This is a Validated Antibody Database (VAD) review about mouse Gapdh-ps15, based on 922 published articles (read how Labome selects the articles), using Gapdh-ps15 antibody in all methods. It is aimed to help Labome visitors find the most suited Gapdh-ps15 antibody. Please note the number of articles fluctuates since newly identified citations are added and citations for discontinued catalog numbers are removed regularly.
Gapdh-ps15 synonym: Gm20899; glyceraldehyde-3-phosphate dehydrogenase

Invitrogen
mouse monoclonal (6C5)
  • western blot; human; 1:150,000; loading ...; fig 1a
Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:150,000 (fig 1a). Sci Rep (2019) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; loading ...; fig 2c
Invitrogen Gapdh-ps15 antibody (Ambion, 4300) was used in western blot on human samples at 1:1000 (fig 2c). Biochem Pharmacol (2019) ncbi
mouse monoclonal (GA1R)
  • western blot; human; loading ...; fig 3d
Invitrogen Gapdh-ps15 antibody (Invitrogen, MA5-15738) was used in western blot on human samples (fig 3d). PLoS Pathog (2018) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; loading ...; fig s4g
Invitrogen Gapdh-ps15 antibody (Life Technologies, AM43000) was used in western blot on mouse samples at 1:5000 (fig s4g). Nat Commun (2018) ncbi
mouse monoclonal (6C5)
  • other; human; loading ...; fig 4c
Invitrogen Gapdh-ps15 antibody (Thermo Fisher Scientific, AM4300) was used in other on human samples (fig 4c). Cancer Cell (2018) ncbi
mouse monoclonal (GA1R)
  • western blot; human; 1:1000; loading ...; fig 6h
  • western blot; mouse; 1:1000; loading ...; fig 6h
In order to study induction of cell death by low frequency magnetic fields, Invitrogen Gapdh-ps15 antibody (Thermo Fisher Scientific, MA5-15738-BTIN) was used in western blot on human samples at 1:1000 (fig 6h) and in western blot on mouse samples at 1:1000 (fig 6h). Sci Rep (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; 1:5000; fig 9a
In order to investigate the effects of glutathione deficiency on lens homeostasis and cataractogenesis, Invitrogen Gapdh-ps15 antibody (Thermo Fisher Scientific, MA5-15738) was used in western blot on mouse samples at 1:5000 (fig 9a). Invest Ophthalmol Vis Sci (2017) ncbi
goat polyclonal
  • western blot; human; 1:50,000; loading ...; fig 2b
In order to study the effect of mechanophenotype on cellular adherence, Invitrogen Gapdh-ps15 antibody (Thermo Fisher, PA1-9046) was used in western blot on human samples at 1:50,000 (fig 2b). Ann Biomed Eng (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; loading ...; fig s1b
In order to report that the Myomixer-Myomaker interaction regulates myofiber formation during muscle development, Invitrogen Gapdh-ps15 antibody (Thermo Fisher Scientific, MA5-15738) was used in western blot on mouse samples (fig s1b). Science (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; human; loading ...; fig 4e
In order to identify and study the allosteric pockets of SPAK and OSR1, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on human samples (fig 4e). ChemMedChem (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; baker's yeast; fig 1c
In order to describe the effects of 6-Bio using a preclinical model of Parkinson disease, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on baker's yeast samples (fig 1c). Autophagy (2017) ncbi
mouse monoclonal (6C5)
  • reverse phase protein lysate microarray; human; loading ...; fig 7a
In order to characterize the molecular identity of uterine carcinosarcomas., Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in reverse phase protein lysate microarray on human samples (fig 7a). Cancer Cell (2017) ncbi
rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 1
In order to elucidate the effects of mutations in leucine-rich repeat kinase 2 on nigro0striatal dopamine neurons, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, PA1-988) was used in western blot on mouse samples at 1:1000 (fig 1). Acta Neuropathol Commun (2017) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; loading ...; fig 2a
In order to analyze the mechanistic relationship between sirtuin 2 and alpha-synuclein in Parkinson's disease, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:5000 (fig 2a). PLoS Biol (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; 1:10,000; loading ...; fig 4f
In order to study the interaction between Hap1 and Dcaf7, Invitrogen Gapdh-ps15 antibody (Thermo Fisher, GA1R) was used in western blot on mouse samples at 1:10,000 (fig 4f). Proc Natl Acad Sci U S A (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; human; 1:4000; loading ...; fig 1a
In order to determine the role of mitochondrial Cx40 in endothelial cells, Invitrogen Gapdh-ps15 antibody (Thermo, MA5-15738) was used in western blot on human samples at 1:4000 (fig 1a). Am J Physiol Cell Physiol (2017) ncbi
mouse monoclonal (6C5)
  • reverse phase protein lysate microarray; human; loading ...; fig 3a
In order to describe the features of 228 primary cervical cancers, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in reverse phase protein lysate microarray on human samples (fig 3a). Nature (2017) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:500; fig 2h
In order to show that the deoxynucleoside triphosphate triphosphohydrolase SAM domain and HD domain 1 promotes the detoxification of intracellular cytostatic deoxycytidine analog cytarabine triphosphate pools, Invitrogen Gapdh-ps15 antibody (Life Technologies, ZG003) was used in western blot on human samples at 1:500 (fig 2h). Nat Med (2017) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig s2b
In order to determine the role of p21-activated kinases in response to BRAF inhibitors, Invitrogen Gapdh-ps15 antibody (Thermo Fisher Scientific, AM4300) was used in western blot on human samples (fig s2b). Mol Carcinog (2017) ncbi
mouse monoclonal (1D4)
  • western blot; rat; 1:40,000; loading ...
In order to test if increasing the transcription factor cAMP response element-binding protein expression also ameliorates age-related behavioral and biophysical deficits, Invitrogen Gapdh-ps15 antibody (Thermo Fischer Scientific, MA1-16757) was used in western blot on rat samples at 1:40,000. elife (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; human; loading ...
In order to distinguish the effects of the non-neutrophil-containing plasma fractions on human skeletal muscle myoblast differentiation, Invitrogen Gapdh-ps15 antibody (Pierce, MA5-15738) was used in western blot on human samples . Am J Sports Med (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; 1:2000; loading ...; fig 1c
In order to discover a gene silencing mechanism in developing mammalian hearts regulated by the interaction of DNMT3B-mediated non-CpG methylation and REST binding, Invitrogen Gapdh-ps15 antibody (Thermo Fisher, MA5-15738) was used in western blot on mouse samples at 1:2000 (fig 1c). Nucleic Acids Res (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; loading ...
In order to elucidate how calcium-dependent signaling contributes to colitis, Invitrogen Gapdh-ps15 antibody (Pierce, MA5-15738) was used in western blot on mouse samples . Am J Physiol Gastrointest Liver Physiol (2017) ncbi
mouse monoclonal (6C5)
  • western blot; human; loading ...; fig 3a
In order to study circadian rhythmicity in cultured chondrocytes and determine the role of NR1D1 and BMAL1 in regulating chondrocyte functions, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on human samples (fig 3a). Osteoarthritis Cartilage (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; human; loading ...; fig 2b
In order to determine effect of oxyresveratrol on intestinal tight junctions through stimulation of trefoil factor 3 production in goblet cells, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on human samples (fig 2b). Biomed Pharmacother (2017) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; loading ...; fig 2e
In order to compare gene expression profiles of the embryonic stem cell- and adult progenitor-derived dendritic cells, Invitrogen Gapdh-ps15 antibody (Thermo Fisher Scientific, AM4300) was used in western blot on mouse samples (fig 2e). J Immunol (2017) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; loading ...; fig 6b
In order to report the effects of peroxisome proliferator-activated receptor beta/delta agonist on the acute phase response after brain injury, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on mouse samples at 1:5000 (fig 6b). Transl Res (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; loading ...; fig 5d
In order to elucidate how FoxO1 regulates mitochondrial uncoupling proteins, Invitrogen Gapdh-ps15 antibody (Pierce, MA5-15738) was used in western blot on mouse samples (fig 5d). Cell Death Discov (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; human; loading ...; fig 4b
In order to report that stiffer pancreatic ductal adenocarcinoma cells are more invasive than more compliant cells, Invitrogen Gapdh-ps15 antibody (ThermoFisher, MA5-15738) was used in western blot on human samples (fig 4b). Integr Biol (Camb) (2016) ncbi
mouse monoclonal (1D4)
  • western blot; mouse; loading ...; fig 4
In order to evaluate the antifibrotic effect of emodin in silica inhalation-induced lung fibrosis, Invitrogen Gapdh-ps15 antibody (Invitrogen, MA1-16757) was used in western blot on mouse samples (fig 4). Mol Med Rep (2016) ncbi
rabbit polyclonal
  • western blot; mouse; fig 7b
In order to create curcumin-eluting tissue scaffolds and explore their potential in bone tissue regeneration, Invitrogen Gapdh-ps15 antibody (ThermoFisher Scientific, PA1-987) was used in western blot on mouse samples (fig 7b). Biomed Mater (2016) ncbi
rabbit polyclonal
  • western blot; human; 1:1000; loading ...; fig 4d
In order to characterize cytochrome P450 aromatase mutations, Invitrogen Gapdh-ps15 antibody (Thermo Fisher, PA1-987) was used in western blot on human samples at 1:1000 (fig 4d). J Steroid Biochem Mol Biol (2017) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; loading ...; fig 2a
In order to discuss the contribution of IL-1beta and NLRP3 inflammasome activation to Kawasaki disease, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on mouse samples (fig 2a). J Immunol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 2
In order to clarify the role of protein kinase C in the pathogenesis of RNA toxicity, Invitrogen Gapdh-ps15 antibody (Ambion, 4300) was used in western blot on mouse samples (fig 2). PLoS ONE (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; loading ...; fig 5a
In order to report that Zfp407 overexpression improved glucose homeostasis, Invitrogen Gapdh-ps15 antibody (Thermo Fischer, MA5-15738) was used in western blot on mouse samples (fig 5a). Am J Physiol Endocrinol Metab (2016) ncbi
rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 4c
In order to evaluate the effects of epicatechin in the normal heart, Invitrogen Gapdh-ps15 antibody (ThermoFisher, PA1-988) was used in western blot on mouse samples at 1:1000 (fig 4c). Mol Nutr Food Res (2017) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to assess the responses of ALT- or telomerase-positive cell lines to VE-821 treatment, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 2). Front Oncol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:4000; loading ...; fig 1a
In order to investigate how the interaction between desmin with the alpha beta crystallin contributes to cardiac health, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:4000 (fig 1a). J Cell Sci (2016) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:5000; fig 1
In order to investigate the impact of serine-arginine rich splicing factor 2 mutations to myelodysplastic syndrome, Invitrogen Gapdh-ps15 antibody (Invitrogen, ZG003) was used in western blot on human samples at 1:5000 (fig 1). BMC Mol Biol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 6
In order to demonstrate that OTULIN is essential for preventing TNF-associated systemic inflammation in humans and mice, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 6). Cell (2016) ncbi
rabbit polyclonal
  • western blot; cow; fig 2
In order to study feed intake and heat stress-related effects in cows, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, PA1-988) was used in western blot on cow samples (fig 2). PLoS ONE (2016) ncbi
rabbit polyclonal
  • western blot; mouse; loading ...; fig 2f
In order to measure the expression and function of neuromedin U receptor 2 and its ligands in gestational tissues, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, PA1-987) was used in western blot on mouse samples (fig 2f). Biol Reprod (2016) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:1000; fig 2
In order to show that A2AR regulates GR function and contributes to age-related memory deficits, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on rat samples at 1:1000 (fig 2). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 3
In order to examine the role of sirtuins during the transition from early to late sepsis in obese subjects with sepsis, Invitrogen Gapdh-ps15 antibody (Invitrogen, AM4300) was used in western blot on mouse samples (fig 3). PLoS ONE (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; human; loading ...; fig 1b
In order to investigate the differentiation of mesenchymal stem cells into beige/brown adipocytes, Invitrogen Gapdh-ps15 antibody (Thermo Fisher, MA5-15738) was used in western blot on human samples (fig 1b). Biochem Biophys Res Commun (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; fission yeast; fig 3
In order to generate and characterize recoded fluorescent proteins for three-color analysis in Schizosaccharomyces pombe, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on fission yeast samples (fig 3). PLoS ONE (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:2000; fig 1
In order to research differentiation of functional glutamatergic neurons from placenta-derived multipotent cells by knocking down of heat-shock protein 27, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:2000 (fig 1). Sci Rep (2016) ncbi
rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 1d
In order to elucidate mechanisms by which miR-132 regulates osteogenic differentiation, Invitrogen Gapdh-ps15 antibody (Invitrogen, PA1-988) was used in western blot on mouse samples at 1:1000 (fig 1d). Biochem Biophys Res Commun (2016) ncbi
rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 1h
In order to investigate the molecular mechanism of Sirt1 in osteogenic differentiation, Invitrogen Gapdh-ps15 antibody (Invitrogen, PA1-988) was used in western blot on mouse samples at 1:1000 (fig 1h). Biochem Biophys Res Commun (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; human; 1:1500; fig 6
In order to characterize 3D-cultured prostate cancer cells' drug response and expression of drug-action associated proteins and the influence of matrices, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on human samples at 1:1500 (fig 6). PLoS ONE (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; human; fig 6
In order to study the involvement of the host protein ORP1L and interactions between the endoplasmic reticulum and the Coxiella burnetii parasitophorous vacuole, Invitrogen Gapdh-ps15 antibody (ThermoFisher, MA5-15738) was used in western blot on human samples (fig 6). Cell Microbiol (2017) ncbi
mouse monoclonal (GA1R)
  • western blot; human; fig 3
In order to study novel activities of human cytomegalovirus tegument protein pUL103 by study of protein-protein interactions, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on human samples (fig 3). J Virol (2016) ncbi
rabbit polyclonal
  • western blot; human; loading ...; fig 5a
In order to explore the role of metastatic tumor antigen 1 in hepatitis B-associated hepatocarcinogenesis in the woodchuck model, Invitrogen Gapdh-ps15 antibody (Pierce, PA1-16777) was used in western blot on human samples (fig 5a). Oncotarget (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:50,000; tbl 2
In order to analyze the reduction of renal fibrosis and inflammation after unilateral ureteral obstruction due to overexpression of the short endoglin isoform, Invitrogen Gapdh-ps15 antibody (Ambion Applied Biosystems, AM4300) was used in western blot on mouse samples at 1:50,000 (tbl 2). Biochim Biophys Acta (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; fig 2
In order to study protection against ischemic myopathy in high fat fed mice by targeted expression of catalase to mitochondria, Invitrogen Gapdh-ps15 antibody (Thermo Fisher Scientific, MA5-15738) was used in western blot on mouse samples (fig 2). Diabetes (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; fig 1
In order to learn suppression of autophagy and lipid droplet growth in adipocytes by FoxO1 antagonist, Invitrogen Gapdh-ps15 antibody (Pierce, MA5-15738) was used in western blot on mouse samples (fig 1). Cell Cycle (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; 1:2000; fig 1c
In order to study the role of cytosolic Ca(2+)/calmodulin-dependent protein kinase II in the high-intensity endurance training that reduces cardiac dysfunction, Invitrogen Gapdh-ps15 antibody (Thermo Fisher, MA5-15738) was used in western blot on mouse samples at 1:2000 (fig 1c). J Appl Physiol (1985) (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; Caenorhabditis elegans; 1:5000; fig 2
