acid oxidation synergistically enhances the effect of l-asparaginase in childhood ALL cells. Leukemia. 2016;30:209-18 pubmed publisher
  423. Klammt C, Novotná L, Li D, Wolf M, Blount A, Zhang K, et al. T cell receptor dwell times control the kinase activity of Zap70. Nat Immunol. 2015;16:961-9 pubmed publisher
  424. Subbaiah V, Zhang Y, Rajagopalan D, Abdullah L, Yeo Teh N, Tomaić V, et al. E3 ligase EDD1/UBR5 is utilized by the HPV E6 oncogene to destabilize tumor suppressor TIP60. Oncogene. 2016;35:2062-74 pubmed publisher
  425. Rohwedder A, Selcho M, Chassot B, Thum A. Neuropeptide F neurons modulate sugar reward during associative olfactory learning of Drosophila larvae. J Comp Neurol. 2015;523:2637-64 pubmed publisher
  426. Jiang L, Tam B, Ying G, Wu S, Hauswirth W, Frederick J, et al. Kinesin family 17 (osmotic avoidance abnormal-3) is dispensable for photoreceptor morphology and function. FASEB J. 2015;29:4866-80 pubmed publisher
  427. Chen C, Tian F, Lu L, Wang Y, Xiao Z, Yu C, et al. Characterization of Cep85 - a new antagonist of Nek2A that is involved in the regulation of centrosome disjunction. J Cell Sci. 2015;128:3290-303 pubmed publisher
  428. Woo Park J, Kim K, Kim J, Chae Y, Jeong O, Seo S. RE-IIBP Methylates H3K79 and Induces MEIS1-mediated Apoptosis via H2BK120 Ubiquitination by RNF20. Sci Rep. 2015;5:12485 pubmed publisher
  429. Chung D, Chan J, Strecker J, Zhang W, Ebrahimi Ardebili S, Lu T, et al. Perinuclear tethers license telomeric DSBs for a broad kinesin- and NPC-dependent DNA repair process. Nat Commun. 2015;6:7742 pubmed publisher
  430. Cho M, Park J, Choi H, Park M, Won H, Park Y, et al. DOT1L cooperates with the c-Myc-p300 complex to epigenetically derepress CDH1 transcription factors in breast cancer progression. Nat Commun. 2015;6:7821 pubmed publisher
  431. Pan Y, Cao F, Guo A, Chang W, Chen X, Ma W, et al. Endoplasmic reticulum ribosome-binding protein 1, RRBP1, promotes progression of colorectal cancer and predicts an unfavourable prognosis. Br J Cancer. 2015;113:763-72 pubmed publisher
  432. Kramann R, Fleig S, Schneider R, Fabian S, DiRocco D, Maarouf O, et al. Pharmacological GLI2 inhibition prevents myofibroblast cell-cycle progression and reduces kidney fibrosis. J Clin Invest. 2015;125:2935-51 pubmed publisher
  433. Birket M, Ribeiro M, Verkerk A, Ward D, Leitoguinho A, Den Hartogh S, et al. Expansion and patterning of cardiovascular progenitors derived from human pluripotent stem cells. Nat Biotechnol. 2015;33:970-9 pubmed publisher
  434. Phan L, Chou P, Velazquez Torres G, Samudio I, Parreno K, Huang Y, et al. The cell cycle regulator 14-3-3σ opposes and reverses cancer metabolic reprogramming. Nat Commun. 2015;6:7530 pubmed publisher
  435. Xu L, Long J, Wang P, Liu K, Mai L, Guo Y. Association between the ornithine decarboxylase G316A polymorphism and breast cancer survival. Oncol Lett. 2015;10:485-491 pubmed
  436. Bonnemaison M, Bäck N, Duffy M, Ralle M, Mains R, Eipper B. Adaptor Protein-1 Complex Affects the Endocytic Trafficking and Function of Peptidylglycine α-Amidating Monooxygenase, a Luminal Cuproenzyme. J Biol Chem. 2015;290:21264-79 pubmed publisher
  437. Wu Y, Chen H, Lu J, Zhang M, Zhang R, Duan T, et al. Acetylation-dependent function of human single-stranded DNA binding protein 1. Nucleic Acids Res. 2015;43:7878-87 pubmed publisher
  438. Lee S, Kim W, Ko C, Ryu W. Hepatitis B virus X protein enhances Myc stability by inhibiting SCF(Skp2) ubiquitin E3 ligase-mediated Myc ubiquitination and contributes to oncogenesis. Oncogene. 2016;35:1857-67 pubmed publisher
  439. Han Y, Choi Y, Lee S, Jin Y, Cheong H, Lee K. Yin Yang 1 is a multi-functional regulator of adipocyte differentiation in 3T3-L1 cells. Mol Cell Endocrinol. 2015;413:217-27 pubmed publisher
  440. Xu Q, Zhang Y, Wei Q, Huang Y, Li Y, Ling K, et al. BBS4 and BBS5 show functional redundancy in the BBSome to regulate the degradative sorting of ciliary sensory receptors. Sci Rep. 2015;5:11855 pubmed publisher
  441. Jung E, Sim Y, Jeong H, Kim S, Yun Y, Song J, et al. Jmjd2C increases MyoD transcriptional activity through inhibiting G9a-dependent MyoD degradation. Biochim Biophys Acta. 2015;1849:1081-94 pubmed publisher
  442. Mundim F, Pasini F, Brentani M, Soares F, Nonogaki S, Waitzberg A. MYC is expressed in the stromal and epithelial cells of primary breast carcinoma and paired nodal metastases. Mol Clin Oncol. 2015;3:506-514 pubmed
  443. Shan C, Lin J, Hou J, Liu H, Chen S, Chen A, et al. Chemical intervention of the NM23-H2 transcriptional programme on c-MYC via a novel small molecule. Nucleic Acids Res. 2015;43:6677-91 pubmed publisher
  444. Li Q, Peng H, Fan H, Zou X, Liu Q, Zhang Y, et al. The LIM protein Ajuba promotes adipogenesis by enhancing PPARγ and p300/CBP interaction. Cell Death Differ. 2016;23:158-68 pubmed publisher
  445. Sáez J, Gómez A, Barrios Ã, Parada G, Galdames L, González M, et al. Decreased Expression of CoREST1 and CoREST2 Together with LSD1 and HDAC1/2 during Neuronal Differentiation. PLoS ONE. 2015;10:e0131760 pubmed publisher
  446. Galoian K, Qureshi A, D Ippolito G, Schiller P, Molinari M, Johnstone A, et al. Epigenetic regulation of embryonic stem cell marker miR302C in human chondrosarcoma as determinant of antiproliferative activity of proline-rich polypeptide 1. Int J Oncol. 2015;47:465-72 pubmed publisher
  447. Holien T, Misund K, Olsen O, Baranowska K, Buene G, Børset M, et al. MYC amplifications in myeloma cell lines: correlation with MYC-inhibitor efficacy. Oncotarget. 2015;6:22698-705 pubmed
  448. Khan M, Wang B, Wei J, Zhang Y, Li Q, Luan X, et al. CXCR1/2 antagonism with CXCL8/Interleukin-8 analogue CXCL8(3-72)K11R/G31P restricts lung cancer growth by inhibiting tumor cell proliferation and suppressing angiogenesis. Oncotarget. 2015;6:21315-27 pubmed
  449. MILLER D, Hall H, Chaparian R, Mara M, Mueller A, Hall M, et al. Dephosphorylation of Iqg1 by Cdc14 regulates cytokinesis in budding yeast. Mol Biol Cell. 2015;26:2913-26 pubmed publisher
  450. Condelli V, Maddalena F, Sisinni L, Lettini G, Matassa D, Piscazzi A, et al. Targeting TRAP1 as a downstream effector of BRAF cytoprotective pathway: a novel strategy for human BRAF-driven colorectal carcinoma. Oncotarget. 2015;6:22298-309 pubmed
  451. Ge F, Chen W, Qin J, Zhou Z, Liu R, Liu L, et al. Ataxin-3 like (ATXN3L), a member of the Josephin family of deubiquitinating enzymes, promotes breast cancer proliferation by deubiquitinating Krüppel-like factor 5 (KLF5). Oncotarget. 2015;6:21369-78 pubmed
  452. Hwang B, McCool K, Wan J, Wuerzberger Davis S, Young E, Choi E, et al. IPO3-mediated Nonclassical Nuclear Import of NF-κB Essential Modulator (NEMO) Drives DNA Damage-dependent NF-κB Activation. J Biol Chem. 2015;290:17967-84 pubmed publisher
  453. Zhang K, Bhuripanyo K, Wang Y, Yin J. Coupling Binding to Catalysis: Using Yeast Cell Surface Display to Select Enzymatic Activities. Methods Mol Biol. 2015;1319:245-60 pubmed publisher
  454. Neo S, Itahana Y, Alagu J, Kitagawa M, Guo A, Lee S, et al. TRIM28 Is an E3 Ligase for ARF-Mediated NPM1/B23 SUMOylation That Represses Centrosome Amplification. Mol Cell Biol. 2015;35:2851-63 pubmed publisher
  455. Zhang T, Zhou Y, Qi S, Wang Z, Qian W, Ouyang Y, et al. Nuf2 is required for chromosome segregation during mouse oocyte meiotic maturation. Cell Cycle. 2015;14:2701-10 pubmed publisher
  456. von Einem B, Wahler A, Schips T, Serrano Pozo A, Proepper C, Boeckers T, et al. The Golgi-Localized γ-Ear-Containing ARF-Binding (GGA) Proteins Alter Amyloid-β Precursor Protein (APP) Processing through Interaction of Their GAE Domain with the Beta-Site APP Cleaving Enzyme 1 (BACE1). PLoS ONE. 2015;10:e0129047 pubmed publisher
  457. Pfoh R, Lacdao I, Georges A, Capar A, Zheng H, Frappier L, et al. Crystal Structure of USP7 Ubiquitin-like Domains with an ICP0 Peptide Reveals a Novel Mechanism Used by Viral and Cellular Proteins to Target USP7. PLoS Pathog. 2015;11:e1004950 pubmed publisher
  458. Knorr K, Schneider P, Meng X, Dai H, Smith B, Hess A, et al. MLN4924 induces Noxa upregulation in acute myelogenous leukemia and synergizes with Bcl-2 inhibitors. Cell Death Differ. 2015;22:2133-42 pubmed publisher
  459. Wang H, Sharma L, Lu J, Finch P, Fletcher S, Prochownik E. Structurally diverse c-Myc inhibitors share a common mechanism of action involving ATP depletion. Oncotarget. 2015;6:15857-70 pubmed
  460. Park S, Shim J, Park H, Eum D, Park M, Mi Yi J, et al. MacroH2A1 downregulation enhances the stem-like properties of bladder cancer cells by transactivation of Lin28B. Oncogene. 2016;35:1292-301 pubmed publisher
  461. Jackson B, Ivanova I, Dagnino L. An ELMO2-RhoG-ILK network modulates microtubule dynamics. Mol Biol Cell. 2015;26:2712-25 pubmed publisher
  462. Wang Z, Ma B, Ji X, Deng Y, Zhang T, Zhang X, et al. MicroRNA-378-5p suppresses cell proliferation and induces apoptosis in colorectal cancer cells by targeting BRAF. Cancer Cell Int. 2015;15:40 pubmed publisher
  463. Li P, Zhang L. Exogenous Nkx2.5- or GATA-4-transfected rabbit bone marrow mesenchymal stem cells and myocardial cell co-culture on the treatment of myocardial infarction in rabbits. Mol Med Rep. 2015;12:2607-21 pubmed publisher
  464. Levy Cohen G, Blank M. Functional analysis of protein ubiquitination. Anal Biochem. 2015;484:37-9 pubmed publisher
  465. Garcia P, Miller A, Kreitzburg K, Council L, Gamblin T, Christein J, et al. The BET bromodomain inhibitor JQ1 suppresses growth of pancreatic ductal adenocarcinoma in patient-derived xenograft models. Oncogene. 2016;35:833-45 pubmed publisher
  466. Xu H, Gustafson C, Sammons P, Khan S, Parsley N, Ramanathan C, et al. Cryptochrome 1 regulates the circadian clock through dynamic interactions with the BMAL1 C terminus. Nat Struct Mol Biol. 2015;22:476-484 pubmed publisher
  467. Kumar S, Ingle H, Mishra S, Mahla R, Kumar A, Kawai T, et al. IPS-1 differentially induces TRAIL, BCL2, BIRC3 and PRKCE in type I interferons-dependent and -independent anticancer activity. Cell Death Dis. 2015;6:e1758 pubmed publisher
  468. Cheng H, Liang Y, Kuo Y, Chuu C, Lin C, Lee M, et al. Identification of thioridazine, an antipsychotic drug, as an antiglioblastoma and anticancer stem cell agent using public gene expression data. Cell Death Dis. 2015;6:e1753 pubmed publisher
  469. Baker E, Taylor S, Gupte A, Sharp P, Walia M, Walsh N, et al. BET inhibitors induce apoptosis through a MYC independent mechanism and synergise with CDK inhibitors to kill osteosarcoma cells. Sci Rep. 2015;5:10120 pubmed publisher
  470. Yan Y, Wladyka C, Fujii J, Sockanathan S. Prdx4 is a compartment-specific H2O2 sensor that regulates neurogenesis by controlling surface expression of GDE2. Nat Commun. 2015;6:7006 pubmed publisher