In order to study the lifespan extension of Caenorhabditis elegans by resveratrol and oxyresveratrol by SIR-2.1-dependence, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on Caenorhabditis elegans samples at 1:5000 (fig 2). Exp Biol Med (Maywood) (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 7
  • western blot; human; fig 1
In order to study suppression invasion by reduction of intracellular GTP pools via a microphthalmia-associated transcription factor, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 7) and in western blot on human samples (fig 1). Oncogene (2017) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
In order to study how Parkin is responsible for polyubiquitination of apurinic/apyrimidinic endonuclease 1, Invitrogen Gapdh-ps15 antibody (Invitrogen, AM4300) was used in western blot on human samples (fig 3). Mol Carcinog (2017) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:1000; fig 3
In order to study the dependence on host integrins, membrane raft recruitment, and Src-family kinase activation for histoplasma capsulatum-induced cytokine secretion in lung epithelial cells, Invitrogen Gapdh-ps15 antibody (Invitrogen, 39-8600) was used in western blot on human samples at 1:1000 (fig 3). Front Microbiol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 8
  • western blot; cat; fig 1
In order to study disruption of the assembly of cytoplasmic stress granules and induction of G3BP1 cleavage by feline calicivirus infection, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 8) and in western blot on cat samples (fig 1). J Virol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:50,000; fig 7
In order to study regulation by ADP-ribosylation of bone morphogenetic protein signaling, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:50,000 (fig 7). J Biol Chem (2016) ncbi
rabbit polyclonal
  • western blot; human; fig 6
In order to analyze maintenance of an angiogenic phenotype in human endothelial cells by PAFAH1B1 and the IncRNA NONHSAT073641, Invitrogen Gapdh-ps15 antibody (ThermoFisher, PA1-16777) was used in western blot on human samples (fig 6). Acta Physiol (Oxf) (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; human; fig 4
In order to learn enhancement of RBM15 protein translation during megakaryocyte differentiation by the AS-RBM15 IncRNA, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on human samples (fig 4). EMBO Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10,000; fig 1
In order to study kinase DYRK1A selective inhibition by targeting its folding process, Invitrogen Gapdh-ps15 antibody (Thermo Fisher Scientific, AM4300) was used in western blot on human samples at 1:10,000 (fig 1). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000; fig 5
In order to research suppression of obesity in leptin-deficient mice by Tbc1d1 deletion, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:1000 (fig 5). Int J Obes (Lond) (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; fig 4
In order to study growth arrest-specific-2 upregulation in recurrent colorectal cancer and its susceptibility to chemotherapy in a model cell system, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on human samples at 1:5000 (fig 4). Biochim Biophys Acta (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:4000; fig 5
In order to assess the governing of the recruitment of ovarian pregranulosa cells and control of folliculogenesis in mice due to ADAM10-Notch signaling, Invitrogen Gapdh-ps15 antibody (Life technologies, AM4300) was used in western blot on mouse samples at 1:4000 (fig 5). J Cell Sci (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 6
In order to determine the major role for alveolar epithelial type 1 cells in alveolar fluid clearance revealed by knockout mice, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on mouse samples (fig 6). Am J Respir Cell Mol Biol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:3000; fig 2
In order to study the cause of progeroid disorder by a mutation abolishing the ZMPSTE24 cleavage site in prelamin A, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:3000 (fig 2). J Cell Sci (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 5
In order to analyze the binding of p300 with PIAS1 acting as a coactivator or corepressor of the transcription factor c-Myb dependent on SUMO-status, Invitrogen Gapdh-ps15 antibody (Invitrogen, AM4300) was used in western blot on human samples (fig 5). Biochim Biophys Acta (2016) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:6000; fig 4c
In order to study how transcriptional regulation and Skp2-mediated degradation of p27Kip1 activates stem cell properties of muller glia through notch signaling, Invitrogen Gapdh-ps15 antibody (Ambion, 4300) was used in western blot on rat samples at 1:6000 (fig 4c). PLoS ONE (2016) ncbi
mouse monoclonal (ZG003)
  • western blot; human; fig 4
In order to study enhanced degradation of proteasomal substrates that are associated with neurodegenerative disease and the effect of inactivation of USP14, Invitrogen Gapdh-ps15 antibody (Invitrogen, 39-8600) was used in western blot on human samples (fig 4). F1000Res (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:20,000; fig 1
In order to elucidate the mechanism of corticotropin releasing hormone (Crh) and macroautophagy, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:20,000 (fig 1). Sci Rep (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; human
In order to assess the effect of 11B3 loss on tumorigenesis, Invitrogen Gapdh-ps15 antibody (ThermoFisher, MA5-15738-HRP) was used in western blot on human samples . Nature (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to determine the regulation of von Hippel Lindau proteostasis and function by phosphorylation-dependent cleavage, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 2). Oncogene (2016) ncbi
mouse monoclonal (ZG003)
  • western blot; Domestic guinea pig; 1:1000; fig 7
In order to assess the independence of secretion of beta-1 integrins in airway wall and focal adhesions proteins down regulation from airway hyperresponsiveness in asthma model, Invitrogen Gapdh-ps15 antibody (Invitrogen, 39-8600) was used in western blot on Domestic guinea pig samples at 1:1000 (fig 7). J Cell Biochem (2016) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:5000; fig 1b
In order to analyze FNDC5, produced in the stomach, and its role in body composition, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on rat samples at 1:5000 (fig 1b). Sci Rep (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; human; loading ...; fig 1a
In order to investigate gamma-interferon-inducible lysosomal thiol reductase expression in melanoma, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, GA1R) was used in western blot on human samples (fig 1a). Melanoma Res (2016) ncbi
rabbit polyclonal
  • western blot; human; 1:5000; fig 1
In order to study down-regulation of organic cation transporter 1 (SLC22A1) in human hepatocytes by competing for ("squelching") SRC-1 coactivator by the pregane X receptor, Invitrogen Gapdh-ps15 antibody (Thermo Fisher, PA1-987) was used in western blot on human samples at 1:5000 (fig 1). Br J Pharmacol (2016) ncbi
rabbit polyclonal
  • western blot; human
In order to discuss the findings of The Reproducibility Project: Cancer Biology, Invitrogen Gapdh-ps15 antibody (Life Technologies, PA1-988) was used in western blot on human samples . elife (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; human
In order to discuss the findings of The Reproducibility Project: Cancer Biology, Invitrogen Gapdh-ps15 antibody (Life Technologies, MA5-15738) was used in western blot on human samples . elife (2016) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:4000; fig 1
In order to investigate the rescue of seizure susceptibility and spine morphology in atypical febrile seizures by reducing premature KCC2 expression, Invitrogen Gapdh-ps15 antibody (Applied Biosystems, AM4300) was used in western blot on rat samples at 1:4000 (fig 1). Neurobiol Dis (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1
In order to analyze how p66Shc activation can occur by cJun N-terminal kinase (JNK) phosphorylation of serine 36, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 1). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; barley; 1:1000; fig 3
In order to characterize inhibition and binding of the glyceraldehyde-3-phosphate dehydrogenase in barley aleurone due to diacylglycerol pyrophosphate, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on barley samples at 1:1000 (fig 3). Plant Physiol Biochem (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; human; 1:1000; fig 1a
In order to determine which 2',5'-oligoadenylate synthetase regulates RNase L activation during viral infection, Invitrogen Gapdh-ps15 antibody (Thermo Fisher, GA1R) was used in western blot on human samples at 1:1000 (fig 1a). Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; fig 1
In order to investigate impairment of autophagy flux and induction of cell death independent of necroptosis and apoptosis by dual PI-3 kinase/mTOR inhibition, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:5000 (fig 1). Oncotarget (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:15,000; fig 4
In order to characterize colorectal cancer and nuclear localization of YBX1 and uncoupling of EGFR-RAS signaling, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on human samples at 1:15,000 (fig 4). Oncogenesis (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; human; 1:5000; fig 2
In order to determine reduction of osteo-inductive potential of human plasma derived extracellular vesicles by a decrease in vesicular galectin-3 levels that decreses with donor age, Invitrogen Gapdh-ps15 antibody (Pierce, MA5-15738) was used in western blot on human samples at 1:5000 (fig 2). Aging (Albany NY) (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 8
In order to discuss the interaction between the HEAT-1 domain of eIF4G and c-terminal motif in norovirus VPG and its role in translation initiation, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 8). PLoS Pathog (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 4
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, Invitrogen Gapdh-ps15 antibody (Life technologies, AM4300) was used in western blot on human samples (fig 4). elife (2016) ncbi
mouse monoclonal (6C5)
  • western blot; hamsters; fig 1
In order to study activation of SREBP2 that promotes hepatic long-chain Acyl-CoA synthetase 1 (ACSL1) expression in vivo and in vitro through a sterol regulatory element (SRE) motif of the ACSL-C promoter, Invitrogen Gapdh-ps15 antibody (Thermo Fisher, AM4300) was used in western blot on hamsters samples (fig 1). J Biol Chem (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to test if dying neutrophils release peptidyl arginine deiminase, which results in citrullination of antigens relevant to rheumatoid arthritis, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on human samples (fig 2). Arthritis Res Ther (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; fig 1
In order to test the relationship between epithelial mesenchymal transition induced by transforming growth factor beta 1 is blocked by an antagonist of translation factor eIF4E, Invitrogen Gapdh-ps15 antibody (Applied Biosystems, AM4300) was used in western blot on rat samples (fig 1). Sci Rep (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; fig 3
In order to study a novel crizotinib-resistant solvent-front mutation in a patient with ROS1-rearranged lung cancer that is responsive to cabozantinib therapy, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:5000 (fig 3). Clin Cancer Res (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:20,000; fig 2
In order to assess the regulation of PLK1 and PCNT cleavage and mitotic exit via centriole separation, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on human samples at 1:20,000 (fig 2). Nat Commun (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1
  • western blot; human; fig 1
In order to determine the requirement of mitochondrial ribosomal protein L12 for POLRMT stability and exists as two forms generated by alternative proteolysis during import, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 1) and in western blot on human samples (fig 1). J Biol Chem (2016) ncbi
mouse monoclonal (GA1R)
  • western blot; human; fig 1
In order to report that PRMT1 regulates alternative RNA splicing by reducing RBM15, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on human samples (fig 1). elife (2015) ncbi
mouse monoclonal (ZG003)
  • western blot; human; fig 4
In order to determine muscle-specific FHL1 autoantibodies in severe inflammatory myopathies, Invitrogen Gapdh-ps15 antibody (Invitrogen, 398600) was used in western blot on human samples (fig 4). J Clin Invest (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to analyze the transition from epithelial-mesenchymal induced by transforming growth factor beta, Invitrogen Gapdh-ps15 antibody (Ambion, AM43000) was used in western blot on human samples (fig 2). Methods Mol Biol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000; fig 7
In order to assess Losartan treatment on experimental glaucoma, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on mouse samples at 1:1000 (fig 7). PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to identify molecular alterations in the normal mucosa in the proximity of adenomatous polyps and assess the modulating effect of butyrate, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . BMJ Open Gastroenterol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to investigate the role of FOXG1 in neuronal differentiation, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . Hum Pathol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to show that Grb7 recruits Syk to the stress granule, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . J Biol Chem (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to study the role of gep oncogenes in ovarian cancer growth, Invitrogen Gapdh-ps15 antibody (Life Technologies-Ambion, AM4300) was used in western blot on human samples . Genes Cancer (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10000
In order to study the role of the pericentriolar material disassembly in centriole separation during mitotic exit, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:10000. PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to study molecular mechanisms used by B cells to control the source of peptides loaded onto class II molecules, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . J Biol Chem (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000
In order to discuss the sensitivity and selectivity of seven ROS1 and/or ALK inhibitors, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:5000. Proc Natl Acad Sci U S A (2015) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:10,000; fig 1a
In order to determine immune responses to Paracoccidioides brasiliensis, Invitrogen Gapdh-ps15 antibody (Invitrogen, 39-8600) was used in western blot on human samples at 1:10,000 (fig 1a). Microbes Infect (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to assess negative regulation of the NF-kappaB-mediated signaling pathway through stabilization of Cactin by TRIM39, Invitrogen Gapdh-ps15 antibody (Ambion, 6C5) was used in western blot on human samples (fig 2). Cell Mol Life Sci (2016) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:5000
In order to elucidate the effects and mechanism of miR-18a on the permeability of the blood-tumor barrier, Invitrogen Gapdh-ps15 antibody (Life Technologies, 39-8600) was used in western blot on human samples at 1:5000. J Neurosci Res (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1
In order to investigate how reprogramming of fibroblasts into cardiomyocytes requires suppression of pro-fibrotic signaling, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 1). Nat Commun (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:4000
In order to study the rhythmic expression of intellectual disability genes in the mouse hippocampus, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:4000. Neuroscience (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; fig 6
In order to elucidate the mechanisms by which increased LMNB1 levels cause autosomal dominant leukodystrophy, Invitrogen Gapdh-ps15 antibody (Pierce, MA515738) was used in western blot on mouse samples (fig 6). J Neurosci (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; 1:100; fig 2d
In order to compare cognitive and motor behaviors in various LRRK2 transgenic mice, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on mouse samples at 1:100 (fig 2d). Parkinsonism Relat Disord (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
In order to investigate how the interaction between protein kinase G and Orai1 contributes to cardiac hypertrophy, Invitrogen Gapdh-ps15 antibody (Ambion, am4300) was used in western blot on human samples (fig 1). Stem Cells (2015) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:1000; fig 2
In order to examine the relationship between NEDD4 and IFITM3, Invitrogen Gapdh-ps15 antibody (Invitrogen, 398600) was used in western blot on human samples at 1:1000 (fig 2). PLoS Pathog (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; baker's yeast; fig 6
In order to develop methods to study pseudouridylation of mRNA, Invitrogen Gapdh-ps15 antibody (Pierce, MA5-15738) was used in western blot on baker's yeast samples (fig 6). Methods Enzymol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000; fig 3
In order to study how regenerative progenitors can be turned into terminally differentiated skeletal muscle cells, Invitrogen Gapdh-ps15 antibody (Invitrogen, AM4300) was used in western blot on mouse samples at 1:1000 (fig 3). Nat Commun (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; human; 1:10,000; fig 1.a,b
In order to examine the role of the host unfolded protein response during L. pneumophila infection, Invitrogen Gapdh-ps15 antibody (Thermo, MA5-15738) was used in western blot on human samples at 1:10,000 (fig 1.a,b). Nat Commun (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat
In order to describe a strategy of dual SILAC labeling astrocytic cultures for in silico exclusion of unlabeled proteins from serum or neurons used for stimulation, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on rat samples . J Proteome Res (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; human
In order to investigate the mechanisms of cell cycle regulation by the small isoform of JADE1, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on human samples . Cell Cycle (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; human; fig 4
In order to investigate alterations in surface protein expression associated with the 11q13 amplicon, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on human samples (fig 4). J Proteome Res (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; 1:5000; fig s3
In order to investigate the role of nebulin in muscle cells using transgenic mice, Invitrogen Gapdh-ps15 antibody (ThermoScientific, GA1R) was used in western blot on mouse samples at 1:5000 (fig s3). Hum Mol Genet (2015) ncbi
mouse monoclonal (ZG003)
  • western blot; mouse
  • western blot; human
In order to test if FAK is an intrinsic driver that promotes aerobic glycolysis and tumorigenesis, Invitrogen Gapdh-ps15 antibody (Life Technologies, 398600) was used in western blot on mouse samples and in western blot on human samples . Oncogene (2016) ncbi
mouse monoclonal (ZG003)
  • western blot; human; fig 5
In order to report that Salmonella enterica serovar Typhimurium modulates host SUMOylation, Invitrogen Gapdh-ps15 antibody (Invitrogen, 39-8600) was used in western blot on human samples (fig 5). Mol Cell Biol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:50000
In order to show that tamoxifen prevents myofibroblast differentiation, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:50000. J Cell Physiol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 4d
In order to elucidate the function of TRIM29 in double stranded break repair, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:1000 (fig 4d). Nat Commun (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; Helicobacter pylori; 1:5000
Invitrogen Gapdh-ps15 antibody (Thermo Fisher Scientific, GA1R) was used in western blot on Helicobacter pylori samples at 1:5000. Int J Mol Med (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to demonstrate that TRIM29 regulates the p63 pathway in cervical cancer cells, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . Biochim Biophys Acta (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:20000
In order to study the role of Neuregulin1/ErbB system during peripheral nerve degeneration and regeneration, Invitrogen Gapdh-ps15 antibody (ThermoFischer Scientific, 4300) was used in western blot on rat samples at 1:20000. Eur J Neurosci (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
In order to investigate the role of RIPK1 in response to endoplasmic reticulum stress, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 1). Autophagy (2015) ncbi
mouse monoclonal (ZG003)
  • western blot; human; fig 3
In order to assess reduction of c-MYC in acute leukemia cells due to a BET inhibitor OTX015 that targets BRD2 and BRD4, Invitrogen Gapdh-ps15 antibody (Invitrogen, 398600) was used in western blot on human samples (fig 3). Oncotarget (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to study the effect of CD137 on HPV positive head and neck squamous cell carcinoma tumor clearance, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on mouse samples . Vaccines (Basel) (2014) ncbi
rabbit polyclonal
  • western blot; rat; fig 4
In order to develop an animal model for intrapartum inflammation at term, Invitrogen Gapdh-ps15 antibody (Pierce Chemical Co, PA1-987) was used in western blot on rat samples (fig 4). Am J Obstet Gynecol (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; fission yeast
In order to characterize histone sprocket arginine residue mutants in yeast, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA5-15738) was used in western blot on fission yeast samples . Genetics (2015) ncbi
mouse monoclonal (6C5)
  • immunocytochemistry; dog
In order to study the role of MAL, a tetraspanning protein, in primary cilium formation, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in immunocytochemistry on dog samples . J Cell Sci (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:15000
In order to examine the effect of resveratrol treatment on microvascular inflammation in obese septic mice, Invitrogen Gapdh-ps15 antibody (Invitrogen, AM4300) was used in western blot on human samples at 1:15000. Obesity (Silver Spring) (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; human
Invitrogen Gapdh-ps15 antibody (Thermo Scientific, GA1R) was used in western blot on human samples . J Virol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to study the contribution of filamin B on the invasiveness of cancer, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . Cell Struct Funct (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; human
Invitrogen Gapdh-ps15 antibody (Thermo Fisher Scientific, GA1R) was used in western blot on human samples . Cell Mol Life Sci (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; loading ...; fig 1b
In order to use native elongating transcript sequencing in human cells to globally map strand-specific RNA polymerase II density at nucleotide resolution, Invitrogen Gapdh-ps15 antibody (Applied Biosystems, 6C5) was used in western blot on human samples (fig 1b). Cell (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to identify the mechanism of metformin on dystrophic muscle, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on mouse samples . Muscle Nerve (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; rat; fig 1
In order to test if acute pharmacological activation of AKT induces cardioprotection, Invitrogen Gapdh-ps15 antibody (Pierce, MA5-15738) was used in western blot on rat samples (fig 1). J Transl Med (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 6
In order to investigate the effects of nicotinamide adenine dinucleotide phosphate reduced oxidase 4 in liver tissues from patients with NASH and mice with steatohepatitis, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on mouse samples (fig 6). Gastroenterology (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:16,000; fig 2
  • western blot; mouse; 1:16,000; fig 5
In order to test if PTHrP contributes to adipogenic regulation, obesity, and insulin resistance, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:16,000 (fig 2) and in western blot on mouse samples at 1:16,000 (fig 5). J Clin Endocrinol Metab (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:40,000; fig 2a
In order to examine an immunoblot-analysis workflow for accuracy and precision, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:40,000 (fig 2a). Sci Signal (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
Invitrogen Gapdh-ps15 antibody (Applied Biosystems, 6C5) was used in western blot on human samples . Mol Cell Biol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:4000
In order to test the effects of calcitriol treatment in a puromycin induced proteinuric nephropathy model, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on rat samples at 1:4000. Mol Med Rep (2015) ncbi
rabbit polyclonal
  • western blot; human
In order to identify genetic alterations and corresponding stable phenotypes that develop in cancer cells following cyclic hypoxia, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, PA1-988) was used in western blot on human samples . PLoS ONE (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse
Invitrogen Gapdh-ps15 antibody (Thermo Scientific, GA1R) was used in western blot on mouse samples . Infect Immun (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:20000; fig 1
In order to investigate the mechanisms downstream of STAT3 signaling that regulate inflammation, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:20000 (fig 1). Sci Rep (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:2000; fig 1
In order to elucidate the mechanism by which estradiol regulates progesterone production in the corpus luteum, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:2000 (fig 1). Mol Endocrinol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; common platanna; 1:5000
In order to determine the role of NOL11 in vertebrate ribosome biogenesis and craniofacial development, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on common platanna samples at 1:5000. PLoS Genet (2015) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:10000
In order to study the effect of loss of Transactive response DNA-binding protein 43 on the proteome, Invitrogen Gapdh-ps15 antibody (Invitrogen, 39-8600) was used in western blot on human samples at 1:10000. Neuroscience (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to study the effects of compressive stress on cellular functions, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . PLoS ONE (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; chicken
Invitrogen Gapdh-ps15 antibody (Thermo Scientific, GA1R) was used in western blot on chicken samples . Virus Res (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 3
In order to test if lys methylation of Pdx1 by Set7/9 affects Pdx1 transcriptional activity, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 3). J Biol Chem (2015) ncbi
mouse monoclonal (1D4)
  • western blot; human
In order to correlate epigenomic changes with tumor aggressiveness, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, MA1-16757) was used in western blot on human samples . Int J Cancer (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
  • western blot; mouse
In order to show that FKBP12 and FKBP51 levels determine the responsiveness of a cell line or tissue to rapamycin, Invitrogen Gapdh-ps15 antibody (Ambion Austin, AM4300) was used in western blot on human samples and in western blot on mouse samples . Aging Cell (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; fig 4
In order to assess the effects of TNBS- and DSS-induced colitis on renal Ncx1 expression, Invitrogen Gapdh-ps15 antibody (Pierce, MA5-15738) was used in western blot on mouse samples (fig 4). J Biol Chem (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig s2
In order to analyze the antiviral innate immune response due to mitochondrial DNA stress, Invitrogen Gapdh-ps15 antibody (Ambion, 6C5) was used in western blot on mouse samples (fig s2). Nature (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; scFv
In order to generate safer genetically modified organisms that are dependent on synthetic metabolites, Invitrogen Gapdh-ps15 antibody (Thermo, MA5-15738) was used in western blot on scFv samples . Nature (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse
In order to study the effects of Tamoxifen administration on obesity, Invitrogen Gapdh-ps15 antibody (Thermo Fisher Scientific, MA5-15738) was used in western blot on mouse samples . Cell Death Dis (2015) ncbi
rabbit polyclonal
  • western blot; mouse
In order to study the regulation of the canonical Wnt pathway and its effect on cardiac progenitor development, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, PA1987) was used in western blot on mouse samples . Dev Biol (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; human; 1:3000; fig 1,2,3,4
In order to study targeting of Ubc13 and ZEB1 by miR-2015 that acts as a tumour radiosensitizer, Invitrogen Gapdh-ps15 antibody (Thermo, MA5-15738) was used in western blot on human samples at 1:3000 (fig 1,2,3,4). Nat Commun (2014) ncbi
mouse monoclonal (GA1R)
  • western blot; human; 25 ng/ml; fig 4
In order to investigate TRiC-mediated protein folding in the telomerase pathway, Invitrogen Gapdh-ps15 antibody (Thermo, MA5-15738) was used in western blot on human samples at 25 ng/ml (fig 4). Cell (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:20000
In order to assess the best reference to use as a loading control for Western blotting of human skeletal muscle in applied physiology, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on human samples at 1:20000. J Appl Physiol (1985) (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
In order to study autophagy in Mycobacterium tuberculosis-infected patients, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 1). Autophagy (2014) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:2000; fig 3
In order to analyze the modification of the location of potassium channel KCNQ5 in auditory brainstem neurons due to loss of auditory activity, Invitrogen Gapdh-ps15 antibody (Applied Biosystems, 6C5) was used in western blot on rat samples at 1:2000 (fig 3). J Neurosci Res (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 5
In order to study microRNAs in bone development, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 5). J Bone Miner Res (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to identify the role of obscurins during breast carcinogenesis, Invitrogen Gapdh-ps15 antibody (Applied Biosystems, AM4300) was used in western blot on human samples . Oncogene (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10000
In order to investigate the sex-specific gene expression in human term placenta and its response to n-3 LCPUFA intervention, Invitrogen Gapdh-ps15 antibody (Ambion Inc./Life Technologies, AM4300) was used in western blot on human samples at 1:10000. BMC Genomics (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to examine expression of the E7 protein in cervical cancer cell lines, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on human samples . Virus Genes (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:40,000; fig 1
In order to investigate the role of TGF-beta to renal fibrosis, Invitrogen Gapdh-ps15 antibody (Invitrogen, AM4300) was used in western blot on mouse samples at 1:40,000 (fig 1). PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:5000
In order to determine the role of mohawk homeobox in ligament/tenogenic differentiation of bone marrow derived mesenchymal stem cells, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on rat samples at 1:5000. J Orthop Res (2015) ncbi
rabbit polyclonal
  • western blot; human
In order to optimize rAAV3 vectors to enhance liver tropism and use rAAV3 in combination with shikonin to treat liver disease, Invitrogen Gapdh-ps15 antibody (Thermo Scientific, PA1-988) was used in western blot on human samples . Hum Gene Ther (2014) ncbi
mouse monoclonal (GA1R)
  • western blot; human; 1:2000
Invitrogen Gapdh-ps15 antibody (Sigma-Aldrich, MA5-15738) was used in western blot on human samples at 1:2000. Breast Cancer Res (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to examine the accumulation of polyubiquitin conjugates in PiZ mouse liver, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to study delta-9-tetrahydrocannabinol in St8sia2(-/-) mice, Invitrogen Gapdh-ps15 antibody (Ambion Life Technologies, AM4300) was used in western blot on human samples . Behav Brain Res (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 0.2 ug/mL
In order to examine the fractalkine protein expression in mice retina, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on mouse samples at 0.2 ug/mL. PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:2000
In order to study ceramide dysregulation in a chronic experimental autoimmune encephalomyelitis model, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:2000. Biochem Pharmacol (2014) ncbi
mouse monoclonal (ZG003)
  • western blot; human; fig 6
In order to characterize brain aging in Alzheimer's disease and the biochemical properties of precuneus and posterior cingulate gyrus in the brain, Invitrogen Gapdh-ps15 antibody (Life Technologies, 39-8600) was used in western blot on human samples (fig 6). PLoS ONE (2014) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse
Invitrogen Gapdh-ps15 antibody (Thermo Scientific, GA1R) was used in western blot on mouse samples . Front Physiol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1 ug/ml; fig 6
In order to study the role of Pax6 in the maintenance and differentiation of adult neural stem cells and in adult neurogenesis, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1 ug/ml (fig 6). Stem Cells Dev (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:10,000; fig 1
In order to investigate how BRAF/MAPK activity regulates intestinal stem cell populations and contributes to colon cancer, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on mouse samples at 1:10,000 (fig 1). Oncogene (2015) ncbi
mouse monoclonal (GA1R)
  • western blot; mouse; 1:3000; fig 4c
  • western blot; human; 1:3000; fig 1a