  471. Qi S, Wang Z, Huang L, Liang L, Xian Y, Ouyang Y, et al. Casein kinase 1 (α, δ and ε) localize at the spindle poles, but may not be essential for mammalian oocyte meiotic progression. Cell Cycle. 2015;14:1675-85 pubmed publisher
  472. Chen X, Song X, Yue W, Chen D, Yu J, Yao Z, et al. Fibulin-5 inhibits Wnt/β-catenin signaling in lung cancer. Oncotarget. 2015;6:15022-34 pubmed
  473. Cattoglio C, Zhang E, Grubisic I, Chiba K, Fong Y, Tjian R. Functional and mechanistic studies of XPC DNA-repair complex as transcriptional coactivator in embryonic stem cells. Proc Natl Acad Sci U S A. 2015;112:E2317-26 pubmed publisher
  474. Meas R, Smerdon M, Wyrick J. The amino-terminal tails of histones H2A and H3 coordinate efficient base excision repair, DNA damage signaling and postreplication repair in Saccharomyces cerevisiae. Nucleic Acids Res. 2015;43:4990-5001 pubmed publisher
  475. Liu X, Chen Z, Xu C, Leng X, Cao H, Ouyang G, et al. Repression of hypoxia-inducible factor α signaling by Set7-mediated methylation. Nucleic Acids Res. 2015;43:5081-98 pubmed publisher
  476. González Prieto R, Cuijpers S, Kumar R, Hendriks I, Vertegaal A. c-Myc is targeted to the proteasome for degradation in a SUMOylation-dependent manner, regulated by PIAS1, SENP7 and RNF4. Cell Cycle. 2015;14:1859-72 pubmed publisher
  477. Rebucci M, Sermeus A, Leonard E, Delaive E, Dieu M, Fransolet M, et al. miRNA-196b inhibits cell proliferation and induces apoptosis in HepG2 cells by targeting IGF2BP1. Mol Cancer. 2015;14:79 pubmed publisher
  478. Yang L, Zhang S, George S, Teng R, You X, Xu M, et al. Targeting Notch1 and proteasome as an effective strategy to suppress T-cell lymphoproliferative neoplasms. Oncotarget. 2015;6:14953-69 pubmed
  479. Stemig M, Astelford K, Emery A, Cho J, Allen B, Huang T, et al. Deletion of histone deacetylase 7 in osteoclasts decreases bone mass in mice by interactions with MITF. PLoS ONE. 2015;10:e0123843 pubmed publisher
  480. Barfeld S, Fazli L, Persson M, Marjavaara L, Urbanucci A, Kaukoniemi K, et al. Myc-dependent purine biosynthesis affects nucleolar stress and therapy response in prostate cancer. Oncotarget. 2015;6:12587-602 pubmed
  481. Chen M, Gan X, Deng L, Hotta H. The NS5A protein of hepatitis C virus transcriptionally upregulates the AGR3 gene expression. Kobe J Med Sci. 2015;61:E27-35 pubmed
  482. Scifo E, Szwajda A, Soliymani R, Pezzini F, Bianchi M, Dapkunas A, et al. Proteomic analysis of the palmitoyl protein thioesterase 1 interactome in SH-SY5Y human neuroblastoma cells. J Proteomics. 2015;123:42-53 pubmed publisher
  483. Wang W, Huang X, Xin H, Fu M, Xue A, Wu Z. TRAF Family Member-associated NF-κB Activator (TANK) Inhibits Genotoxic Nuclear Factor κB Activation by Facilitating Deubiquitinase USP10-dependent Deubiquitination of TRAF6 Ligase. J Biol Chem. 2015;290:13372-85 pubmed publisher
  484. Figueiro Silva J, Gruart A, Clayton K, Podlesniy P, Abad M, Gasull X, et al. Neuronal pentraxin 1 negatively regulates excitatory synapse density and synaptic plasticity. J Neurosci. 2015;35:5504-21 pubmed publisher
  485. Ecker J, Oehme I, Mazitschek R, Korshunov A, Kool M, Hielscher T, et al. Targeting class I histone deacetylase 2 in MYC amplified group 3 medulloblastoma. Acta Neuropathol Commun. 2015;3:22 pubmed publisher
  486. Fu Q, Chen Z, Gong X, Cai Y, Chen Y, Ma X, et al. β-Catenin expression is regulated by an IRES-dependent mechanism and stimulated by paclitaxel in human ovarian cancer cells. Biochem Biophys Res Commun. 2015;461:21-7 pubmed publisher
  487. Carvajal Gonzalez J, Balmer S, Mendoza M, Dussert A, Collu G, Roman A, et al. The clathrin adaptor AP-1 complex and Arf1 regulate planar cell polarity in vivo. Nat Commun. 2015;6:6751 pubmed publisher
  488. Radhakrishnan J, Bazarek S, Chandran B, Gazmuri R. Cyclophilin-D: a resident regulator of mitochondrial gene expression. FASEB J. 2015;29:2734-48 pubmed publisher
  489. Rutkowska Wlodarczyk I, Aller M, Valbuena S, Bologna J, Prézeau L, Lerma J. A proteomic analysis reveals the interaction of GluK1 ionotropic kainate receptor subunits with Go proteins. J Neurosci. 2015;35:5171-9 pubmed publisher
  490. Trakhtenberg E, Morkin M, Patel K, Fernandez S, Sang A, Shaw P, et al. The N-terminal Set-β Protein Isoform Induces Neuronal Death. J Biol Chem. 2015;290:13417-26 pubmed publisher
  491. Hori A, Peddie C, Collinson L, Toda T. Centriolar satellite- and hMsd1/SSX2IP-dependent microtubule anchoring is critical for centriole assembly. Mol Biol Cell. 2015;26:2005-19 pubmed publisher
  492. Tsukiyama T, Fukui A, Terai S, Fujioka Y, Shinada K, Takahashi H, et al. Molecular Role of RNF43 in Canonical and Noncanonical Wnt Signaling. Mol Cell Biol. 2015;35:2007-23 pubmed publisher
  493. Mani J, Desy S, Niemann M, Chanfon A, Oeljeklaus S, Pusnik M, et al. Mitochondrial protein import receptors in Kinetoplastids reveal convergent evolution over large phylogenetic distances. Nat Commun. 2015;6:6646 pubmed publisher
  494. Freischmidt A, Wieland T, Richter B, Ruf W, Schaeffer V, Müller K, et al. Haploinsufficiency of TBK1 causes familial ALS and fronto-temporal dementia. Nat Neurosci. 2015;18:631-6 pubmed publisher
  495. Steglich B, Strålfors A, Khorosjutina O, Persson J, Smialowska A, Javerzat J, et al. The Fun30 chromatin remodeler Fft3 controls nuclear organization and chromatin structure of insulators and subtelomeres in fission yeast. PLoS Genet. 2015;11:e1005101 pubmed publisher
  496. Čajánek L, Glatter T, Nigg E. The E3 ubiquitin ligase Mib1 regulates Plk4 and centriole biogenesis. J Cell Sci. 2015;128:1674-82 pubmed publisher
  497. Fernández Busnadiego R, Saheki Y, De Camilli P. Three-dimensional architecture of extended synaptotagmin-mediated endoplasmic reticulum-plasma membrane contact sites. Proc Natl Acad Sci U S A. 2015;112:E2004-13 pubmed publisher
  498. Chen Q, Zhang F, Wang Y, Liu Z, Sun A, Zen K, et al. The transcription factor c-Myc suppresses MiR-23b and MiR-27b transcription during fetal distress and increases the sensitivity of neurons to hypoxia-induced apoptosis. PLoS ONE. 2015;10:e0120217 pubmed publisher
  499. Ambrosio S, Amente S, Napolitano G, Di Palo G, Lania L, Majello B. MYC impairs resolution of site-specific DNA double-strand breaks repair. Mutat Res. 2015;774:6-13 pubmed publisher
  500. Desantis A, Bruno T, Catena V, De Nicola F, Goeman F, Iezzi S, et al. Che-1-induced inhibition of mTOR pathway enables stress-induced autophagy. EMBO J. 2015;34:1214-30 pubmed publisher
  501. Albers J, Danzer C, Rechsteiner M, Lehmann H, Brandt L, Hejhal T, et al. A versatile modular vector system for rapid combinatorial mammalian genetics. J Clin Invest. 2015;125:1603-19 pubmed publisher
  502. Iemura K, Tanaka K. Chromokinesin Kid and kinetochore kinesin CENP-E differentially support chromosome congression without end-on attachment to microtubules. Nat Commun. 2015;6:6447 pubmed publisher
  503. Fujikawa A, Matsumoto M, Kuboyama K, Suzuki R, Noda M. Specific dephosphorylation at tyr-554 of git1 by ptprz promotes its association with paxillin and hic-5. PLoS ONE. 2015;10:e0119361 pubmed publisher
  504. Chang B, Choi Y, Kim J. Collagen complexes increase the efficiency of iPS cells generated using fibroblasts from adult mice. J Reprod Dev. 2015;61:145-53 pubmed publisher
  505. Rogler A, Kendziorra E, Giedl J, Stoehr C, Taubert H, Goebell P, et al. Functional analyses and prognostic significance of SFRP1 expression in bladder cancer. J Cancer Res Clin Oncol. 2015;141:1779-90 pubmed publisher
  506. Yu X, Chen S, Hou P, Wang M, Chen Y, Guo D. VHL negatively regulates SARS coronavirus replication by modulating nsp16 ubiquitination and stability. Biochem Biophys Res Commun. 2015;459:270-276 pubmed publisher
  507. Masuda K, Chiyoda T, Sugiyama N, Segura Cabrera A, Kabe Y, Ueki A, et al. LATS1 and LATS2 phosphorylate CDC26 to modulate assembly of the tetratricopeptide repeat subcomplex of APC/C. PLoS ONE. 2015;10:e0118662 pubmed publisher
  508. Arbeille E, Reynaud F, Sanyas I, Bozon M, Kindbeiter K, Causeret F, et al. Cerebrospinal fluid-derived Semaphorin3B orients neuroepithelial cell divisions in the apicobasal axis. Nat Commun. 2015;6:6366 pubmed publisher
  509. Gee H, Kim J, Lee M. Analysis of conventional and unconventional trafficking of CFTR and other membrane proteins. Methods Mol Biol. 2015;1270:137-54 pubmed publisher
  510. Zhang L, Hsu F, Mojsilovic Petrovic J, Jablonski A, Zhai J, Coulter D, et al. Structure-function analysis of SAP97, a modular scaffolding protein that drives dendrite growth. Mol Cell Neurosci. 2015;65:31-44 pubmed publisher
  511. Kratz A, Bärenz F, Richter K, Hoffmann I. Plk4-dependent phosphorylation of STIL is required for centriole duplication. Biol Open. 2015;4:370-7 pubmed publisher
  512. Shi X, Zirbes K, Rasmussen T, Ferdous A, Garry M, Koyano Nakagawa N, et al. The transcription factor Mesp1 interacts with cAMP-responsive element binding protein 1 (Creb1) and coactivates Ets variant 2 (Etv2) gene expression. J Biol Chem. 2015;290:9614-25 pubmed publisher
  513. Chen A, Kim E, Toh J, Vashisht A, Rashoff A, Van C, et al. Novel components of the Toxoplasma inner membrane complex revealed by BioID. MBio. 2015;6:e02357-14 pubmed publisher
  514. Papadopoulos T, Schemm R, Grubmüller H, Brose N. Lipid binding defects and perturbed synaptogenic activity of a Collybistin R290H mutant that causes epilepsy and intellectual disability. J Biol Chem. 2015;290:8256-70 pubmed publisher
  515. Fischer N, Elson G, Magistrelli G, Dheilly E, Fouque N, Laurendon A, et al. Exploiting light chains for the scalable generation and platform purification of native human bispecific IgG. Nat Commun. 2015;6:6113 pubmed publisher
  516. Sato M, Rodríguez Barrueco R, Yu J, Do C, Silva J, Gautier J. MYC is a critical target of FBXW7. Oncotarget. 2015;6:3292-305 pubmed
  517. Zhang N, Zhong P, Shin S, Metallo J, Danielson E, Olsen C, et al. S-SCAM, a rare copy number variation gene, induces schizophrenia-related endophenotypes in transgenic mouse model. J Neurosci. 2015;35:1892-904 pubmed publisher
  518. Hartmann M, Parra L, Ruschel A, Böhme S, Li Y, Morrison H, et al. Tumor Suppressor NF2 Blocks Cellular Migration by Inhibiting Ectodomain Cleavage of CD44. Mol Cancer Res. 2015;13:879-90 pubmed publisher
  519. Li Y, Wu Y, Abbatiello T, Wu W, Kim J, Sarkissyan M, et al. Slug contributes to cancer progression by direct regulation of ERα signaling pathway. Int J Oncol. 2015;46:1461-72 pubmed publisher
  520. Jeong H, Gil N, Lee H, Cho S, Kim K, Chun K, et al. Timely Degradation of Wip1 Phosphatase by APC/C Activator Protein Cdh1 is Necessary for Normal Mitotic Progression. J Cell Biochem. 2015;116:1602-12 pubmed publisher