In order to show that the zinc finger E-box binding homeobox 1 regulates radiosensitivity and the DNA damage response in breast cancer cells, Invitrogen Gapdh-ps15 antibody (Thermo, MA5-15738) was used in western blot on mouse samples at 1:3000 (fig 4c) and in western blot on human samples at 1:3000 (fig 1a). Nat Cell Biol (2014) ncbi
mouse monoclonal (ZG003)
  • western blot; human; fig 7
In order to test if hepatocytes produce MMPs, regulated by CD147, that remodel fibrotic extracellular matrix independent of HSC, Invitrogen Gapdh-ps15 antibody (Lifetechnologies, EP1264Y) was used in western blot on human samples (fig 7). PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:40000
In order to show that that PINK1 deficiency triggers hypoxia-inducible factor-1alpha, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on mouse samples at 1:40000. Nat Commun (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:2000; fig  2
In order to examine the role of P2Y6 receptors in pain processing, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:2000 (fig  2). Pharmacol Biochem Behav (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:15000
In order to investigate the effect of SIRT1 inhibition during sepsis, Invitrogen Gapdh-ps15 antibody (Invitrogen, AM4300) was used in western blot on mouse samples at 1:15000. J Leukoc Biol (2014) ncbi
mouse monoclonal (GA1R)
  • western blot; rat
In order to examine the p.G2019S mutation in the leucine-rich repeat kinase 2 (LRRK2) and it's role in Parkinson's disease, Invitrogen Gapdh-ps15 antibody (Thermo, MA5-15738) was used in western blot on rat samples . J Parkinsons Dis (2014) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:5000; fig 4c
In order to elucidate the interactions among RPRD1A, RPRD1B, and the C-terminal domain of RNA polymerase II, Invitrogen Gapdh-ps15 antibody (Invitrogen, 398600) was used in western blot on human samples at 1:5000 (fig 4c). Nat Struct Mol Biol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 2
In order to use a DDR2 knockout mouse to examine the contribution of DDR2 to heart structure and function, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 2). Am J Physiol Heart Circ Physiol (2014) ncbi
mouse monoclonal (ZG003)
  • western blot; mouse; 1:500
In order to measure the protein expression of anti-angiogenic peptides, pro-angiogenic factors, and nucleolin in response to detraining in triceps surae muscles of mice, Invitrogen Gapdh-ps15 antibody (Invitrogen, 39-8600) was used in western blot on mouse samples at 1:500. J Physiol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 8
In order to identify the components of the norovirus translation initiation factor complex, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 8). J Biol Chem (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; fig 3
In order to characterize a monoclonal anti-human c-kit antibody for inhibiting tumor growth, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on human samples at 1:5000 (fig 3). Cancer Biol Ther (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10000
In order to identify a hypomorphic variant of CCDC22 in patients with RSS/3C syndrome in an Austrian family, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:10000. Eur J Hum Genet (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:20000
In order to study the role of UTP in Schwannoma cell migration in response to peripheral nerve injury and its mechanism, Invitrogen Gapdh-ps15 antibody (Applied Biosystems, AM4300) was used in western blot on rat samples at 1:20000. PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to confirm the role of argininosuccinate lyase deficiency from enterocytes in the pathogenesis of necrotizing enterocolitis, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . Am J Physiol Gastrointest Liver Physiol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to study how RAS disrupts the circadian clock in cancer cells, Invitrogen Gapdh-ps15 antibody (Ambion, Am4300) was used in western blot on human samples . PLoS Genet (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:10,000
In order to determine the in vivo functions of miR-142, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:10,000. elife (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to assess the cardiac phenotype in LAP1 depleted mice, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . Nucleus (2014) ncbi
mouse monoclonal (6C5)
  • western blot; hamsters
In order to investigate the use of peptides as carriers of short interfering RNA, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on hamsters samples . PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to investigate how VHL-R167Q contributes to tumorigenesis, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . Cancer Res (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
  • western blot; human
In order to examine the relationship between endoplasmic reticulum stress and autophagy in human and mouse hepatocytes during non-alcoholic fatty liver disease, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples and in western blot on human samples . Cell Death Dis (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to investigate how PRMT6 promotes ERalpha activity, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . Biochim Biophys Acta (2014) ncbi
mouse monoclonal (6C5)
  • immunocytochemistry; mouse; 1:1000
Invitrogen Gapdh-ps15 antibody (Life Technologies, 6C5) was used in immunocytochemistry on mouse samples at 1:1000. J Bone Miner Res (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:2000
In order to correlate the expression of CD200 in various types of cancer with the responses to chemotherapy and radiation, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:2000. Head Neck (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to examine the role of the LIM homeodomain transcription factor Isl1 in pyloric development, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . BMC Biol (2014) ncbi
mouse monoclonal (ZG003)
  • western blot; mouse; 1:1000; fig 2
In order to investigate how phosphorylation controls IFITM3 trafficking and degradation, Invitrogen Gapdh-ps15 antibody (Invitrogen, 398600) was used in western blot on mouse samples at 1:1000 (fig 2). J Biol Chem (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:20000
In order to elucidate the mechanism for the role of Zscan4 in early mammalian embryogenesis, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:20000. PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10000; fig 1d
In order to show that C9ORF72 regulates endosomal trafficking, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:10000 (fig 1d). Hum Mol Genet (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10000
In order to determine if NaAsO2 and hyperthermia alter cisplatin-induced G2 arrest and cause mitotic arrest and mitotic catastrophe, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:10000. Toxicol Sci (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10000
In order to determine the cellular function of Lyar, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:10000. Genes Cells (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000
In order to test if CDK-9 inhibition protects cartilage from the catabolic effects of proinflammatory cytokines, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:5000. Arthritis Rheumatol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:4000
In order to characterize engineered human tendon tissue and how release of tensile strain changes matrix architecture, disturbs cell adhesions, and induces an inflammatory phenotype, Invitrogen Gapdh-ps15 antibody (Invitrogen, AM4300) was used in western blot on human samples at 1:4000. PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; fig 2
In order to determine how a reversal of glioma stem cell phenotype occurs based on a cell-penetrating petide and the interaction between c-Src and connexin43, Invitrogen Gapdh-ps15 antibody (Applied Biosystems, AM4300) was used in western blot on human samples at 1:5000 (fig 2). Cell Death Dis (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1, 2
In order to demonstrate that p38MAPK activation elevates mitochondrial ROS levels, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 1, 2). Cell Commun Signal (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to suggest that detection of WIPI1 mRNA is a convenient method of monitoring autophagosome formation, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on human samples . Autophagy (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:500; fig 1
  • western blot; rat; 1:500; fig 1
In order to test if steroidogenic factor 1 is expressed in castration-resistant prostate cancer and determine if it stimulates aberrant steroidogenesis and fuels aggressive growth, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:500 (fig 1) and in western blot on rat samples at 1:500 (fig 1). Endocrinology (2014) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:10000; fig s1
In order to discuss using exosomes to deliver siRNA, Invitrogen Gapdh-ps15 antibody (Zymed, clone ZG003) was used in western blot on human samples at 1:10000 (fig s1). Cell Commun Signal (2013) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:5000; fig 2
In order to identify targets of miR-22 that contribute to heart failure, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on rat samples at 1:5000 (fig 2). PLoS ONE (2013) ncbi
mouse monoclonal (ZG003)
  • western blot; dog; fig 7
In order to identify alpha10beta1 integrin as a gene that causes autosomal recessive chondrodysplasia that affects the Norwegian Elkhound and Karelian Bear Dog breeds, Invitrogen Gapdh-ps15 antibody (Invitrogen, 39-8600) was used in western blot on dog samples (fig 7). PLoS ONE (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to demonstrate that Ras signaling is important for enamel formation in individuals with Costello syndrome and present mouse model system to dissect the roles of the Ras effector pathways in vivo, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . Hum Mol Genet (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:40,000
In order to test if polyST deficiency results in a schizophrenia-like phenotype using knock out mice, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:40,000. Brain Struct Funct (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:2000; fig 5
In order to characterize a rat model for long-term upper extremity overuse that causes increased serum and musculotendinous fibrogenic proteins followed by low-grade inflammation, Invitrogen Gapdh-ps15 antibody (Invitrogen, AM4300) was used in western blot on rat samples at 1:2000 (fig 5). PLoS ONE (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000
In order to study the relationship between tumor protein D52 and ATM protein, Invitrogen Gapdh-ps15 antibody (Life Technologies, 6C5) was used in western blot on human samples at 1:5000. Cell Cycle (2013) ncbi
mouse monoclonal (ZG003)
  • western blot; human; fig 3
In order to elucidate the extracellular matrix-dependent signaling pathway that impacts nSR100 expression and its regulation of alternative splicing in small cell lung cancer, Invitrogen Gapdh-ps15 antibody (Zymed, 39-8600) was used in western blot on human samples (fig 3). Mol Cancer Res (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:4000; fig 4
In order to investigate the mechanism and function of trimethylated HSPA8, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:4000 (fig 4). J Biol Chem (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to study the phosphorylation of AKT1 and AKT2, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . Oncogene (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000
In order to investigate the role of Tbc1d1 in insulin- and AICAR-stimulated glucose uptake in skeletal muscle, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:1000. Endocrinology (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 7
In order to study the interactions between heat shock protein 90 and conserved herpesvirus protein kinase, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:1000 (fig 7). J Virol (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
In order to identify protein interacting with C-kinase 1 as a binding partner of growth hormone-releasing hormone receptor, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 3). J Pharmacol Sci (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to study targeting sEcad for treatment of breast cancer, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 2). Mol Carcinog (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to investigate the role of hepatocyte growth factor receptor, c-met in renoprotection, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . Kidney Int (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:2000; fig 4
In order to examine the antidepressant effect of Yueju in mice, Invitrogen Gapdh-ps15 antibody (Invitrogen, AM4300) was used in western blot on mouse samples at 1:2000 (fig 4). Evid Based Complement Alternat Med (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 5
In order to describe a novel role for the tubular beta-catenin/MMP-7 axis in controlling the fate of interstitial fibroblasts via epithelial-mesenchymal communication, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 5). Sci Rep (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:15000; fig 1
In order to study the mechanisms regulated by Gsk-3 that contribute to embryonic stem cell self-renewal, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:15000 (fig 1). PLoS ONE (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to test if COMP binds to BMP-2 and test if COMP promotes the biological activity of BMP-2 with respect to osteogenesis, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 2). Bone (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 5
In order to demonstrate that cycloheximide produces inhibin-like effects in gonadotropes by preventing de novo synthesis of ACVR2, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 5). Cell Signal (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:20000; fig 4
In order to study nonalcoholic steatohepatitis using rats, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on human samples at 1:20000 (fig 4). Toxicol Appl Pharmacol (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to examine the role of heat shock proteins in the biogenesis of KCNQ4 channels, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . PLoS ONE (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:4000
In order to study the mechanism of the mitomycin C on urothelial carcinoma cells, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:4000. Urol Oncol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to investigate the role of ROCK1 and ROCK2 in cell detachment, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . Cell Death Dis (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to describe the phenotype of seven patients with de novo deletions of chromosome 19p13.3, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . Clin Genet (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:10000
In order to investigate the functions of KLK6 in oligodendrocyte lineage cell development and myelin protein production, Invitrogen Gapdh-ps15 antibody (Life TechnologiesIncorporated, AM4300) was used in western blot on mouse samples at 1:10000. Neuroscience (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1, 2
In order to study the roles of MAPK-related kinase and MKNK-1 in HCV replication and cellular entry, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 1, 2). J Virol (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000
In order to determine if mitochondrial DNA expression or content contribute to the mitochondrial dysfunction observed in schizophrenia, bipolar disorder, and major depressive disorder, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:1000. Am J Med Genet B Neuropsychiatr Genet (2013) ncbi
mouse monoclonal (6C5)
  • western blot; Asian tiger mosquito; 1:6000; fig 4
In order to identify host proteins involved in Dengue virus cell entry, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on Asian tiger mosquito samples at 1:6000 (fig 4). Arch Virol (2013) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:20000
In order to examine the role of UTP on N-cadherin expression in schwannoma cells, Invitrogen Gapdh-ps15 antibody (Applied Biosystems, AM4300) was used in western blot on rat samples at 1:20000. Purinergic Signal (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1b
In order to characterize mice with reduced Reck-expression, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 1b). Biol Open (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
In order to study mechanisms of transcriptional regulation of miRNAs using esophageal squamous cell carcinoma, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 1). Biochem Biophys Res Commun (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 5
In order to elucidate mechanisms that regulate P2rx7 gene expression, Invitrogen Gapdh-ps15 antibody (Ambion, #AM4300) was used in western blot on mouse samples (fig 5). J Biol Chem (2012) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:3000; fig 4
In order to study gliosis during Purkinje and mitral cell death in the Purkinje Cell Degeneration mouse, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:3000 (fig 4). Glia (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 0.2 ug/ml; fig 3
In order to study the role of AKAP7 in regulating calcium in mouse cardiomyocytes, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 0.2 ug/ml (fig 3). Proc Natl Acad Sci U S A (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to study the role of AURKA, a negative regulator of autophagy, in breast cancer, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 2). Autophagy (2012) ncbi
mouse monoclonal (6C5)
  • western blot; rat; fig 8
In order to test if there is a transcytotic pathway of AQP2 trafficking between apical and basolateral membranes, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on rat samples (fig 8). Am J Physiol Cell Physiol (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 6
In order to characterize mice carrying the human FMR1 premutation allele, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 6). Hum Mol Genet (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:3000
In order to study the role of caspases in cytokine-induced barrier breakdown during neuroinflammation, Invitrogen Gapdh-ps15 antibody (Applied Biosystems, AM4300) was used in western blot on human samples at 1:3000. J Immunol (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10000; fig 4
In order to identify the roles of H19 gene via the miR-675 pathway in the pathogenesis of preeclampsia, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:10000 (fig 4). RNA Biol (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to exmaine the expression of unfolded protein response genes in endoplasmic reticulum stress, Invitrogen Gapdh-ps15 antibody (Life Technologies, AM4300) was used in western blot on human samples . Cell Stress Chaperones (2013) ncbi
mouse monoclonal (6C5)
  • western blot; rat; fig 2
In order to study progesterone receptor membrane component in granulosa cells, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on rat samples (fig 2). Endocrinology (2012) ncbi
mouse monoclonal (6C5)
  • immunocytochemistry; mouse; 4 ug/ml; fig 3
In order to develop and use methods to directly assess maternal and embryonic products, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in immunocytochemistry on mouse samples at 4 ug/ml (fig 3). PLoS ONE (2012) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to test if H2AX phosphorylation is important in maintaining self-renewal of mouse embryonic stem cells, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . Stem Cells (2012) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 8
In order to characterize mice in which beta-catenin is absent in renal tubules, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 8). Kidney Int (2012) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1
In order to elucidate the role of chromatin compaction in stem cell fate and function, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 1). PLoS Genet (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10000; fig 5
In order to assess the effects of nanoparticles on inflammation and cellular stress, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:10000 (fig 5). Toxicol Lett (2012) ncbi
mouse monoclonal (ZG003)
  • western blot; human; fig 3
In order to report that downregulation of miR-1, -206. and -29 stabilizes expression of PAX3 and CCND2, Invitrogen Gapdh-ps15 antibody (Invitrogen, 39-8600) was used in western blot on human samples (fig 3). Lab Invest (2012) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:40000; fig 1
In order to identify STAT3-controlled effectors of the anti-inflammatory response, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:40000 (fig 1). Blood (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
In order to investigate the role of the BDNF-TrkB signaling in the development of CDDP resistance in HNSCC, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 1). PLoS ONE (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:4000; fig 3
In order to identify and validate reference proteins for data standardization, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:4000 (fig 3). PLoS ONE (2012) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000
In order to investigate factors that regulate excitatory and inhibitory neuron migration, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:5000. Nat Neurosci (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10000; fig 3
In order to determine the phenotype of the platelets in patients with idiopathic pulmonary arterial hypertension, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:10000 (fig 3). Am J Physiol Lung Cell Mol Physiol (2012) ncbi
mouse monoclonal (6C5)
  • immunohistochemistry; mouse; 1:200
In order to test if germ cell clusters in the mammalian gonad arise through incomplete cell divisions, Invitrogen Gapdh-ps15 antibody (Zymed, AM4300) was used in immunohistochemistry on mouse samples at 1:200. Mech Dev (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
In order to elucidate the impact of H1 in ovarian cancer, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 3). Front Biosci (Landmark Ed) (2012) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to elucidate the link between IL-1beta and Alzheimer's disease pathogenesis, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . J Neuroimmune Pharmacol (2012) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 6
In order to study the response of the serotonergic centrifugal system after mitral cell loss using Purkinje cell degeneration mutant mice, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 6). Neuroscience (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to test if GRB2 contributes to controlling infection by retroviruses by affecting receptor function, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . J Virol (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 5
In order to identify binding partners of Stau2 in dendritic cells, Invitrogen Gapdh-ps15 antibody (Ambion, 6C5) was used in western blot on human samples (fig 5). BMC Mol Biol (2011) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10000; fig 4
  • western blot; mouse; 1:10000; fig 4
In order to examine Pitx2c expression in the left and right atrial tissue in adult murine and human atria, Invitrogen Gapdh-ps15 antibody (Ambion, #AM4300) was used in western blot on human samples at 1:10000 (fig 4) and in western blot on mouse samples at 1:10000 (fig 4). PLoS ONE (2011) ncbi
mouse monoclonal (6C5)
  • immunohistochemistry; mouse; 1:1000; fig 1
In order to characterize mice lacking SCHAD (hadh(-/-)), Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in immunohistochemistry on mouse samples at 1:1000 (fig 1). Endocrinology (2011) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig s3
In order to elucidate mechanism that regulate the integrity of adherens junctions, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig s3). PLoS ONE (2011) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; fig 6
In order to determine the effect of NMDA or bicuculline treatment on miRNA expression in the hippocampal CA1 region of mice or rat neurons, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:5000 (fig 6). PLoS ONE (2011) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig s5
In order to characterize an APECED patient mutation, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig s5). Nucleic Acids Res (2011) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
In order to assess modulation of the TWEAK-Fn14 pathway as a therapeutic for oncology, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 3). MAbs (2011) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10,000; fig 1
In order to evaluate the prognostic significance of SATB1 expression in lung cancer, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:10,000 (fig 1). J Thorac Oncol (2011) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 6
In order to examine the varied penetrance and expressivity of the Twisted gastrulation mutation in mice, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 6). Dev Biol (2011) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
In order to study the effect of NS5A domain III on the production of hepatitis C virus, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 3). J Virol (2011) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
In order to determine the role that VOPP1 has in human squamous cell carcinoma, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 1). Lab Invest (2011) ncbi
mouse monoclonal (6C5)
  • western blot; human; 0.5 ug/ml; fig 4
In order to elucidate the mechanisms by which cholesterol regulates LRP-1 levels and function at the plasma membrane, Invitrogen Gapdh-ps15 antibody (Ambion, clone 6C5) was used in western blot on human samples at 0.5 ug/ml (fig 4). FASEB J (2011) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:10,000; fig 5
In order to examine nestin expression in ventricular fibroblasts, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on rat samples at 1:10,000 (fig 5). J Cell Physiol (2012) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 7
In order to elucidate the role of PTP1B in liver regeneration, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 7). Am J Pathol (2011) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 7
In order to determine if PINCH1 translocates to the nucleus and regulates gene expression, Invitrogen Gapdh-ps15 antibody (Ambion, 4300) was used in western blot on human samples (fig 7). PLoS ONE (2011) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:20,000; fig 5
In order to test the effect of ventricular load on cardiomyopathy, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:20,000 (fig 5). J Am Coll Cardiol (2011) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to study the role in Cdk regulation of the novel gene magoh identified in a genetic screen of a murine cell cycle mutant, Invitrogen Gapdh-ps15 antibody (Ambion, 6C5) was used in western blot on mouse samples . Genes Cells (2011) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; fig 1
In order to study the role of TLR3 in the Chlamydia-induced IFN-beta response using oviduct epithelial cells, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 1:5000 (fig 1). J Immunol (2010) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:15,000; fig 5
In order to investigate the effect of morphine on neuronal GIRK signaling , Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on rat samples at 1:15,000 (fig 5). J Neurosci (2010) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:2000; fig 6
In order to test if adenoviral proteins and irradiation synergize to kill cells by inhibiting the double stranded DNA break response, Invitrogen Gapdh-ps15 antibody (Invitrogen, 39-8600) was used in western blot on human samples at 1:2000 (fig 6). Int J Radiat Oncol Biol Phys (2010) ncbi
mouse monoclonal (6C5)
  • immunocytochemistry; human; fig 3
  • immunohistochemistry; human; fig 3
In order to use three rapid siRNA transfection techniques to silence endothelial genes in the human saphenous vein, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in immunocytochemistry on human samples (fig 3) and in immunohistochemistry on human samples (fig 3). J Vasc Surg (2010) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to characterize parkin knockouts of Danio rerio, Invitrogen Gapdh-ps15 antibody (Ambion, AM 4300) was used in western blot on human samples (fig 2). PLoS ONE (2010) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1
  • western blot; rat; fig 1
In order to test if C-terminus of HSC70 interacting protein upregulation enhances neural survival, Invitrogen Gapdh-ps15 antibody (Applied Biosystems/Ambion, AM4300) was used in western blot on mouse samples (fig 1) and in western blot on rat samples (fig 1). Antioxid Redox Signal (2011) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1
In order to examine the T cell subset responses to Ca(2+) signals, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 1). J Immunol (2010) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 6
In order to report the redox-responsive molecular signals that drive senescence-associated matrix metalloproteinase-1 expression, Invitrogen Gapdh-ps15 antibody (Ambion, 4300) was used in western blot on human samples (fig 6). J Cell Physiol (2010) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 0.5 ug/ml; fig 8
In order to study protein alterations that contribute to AQP8 regulation and trafficking, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples at 0.5 ug/ml (fig 8). J Proteomics (2010) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10,000; fig 1
In order to examine VEGF receptor expression in tumor cells, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:10,000 (fig 1). Clin Cancer Res (2010) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; fig 5
In order to determine the role of E2F4 in bone development using mutant mice, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:5000 (fig 5). Cell Cycle (2010) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 3
In order to test if l-Ala-gamma-d-Glu-meso-DAP is transported into intestinal epithelial cells via PepT1, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:1000 (fig 3). Am J Physiol Gastrointest Liver Physiol (2010) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 5
In order to investigate the role of miR-137 in neuronal maturation, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples (fig 5). Stem Cells (2010) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 5
  • western blot; mouse; fig 5
In order to explore Smad3 interactions with CCCTC-binding factor, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 5) and in western blot on mouse samples (fig 5). J Biol Chem (2010) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:4000
In order to study the function of progesterone receptor membrane component-1 monomers and dimers, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on rat samples at 1:4000. Mol Cell Endocrinol (2010) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:15,000
In order to elucidate the between tau aggregation and the unfolded protein response in neurodegenerative disorders, Invitrogen Gapdh-ps15 antibody (Invitrogen, 39-8600) was used in western blot on human samples at 1:15,000. J Neurosci Res (2010) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to examine ChREBP expression during the acute phase response, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 2). Innate Immun (2011) ncbi
mouse monoclonal (6C5)
  • western blot; rat; fig 3
In order to test if basic fibroblast growth factor enhances axonal branching, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on rat samples (fig 3). Mol Biol Cell (2010) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
In order to investigate if microRNAs regulate CD98 expression during intestinal epithelial cell differentiation and inflammation, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 1). J Biol Chem (2010) ncbi
mouse monoclonal (6C5)
  • western blot; Caenorhabditis elegans; 1:2000; fig s1
In order to elucidate the function of ATAD3, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on Caenorhabditis elegans samples at 1:2000 (fig s1). PLoS ONE (2009) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to study the relationship between PTPN13 phosphatase activity and MAP kinase signaling, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . Oncogene (2009) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to test if the -144/-135 Sp element influences basal HKalpha2 gene transcription in murine inner medullary collecting duct cells, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . Am J Physiol Renal Physiol (2009) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 3
In order to investigate the contribution of reactive oxygen species to the age-dependent increase in collagenase, Invitrogen Gapdh-ps15 antibody (Ambion, 4300) was used in western blot on mouse samples (fig 3). Exp Gerontol (2009) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to elucidate the neurodevelopmental influences of Met activation, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . J Comp Neurol (2009) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to test if mammalian target of rapamycin inhibitor everolimus attenuates neointimal hyperplasia, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 2). Eur J Cardiothorac Surg (2009) ncbi
mouse monoclonal (6C5)
  • western blot; African green monkey; fig 5
In order to isolate and identify the huntingtin gene of the common marmoset (Callithrix jacchus), Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on African green monkey samples (fig 5). Gene (2009) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:4000
In order to study Silurus asotus lectin-induced heat shock protein 70 expression, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples at 1:4000. Biochim Biophys Acta (2009) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to perform a genome-wide linkage scan for endurance training-induced changes in stroke volume, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . Physiol Genomics (2009) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 7
In order to report that the BAR domain of ASAP1 is a protein binding site for FIP3, Invitrogen Gapdh-ps15 antibody (Affinity BioReagents, 6C5) was used in western blot on human samples (fig 7). Mol Biol Cell (2008) ncbi
mouse monoclonal (ZG003)