  521. Rao R, Dhele N, Cheemadan S, Ketkar A, Jayandharan G, Palakodeti D, et al. Ezh2 mediated H3K27me3 activity facilitates somatic transition during human pluripotent reprogramming. Sci Rep. 2015;5:8229 pubmed publisher
  522. Kathania M, Zeng M, Yadav V, Moghaddam S, Yang B, Venuprasad K. Ndfip1 regulates itch ligase activity and airway inflammation via UbcH7. J Immunol. 2015;194:2160-7 pubmed publisher
  523. Marsolier J, Perichon M, Debarry J, Villoutreix B, Chluba J, Lopez T, et al. Theileria parasites secrete a prolyl isomerase to maintain host leukocyte transformation. Nature. 2015;520:378-82 pubmed publisher
  524. Li Z, Xiao J, Hu K, Wang G, Li M, Zhang J, et al. FBXW7 acts as an independent prognostic marker and inhibits tumor growth in human osteosarcoma. Int J Mol Sci. 2015;16:2294-306 pubmed publisher
  525. Zhang H, Cui F, Wu Y, Lou L, Liu L, Tian M, et al. The RING finger ubiquitin E3 ligase SDIR1 targets SDIR1-INTERACTING PROTEIN1 for degradation to modulate the salt stress response and ABA signaling in Arabidopsis. Plant Cell. 2015;27:214-27 pubmed publisher
  526. Petrosyan A, Ali M, Cheng P. Keratin 1 plays a critical role in golgi localization of core 2 N-acetylglucosaminyltransferase M via interaction with its cytoplasmic tail. J Biol Chem. 2015;290:6256-69 pubmed publisher
  527. Iwano S, Satou A, Matsumura S, Sugiyama N, Ishihama Y, Toyoshima F. PCTK1 regulates integrin-dependent spindle orientation via protein kinase A regulatory subunit KAP0 and myosin X. Mol Cell Biol. 2015;35:1197-208 pubmed publisher
  528. Lee S, Uchida Y, Wang J, Matsudaira T, Nakagawa T, Kishimoto T, et al. Transport through recycling endosomes requires EHD1 recruitment by a phosphatidylserine translocase. EMBO J. 2015;34:669-88 pubmed publisher
  529. Huang S, Zou X, Zhu J, Fu Y, Lin Q, Liang Y, et al. Attenuation of microRNA-16 derepresses the cyclins D1, D2 and E1 to provoke cardiomyocyte hypertrophy. J Cell Mol Med. 2015;19:608-19 pubmed publisher
  530. Gu A, Zhang S, Wang Y, Xiong H, Curtis T, Wan Y. A critical role for transcription factor Smad4 in T cell function that is independent of transforming growth factor β receptor signaling. Immunity. 2015;42:68-79 pubmed publisher
  531. Erdos B, Backes I, McCowan M, Hayward L, Scheuer D. Brain-derived neurotrophic factor modulates angiotensin signaling in the hypothalamus to increase blood pressure in rats. Am J Physiol Heart Circ Physiol. 2015;308:H612-22 pubmed publisher
  532. Cheng Y, Chen P, Chiang H, Suen C, Hwang M, Lin T, et al. Candidate tumor suppressor B-cell translocation gene 3 impedes neoplastic progression by suppression of AKT. Cell Death Dis. 2015;6:e1584 pubmed publisher
  533. Belman J, Bian R, Habtemichael E, Li D, Jurczak M, Alcazar Roman A, et al. Acetylation of TUG protein promotes the accumulation of GLUT4 glucose transporters in an insulin-responsive intracellular compartment. J Biol Chem. 2015;290:4447-63 pubmed publisher
  534. Thomas Y, Peter M, Mechali F, Blanchard J, Coux O, Baldin V. Kizuna is a novel mitotic substrate for CDC25B phosphatase. Cell Cycle. 2014;13:3867-77 pubmed publisher
  535. Satelli A, Mitra A, Brownlee Z, Xia X, Bellister S, Overman M, et al. Epithelial-mesenchymal transitioned circulating tumor cells capture for detecting tumor progression. Clin Cancer Res. 2015;21:899-906 pubmed publisher
  536. Krzeminski P, Sarasquete M, Misiewicz Krzeminska I, Corral R, Corchete L, Martín A, et al. Insights into epigenetic regulation of microRNA-155 expression in multiple myeloma. Biochim Biophys Acta. 2015;1849:353-66 pubmed publisher
  537. Myklebust L, Van Damme P, Støve S, Dörfel M, Abboud A, Kalvik T, et al. Biochemical and cellular analysis of Ogden syndrome reveals downstream Nt-acetylation defects. Hum Mol Genet. 2015;24:1956-76 pubmed publisher
  538. Gershony O, Pe er T, Noach Hirsh M, Elia N, Tzur A. Cytokinetic abscission is an acute G1 event. Cell Cycle. 2014;13:3436-41 pubmed publisher
  539. Garbe J, Vrba L, Sputova K, Fuchs L, Novak P, Brothman A, et al. Immortalization of normal human mammary epithelial cells in two steps by direct targeting of senescence barriers does not require gross genomic alterations. Cell Cycle. 2014;13:3423-35 pubmed publisher
  540. Saint Léger A, Koelblen M, Civitelli L, Bah A, Djerbi N, Giraud Panis M, et al. The basic N-terminal domain of TRF2 limits recombination endonuclease action at human telomeres. Cell Cycle. 2014;13:2469-74 pubmed publisher
  541. Dong X, Lin Q, Aihara A, Li Y, Huang C, Chung W, et al. Aspartate β-Hydroxylase expression promotes a malignant pancreatic cellular phenotype. Oncotarget. 2015;6:1231-48 pubmed
  542. Cao M, Milosevic I, Giovedi S, De Camilli P. Upregulation of Parkin in endophilin mutant mice. J Neurosci. 2014;34:16544-9 pubmed publisher
  543. Kuo P, Huang C, Lee C, Chang H, Hsieh S, Chung Y, et al. BCAS2 promotes prostate cancer cells proliferation by enhancing AR mRNA transcription and protein stability. Br J Cancer. 2015;112:391-402 pubmed publisher
  544. Kitai Y, Takeuchi O, Kawasaki T, Ori D, Sueyoshi T, Murase M, et al. Negative regulation of melanoma differentiation-associated gene 5 (MDA5)-dependent antiviral innate immune responses by Arf-like protein 5B. J Biol Chem. 2015;290:1269-80 pubmed publisher
  545. Kim H, Jung G. Reactive oxygen species increase HEPN1 expression via activation of the XBP1 transcription factor. FEBS Lett. 2014;588:4413-21 pubmed publisher
  546. Ma B, Chen Y, Chen L, Cheng H, Mu C, Li J, et al. Hypoxia regulates Hippo signalling through the SIAH2 ubiquitin E3 ligase. Nat Cell Biol. 2015;17:95-103 pubmed publisher
  547. Zhao H, Xie C, Lin X, Zhao Y, Han Y, Fan C, et al. Coexpression of IQ-domain GTPase-activating protein 1 (IQGAP1) and Dishevelled (Dvl) is correlated with poor prognosis in non-small cell lung cancer. PLoS ONE. 2014;9:e113713 pubmed publisher
  548. Pastuszka M, Okamoto C, Hamm Alvarez S, MacKay J. Flipping the Switch on Clathrin-Mediated Endocytosis using Thermally Responsive Protein Microdomains. Adv Funct Mater. 2014;24:5340-5347 pubmed
  549. Guo L, Shen Y, Zhao X, Guo L, Yu Z, Wang D, et al. Curcumin combined with oxaliplatin effectively suppress colorectal carcinoma in vivo through inducing apoptosis. Phytother Res. 2015;29:357-65 pubmed publisher
  550. Allepuz Fuster P, Martínez Fernández V, Garrido Godino A, Alonso Aguado S, Hanes S, Navarro F, et al. Rpb4/7 facilitates RNA polymerase II CTD dephosphorylation. Nucleic Acids Res. 2014;42:13674-88 pubmed
  551. Chen D, Wu C, Zhao S, Geng Q, Gao Y, Li X, et al. Three RNA binding proteins form a complex to promote differentiation of germline stem cell lineage in Drosophila. PLoS Genet. 2014;10:e1004797 pubmed publisher
  552. Johnson Kerner B, Ahmad F, Diaz A, Greene J, Gray S, Samulski R, et al. Intermediate filament protein accumulation in motor neurons derived from giant axonal neuropathy iPSCs rescued by restoration of gigaxonin. Hum Mol Genet. 2015;24:1420-31 pubmed publisher
  553. Chen J, Shin J, Zhao R, Phan L, Wang H, Xue Y, et al. CSN6 drives carcinogenesis by positively regulating Myc stability. Nat Commun. 2014;5:5384 pubmed publisher
  554. Legros P, Malapert A, Niinuma S, Bernard P, Vanoosthuyse V. RNA processing factors Swd2.2 and Sen1 antagonize RNA Pol III-dependent transcription and the localization of condensin at Pol III genes. PLoS Genet. 2014;10:e1004794 pubmed publisher
  555. Korobko E, Kiselev S, Korobko I. Characterization of Rabaptin-5 γ isoform. Biochemistry (Mosc). 2014;79:856-64 pubmed publisher
  556. Makowski S, Wang Z, Pomerantz J. A protease-independent function for SPPL3 in NFAT activation. Mol Cell Biol. 2015;35:451-67 pubmed publisher
  557. Izawa D, Pines J. The mitotic checkpoint complex binds a second CDC20 to inhibit active APC/C. Nature. 2015;517:631-4 pubmed publisher
  558. Kim M, Kim M, Lee M, Kim C, Lim D. The MST1/2-SAV1 complex of the Hippo pathway promotes ciliogenesis. Nat Commun. 2014;5:5370 pubmed publisher
  559. Ho T, Zollinger D, Chang K, Xu M, Cooper E, Stankewich M, et al. A hierarchy of ankyrin-spectrin complexes clusters sodium channels at nodes of Ranvier. Nat Neurosci. 2014;17:1664-72 pubmed publisher
  560. Kong S, Thiruppathi M, Qiu Q, Lin Z, Dong H, Chini E, et al. DBC1 is a suppressor of B cell activation by negatively regulating alternative NF-κB transcriptional activity. J Immunol. 2014;193:5515-24 pubmed publisher
  561. Ambavaram M, Basu S, Krishnan A, Ramegowda V, Batlang U, Rahman L, et al. Coordinated regulation of photosynthesis in rice increases yield and tolerance to environmental stress. Nat Commun. 2014;5:5302 pubmed publisher
  562. Kim H, Park J, Won H, Lee J, Kong G. CBX7 inhibits breast tumorigenicity through DKK-1-mediated suppression of the Wnt/β-catenin pathway. FASEB J. 2015;29:300-13 pubmed publisher
  563. Ibrahem S, Al Ghamdi S, Baloch K, Muhammad B, Fadhil W, Jackson D, et al. STAT3 paradoxically stimulates β-catenin expression but inhibits β-catenin function. Int J Exp Pathol. 2014;95:392-400 pubmed publisher
  564. Vanhoutteghem A, Messiaen S, Hervé F, Delhomme B, Moison D, Petit J, et al. The zinc-finger protein basonuclin 2 is required for proper mitotic arrest, prevention of premature meiotic initiation and meiotic progression in mouse male germ cells. Development. 2014;141:4298-310 pubmed publisher
  565. Srinivasan S, Romagnoli M, Bohm A, Sonenshein G. N-glycosylation regulates ADAM8 processing and activation. J Biol Chem. 2014;289:33676-88 pubmed publisher
  566. Zaru R, Edgar A, Hanauer A, Watts C. Structural and functional basis for p38-MK2-activated Rsk signaling in toll-like receptor-stimulated dendritic cells. Mol Cell Biol. 2015;35:132-40 pubmed publisher
  567. Kachaner D, Pinson X, El Kadhi K, Normandin K, Talje L, Lavoie H, et al. Interdomain allosteric regulation of Polo kinase by Aurora B and Map205 is required for cytokinesis. J Cell Biol. 2014;207:201-11 pubmed publisher
  568. Uehara Y, Inoue M, Fukuda K, Yamakoshi H, Hosoi Y, Kanda H, et al. Inhibition of β-catenin and STAT3 with a curcumin analog suppresses gastric carcinogenesis in vivo. Gastric Cancer. 2015;18:774-83 pubmed publisher
  569. Zhang T, Baldie G, Periz G, Wang J. RNA-processing protein TDP-43 regulates FOXO-dependent protein quality control in stress response. PLoS Genet. 2014;10:e1004693 pubmed publisher
  570. Wang D, Zhang P, Gao K, Tang Y, Jin X, Zhang Y, et al. PLK1 and β-TrCP-dependent ubiquitination and degradation of Rap1GAP controls cell proliferation. PLoS ONE. 2014;9:e110296 pubmed publisher
  571. Shinojima N, Nakamura H, Tasaki M, Kameno K, Anai S, Iyama K, et al. A patient with medulloblastoma in its early developmental stage. J Neurosurg Pediatr. 2014;14:615-20 pubmed publisher
  572. Ding Y, Dellisanti C, Ko M, Czajkowski C, Puglielli L. The endoplasmic reticulum-based acetyltransferases, ATase1 and ATase2, associate with the oligosaccharyltransferase to acetylate correctly folded polypeptides. J Biol Chem. 2014;289:32044-55 pubmed publisher