  • western blot; pig; fig 6
In order to test if sarcoplasmic reticulum Ca2+ ATPase pump overexpression reduces ischemic ventricular arrhythmias by modulating calcium overload, Invitrogen Gapdh-ps15 antibody (Zymed, 39-8600) was used in western blot on pig samples (fig 6). Circulation (2008) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1 ug/ml; fig 1
In order to determine the contribution of TRIM32 to carcinogenesis, Invitrogen Gapdh-ps15 antibody (Ambion, 6C5) was used in western blot on human samples at 1 ug/ml (fig 1). Cancer Res (2008) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to identify the molecular pathways that promote survival and apoptosis of UACC903 and UACC903(+6) cell lines, respectively, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples . Apoptosis (2008) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to explore whether retinoic acid promotes differentiation of human SH-SY5Y neuroblastoma cells by modulating Cdh1, Invitrogen Gapdh-ps15 antibody (Ambion, 6C5) was used in western blot on human samples . Oncogene (2008) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to elucidate how RAF controls cell survival, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . Mol Cell Biol (2008) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 4
In order to analyze the effect of bone morphogenetic proteins on PTEN, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on human samples (fig 4). Cancer Biol Ther (2007) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to identify genes upregulated in RANKL-stimulated osteoclast precursor cells, Invitrogen Gapdh-ps15 antibody (Ambion, AM4300) was used in western blot on mouse samples . Bone (2008) ncbi
mouse monoclonal (ZG003)
  • western blot; human; 1:1000; fig 6
In order to identify PAK as a kinase protein whose activity is modified in platelet-derived growth factor B-chain promoter-driven APP transgenic mice, Invitrogen Gapdh-ps15 antibody (Invitrogen, ZG003) was used in western blot on human samples at 1:1000 (fig 6). J Neurochem (2008) ncbi
mouse monoclonal (6C5)
  • western blot; common platanna; 1:1000
In order to investigate the role of thyroid hormone receptors in apoptosis, Invitrogen Gapdh-ps15 antibody (ambion, AM4300) was used in western blot on common platanna samples at 1:1000. Apoptosis (2007) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
In order to study the involvement of LMO4 in mesenchymal-epithelial signaling, Invitrogen Gapdh-ps15 antibody (Ambion, 4300) was used in western blot on human samples (fig 1). Oncogene (2006) ncbi
Santa Cruz Biotechnology
mouse monoclonal (6C5)
  • western blot; human; 1:20,000; loading ...; fig 5b
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-32233) was used in western blot on human samples at 1:20,000 (fig 5b). elife (2019) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; loading ...; fig 3a
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, SC-32233) was used in western blot on human samples at 1:1000 (fig 3a). Biochem Biophys Res Commun (2019) ncbi
mouse monoclonal (6C5)
  • western blot; human; loading ...; fig 6b
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-32233) was used in western blot on human samples (fig 6b). Cancer Lett (2019) ncbi
mouse monoclonal (0411)
  • western blot; human; loading ...; fig s4n
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-47724) was used in western blot on human samples (fig s4n). Cell (2019) ncbi
mouse monoclonal (G-9)
  • western blot; human; loading ...; fig s17d
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-365062) was used in western blot on human samples (fig s17d). Science (2018) ncbi
mouse monoclonal (0411)
  • western blot; human; loading ...; fig 6b
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-47724) was used in western blot on human samples (fig 6b). J Clin Invest (2019) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:500; loading ...; fig 4a
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-365062) was used in western blot on human samples at 1:500 (fig 4a). J Virol (2018) ncbi
mouse monoclonal (0411)
  • western blot; human; loading ...; fig 3d
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-47724) was used in western blot on human samples (fig 3d). Front Immunol (2018) ncbi
mouse monoclonal (G-9)
  • western blot; human; loading ...; fig 2a
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-365062) was used in western blot on human samples (fig 2a). Oncotarget (2018) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; loading ...; fig s5d
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-32233) was used in western blot on mouse samples (fig s5d). Mol Cancer Res (2018) ncbi
mouse monoclonal (6C5)
  • flow cytometry; human; 1:200; loading ...; fig 7b
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa, 6C5) was used in flow cytometry on human samples at 1:200 (fig 7b). Stem Cells (2018) ncbi
mouse monoclonal (6C5)
  • western blot; human; loading ...; fig 2c
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-32233) was used in western blot on human samples (fig 2c). Clin Cancer Res (2018) ncbi
mouse monoclonal (A-3)
  • western blot; human; 1:1000; loading ...; fig 4d
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-137179) was used in western blot on human samples at 1:1000 (fig 4d). Mol Med Rep (2017) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 6C5) was used in western blot on mouse samples (fig 2). Front Immunol (2016) ncbi
mouse monoclonal (G-9)
  • immunocytochemistry; human; 1:200; loading ...; fig 3e
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in immunocytochemistry on human samples at 1:200 (fig 3e). Oncotarget (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 4a
In order to investigate the role of Notch signaling in late-stage myogenesis, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples (fig 4a). elife (2016) ncbi
mouse monoclonal (G-9)
  • western blot; mouse; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on mouse samples (fig 3). elife (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-32233) was used in western blot on human samples at 1:1000 (fig 3). PLoS ONE (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000; fig 5
In order to examine the impact of protease-activated receptor-1 to diabetic nephropathy development, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples at 1:1000 (fig 5). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; rat; tbl 7
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-32233) was used in western blot on rat samples (tbl 7). Cardiovasc Diabetol (2016) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 5A
In order to explore the role of NHERF1 in intestinal adenoma development, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 0411) was used in western blot on human samples (fig 5A). Neoplasia (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig s2
In order to elucidate the role of the Ndel1-Tara complex in actin reorganization during cell movement, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 6C5) was used in western blot on human samples (fig s2). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig s1
In order to find genes involved in tumor cell migration, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig s1). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to demonstrate that DNA-damage inducible 1 homolog 2 is required to cleave and activate Nrf1, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig 2). elife (2016) ncbi
mouse monoclonal (D-6)
  • western blot; human; loading ...; fig 6a
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa cruz, sc-166545) was used in western blot on human samples (fig 6a). Oncotarget (2016) ncbi
mouse monoclonal (G-9)
  • western blot; mouse; fig 7d
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-365062) was used in western blot on mouse samples (fig 7d). elife (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:1000; fig 2
In order to assess the role of Nrg1 signaling to Alzheimer's disease pathogenesis, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples at 1:1000 (fig 2). Mol Med Rep (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:2000; fig 3
In order to identify and characterize a DYRK1A inhibitor, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples at 1:2000 (fig 3). Dis Model Mech (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; loading ...; fig 2a
  • western blot; human; 1:5000; loading ...; fig 1b
In order to develop a Rab Phos-tag assay and use it to study LRRK2 signaling, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples at 1:5000 (fig 2a) and in western blot on human samples at 1:5000 (fig 1b). Biochem J (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples (fig 2). elife (2016) ncbi
mouse monoclonal (0411)
  • western blot; cow; 1:3000; fig 1
  • western blot; human; 1:3000; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on cow samples at 1:3000 (fig 1) and in western blot on human samples at 1:3000 (fig 3). Sci Rep (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; fig 3A
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples (fig 3A). Onco Targets Ther (2016) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:10,000; fig s3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, O411) was used in western blot on human samples at 1:10,000 (fig s3). J Clin Endocrinol Metab (2016) ncbi
mouse monoclonal (A-3)
  • western blot; human; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-137179) was used in western blot on human samples (fig 1). Exp Ther Med (2016) ncbi
mouse monoclonal (6C5)
  • RNA immunoprecipitation; human; 1:1000; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (SantaCruz, SC-32233) was used in RNA immunoprecipitation on human samples at 1:1000 (fig 3). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:2000; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:2000 (fig 3). Nat Commun (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:8000; fig 7
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples at 1:8000 (fig 7). Acta Neuropathol Commun (2016) ncbi
mouse monoclonal (G-9)
  • western blot; mouse; 1:50,000; fig 6
  • western blot; human; 1:50,000; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc365062) was used in western blot on mouse samples at 1:50,000 (fig 6) and in western blot on human samples at 1:50,000 (fig 1). Nat Commun (2016) ncbi
mouse monoclonal (D-6)
  • western blot; human; 1:5000; fig 1
In order to assess the enhancement of anaplastic thyroid carcinoma malignancy by O-GlcNAcylation, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-166545) was used in western blot on human samples at 1:5000 (fig 1). Oncol Lett (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:200; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples at 1:200 (fig 2). Oncol Lett (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 6
In order to study alleviation of impaired mitochondrial biogenesis by twinkle overexpression preventing cardiac rupture after myocardial infarction, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples (fig 6). Am J Physiol Heart Circ Physiol (2016) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:5000; fig 6
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples at 1:5000 (fig 6). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 10a
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig 10a). Cancer Cell Int (2016) ncbi
mouse monoclonal (G-9)
  • western blot; rat; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on rat samples (fig 4). Mol Brain (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz,, sc-32233) was used in western blot on human samples (fig 2). Cancer Cell Int (2016) ncbi
mouse monoclonal (1D4)
  • western blot; mouse; 1:1000; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-59540) was used in western blot on mouse samples at 1:1000 (fig 4). Exp Ther Med (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10,000; fig s4
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:10,000 (fig s4). Nat Commun (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-365062) was used in western blot on human samples (fig 4). Protein Cell (2016) ncbi
mouse monoclonal (0411)
  • western blot; Domestic guinea pig; 1:1000; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-47724) was used in western blot on Domestic guinea pig samples at 1:1000 (fig 4). Sci Rep (2016) ncbi
mouse monoclonal (G-9)
  • western blot; mouse; 1:1000; fig 2
In order to study the alterations of brain Neuregulin-1 signaling during neuroinflammation, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-3650620) was used in western blot on mouse samples at 1:1000 (fig 2). Mol Med Rep (2016) ncbi
mouse monoclonal (G-9)
  • western blot; mouse; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on mouse samples (fig 3). Int J Mol Sci (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples (fig 1). Int J Oncol (2016) ncbi
mouse monoclonal (G-9)
  • western blot; scFv; 1:1000; fig 3
In order to study the transduction of MITF-driven prosurvival signals by BPTF in melanoma cells, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on scFv samples at 1:1000 (fig 3). Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (H-12)
  • western blot; human; 1:1500; fig 1B
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-166574) was used in western blot on human samples at 1:1500 (fig 1B). Mol Med Rep (2016) ncbi
mouse monoclonal (H-12)
  • western blot; mouse; 1:1000; fig 2
  • western blot; pig; 1:1000; fig 2
  • western blot; human; 1:1000; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-166574) was used in western blot on mouse samples at 1:1000 (fig 2), in western blot on pig samples at 1:1000 (fig 2) and in western blot on human samples at 1:1000 (fig 2). Sci Rep (2016) ncbi
mouse monoclonal (G-9)
  • western blot; mouse; fig 6
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on mouse samples (fig 6). Autophagy (2016) ncbi
mouse monoclonal (0411)
  • western blot; mouse; 0.2 ug/ml; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-47724) was used in western blot on mouse samples at 0.2 ug/ml (fig 2). PLoS ONE (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotech, sc-32233) was used in western blot on human samples at 1:5000 (fig 4). J Korean Med Sci (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:10,000; fig 6
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 6C5) was used in western blot on mouse samples at 1:10,000 (fig 6). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000; fig s4
In order to study the response to matrix rigidity by mechanical regulation of a molecular clutch that defines force transmission and transduction, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples at 1:1000 (fig s4). Nat Cell Biol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; rat; fig 1
In order to determine the role of housekeeping proteins and their use in muscle hypertrophy models and skeletal muscle diabetes studies, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on rat samples (fig 1). Anal Biochem (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 7
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples (fig 7). Cell Death Dis (2016) ncbi
mouse monoclonal (G-9)
  • western blot; rat; 1:1000; fig 2
In order to characterize infiltration by leukocytes that trigger seizure recurrence in a rat model of temporal lobe epilepsy, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on rat samples at 1:1000 (fig 2). Inflammation (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000; fig 1d
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples at 1:1000 (fig 1d). BMC Biol (2016) ncbi
mouse monoclonal (A-3)
  • western blot; equine; 1:1000; fig 1
In order to compare expression levels and distribution of Claudin-1, 2, 4, and 5 in equine tissues, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, SC-137179) was used in western blot on equine samples at 1:1000 (fig 1). J Vet Sci (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-365062) was used in western blot on human samples (fig 1). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
  • western blot; mouse; fig 7
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples (fig 1) and in western blot on mouse samples (fig 7). Cell Signal (2016) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:1000; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, SC-47724) was used in western blot on human samples at 1:1000 (fig 5). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:20,000; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, 6C5) was used in western blot on human samples at 1:20,000 (fig 2). J Cell Sci (2016) ncbi
mouse monoclonal (G-9)
  • western blot; rat; 1:5000; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (Kangchen Biotechnology Inc., sc-365062) was used in western blot on rat samples at 1:5000 (fig 5). Exp Ther Med (2016) ncbi
mouse monoclonal (0411)
  • western blot; human; fig s2
In order to determine how inhibition of human glioblastoma invasion by actin polymerization can occur by an anti-depressant called fluvoxamine, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-47724) was used in western blot on human samples (fig s2). Sci Rep (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:1000; tbl 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples at 1:1000 (tbl 1). Mol Med Rep (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:1000; fig s1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples at 1:1000 (fig s1). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples at 1:1000 (fig 1). Anal Cell Pathol (Amst) (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 11