  573. Zhou X, Hao Q, Zhang Q, Liao J, Ke J, Liao P, et al. Ribosomal proteins L11 and L5 activate TAp73 by overcoming MDM2 inhibition. Cell Death Differ. 2015;22:755-66 pubmed publisher
  574. Pereira L, Pinto R, Silva D, Moreira A, Beitzinger C, Oliveira P, et al. Intracellular trafficking of AIP56, an NF-κB-cleaving toxin from Photobacterium damselae subsp. piscicida. Infect Immun. 2014;82:5270-85 pubmed publisher
  575. Mukai R, Ohshima T. HTLV-1 bZIP factor suppresses the centromere protein B (CENP-B)-mediated trimethylation of histone H3K9 through the abrogation of DNA-binding ability of CENP-B. J Gen Virol. 2015;96:159-64 pubmed publisher
  576. McGough I, Steinberg F, Gallon M, Yatsu A, Ohbayashi N, Heesom K, et al. Identification of molecular heterogeneity in SNX27-retromer-mediated endosome-to-plasma-membrane recycling. J Cell Sci. 2014;127:4940-53 pubmed publisher
  577. Kosaka T, Fukui R, Matsui M, Kurosaka Y, Nishimura H, Tanabe M, et al. RAGE, receptor of advanced glycation endoproducts, negatively regulates chondrocytes differentiation. PLoS ONE. 2014;9:e108819 pubmed publisher
  578. Charlaftis N, Suddason T, Wu X, Anwar S, Karin M, Gallagher E. The MEKK1 PHD ubiquitinates TAB1 to activate MAPKs in response to cytokines. EMBO J. 2014;33:2581-96 pubmed publisher
  579. Jia D, Yang W, Li L, Liu H, Tan Y, Ooi S, et al. β-Catenin and NF-κB co-activation triggered by TLR3 stimulation facilitates stem cell-like phenotypes in breast cancer. Cell Death Differ. 2015;22:298-310 pubmed publisher
  580. Shi Z, Shi F, Wang Y, Sheftel A, Nie G, Zhao Y, et al. Mitochondrial ferritin, a new target for inhibiting neuronal tumor cell proliferation. Cell Mol Life Sci. 2015;72:983-97 pubmed publisher
  581. Tao L, Chen C, Song H, Piccioni M, Shi G, Li B. Deubiquitination and stabilization of IL-33 by USP21. Int J Clin Exp Pathol. 2014;7:4930-7 pubmed
  582. Kang Y, Ge Y, Cassidy R, Lam V, Luo L, Moon K, et al. A combined transgenic proteomic analysis and regulated trafficking of neuroligin-2. J Biol Chem. 2014;289:29350-64 pubmed publisher
  583. Blin S, Chatelain F, Feliciangeli S, Kang D, Lesage F, Bichet D. Tandem pore domain halothane-inhibited K+ channel subunits THIK1 and THIK2 assemble and form active channels. J Biol Chem. 2014;289:28202-12 pubmed publisher
  584. Liao Y, Lin T, Chen C, Lin S, Au L. The antileukemia activity of natural product HQ17(3) is possibly associated with downregulation of miR-17-92 cluster. Biomed Res Int. 2014;2014:306718 pubmed publisher
  585. Wang W, Wu T, Kirschner M. The master cell cycle regulator APC-Cdc20 regulates ciliary length and disassembly of the primary cilium. elife. 2014;3:e03083 pubmed publisher
  586. Chai G, Zhou L, Manto M, Helmbacher F, Clotman F, Goffinet A, et al. Celsr3 is required in motor neurons to steer their axons in the hindlimb. Nat Neurosci. 2014;17:1171-9 pubmed publisher
  587. Izumi H, Kaneko Y. Trim32 facilitates degradation of MYCN on spindle poles and induces asymmetric cell division in human neuroblastoma cells. Cancer Res. 2014;74:5620-30 pubmed publisher
  588. Tsui H, Boersma M, Vella S, Kocaoglu O, Kuru E, Peceny J, et al. Pbp2x localizes separately from Pbp2b and other peptidoglycan synthesis proteins during later stages of cell division of Streptococcus pneumoniae?D39. Mol Microbiol. 2014;94:21-40 pubmed publisher
  589. Vassilopoulos A, Tominaga Y, Kim H, Lahusen T, Li B, Yu H, et al. WEE1 murine deficiency induces hyper-activation of APC/C and results in genomic instability and carcinogenesis. Oncogene. 2015;34:3023-35 pubmed publisher
  590. Wang M, Collins R. A lysine deacetylase Hos3 is targeted to the bud neck and involved in the spindle position checkpoint. Mol Biol Cell. 2014;25:2720-34 pubmed publisher
  591. Safronova O, Nakahama K, Morita I. Acute hypoxia affects P-TEFb through HDAC3 and HEXIM1-dependent mechanism to promote gene-specific transcriptional repression. Nucleic Acids Res. 2014;42:8954-69 pubmed publisher
  592. Simeone P, Trerotola M, Urbanella A, Lattanzio R, Ciavardelli D, Di Giuseppe F, et al. A unique four-hub protein cluster associates to glioblastoma progression. PLoS ONE. 2014;9:e103030 pubmed publisher
  593. Ro S, Semple I, Park H, Park H, Park H, Kim M, et al. Sestrin2 promotes Unc-51-like kinase 1 mediated phosphorylation of p62/sequestosome-1. FEBS J. 2014;281:3816-27 pubmed publisher
  594. Zhang P, Gao K, Tang Y, Jin X, An J, Yu H, et al. Destruction of DDIT3/CHOP protein by wild-type SPOP but not prostate cancer-associated mutants. Hum Mutat. 2014;35:1142-51 pubmed publisher
  595. Costales M, Lopez F, García Inclán C, Fernandez S, Marcos C, Llorente J, et al. Establishment and characterization of an orthotopic sinonasal squamous cell carcinoma mouse model. Head Neck. 2015;37:1769-75 pubmed publisher
  596. Azzolin L, Panciera T, Soligo S, Enzo E, Bicciato S, Dupont S, et al. YAP/TAZ incorporation in the ?-catenin destruction complex orchestrates the Wnt response. Cell. 2014;158:157-70 pubmed publisher
  597. McEwen A, Maher M, Mo R, Gottardi C. E-cadherin phosphorylation occurs during its biosynthesis to promote its cell surface stability and adhesion. Mol Biol Cell. 2014;25:2365-74 pubmed publisher
  598. Jefferson M, Donaszi Ivanov A, Pollen S, Dalmay T, Saalbach G, Powell P. Host factors that interact with the pestivirus N-terminal protease, Npro, are components of the ribonucleoprotein complex. J Virol. 2014;88:10340-53 pubmed publisher
  599. Choi Y, Kim Y, Jeong H, Jin Y, Yeo C, Lee K. Akt enhances Runx2 protein stability by regulating Smurf2 function during osteoblast differentiation. FEBS J. 2014;281:3656-66 pubmed publisher
  600. Lim Y, Lee D, Kalichamy K, Hong S, Michalak M, Ahnn J, et al. Sumoylation regulates ER stress response by modulating calreticulin gene expression in XBP-1-dependent mode in Caenorhabditis elegans. Int J Biochem Cell Biol. 2014;53:399-408 pubmed publisher
  601. Liu Q, Boudot A, Ni J, Hennessey T, Beauparlant S, Rajabi H, et al. Cyclin D1 and C/EBP? LAP1 operate in a common pathway to promote mammary epithelial cell differentiation. Mol Cell Biol. 2014;34:3168-79 pubmed publisher
  602. Jia Z, Gao S, M Rabet N, De Geyter C, Zhang H. Sp1 is necessary for gene activation of Adamts17 by estrogen. J Cell Biochem. 2014;115:1829-39 pubmed publisher
  603. Wu X, Wang Y, Wu Q, Cheng W, Liu W, Zhao Y, et al. HFE interacts with the BMP type I receptor ALK3 to regulate hepcidin expression. Blood. 2014;124:1335-43 pubmed publisher
  604. Choubey V, Cagalinec M, Liiv J, Safiulina D, Hickey M, Kuum M, et al. BECN1 is involved in the initiation of mitophagy: it facilitates PARK2 translocation to mitochondria. Autophagy. 2014;10:1105-19 pubmed publisher
  605. Kosicek M, Wunderlich P, Walter J, Hecimovic S. GGA1 overexpression attenuates amyloidogenic processing of the amyloid precursor protein in Niemann-Pick type C cells. Biochem Biophys Res Commun. 2014;450:160-5 pubmed publisher
  606. Warring S, Dou Z, Carruthers V, McFadden G, van Dooren G. Characterization of the chloroquine resistance transporter homologue in Toxoplasma gondii. Eukaryot Cell. 2014;13:1360-70 pubmed publisher
  607. Pante N, Fahrenkrog B. Exploring nuclear pore complex molecular architecture by immuno-electron microscopy using Xenopus oocytes. Methods Cell Biol. 2014;122:81-98 pubmed publisher
  608. Trakhtenberg E, Wang Y, Morkin M, Fernandez S, Mlacker G, Shechter J, et al. Regulating Set-?'s Subcellular Localization Toggles Its Function between Inhibiting and Promoting Axon Growth and Regeneration. J Neurosci. 2014;34:7361-74 pubmed publisher
  609. Zhang Q, Yang Z, Wang W, Guo T, Jia Z, Ma K, et al. A positive feedback regulation of ISL-1 in DLBCL but not in pancreatic ?-cells. Biochem Biophys Res Commun. 2014;449:295-300 pubmed publisher
  610. Aydin I, Melamed R, Adams S, Castillo Martin M, Demir A, Bryk D, et al. FBXW7 mutations in melanoma and a new therapeutic paradigm. J Natl Cancer Inst. 2014;106:dju107 pubmed publisher
  611. Warren C, Griffin L, Little A, Huang I, Farzan M, Pyeon D. The antiviral restriction factors IFITM1, 2 and 3 do not inhibit infection of human papillomavirus, cytomegalovirus and adenovirus. PLoS ONE. 2014;9:e96579 pubmed publisher
  612. Hans F, Fiesel F, Strong J, J ckel S, Rasse T, Geisler S, et al. UBE2E ubiquitin-conjugating enzymes and ubiquitin isopeptidase Y regulate TDP-43 protein ubiquitination. J Biol Chem. 2014;289:19164-79 pubmed publisher
  613. Barrios A, Gómez A, Sáez J, Ciossani G, Toffolo E, Battaglioli E, et al. Differential properties of transcriptional complexes formed by the CoREST family. Mol Cell Biol. 2014;34:2760-70 pubmed
  614. Vargas A, Zhou S, Ethier Chiasson M, Flipo D, Lafond J, Gilbert C, et al. Syncytin proteins incorporated in placenta exosomes are important for cell uptake and show variation in abundance in serum exosomes from patients with preeclampsia. FASEB J. 2014;28:3703-19 pubmed publisher
  615. van de Weijer M, Bassik M, Luteijn R, Voorburg C, Lohuis M, Kremmer E, et al. A high-coverage shRNA screen identifies TMEM129 as an E3 ligase involved in ER-associated protein degradation. Nat Commun. 2014;5:3832 pubmed publisher
  616. Jeong H, Lee S, Yum J, Yeo C, Lee K. Smurf2 regulates the degradation of YY1. Biochim Biophys Acta. 2014;1843:2005-11 pubmed publisher
  617. Rios Esteves J, Haugen B, Resh M. Identification of key residues and regions important for porcupine-mediated Wnt acylation. J Biol Chem. 2014;289:17009-19 pubmed publisher
  618. Jacob A, Singh R, Mohammad F, Bebee T, Chandler D. The splicing factor FUBP1 is required for the efficient splicing of oncogene MDM2 pre-mRNA. J Biol Chem. 2014;289:17350-64 pubmed publisher
  619. Okada N, Toda T, Yamamoto M, Sato M. CDK-dependent phosphorylation of Alp7-Alp14 (TACC-TOG) promotes its nuclear accumulation and spindle microtubule assembly. Mol Biol Cell. 2014;25:1969-82 pubmed publisher
  620. Van Der Meer R, Song H, Park S, Abdulkadir S, Roh M. RNAi screen identifies a synthetic lethal interaction between PIM1 overexpression and PLK1 inhibition. Clin Cancer Res. 2014;20:3211-21 pubmed publisher
  621. Lin Q, Aihara A, Chung W, Li Y, Chen X, Huang Z, et al. LRH1 promotes pancreatic cancer metastasis. Cancer Lett. 2014;350:15-24 pubmed publisher
  622. Asangani I, Dommeti V, Wang X, Malik R, Cieslik M, Yang R, et al. Therapeutic targeting of BET bromodomain proteins in castration-resistant prostate cancer. Nature. 2014;510:278-82 pubmed publisher
  623. Guilgur L, Prudêncio P, Sobral D, Liszeková D, Rosa A, Martinho R. Requirement for highly efficient pre-mRNA splicing during Drosophila early embryonic development. elife. 2014;3:e02181 pubmed publisher
  624. Kumar V, Palermo R, Talora C, Campese A, Checquolo S, Bellavia D, et al. Notch and NF-kB signaling pathways regulate miR-223/FBXW7 axis in T-cell acute lymphoblastic leukemia. Leukemia. 2014;28:2324-35 pubmed publisher
  625. Gad H, Koolmeister T, Jemth A, Eshtad S, Jacques S, Ström C, et al. MTH1 inhibition eradicates cancer by preventing sanitation of the dNTP pool. Nature. 2014;508:215-21 pubmed publisher
  626. Hashimoto Y, Shirane M, Matsuzaki F, Saita S, Ohnishi T, Nakayama K. Protrudin regulates endoplasmic reticulum morphology and function associated with the pathogenesis of hereditary spastic paraplegia. J Biol Chem. 2014;289:12946-61 pubmed publisher
  627. Lee J, Hong W, Majeti R, Stearns T. Centrosome-kinase fusions promote oncogenic signaling and disrupt centrosome function in myeloproliferative neoplasms. PLoS ONE. 2014;9:e92641 pubmed publisher
  628. Kitagawa M, Fung S, Hameed U, Goto H, Inagaki M, Lee S. Cdk1 coordinates timely activation of MKlp2 kinesin with relocation of the chromosome passenger complex for cytokinesis. Cell Rep. 2014;7:166-79 pubmed publisher
  629. Li J, Bai X, Zou Y, Hao Y, Xu X. Aberration of the Wnt signaling pathway in pulmonary fatal adenocarcinoma: a case report. Chin J Cancer Res. 2014;26:E13-6 pubmed publisher
  630. Beck J, Chen A, Kim E, Bradley P. RON5 is critical for organization and function of the Toxoplasma moving junction complex. PLoS Pathog. 2014;10:e1004025 pubmed publisher
  631. Wang R, Wang Y, Gao Z, Qu X. The comparative study of acetyl-11-keto-beta-boswellic acid (AKBA) and aspirin in the prevention of intestinal adenomatous polyposis in APC(Min/+) mice. Drug Discov Ther. 2014;8:25-32 pubmed
  632. Fayyadkazan M, Tate J, Vierendeels F, Cooper T, Dubois E, Georis I. Components of Golgi-to-vacuole trafficking are required for nitrogen- and TORC1-responsive regulation of the yeast GATA factors. Microbiologyopen. 2014;3:271-87 pubmed publisher
  633. Vannoy C, Xu L, Keramaris E, Lu P, Xiao X, Lu Q. Adeno-associated virus-mediated overexpression of LARGE rescues ?-dystroglycan function in dystrophic mice with mutations in the fukutin-related protein. Hum Gene Ther Methods. 2014;25:187-96 pubmed publisher
  634. Hoss A, Kartha V, Dong X, Latourelle J, Dumitriu A, Hadzi T, et al. MicroRNAs located in the Hox gene clusters are implicated in huntington's disease pathogenesis. PLoS Genet. 2014;10:e1004188 pubmed publisher
  635. Namadurai S, Balasuriya D, Rajappa R, Wiemhöfer M, Stott K, Klingauf J, et al. Crystal structure and molecular imaging of the Nav channel ?3 subunit indicates a trimeric assembly. J Biol Chem. 2014;289:10797-811 pubmed publisher
  636. Nakajima W, Hicks M, Tanaka N, Krystal G, Harada H. Noxa determines localization and stability of MCL-1 and consequently ABT-737 sensitivity in small cell lung cancer. Cell Death Dis. 2014;5:e1052 pubmed publisher
  637. Lee K, Seo J, Shin J, Ji E, Roh J, Kim J, et al. Positive feedback loop between Sox2 and Sox6 inhibits neuronal differentiation in the developing central nervous system. Proc Natl Acad Sci U S A. 2014;111:2794-9 pubmed publisher
  638. Guegan J, Ezan F, Gailhouste L, Langouet S, Baffet G. MEK1/2 overactivation can promote growth arrest by mediating ERK1/2-dependent phosphorylation of p70S6K. J Cell Physiol. 2014;229:903-15 pubmed publisher
  639. Kilander M, Petersen J, Andressen K, Ganji R, Levy F, Schuster J, et al. Disheveled regulates precoupling of heterotrimeric G proteins to Frizzled 6. FASEB J. 2014;28:2293-305 pubmed publisher
  640. Miyazawa N, Yoshikawa H, Magae S, Ishikawa H, Izumikawa K, Terukina G, et al. Human cell growth regulator Ly-1 antibody reactive homologue accelerates processing of preribosomal RNA. Genes Cells. 2014;19:273-86 pubmed publisher
  641. Wu D, Asiedu M, Matsumura F, Wei Q. Phosphorylation of myosin II-interacting guanine nucleotide exchange factor (MyoGEF) at threonine 544 by aurora B kinase promotes the binding of polo-like kinase 1 to MyoGEF. J Biol Chem. 2014;289:7142-50 pubmed publisher
  642. Facciuto F, Bugnon Valdano M, Marziali F, Massimi P, Banks L, Cavatorta A, et al. Human papillomavirus (HPV)-18 E6 oncoprotein interferes with the epithelial cell polarity Par3 protein. Mol Oncol. 2014;8:533-43 pubmed publisher
  643. Wilkars W, Wollberg J, Mohr E, Han M, Chetkovich D, Bähring R, et al. Nedd4-2 regulates surface expression and may affect N-glycosylation of hyperpolarization-activated cyclic nucleotide-gated (HCN)-1 channels. FASEB J. 2014;28:2177-90 pubmed publisher
  644. Chiang Y, Wang K, Fazli L, Qi R, Gleave M, Collins C, et al. GATA2 as a potential metastasis-driving gene in prostate cancer. Oncotarget. 2014;5:451-61 pubmed
  645. Wang C, Wang J, Liu Z, Ma X, Wang X, Jin H, et al. Ubiquitin-specific protease 2a stabilizes MDM4 and facilitates the p53-mediated intrinsic apoptotic pathway in glioblastoma. Carcinogenesis. 2014;35:1500-9 pubmed publisher
  646. Gericota B, Anderson J, Mitchell G, Borjesson D, Sturges B, Nolta J, et al. Canine epidermal neural crest stem cells: characterization and potential as therapy candidate for a large animal model of spinal cord injury. Stem Cells Transl Med. 2014;3:334-45 pubmed publisher
  647. Salvi M, Raiborg C, Hanson P, Campsteijn C, Stenmark H, Pinna L. CK2 involvement in ESCRT-III complex phosphorylation. Arch Biochem Biophys. 2014;545:83-91 pubmed publisher
  648. Laget S, Miotto B, Chin H, Esteve P, Roberts R, Pradhan S, et al. MBD4 cooperates with DNMT1 to mediate methyl-DNA repression and protects mammalian cells from oxidative stress. Epigenetics. 2014;9:546-56 pubmed publisher
  649. Cheng Y, Holloway M, Nguyen K, McCauley D, Landesman Y, Kauffman M, et al. XPO1 (CRM1) inhibition represses STAT3 activation to drive a survivin-dependent oncogenic switch in triple-negative breast cancer. Mol Cancer Ther. 2014;13:675-86 pubmed publisher
  650. Honarpour N, Rose C, Brumbaugh J, Anderson J, Graham R, Sweredoski M, et al. F-box protein FBXL16 binds PP2A-B55? and regulates differentiation of embryonic stem cells along the FLK1+ lineage. Mol Cell Proteomics. 2014;13:780-91 pubmed publisher
  651. D Anselmi F, Masiello M, Cucina A, Proietti S, Dinicola S, Pasqualato A, et al. Microenvironment promotes tumor cell reprogramming in human breast cancer cell lines. PLoS ONE. 2013;8:e83770 pubmed publisher
  652. Amable L, Gavin E, Kudo K, Meng E, Rocconi R, Shevde L, et al. GLI1 upregulates C-JUN through a specific 130-kDa isoform. Int J Oncol. 2014;44:655-61 pubmed publisher
  653. Qi M, Zhang J, Zeng W, Chen X. DNAJB1 stabilizes MDM2 and contributes to cancer cell proliferation in a p53-dependent manner. Biochim Biophys Acta. 2014;1839:62-9 pubmed publisher
  654. Zhang W, Ji W, Liu X, Ouyang G, Xiao W. ELL inhibits E2F1 transcriptional activity by enhancing E2F1 deacetylation via recruitment of histone deacetylase 1. Mol Cell Biol. 2014;34:765-75 pubmed publisher
  655. Liu F, Wang X, Hu G, Wang Y, Zhou J. The transcription factor TEAD1 represses smooth muscle-specific gene expression by abolishing myocardin function. J Biol Chem. 2014;289:3308-16 pubmed publisher
  656. Andresen C, Smedegaard S, Sylvestersen K, Svensson C, Iglesias Gato D, Cazzamali G, et al. Protein interaction screening for the ankyrin repeats and suppressor of cytokine signaling (SOCS) box (ASB) family identify Asb11 as a novel endoplasmic reticulum resident ubiquitin ligase. J Biol Chem. 2014;289:2043-54 pubmed publisher
  657. Li A, Jiao Y, Yong K, Wang F, Gao C, Yan B, et al. SALL4 is a new target in endometrial cancer. Oncogene. 2015;34:63-72 pubmed publisher
  658. Wu K, Chen K, Wang C, Jiao X, Wang L, Zhou J, et al. Cell fate factor DACH1 represses YB-1-mediated oncogenic transcription and translation. Cancer Res. 2014;74:829-39 pubmed publisher
  659. Fujikawa M, Ohsakaya S, Sugawara K, Yoshida M. Population of ATP synthase molecules in mitochondria is limited by available 6.8-kDa proteolipid protein (MLQ). Genes Cells. 2014;19:153-60 pubmed publisher
  660. Brookheart R, Lee C, Espenshade P. Casein kinase 1 regulates sterol regulatory element-binding protein (SREBP) to control sterol homeostasis. J Biol Chem. 2014;289:2725-35 pubmed publisher
  661. Feng Y, Wu H, Xu Y, Zhang Z, Liu T, Lin X, et al. Zinc finger protein 451 is a novel Smad corepressor in transforming growth factor-? signaling. J Biol Chem. 2014;289:2072-83 pubmed publisher
  662. Kusunoki S, Ishimi Y. Interaction of human minichromosome maintenance protein-binding protein with minichromosome maintenance 2-7. FEBS J. 2014;281:1057-67 pubmed publisher
  663. Sisinni L, Maddalena F, Lettini G, Condelli V, Matassa D, Esposito F, et al. TRAP1 role in endoplasmic reticulum stress protection favors resistance to anthracyclins in breast carcinoma cells. Int J Oncol. 2014;44:573-82 pubmed publisher
  664. Kriz V, Pospichalova V, Masek J, Kilander M, Slavík J, Tanneberger K, et al. ?-arrestin promotes Wnt-induced low density lipoprotein receptor-related protein 6 (Lrp6) phosphorylation via increased membrane recruitment of Amer1 protein. J Biol Chem. 2014;289:1128-41 pubmed publisher
  665. Han J, Rho S, Lee J, Bae J, Park S, Lee S, et al. Human cytomegalovirus (HCMV) US2 protein interacts with human CD1d (hCD1d) and down-regulates invariant NKT (iNKT) cell activity. Mol Cells. 2013;36:455-64 pubmed publisher
  666. Cridge A, Visweswaraiah J, Ramesh R, Sattlegger E. Semi-quantitative colony immunoassay for determining and optimizing protein expression in Saccharomyces cerevisiae and Escherichia coli. Anal Biochem. 2014;447:82-9 pubmed publisher
  667. Pang C, Toh S, He P, Teissier S, Ben Khalifa Y, Xue Y, et al. A functional interaction of E7 with B-Myb-MuvB complex promotes acute cooperative transcriptional activation of both S- and M-phase genes. (129 c). Oncogene. 2014;33:4039-49 pubmed publisher
  668. Liu H, Zhang W, Jia Y, Yu Q, Grau G, Peng L, et al. Single-cell clones of liver cancer stem cells have the potential of differentiating into different types of tumor cells. Cell Death Dis. 2013;4:e857 pubmed publisher
  669. DeGennaro C, Alver B, Marguerat S, Stepanova E, Davis C, Bähler J, et al. Spt6 regulates intragenic and antisense transcription, nucleosome positioning, and histone modifications genome-wide in fission yeast. Mol Cell Biol. 2013;33:4779-92 pubmed publisher
  670. Li T, Lu H, Shen C, Lahiri S, Wason M, Mukherjee D, et al. Identification of epithelial stromal interaction 1 as a novel effector downstream of Krüppel-like factor 8 in breast cancer invasion and metastasis. Oncogene. 2014;33:4746-55 pubmed publisher
  671. de Kreuk B, Schaefer A, Anthony E, Tol S, Fernandez Borja M, Geerts D, et al. The human minor histocompatibility antigen 1 is a RhoGAP. PLoS ONE. 2013;8:e73962 pubmed publisher