  • western blot; rat; fig 9
In order to study Midi-GAGR for neuroprotection, neurotrophic polysaccharide, and BBB-permeable, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples (fig 11) and in western blot on rat samples (fig 9). PLoS ONE (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:1000; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-365062) was used in western blot on human samples at 1:1000 (fig 5). Mol Med Rep (2016) ncbi
mouse monoclonal (H-12)
  • western blot; human; 1:500; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-166574) was used in western blot on human samples at 1:500 (fig 2). Oncol Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:2000; fig 6
  • western blot; rat; 1:2000; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples at 1:2000 (fig 6) and in western blot on rat samples at 1:2000 (fig 2). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; scFv
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, SC-32233) was used in western blot on scFv samples . Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 3
In order to assess the impaired memory and dendritic development in Sorbs2 knock-out mice, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples (fig 3). J Neurosci (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1a
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples (fig 1a). Nucleic Acids Res (2016) ncbi
mouse monoclonal (H-12)
  • western blot; human; 1:1000; fig 1
In order to study prostate cancer DU145 cells and anti-tumor activity of the TRPM8 inhibitor BCTC, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-166574) was used in western blot on human samples at 1:1000 (fig 1). Oncol Lett (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples (fig 3). Mol Biol Cell (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig 2). PLoS ONE (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig 3). Oncotarget (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:1000; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-365062) was used in western blot on human samples at 1:1000 (fig 1). Int J Mol Med (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; fig 5d
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-365062) was used in western blot on human samples (fig 5d). Nucleic Acids Res (2016) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:500; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa cruz, sc-47724) was used in western blot on human samples at 1:500 (fig 2). J Biol Chem (2016) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples (fig 4). J Neuroimmune Pharmacol (2016) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:4000; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-47724) was used in western blot on human samples at 1:4000 (fig 1). Cell Death Dis (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-32233) was used in western blot on mouse samples (fig 1). Nucleic Acids Res (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; fig 4
In order to analyze regulation of formation of the columnar neural epithelium by the tumor suppressor PTEN and the PDK1 kinase, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples at 1:5000 (fig 4). elife (2016) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:10,000; fig 3a
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples at 1:10,000 (fig 3a). Nat Commun (2016) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 4d
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa cruz, sc-47724) was used in western blot on human samples (fig 4d). J Biol Chem (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 2
In order to analyze delay of neurodegeneration by preventing stress-induced OPA1 processing in mitochondria by loss of OMA1, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples (fig 2). J Cell Biol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig 1). Int J Oncol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig 1). Genes Immun (2016) ncbi
mouse monoclonal (1D4)
  • western blot; human; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, SC59540) was used in western blot on human samples (fig 1). Front Endocrinol (Lausanne) (2015) ncbi
mouse monoclonal (0411)
  • western blot; rat; 1:1000; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on rat samples at 1:1000 (fig 3). Mol Med Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:3000; loading ...; fig 3c
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:3000 (fig 3c). Int J Oncol (2016) ncbi
mouse monoclonal (H-12)
  • western blot; mouse; 1:500; fig 3
  • western blot; human; 1:500; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-166574) was used in western blot on mouse samples at 1:500 (fig 3) and in western blot on human samples at 1:500 (fig 3). BMC Cancer (2015) ncbi
mouse monoclonal (6C5)
  • western blot; dog; 1:5000; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 6C5) was used in western blot on dog samples at 1:5000 (fig 2). elife (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:1000; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-47724) was used in western blot on human samples at 1:1000 (fig 1). Oncotarget (2016) ncbi
mouse monoclonal (H-12)
  • western blot; mouse; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, H-12) was used in western blot on mouse samples (fig 4). Oncotarget (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig 2). Redox Biol (2016) ncbi
mouse monoclonal (H-12)
  • western blot; human; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-166574) was used in western blot on human samples (fig 4). Oncotarget (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples (fig 2). elife (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-32233) was used in western blot on human samples (fig 4). BMC Genomics (2015) ncbi
mouse monoclonal (A-3)
  • western blot; human; 1:1000; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-137179) was used in western blot on human samples at 1:1000 (fig 5). Genome Biol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:500; tbl 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples at 1:500 (tbl 1). PLoS ONE (2015) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:2000; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples at 1:2000 (fig 2). Front Pharmacol (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:1000; fig 6
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-47724) was used in western blot on human samples at 1:1000 (fig 6). Oncotarget (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples (fig 3). Cell Death Dis (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; fig 1b
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples at 1:5000 (fig 1b). Nat Commun (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 6C5) was used in western blot on human samples (fig 5). Oncotarget (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:20,000; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 0411) was used in western blot on human samples at 1:20,000 (fig 1). Oncotarget (2016) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples (fig 2). Mol Cancer (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:5000 (fig 4). BMC Cancer (2015) ncbi
mouse monoclonal (A-3)
  • western blot; human; fig 7
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, A-3) was used in western blot on human samples (fig 7). PLoS ONE (2015) ncbi
mouse monoclonal (H-12)
  • western blot; mouse; fig 1
  • western blot; human; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-166574) was used in western blot on mouse samples (fig 1) and in western blot on human samples (fig 1). Oncotarget (2015) ncbi
mouse monoclonal (G-9)
  • western blot; rat; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on rat samples (fig 5). Int J Mol Med (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig s3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples at 1:1000 (fig s3). Oncotarget (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10,000; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:10,000 (fig 2). Clin Cancer Res (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 4b
In order to use gene therapy to generate a receptor fusion protein that targets IL-6, Santa Cruz Biotechnology Gapdh-ps15 antibody (santa cruz, sc-32233) was used in western blot on mouse samples (fig 4b). Sci Rep (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, 32233) was used in western blot on rat samples (fig 3). J Nutr (2015) ncbi
mouse monoclonal (A-3)
  • western blot; human; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-13717) was used in western blot on human samples (fig 5). Autophagy (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to investigate the role of LZTFL1 in lung oncogenesis, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples . Oncogene (2016) ncbi
mouse monoclonal (A-3)
  • western blot; human; 1:1000; fig 3
In order to characterize immunogenic PEL cell death, revertion of PEL-induced immune suppression, and stimulation of DCs all triggered by capsaicin, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-137179) was used in western blot on human samples at 1:1000 (fig 3). Oncotarget (2015) ncbi
mouse monoclonal (A-3)
  • western blot; human; fig 7
In order to analyze sensitivity to the cyclin D1/CDK4 pathway inhibition in Ewing sarcoma by a chemical genomic, functional, and super-enhancer screening, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-137179) was used in western blot on human samples (fig 7). Oncotarget (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples (fig 1). Oncotarget (2015) ncbi
mouse monoclonal (0411)
  • western blot; human
In order to determine the role of growth factors in EMT, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 0411) was used in western blot on human samples . PLoS ONE (2015) ncbi
mouse monoclonal (D-6)
  • western blot; human; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-166545) was used in western blot on human samples (fig 3). J Cell Biol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1e
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples (fig 1e). J Biol Chem (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 6
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, SC32233) was used in western blot on mouse samples (fig 6). J Biol Chem (2015) ncbi
mouse monoclonal (6C5)
  • western blot; Rhesus monkey; 1:2000; fig 8
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on Rhesus monkey samples at 1:2000 (fig 8). PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig 3). PLoS ONE (2015) ncbi
mouse monoclonal (G-9)
  • western blot; mouse; 1:1000; fig 6
In order to characterize the timing of neural tube closure, embryonic viability, and neural differentiation by the required miR-302, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on mouse samples at 1:1000 (fig 6). Cell Rep (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples at 1:1000 (fig 1). Cell Death Dis (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples . Biochim Biophys Acta (2015) ncbi
mouse monoclonal (G-9)
  • western blot; human; fig s4g
In order to report that autoimmune regulator is induced in human and mouse tumor keratinocytes in a K17-dependent manner and results in Gli2-induced skin tumorigenesis in mice, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, SC-365062) was used in western blot on human samples (fig s4g). Nat Genet (2015) ncbi
mouse monoclonal (A-3)
  • western blot; mouse; 1:10,000; fig s13
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 137179) was used in western blot on mouse samples at 1:10,000 (fig s13). Genome Res (2015) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:500
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples at 1:500. Mol Med Rep (2015) ncbi
mouse monoclonal (6C5)
  • western blot; fission yeast
In order to develop a NF-kappaB functional assay in yeast and study NF-kappaB functions, interactions, and chemical modulators, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 6C5) was used in western blot on fission yeast samples . PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; chicken; 1:500
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on chicken samples at 1:500. Biosci Biotechnol Biochem (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; fig 3b
In order to investigate factors involved in the crosstalk between basal cells and endothelial cells, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology), SC-32233) was used in western blot on human samples at 1:5000 (fig 3b). J Cell Sci (2015) ncbi
mouse monoclonal (0411)
  • western blot; scFv; fig 2
In order to investigate ANP32C-Hsp90 interactions, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on scFv samples (fig 2). Biochim Biophys Acta (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 3
In order to study TLR crosstalk in macrophages, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc32233) was used in western blot on mouse samples (fig 3). J Immunol (2015) ncbi
mouse monoclonal (D-6)
  • western blot; mouse; 1:500; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, SC-166545) was used in western blot on mouse samples at 1:500 (fig 5). PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples (fig 1). J Biol Chem (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-32233) was used in western blot on human samples (fig 5). Oncotarget (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 5b
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples (fig 5b). Oncotarget (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; fig s1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples (fig s1). Oncotarget (2015) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:5000; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples at 1:5000 (fig 1). Oncotarget (2015) ncbi
mouse monoclonal (D-6)
  • western blot; mouse; 1:2500; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-166545) was used in western blot on mouse samples at 1:2500 (fig 4). J Biol Chem (2015) ncbi
mouse monoclonal (1D4)
  • western blot; mouse; 1:3000; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-59540) was used in western blot on mouse samples at 1:3000 (fig 5). J Reprod Dev (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:3000; fig 3
In order to study induced pluripotent stem cells derived from patients with amyotrophic lateral sclerosis, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:3000 (fig 3). Dis Model Mech (2015) ncbi
mouse monoclonal (G-9)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-365062) was used in western blot on human samples . BMC Cancer (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000
In order to study the role of Tn expression and post-translationally modifications in pancreatic ductal adenocarcinoma, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:1000. Mol Cancer (2015) ncbi
mouse monoclonal (G-9)
  • western blot; mouse
In order to test the effects of mechanical overloading using a murine model of Duchene muscular dystrophy, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruzs, sc365062) was used in western blot on mouse samples . Am J Pathol (2015) ncbi
mouse monoclonal (G-9)
  • western blot; human; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples (fig 4). J Exp Med (2015) ncbi
mouse monoclonal (G-9)
  • western blot; human; 1:500; fig 4
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc365062) was used in western blot on human samples at 1:500 (fig 4). J Surg Res (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; fig 4b
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples at 1:5000 (fig 4b). Oncotarget (2015) ncbi
mouse monoclonal (A-3)
  • western blot; human; 1:3000; loading ...; fig 6
In order to test if disulfiram potentiates the cytotoxic effects of temozolomide using human pituitary adenoma cells, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-137179) was used in western blot on human samples at 1:3000 (fig 6). Mol Med Rep (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:4000
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnologies, SC-32,233) was used in western blot on rat samples at 1:4000. Life Sci (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples (fig 1). Autophagy (2015) ncbi
mouse monoclonal (G-9)
  • western blot; rat; 1:5000; fig 8
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-365062) was used in western blot on rat samples at 1:5000 (fig 8). Mol Med Rep (2015) ncbi
mouse monoclonal (G-9)
  • western blot; mouse
In order to analyze developing retinitis pigmentosa in a rodent after purified murine NGF on isolated photoreceptors, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotech, sc-365062) was used in western blot on mouse samples . PLoS ONE (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 0411) was used in western blot on human samples (fig 1). Nucleic Acids Res (2015) ncbi
mouse monoclonal (G-9)
  • western blot; mouse; fig 1f
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-365062) was used in western blot on mouse samples (fig 1f). Neuron (2015) ncbi
mouse monoclonal (A-3)