  672. Shain A, Salari K, Giacomini C, Pollack J. Integrative genomic and functional profiling of the pancreatic cancer genome. BMC Genomics. 2013;14:624 pubmed publisher
  673. Verma S, Cai Q, Kreider E, Lu J, Robertson E. Comprehensive analysis of LANA interacting proteins essential for viral genome tethering and persistence. PLoS ONE. 2013;8:e74662 pubmed publisher
  674. Simone L, Caplan S, Naslavsky N. Role of phosphatidylinositol 4,5-bisphosphate in regulating EHD2 plasma membrane localization. PLoS ONE. 2013;8:e74519 pubmed publisher
  675. Florea V, Bhagavatula N, Simovic G, Macedo F, Fock R, Rodrigues C. c-Myc is essential to prevent endothelial pro-inflammatory senescent phenotype. PLoS ONE. 2013;8:e73146 pubmed publisher
  676. Yin F, Li G, Bai C, Liu Y, Wei Z, Liang C, et al. SGO1 maintains bovine meiotic and mitotic centromeric cohesions of sister chromatids and directly affects embryo development. PLoS ONE. 2013;8:e73636 pubmed publisher
  677. Lee I, Yun J, Finkel T. The emerging links between sirtuins and autophagy. Methods Mol Biol. 2013;1077:259-71 pubmed publisher
  678. Zhang Y, Raghuwanshi R, Shen W, Montell C. Food experience-induced taste desensitization modulated by the Drosophila TRPL channel. Nat Neurosci. 2013;16:1468-76 pubmed publisher
  679. Okuda J, Niizuma S, Shioi T, Kato T, Inuzuka Y, Kawashima T, et al. Persistent overexpression of phosphoglycerate mutase, a glycolytic enzyme, modifies energy metabolism and reduces stress resistance of heart in mice. PLoS ONE. 2013;8:e72173 pubmed publisher
  680. Man Y, DiCara D, Chan N, Vessillier S, Mather S, Rowe M, et al. Structural guided scaffold phage display libraries as a source of bio-therapeutics. PLoS ONE. 2013;8:e70452 pubmed publisher
  681. Li Y, Takahashi M, Stork P. Ras-mutant cancer cells display B-Raf binding to Ras that activates extracellular signal-regulated kinase and is inhibited by protein kinase A phosphorylation. J Biol Chem. 2013;288:27646-57 pubmed publisher
  682. Balasuriya D, Goetze T, Barrera N, Stewart A, Suzuki Y, Edwardson J. ?-Amino-3-hydroxy-5-methyl-4-isoxazole propionic acid (AMPA) and N-methyl-D-aspartate (NMDA) receptors adopt different subunit arrangements. J Biol Chem. 2013;288:21987-98 pubmed publisher
  683. Kitagawa M, Fung S, Onishi N, Saya H, Lee S. Targeting Aurora B to the equatorial cortex by MKlp2 is required for cytokinesis. PLoS ONE. 2013;8:e64826 pubmed publisher
  684. Chandra S, Priyadarshini R, Madhavan V, Tikoo S, Hussain M, Mudgal R, et al. Enhancement of c-Myc degradation by BLM helicase leads to delayed tumor initiation. J Cell Sci. 2013;126:3782-95 pubmed publisher
  685. Chen Y, Lee L, Chao Y, Chang J, Lu Y, Li H, et al. DSG3 facilitates cancer cell growth and invasion through the DSG3-plakoglobin-TCF/LEF-Myc/cyclin D1/MMP signaling pathway. PLoS ONE. 2013;8:e64088 pubmed publisher
  686. Schofield A, Gamell C, Bernard O. Tubulin polymerization promoting protein 1 (TPPP1) increases ?-catenin expression through inhibition of HDAC6 activity in U2OS osteosarcoma cells. Biochem Biophys Res Commun. 2013;436:571-7 pubmed publisher
  687. Wei Q, Li J, Liu T, Tong X, Ye X. Phosphorylation of minichromosome maintenance protein 7 (MCM7) by cyclin/cyclin-dependent kinase affects its function in cell cycle regulation. J Biol Chem. 2013;288:19715-25 pubmed publisher
  688. Hong F, Liu B, Chiosis G, Gewirth D, Li Z. ?7 helix region of ?I domain is crucial for integrin binding to endoplasmic reticulum chaperone gp96: a potential therapeutic target for cancer metastasis. J Biol Chem. 2013;288:18243-8 pubmed publisher
  689. An C, Ganio E, Hagiwara N. Trip12, a HECT domain E3 ubiquitin ligase, targets Sox6 for proteasomal degradation and affects fiber type-specific gene expression in muscle cells. Skelet Muscle. 2013;3:11 pubmed publisher
  690. Gal J, Chen J, Barnett K, Yang L, Brumley E, Zhu H. HDAC6 regulates mutant SOD1 aggregation through two SMIR motifs and tubulin acetylation. J Biol Chem. 2013;288:15035-45 pubmed publisher
  691. Shevchuk Z, Yurchenko M, Darekar S, Holodnuka Kholodnyuk I, Kashuba V, Kashuba E. Overexpression of MRPS18-2 in Cancer Cell Lines Results in Appearance of Multinucleated Cells. Acta Naturae. 2013;5:85-9 pubmed
  692. Wu S, Zhu W, Nhan T, Toth J, Petroski M, Wolf D. CAND1 controls in vivo dynamics of the cullin 1-RING ubiquitin ligase repertoire. Nat Commun. 2013;4:1642 pubmed publisher
  693. Ritchie B, Smolski W, Montgomery E, Fisher E, Choi T, Olson C, et al. Determinants at the N- and C-termini of G?12 required for activation of Rho-mediated signaling. J Mol Signal. 2013;8:3 pubmed publisher
  694. Pe er T, Lahmi R, Sharaby Y, Chorni E, Noach M, Vecsler M, et al. Gas2l3, a novel constriction site-associated protein whose regulation is mediated by the APC/C Cdh1 complex. PLoS ONE. 2013;8:e57532 pubmed publisher
  695. Yamada H, Abe T, Satoh A, Okazaki N, Tago S, Kobayashi K, et al. Stabilization of actin bundles by a dynamin 1/cortactin ring complex is necessary for growth cone filopodia. J Neurosci. 2013;33:4514-26 pubmed publisher
  696. Schael S, Nüchel J, Muller S, Petermann P, Kormann J, Pérez Otaño I, et al. Casein kinase 2 phosphorylation of protein kinase C and casein kinase 2 substrate in neurons (PACSIN) 1 protein regulates neuronal spine formation. J Biol Chem. 2013;288:9303-12 pubmed publisher
  697. Mao R, Rubio V, Chen H, Bai L, Mansour O, Shi Z. OLA1 protects cells in heat shock by stabilizing HSP70. Cell Death Dis. 2013;4:e491 pubmed publisher
  698. Li L, Yang G, Ren C, Tanimoto R, Hirayama T, Wang J, et al. Glioma pathogenesis-related protein 1 induces prostate cancer cell death through Hsc70-mediated suppression of AURKA and TPX2. Mol Oncol. 2013;7:484-96 pubmed publisher
  699. Newman A, Scholefield C, Kemp A, Newman M, McIver E, Kamal A, et al. TBK1 kinase addiction in lung cancer cells is mediated via autophagy of Tax1bp1/Ndp52 and non-canonical NF-κB signalling. PLoS ONE. 2012;7:e50672 pubmed publisher
  700. Marban C, McCabe A, Bukong T, Hall W, Sheehy N. Interplay between the HTLV-2 Tax and APH-2 proteins in the regulation of the AP-1 pathway. Retrovirology. 2012;9:98 pubmed publisher
  701. Alimova I, Birks D, Harris P, Knipstein J, Venkataraman S, Marquez V, et al. Inhibition of EZH2 suppresses self-renewal and induces radiation sensitivity in atypical rhabdoid teratoid tumor cells. Neuro Oncol. 2013;15:149-60 pubmed publisher
  702. de Kreuk B, Anthony E, Geerts D, Hordijk P. The F-BAR protein PACSIN2 regulates epidermal growth factor receptor internalization. J Biol Chem. 2012;287:43438-53 pubmed publisher
  703. Aivar P, Fernandez Orth J, Gomis Pèrez C, Alberdi A, Alaimo A, Rodriguez M, et al. Surface expression and subunit specific control of steady protein levels by the Kv7.2 helix A-B linker. PLoS ONE. 2012;7:e47263 pubmed publisher
  704. Nixon A, Jia Y, White C, Bradbury N. Determination of the membrane topology of lemur tyrosine kinase 2 (LMTK2) by fluorescence protease protection. Am J Physiol Cell Physiol. 2013;304:C164-9 pubmed publisher
  705. Lee J, Fischer J. Drosophila Tel2 is expressed as a translational fusion with EpsinR and is a regulator of wingless signaling. PLoS ONE. 2012;7:e46357 pubmed publisher
  706. Konsavage W, Jin G, Yochum G. The Myc 3' Wnt-responsive element regulates homeostasis and regeneration in the mouse intestinal tract. Mol Cell Biol. 2012;32:3891-902 pubmed publisher
  707. Prabowo A, Anink J, Lammens M, Nellist M, van den Ouweland A, Adle Biassette H, et al. Fetal brain lesions in tuberous sclerosis complex: TORC1 activation and inflammation. Brain Pathol. 2013;23:45-59 pubmed publisher
  708. Nagata T, Shimada Y, Sekine S, Hori R, Matsui K, Okumura T, et al. Prognostic significance of NANOG and KLF4 for breast cancer. Breast Cancer. 2014;21:96-101 pubmed publisher
  709. Novellino L, Rossi R, Bonino F, Cavallone D, Abrignani S, Pagani M, et al. Circulating hepatitis B surface antigen particles carry hepatocellular microRNAs. PLoS ONE. 2012;7:e31952 pubmed publisher
  710. Xu S, Cheng F, Liang J, Wu W, Zhang J. Maternal xNorrin, a canonical Wnt signaling agonist and TGF-β antagonist, controls early neuroectoderm specification in Xenopus. PLoS Biol. 2012;10:e1001286 pubmed publisher
  711. Giaginis C, Politi E, Alexandrou P, Sfiniadakis J, Kouraklis G, Theocharis S. Expression of peroxisome proliferator activated receptor-gamma (PPAR-?) in human non-small cell lung carcinoma: correlation with clinicopathological parameters, proliferation and apoptosis related molecules and patients' survival. Pathol Oncol Res. 2012;18:875-83 pubmed
  712. Wong J, Higgins M, Halliday G, Garner B. Amyloid beta selectively modulates neuronal TrkB alternative transcript expression with implications for Alzheimer's disease. Neuroscience. 2012;210:363-74 pubmed publisher
  713. Huang Y, Chiang N, Hu C, Hsiao C, Cheng K, Tsai W, et al. Activation of myeloid cell-specific adhesion class G protein-coupled receptor EMR2 via ligation-induced translocation and interaction of receptor subunits in lipid raft microdomains. Mol Cell Biol. 2012;32:1408-20 pubmed publisher
  714. White D, Rafalska Metcalf I, Ivanov A, Corsinotti A, Peng H, Lee S, et al. The ATM substrate KAP1 controls DNA repair in heterochromatin: regulation by HP1 proteins and serine 473/824 phosphorylation. Mol Cancer Res. 2012;10:401-14 pubmed publisher
  715. Lanham K, Prasch A, Weina K, Peterson R, Heideman W. A dominant negative zebrafish Ahr2 partially protects developing zebrafish from dioxin toxicity. PLoS ONE. 2011;6:e28020 pubmed publisher
  716. Jung Y, Joo K, Seong D, Choi Y, Kong D, Kim Y, et al. Identification of prognostic biomarkers for glioblastomas using protein expression profiling. Int J Oncol. 2012;40:1122-32 pubmed publisher
  717. Zhang H, Anderson A, Trowell S, Luo A, Xiang Z, Xia Q. Topological and functional characterization of an insect gustatory receptor. PLoS ONE. 2011;6:e24111 pubmed publisher
  718. Haffner M, Chaux A, Meeker A, Esopi D, Gerber J, Pellakuru L, et al. Global 5-hydroxymethylcytosine content is significantly reduced in tissue stem/progenitor cell compartments and in human cancers. Oncotarget. 2011;2:627-37 pubmed
  719. Ochiai K, Watanabe M, Ueki H, Huang P, Fujii Y, Nasu Y, et al. Tumor suppressor REIC/Dkk-3 interacts with the dynein light chain, Tctex-1. Biochem Biophys Res Commun. 2011;412:391-5 pubmed publisher
  720. Challagundla K, Sun X, Zhang X, Devine T, Zhang Q, Sears R, et al. Ribosomal protein L11 recruits miR-24/miRISC to repress c-Myc expression in response to ribosomal stress. Mol Cell Biol. 2011;31:4007-21 pubmed publisher
  721. Franco H, Casasnovas J, León R, Friesel R, Ge Y, Desnick R, et al. Nonsense mutations of the bHLH transcription factor TWIST2 found in Setleis Syndrome patients cause dysregulation of periostin. Int J Biochem Cell Biol. 2011;43:1523-31 pubmed publisher
  722. Colombari D, Colombari E, Freiria Oliveira A, Antunes V, Yao S, Hindmarch C, et al. Switching control of sympathetic activity from forebrain to hindbrain in chronic dehydration. J Physiol. 2011;589:4457-71 pubmed publisher
  723. Liu Z, Lin X, Cai Z, Zhang Z, Han C, Jia S, et al. Global identification of SMAD2 target genes reveals a role for multiple co-regulatory factors in zebrafish early gastrulas. J Biol Chem. 2011;286:28520-32 pubmed publisher
  724. Liu D, Kadota K, Ueno M, Nakashima N, Yokomise H, Huang C. Adenoviral vector expressing short hairpin RNA targeting Wnt2B has an effective antitumour activity against Wnt2B2-overexpressing tumours. Eur J Cancer. 2012;48:1208-18 pubmed publisher
  725. Schramm S, Fraune J, Naumann R, Hernández Hernández A, Hoog C, Cooke H, et al. A novel mouse synaptonemal complex protein is essential for loading of central element proteins, recombination, and fertility. PLoS Genet. 2011;7:e1002088 pubmed publisher
  726. Yu J, Deshmukh H, Payton J, Dunham C, Scheithauer B, Tihan T, et al. Array-based comparative genomic hybridization identifies CDK4 and FOXM1 alterations as independent predictors of survival in malignant peripheral nerve sheath tumor. Clin Cancer Res. 2011;17:1924-34 pubmed publisher
  727. Kanke M, Nishimura K, Kanemaki M, Kakimoto T, Takahashi T, Nakagawa T, et al. Auxin-inducible protein depletion system in fission yeast. BMC Cell Biol. 2011;12:8 pubmed publisher
  728. Soler Lopez M, Zanzoni A, Lluís R, Stelzl U, Aloy P. Interactome mapping suggests new mechanistic details underlying Alzheimer's disease. Genome Res. 2011;21:364-76 pubmed publisher
  729. Zanazzi G, Matthews G. Enrichment and differential targeting of complexins 3 and 4 in ribbon-containing sensory neurons during zebrafish development. Neural Dev. 2010;5:24 pubmed publisher
  730. Göb E, Schmitt J, Benavente R, Alsheimer M. Mammalian sperm head formation involves different polarization of two novel LINC complexes. PLoS ONE. 2010;5:e12072 pubmed publisher
  731. Hirata H, Hinoda Y, Nakajima K, Kawamoto K, Kikuno N, Ueno K, et al. Wnt antagonist DKK1 acts as a tumor suppressor gene that induces apoptosis and inhibits proliferation in human renal cell carcinoma. Int J Cancer. 2011;128:1793-803 pubmed publisher
  732. Dai M, Sun X, Lu H. Ribosomal protein L11 associates with c-Myc at 5 S rRNA and tRNA genes and regulates their expression. J Biol Chem. 2010;285:12587-94 pubmed publisher
  733. Kanaan N, Goffin E, Pirson Y, Devuyst O, Hassoun Z. Carbohydrate antigen 19-9 as a diagnostic marker for hepatic cyst infection in autosomal dominant polycystic kidney disease. Am J Kidney Dis. 2010;55:916-22 pubmed publisher
  734. Hiraike H, Wada Hiraike O, Nakagawa S, Koyama S, Miyamoto Y, Sone K, et al. Identification of DBC1 as a transcriptional repressor for BRCA1. Br J Cancer. 2010;102:1061-7 pubmed publisher
  735. Koo B, Coe D, Dixon L, Somerville R, Nelson C, Wang L, et al. ADAMTS9 is a cell-autonomously acting, anti-angiogenic metalloprotease expressed by microvascular endothelial cells. Am J Pathol. 2010;176:1494-504 pubmed publisher
  736. Lim K, Brady D, Kashatus D, Ancrile B, Der C, Cox A, et al. Aurora-A phosphorylates, activates, and relocalizes the small GTPase RalA. Mol Cell Biol. 2010;30:508-23 pubmed publisher
  737. Koo B, Park M, Jeon O, Kim D. Regulatory mechanism of matrix metalloprotease-2 enzymatic activity by factor Xa and thrombin. J Biol Chem. 2009;284:23375-85 pubmed publisher
  738. Nobile C, Nett J, Hernday A, Homann O, Deneault J, Nantel A, et al. Biofilm matrix regulation by Candida albicans Zap1. PLoS Biol. 2009;7:e1000133 pubmed publisher
  739. Hood F, Royle S. Functional equivalence of the clathrin heavy chains CHC17 and CHC22 in endocytosis and mitosis. J Cell Sci. 2009;122:2185-90 pubmed publisher
  740. Yang L, Shen L, Shao Y, Zhao Q, Zhang W. Cytoplasmic domain of human Fcalpha/mu receptor is required for ligand internalization. Cell Immunol. 2009;258:78-82 pubmed publisher
  741. Katzenellenbogen R, Vliet Gregg P, Xu M, Galloway D. NFX1-123 increases hTERT expression and telomerase activity posttranscriptionally in human papillomavirus type 16 E6 keratinocytes. J Virol. 2009;83:6446-56 pubmed publisher
  742. Nayak A, Glöckner Pagel J, Vaeth M, Schumann J, Buttmann M, Bopp T, et al. Sumoylation of the transcription factor NFATc1 leads to its subnuclear relocalization and interleukin-2 repression by histone deacetylase. J Biol Chem. 2009;284:10935-46 pubmed publisher
  743. Huot M, Brown C, Lamarche Vane N, Richard S. An adaptor role for cytoplasmic Sam68 in modulating Src activity during cell polarization. Mol Cell Biol. 2009;29:1933-43 pubmed publisher
  744. Holthouse D, Dallas P, Ford J, Fabian V, Murch A, Watson M, et al. Classic and desmoplastic medulloblastoma: complete case reports and characterizations of two new cell lines. Neuropathology. 2009;29:398-409 pubmed publisher
  745. Kong D, Song S, Kim D, Joo K, Yoo J, Koh J, et al. Prognostic significance of c-Met expression in glioblastomas. Cancer. 2009;115:140-8 pubmed publisher
  746. Itahana K, Zhang Y. Mitochondrial p32 is a critical mediator of ARF-induced apoptosis. Cancer Cell. 2008;13:542-53 pubmed publisher
  747. Chevalier Larsen E, Wallace K, Pennise C, Holzbaur E. Lysosomal proliferation and distal degeneration in motor neurons expressing the G59S mutation in the p150Glued subunit of dynactin. Hum Mol Genet. 2008;17:1946-55 pubmed publisher
  748. Sakasai R, Tibbetts R. RNF8-dependent and RNF8-independent regulation of 53BP1 in response to DNA damage. J Biol Chem. 2008;283:13549-55 pubmed publisher
  749. Itatsu K, Zen Y, Ohira S, Ishikawa A, Sato Y, Harada K, et al. Immunohistochemical analysis of the progression of flat and papillary preneoplastic lesions in intrahepatic cholangiocarcinogenesis in hepatolithiasis. Liver Int. 2007;27:1174-84 pubmed
  750. Sato T, Diehl T, Narayanan S, Funamoto S, Ihara Y, De Strooper B, et al. Active gamma-secretase complexes contain only one of each component. J Biol Chem. 2007;282:33985-93 pubmed
  751. Ito K, Ikebe M, Kashiyama T, Mogami T, Kon T, Yamamoto K. Kinetic mechanism of the fastest motor protein, Chara myosin. J Biol Chem. 2007;282:19534-45 pubmed
  752. De Nicola F, Bruno T, Iezzi S, Di Padova M, Floridi A, Passananti C, et al. The prolyl isomerase Pin1 affects Che-1 stability in response to apoptotic DNA damage. J Biol Chem. 2007;282:19685-91 pubmed
  753. Jones N, Hardy W, Friese M, Jorgensen C, Smith M, Woody N, et al. Analysis of a Shc family adaptor protein, ShcD/Shc4, that associates with muscle-specific kinase. Mol Cell Biol. 2007;27:4759-73 pubmed
  754. Koo B, Longpre J, Somerville R, Alexander J, Leduc R, Apte S. Regulation of ADAMTS9 secretion and enzymatic activity by its propeptide. J Biol Chem. 2007;282:16146-54 pubmed
  755. Arola A, Sanchez X, Murphy R, Hasle E, Li H, Elliott P, et al. Mutations in PDLIM3 and MYOZ1 encoding myocyte Z line proteins are infrequently found in idiopathic dilated cardiomyopathy. Mol Genet Metab. 2007;90:435-40 pubmed
  756. Wagner W, Fodor E, Ginsburg A, Hammer J. The binding of DYNLL2 to myosin Va requires alternatively spliced exon B and stabilizes a portion of the myosin's coiled-coil domain. Biochemistry. 2006;45:11564-77 pubmed
  757. Ratcliffe E, Setru S, Chen J, Li Z, D Autréaux F, Gershon M. Netrin/DCC-mediated attraction of vagal sensory axons to the fetal mouse gut. J Comp Neurol. 2006;498:567-80 pubmed
  758. Isono K, Nemoto K, Li Y, Takada Y, Suzuki R, Katsuki M, et al. Overlapping roles for homeodomain-interacting protein kinases hipk1 and hipk2 in the mediation of cell growth in response to morphogenetic and genotoxic signals. Mol Cell Biol. 2006;26:2758-71 pubmed
  759. O Donnell K, Yu D, Zeller K, Kim J, Racke F, Thomas Tikhonenko A, et al. Activation of transferrin receptor 1 by c-Myc enhances cellular proliferation and tumorigenesis. Mol Cell Biol. 2006;26:2373-86 pubmed
  760. Kilianova Z, Basora N, Kilian P, Payet M, Gallo Payet N. Human melanocortin receptor 2 expression and functionality: effects of protein kinase A and protein kinase C on desensitization and internalization. Endocrinology. 2006;147:2325-37 pubmed
  761. Spence H, McGarry L, Chew C, Carragher N, Scott Carragher L, Yuan Z, et al. AP-1 differentially expressed proteins Krp1 and fibronectin cooperatively enhance Rho-ROCK-independent mesenchymal invasion by altering the function, localization, and activity of nondifferentially expressed proteins. Mol Cell Biol. 2006;26:1480-95 pubmed
  762. Iwata A, Riley B, Johnston J, Kopito R. HDAC6 and microtubules are required for autophagic degradation of aggregated huntingtin. J Biol Chem. 2005;280:40282-92 pubmed
  763. Beier C, Wischhusen J, Gleichmann M, Gerhardt E, Pekanovic A, Krueger A, et al. FasL (CD95L/APO-1L) resistance of neurons mediated by phosphatidylinositol 3-kinase-Akt/protein kinase B-dependent expression of lifeguard/neuronal membrane protein 35. J Neurosci. 2005;25:6765-74 pubmed
  764. Jansen S, Stefan C, Creemers J, Waelkens E, Van Eynde A, Stalmans W, et al. Proteolytic maturation and activation of autotaxin (NPP2), a secreted metastasis-enhancing lysophospholipase D. J Cell Sci. 2005;118:3081-9 pubmed
  765. O Donnell K, Wentzel E, Zeller K, Dang C, Mendell J. c-Myc-regulated microRNAs modulate E2F1 expression. Nature. 2005;435:839-43 pubmed
  766. Liewen H, Meinhold Heerlein I, Oliveira V, Schwarzenbacher R, Luo G, Wadle A, et al. Characterization of the human GARP (Golgi associated retrograde protein) complex. Exp Cell Res. 2005;306:24-34 pubmed
  767. Torres V, Ivie S, McClain M, Cover T. Functional properties of the p33 and p55 domains of the Helicobacter pylori vacuolating cytotoxin. J Biol Chem. 2005;280:21107-14 pubmed
  768. Goldstein A, Jan Y, Luo L. Function and regulation of Tumbleweed (RacGAP50C) in neuroblast proliferation and neuronal morphogenesis. Proc Natl Acad Sci U S A. 2005;102:3834-9 pubmed
  769. Ho T, Starnbach M. The Salmonella enterica serovar typhimurium-encoded type III secretion systems can translocate Chlamydia trachomatis proteins into the cytosol of host cells. Infect Immun. 2005;73:905-11 pubmed
  770. Soosairajah J, Maiti S, Wiggan O, Sarmiere P, Moussi N, Sarcevic B, et al. Interplay between components of a novel LIM kinase-slingshot phosphatase complex regulates cofilin. EMBO J. 2005;24:473-86 pubmed
  771. Silvotti L, Giannini G, Tirindelli R. The vomeronasal receptor V2R2 does not require escort molecules for expression in heterologous systems. Chem Senses. 2005;30:1-8 pubmed
  772. Zhang J, Wang Y, Zhou Y, Cao Z, Huang P, Lu B. Yeast two-hybrid screens imply that GGNBP1, GGNBP2 and OAZ3 are potential interaction partners of testicular germ cell-specific protein GGN1. FEBS Lett. 2005;579:559-66 pubmed
  773. Pyagay P, Heroult M, Wang Q, Lehnert W, Belden J, Liaw L, et al. Collagen triple helix repeat containing 1, a novel secreted protein in injured and diseased arteries, inhibits collagen expression and promotes cell migration. Circ Res. 2005;96:261-8 pubmed
  774. Sakamoto K, Chao W, Katsube K, Yamaguchi A. Distinct roles of EGF repeats for the Notch signaling system. Exp Cell Res. 2005;302:281-91 pubmed
  775. Cardinale A, Filesi I, Vetrugno V, Pocchiari M, Sy M, Biocca S. Trapping prion protein in the endoplasmic reticulum impairs PrPC maturation and prevents PrPSc accumulation. J Biol Chem. 2005;280:685-94 pubmed
  776. Lin H, Khosla M, Huang H, Hsu D, Michaelis C, Weeks G, et al. A homologue of Cdk8 is required for spore cell differentiation in Dictyostelium. Dev Biol. 2004;271:49-58 pubmed
  777. Chookajorn T, Kachroo A, Ripoll D, Clark A, Nasrallah J. Specificity determinants and diversification of the Brassica self-incompatibility pollen ligand. Proc Natl Acad Sci U S A. 2004;101:911-7 pubmed
  778. Davis M, Ireton R, Reynolds A. A core function for p120-catenin in cadherin turnover. J Cell Biol. 2003;163:525-34 pubmed
  779. Ludwig M, Vanek M, Guerini D, Gasser J, Jones C, Junker U, et al. Proton-sensing G-protein-coupled receptors. Nature. 2003;425:93-8 pubmed
  780. Ellermeier C, Slauch J. RtsA and RtsB coordinately regulate expression of the invasion and flagellar genes in Salmonella enterica serovar Typhimurium. J Bacteriol. 2003;185:5096-108 pubmed
  781. Liao W, Tang Y, Kuo Y, Liu B, Xu C, Giam C. Kaposi's sarcoma-associated herpesvirus/human herpesvirus 8 transcriptional activator Rta is an oligomeric DNA-binding protein that interacts with tandem arrays of phased A/T-trinucleotide motifs. J Virol. 2003;77:9399-411 pubmed
  782. Javanbakht H, Halwani R, Cen S, Saadatmand J, Musier Forsyth K, Gottlinger H, et al. The interaction between HIV-1 Gag and human lysyl-tRNA synthetase during viral assembly. J Biol Chem. 2003;278:27644-51 pubmed
  783. Kefas B, Cai Y, Ling Z, Heimberg H, Hue L, Pipeleers D, et al. AMP-activated protein kinase can induce apoptosis of insulin-producing MIN6 cells through stimulation of c-Jun-N-terminal kinase. J Mol Endocrinol. 2003;30:151-61 pubmed
  784. Baker Lepain J, Sarzotti M, Fields T, Li C, Nicchitta C. GRP94 (gp96) and GRP94 N-terminal geldanamycin binding domain elicit tissue nonrestricted tumor suppression. J Exp Med. 2002;196:1447-59 pubmed
  785. Selim A, El Ayat G, Wells C. Expression of c-erbB2, p53, Bcl-2, Bax, c-myc and Ki-67 in apocrine metaplasia and apocrine change within sclerosing adenosis of the breast. Virchows Arch. 2002;441:449-55 pubmed
  786. Keleman K, Rajagopalan S, Cleppien D, Teis D, Paiha K, Huber L, et al. Comm sorts robo to control axon guidance at the Drosophila midline. Cell. 2002;110:415-27 pubmed
  787. Planey S, Derfoul A, Steplewski A, Robertson N, Litwack G. Inhibition of glucocorticoid-induced apoptosis in 697 pre-B lymphocytes by the mineralocorticoid receptor N-terminal domain. J Biol Chem. 2002;277:42188-96 pubmed
  788. Hernando N, Déliot N, Gisler S, Lederer E, Weinman E, Biber J, et al. PDZ-domain interactions and apical expression of type IIa Na/P(i) cotransporters. Proc Natl Acad Sci U S A. 2002;99:11957-62 pubmed
  789. Hitzl M, Striessnig J, Neuhuber B, Flucher B. A mutation in the beta interaction domain of the Ca(2+) channel alpha(1C) subunit reduces the affinity of the (+)-[(3)H]isradipine binding site. FEBS Lett. 2002;524:188-92 pubmed
  790. Kizaki T, Suzuki K, Hitomi Y, Taniguchi N, Saitoh D, Watanabe K, et al. Uncoupling protein 2 plays an important role in nitric oxide production of lipopolysaccharide-stimulated macrophages. Proc Natl Acad Sci U S A. 2002;99:9392-7 pubmed
  791. Shiokawa D, Kobayashi T, Tanuma S. Involvement of DNase gamma in apoptosis associated with myogenic differentiation of C2C12 cells. J Biol Chem. 2002;277:31031-7 pubmed
  792. Hyun D, Lee M, Hattori N, Kubo S, Mizuno Y, Halliwell B, et al. Effect of wild-type or mutant Parkin on oxidative damage, nitric oxide, antioxidant defenses, and the proteasome. J Biol Chem. 2002;277:28572-7 pubmed
  793. Cragg R, Christie G, Phillips S, Russi R, Kury S, Mathers J, et al. A novel zinc-regulated human zinc transporter, hZTL1, is localized to the enterocyte apical membrane. J Biol Chem. 2002;277:22789-97 pubmed
  794. Li B, Yen T. Characterization of the nuclear export signal of polypyrimidine tract-binding protein. J Biol Chem. 2002;277:10306-14 pubmed
  795. McCampbell A, Taye A, Whitty L, Penney E, Steffan J, Fischbeck K. Histone deacetylase inhibitors reduce polyglutamine toxicity. Proc Natl Acad Sci U S A. 2001;98:15179-84 pubmed
  796. Piechocki M, Pilon S, Wei W. Quantitative measurement of anti-ErbB-2 antibody by flow cytometry and ELISA. J Immunol Methods. 2002;259:33-42 pubmed
  797. Lee H, Shin S, Choi C, Lee Y, Lee S. Formation and removal of alpha-synuclein aggregates in cells exposed to mitochondrial inhibitors. J Biol Chem. 2002;277:5411-7 pubmed
  798. Murillas R, Simms K, Hatakeyama S, Weissman A, Kuehn M. Identification of developmentally expressed proteins that functionally interact with Nedd4 ubiquitin ligase. J Biol Chem. 2002;277:2897-907 pubmed
  799. Kitazume S, Tachida Y, Oka R, Shirotani K, Saido T, Hashimoto Y. Alzheimer's beta-secretase, beta-site amyloid precursor protein-cleaving enzyme, is responsible for cleavage secretion of a Golgi-resident sialyltransferase. Proc Natl Acad Sci U S A. 2001;98:13554-9 pubmed
  800. Thiebot H, Louache F, Vaslin B, de Revel T, Neildez O, Larghero J, et al. Early and persistent bone marrow hematopoiesis defect in simian/human immunodeficiency virus-infected macaques despite efficient reduction of viremia by highly active antiretroviral therapy during primary infection. J Virol. 2001;75:11594-602 pubmed
  801. Castoria G, Migliaccio A, Bilancio A, Di Domenico M, de Falco A, Lombardi M, et al. PI3-kinase in concert with Src promotes the S-phase entry of oestradiol-stimulated MCF-7 cells. EMBO J. 2001;20:6050-9 pubmed
  802. Fazi B, Cope M, Douangamath A, Ferracuti S, Schirwitz K, Zucconi A, et al. Unusual binding properties of the SH3 domain of the yeast actin-binding protein Abp1: structural and functional analysis. J Biol Chem. 2002;277:5290-8 pubmed
  803. Park J, Bose A, Leszyk J, Czech M. PYK2 as a mediator of endothelin-1/G alpha 11 signaling to GLUT4 glucose transporters. J Biol Chem. 2001;276:47751-4 pubmed
  804. Brown F, Rozelle A, Yin H, Balla T, Donaldson J. Phosphatidylinositol 4,5-bisphosphate and Arf6-regulated membrane traffic. J Cell Biol. 2001;154:1007-17 pubmed
  805. Hilairet S, Belanger C, Bertrand J, Laperriere A, Foord S, Bouvier M. Agonist-promoted internalization of a ternary complex between calcitonin receptor-like receptor, receptor activity-modifying protein 1 (RAMP1), and beta-arrestin. J Biol Chem. 2001;276:42182-90 pubmed
  806. Fukumoto T, Watanabe Fukunaga R, Fujisawa K, Nagata S, Fukunaga R. The fused protein kinase regulates Hedgehog-stimulated transcriptional activation in Drosophila Schneider 2 cells. J Biol Chem. 2001;276:38441-8 pubmed
  807. Banno Y, Takuwa Y, Akao Y, Okamoto H, Osawa Y, Naganawa T, et al. Involvement of phospholipase D in sphingosine 1-phosphate-induced activation of phosphatidylinositol 3-kinase and Akt in Chinese hamster ovary cells overexpressing EDG3. J Biol Chem. 2001;276:35622-8 pubmed
  808. Laferriere J, Houle F, Taher M, Valerie K, Huot J. Transendothelial migration of colon carcinoma cells requires expression of E-selectin by endothelial cells and activation of stress-activated protein kinase-2 (SAPK2/p38) in the tumor cells. J Biol Chem. 2001;276:33762-72 pubmed
  809. Takahashi Y, Tanaka Y, Yamashita A, Koyanagi Y, Nakamura M, Yamamoto N. OX40 stimulation by gp34/OX40 ligand enhances productive human immunodeficiency virus type 1 infection. J Virol. 2001;75:6748-57 pubmed
  810. Kim S, Lee S, Park D. Leucine zipper-mediated homodimerization of the p21-activated kinase-interacting factor, beta Pix. Implication for a role in cytoskeletal reorganization. J Biol Chem. 2001;276:10581-4 pubmed
  811. Chavand O, Spilsbury K, Rakoczy P. Addition of a c-myc epitope tag within the VEGF protein does not affect in vitro biological activity. Biochem Cell Biol. 2001;79:107-12 pubmed
  812. Bourgarel Rey V, El Khyari S, Rimet O, Bordas B, Guigal N, Braguer D, et al. Opposite effects of antimicrotubule agents on c-myc oncogene expression depending on the cell lines used. Eur J Cancer. 2000;36:1043-9 pubmed
  813. Lee J, Collins K, Brown A, Lee C, Chung J. hCds1-mediated phosphorylation of BRCA1 regulates the DNA damage response. Nature. 2000;404:201-4 pubmed
  814. Cathomen T, Collete D, Weitzman M. A chimeric protein containing the N terminus of the adeno-associated virus Rep protein recognizes its target site in an in vivo assay. J Virol. 2000;74:2372-82 pubmed
  815. Huang E, Zhang J, Miska E, Guenther M, Kouzarides T, Lazar M. Nuclear receptor corepressors partner with class II histone deacetylases in a Sin3-independent repression pathway. Genes Dev. 2000;14:45-54 pubmed
  816. de Caestecker M, Yahata T, Wang D, Parks W, Huang S, Hill C, et al. The Smad4 activation domain (SAD) is a proline-rich, p300-dependent transcriptional activation domain. J Biol Chem. 2000;275:2115-22 pubmed
  817. Snow B, Betts L, Mangion J, Sondek J, Siderovski D. Fidelity of G protein beta-subunit association by the G protein gamma-subunit-like domains of RGS6, RGS7, and RGS11. Proc Natl Acad Sci U S A. 1999;96:6489-94 pubmed
  818. Utku N, Heinemann T, Tullius S, Bulwin G, Beinke S, Blumberg R, et al. Prevention of acute allograft rejection by antibody targeting of TIRC7, a novel T cell membrane protein. Immunity. 1998;9:509-18 pubmed
  819. Saginario C, Sterling H, Beckers C, Kobayashi R, Solimena M, Ullu E, et al. MFR, a putative receptor mediating the fusion of macrophages. Mol Cell Biol. 1998;18:6213-23 pubmed
  820. McCormick C, Leduc Y, Martindale D, Mattison K, Esford L, Dyer A, et al. The putative tumour suppressor EXT1 alters the expression of cell-surface heparan sulfate. Nat Genet. 1998;19:158-61 pubmed
  821. Cooper J, Schilling G, Peters M, Herring W, Sharp A, Kaminsky Z, et al. Truncated N-terminal fragments of huntingtin with expanded glutamine repeats form nuclear and cytoplasmic aggregates in cell culture. Hum Mol Genet. 1998;7:783-90 pubmed
  822. Stone D, Hynes M, Armanini M, Swanson T, Gu Q, Johnson R, et al. The tumour-suppressor gene patched encodes a candidate receptor for Sonic hedgehog. Nature. 1996;384:129-34 pubmed
  823. Evan G, Lewis G, Ramsay G, Bishop J. Isolation of monoclonal antibodies specific for human c-myc proto-oncogene product. Mol Cell Biol. 1985;5:3610-6 pubmed