  • western blot; human; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-137179) was used in western blot on human samples (fig 2). Mol Cancer (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 2
In order to demonstrate that androgen receptor signaling modulates the unfolded protein response in prostate cancer cells, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples (fig 2). EMBO Mol Med (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to study myocardial infarction-induced cardiomyocyte apoptosis in the context of sialylation of heart, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, SC-32233) was used in western blot on human samples . Basic Res Cardiol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 6
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig 6). Cell Death Dis (2015) ncbi
mouse monoclonal (0411)
  • western blot; mouse
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-47724) was used in western blot on mouse samples . Diabetes (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to assess the role of mtDNA copy number in heart failure, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples . PLoS ONE (2015) ncbi
mouse monoclonal (0411)
  • immunoprecipitation; human; fig 7b
  • immunocytochemistry; human; fig 7a
  • western blot; human; fig 3e
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, sc-47724) was used in immunoprecipitation on human samples (fig 7b), in immunocytochemistry on human samples (fig 7a) and in western blot on human samples (fig 3e). PLoS ONE (2015) ncbi
mouse monoclonal (G-9)
  • western blot; mouse; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on mouse samples (fig 1). J Cell Mol Med (2015) ncbi
mouse monoclonal (H-12)
  • western blot; human; 1:2000
In order to investigate the relationship between macrophages and T-box transcription factor Brachyury in tumor progression and metastasis, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-166574) was used in western blot on human samples at 1:2000. Tumour Biol (2015) ncbi
mouse monoclonal (G-9)
  • western blot; rat
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on rat samples . Exp Neurol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; fig 5
In order to determine the precise role of actin in the neural epithelium, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples at 1:5000 (fig 5). Development (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig s7
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig s7). Nucleic Acids Res (2015) ncbi
mouse monoclonal (0411)
  • western blot; rabbit; 1:1000
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-47724) was used in western blot on rabbit samples at 1:1000. J Mol Endocrinol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples . J Neurosci (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; fig 5,6
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 6C5) was used in western blot on mouse samples at 1:5000 (fig 5,6). Nat Commun (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to investigate if Chal-24 can be combined with cisplatin for better cancer therapy, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples . Oncotarget (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 1
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 0411) was used in western blot on human samples (fig 1). Cell Death Dis (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:500
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-47724) was used in western blot on human samples at 1:500. Oncol Lett (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:500
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-47724) was used in western blot on human samples at 1:500. Mol Genet Metab (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples (fig 3). Mol Oncol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:500; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:500 (fig 2). Oncotarget (2015) ncbi
mouse monoclonal (0411)
  • western blot; mouse
In order to elucidate the factors that mediate radiation-induced endothelial dysfunction, Santa Cruz Biotechnology Gapdh-ps15 antibody (scbt, sc-47724) was used in western blot on mouse samples . J Proteome Res (2015) ncbi
mouse monoclonal (A-3)
  • western blot; human
  • western blot; mouse
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-137179) was used in western blot on human samples and in western blot on mouse samples . Immunology (2015) ncbi
mouse monoclonal (A-3)
  • western blot; mouse; 1:2000
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-137179) was used in western blot on mouse samples at 1:2000. Cell Death Dis (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:3000; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:3000 (fig 2). Int J Biol Sci (2015) ncbi
mouse monoclonal (D-6)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-166545) was used in western blot on human samples . Cell Death Dis (2014) ncbi
mouse monoclonal (A-3)
  • western blot; human; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-137179) was used in western blot on human samples (fig 3). Br J Cancer (2015) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:15000
In order to describe the use of transcription activator-like effectors to study host-virus interactions, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples at 1:15000. PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000
In order to investigate the relationship between caveolin proteins and integrins in cardiac myocytes, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, SC32-233) was used in western blot on mouse samples at 1:5000. FASEB J (2015) ncbi
mouse monoclonal (H-12)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-166574) was used in western blot on human samples . Cell Death Dis (2014) ncbi
mouse monoclonal (6C5)
  • western blot; rat
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on rat samples . Pediatr Surg Int (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples . J Comp Neurol (2015) ncbi
mouse monoclonal (A-3)
  • western blot; mouse
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-137179) was used in western blot on mouse samples . Biochim Biophys Acta (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to investigate the intracellular trafficking of an NF-kappaB-cleaving toxin from Photobacterium damselae subsp. piscicida, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples . Infect Immun (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, 6C5) was used in western blot on mouse samples and in western blot on human samples . J Neurosci Res (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:10000
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples at 1:10000. J Neurosci (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:100000
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples at 1:100000. J Neurochem (2014) ncbi
mouse monoclonal (0411)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-47724) was used in western blot on human samples . Oncotarget (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to study the role of p19INK4d in the repair machinery for DNA damage, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples . Mol Cell Biochem (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples at 1:1000. J Neurosci (2014) ncbi
mouse monoclonal (6C5)
  • western blot; pig; 1:10000
In order to assess progesterone receptor expression during late pregnancy and labor in vivo, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on pig samples at 1:10000. PLoS ONE (2014) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:20000; fig 2
In order to assess the role of the anaphase-promoting complex and Cdc20 in the primary cilium, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc47724) was used in western blot on human samples at 1:20000 (fig 2). elife (2014) ncbi
mouse monoclonal (D-6)
  • immunohistochemistry - paraffin section; zebrafish
  • western blot; zebrafish
In order to show that H2O2 acts via MAPK signaling for heart regeneration in adult zebrafish, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-166545) was used in immunohistochemistry - paraffin section on zebrafish samples and in western blot on zebrafish samples . Cell Res (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples . PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples . Cell Stress Chaperones (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 3
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples (fig 3). Mucosal Immunol (2015) ncbi
mouse monoclonal (H-12)
  • western blot; human; fig 4
In order to study prostate cancer growth and the homeostatic regulation between tumor suppressor DAB2IP and ocogenic Skp2, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc16674) was used in western blot on human samples (fig 4). Oncotarget (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology Inc, sc-32233) was used in western blot on human samples . Mol Cell Proteomics (2014) ncbi
mouse monoclonal (0411)
  • western blot; human
In order to develop high throughput methods to assess proof-of-concept in vitro-only risk assessments, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples . Toxicol Sci (2014) ncbi
mouse monoclonal (H-12)
  • western blot; crucian carp
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-166574) was used in western blot on crucian carp samples . Dev Comp Immunol (2014) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 1
In order to investigate MAPK14-driven metabolic reprogramming, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples (fig 1). Autophagy (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; fig 2
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples at 1:5000 (fig 2). Skelet Muscle (2014) ncbi
mouse monoclonal (G-9)
  • western blot; human
In order to explore the parkin-dependent regulation of apoptosis and the turnover of damaged mitochondria in various cell types, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-365062) was used in western blot on human samples . Cell Death Dis (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to explore the effects of FK506-binding protein 51 (FKBP51) deletion on adipogenesis, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples . Mol Endocrinol (2014) ncbi
mouse monoclonal (G-9)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-365062) was used in western blot on human samples . PLoS ONE (2014) ncbi
mouse monoclonal (A-3)
  • western blot; human; 1:500
In order to study the role of human endogenous retrovirus (HERV) envelope proteins in the uptake of exosomes, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-137179) was used in western blot on human samples at 1:500. FASEB J (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:800
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:800. J Physiol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples . Mol Cell Biol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; African green monkey; 1:1500; fig s4
  • western blot; human; 1:1500; fig s4
Santa Cruz Biotechnology Gapdh-ps15 antibody (santa Cruz, sc-32233) was used in western blot on African green monkey samples at 1:1500 (fig s4) and in western blot on human samples at 1:1500 (fig s4). Oncogene (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 13
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa, SC-32233) was used in western blot on mouse samples (fig 13). BMC Nephrol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology Inc, sc-32233) was used in western blot on mouse samples and in western blot on human samples . J Clin Invest (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to study the role of receptor-interacting protein 1 in cancer's response to chemotherapy, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples . Oncotarget (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
  • western blot; mouse
In order to study the role of p19INK4d in the initiation and maintenance of cellular senescence, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples and in western blot on mouse samples . Biochim Biophys Acta (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples . PLoS ONE (2014) ncbi
mouse monoclonal (0411)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples . J Thorac Cardiovasc Surg (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, SC-32233) was used in western blot on human samples . Eur Urol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples at 1:1000. Med Oncol (2014) ncbi
mouse monoclonal (G-9)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-365062) was used in western blot on human samples . Eur J Cancer (2014) ncbi
mouse monoclonal (0411)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, SC-47724) was used in western blot on human samples . Mol Cell Biol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to study the role of p53 mitochondrial translocation in modulating mitochondrial stress induced by differentiation and the significance for neuronal cell fate, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on mouse samples . Antioxid Redox Signal (2014) ncbi
mouse monoclonal (0411)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-47724) was used in western blot on human samples . Int J Oncol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples . PLoS ONE (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000
In order to study the therapeutic potential of RanGAP1 in diffuse large B-cell lymphoma, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:5000. PLoS ONE (2013) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 1c
In order to study the role of TWIST1 in the mechanism by which KLF17 induces epithelial-to-mesenchymal transition in endometrioid endometrial cancer, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-47724) was used in western blot on human samples (fig 1c). Carcinogenesis (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples . Mol Neurobiol (2013) ncbi
mouse monoclonal (D-6)
  • western blot; mouse
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-166545) was used in western blot on mouse samples . Stem Cell Res (2013) ncbi
mouse monoclonal (0411)
  • western blot; human; fig 8b
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa cruz, sc-47724) was used in western blot on human samples (fig 8b). Oncogene (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples (fig 5). Cell Res (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to identify a novel anticancer mechanism that functions through autophagy-mediated necroptosis, Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples . Oncogene (2014) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:400
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-47724) was used in western blot on human samples at 1:400. Endocr Relat Cancer (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human
  • western blot; mouse
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples and in western blot on mouse samples . J Biol Chem (2013) ncbi
mouse monoclonal (A-3)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-137179) was used in western blot on human samples . Int J Oncol (2013) ncbi
mouse monoclonal (0411)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on human samples . Cell Cycle (2013) ncbi
mouse monoclonal (0411)
  • western blot; African green monkey
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-47724) was used in western blot on African green monkey samples . J Biol Chem (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 1e
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, 6C5) was used in western blot on human samples at 1:1000 (fig 1e). Endocr Relat Cancer (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples . EMBO J (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, 6C5) was used in western blot on human samples . Clin Exp Metastasis (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on mouse samples at 1:1000. J Renin Angiotensin Aldosterone Syst (2014) ncbi
mouse monoclonal (1D4)
  • western blot; pig
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-59540) was used in western blot on pig samples . Int J Biol Sci (2012) ncbi
mouse monoclonal (1D4)
  • western blot; pig; 1:1000
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-59540) was used in western blot on pig samples at 1:1000. Mamm Genome (2013) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:5000; fig 6
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-47724) was used in western blot on human samples at 1:5000 (fig 6). Hum Mol Genet (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 5
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples at 1:1000 (fig 5). Mol Pharmacol (2013) ncbi
mouse monoclonal (0411)
  • western blot; human; 1:10000
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology Inc., sc-47724) was used in western blot on human samples at 1:10000. PLoS ONE (2012) ncbi
mouse monoclonal (6C5)
  • western blot; rat
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, SC32233) was used in western blot on rat samples . Biochem Pharmacol (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-32233) was used in western blot on human samples at 1:1000. Oncogene (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnologies, sc-32233) was used in western blot on human samples . PLoS ONE (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz, sc-32233) was used in western blot on human samples . J Biol Chem (2012) ncbi
mouse monoclonal (1D4)
  • western blot; mouse
Santa Cruz Biotechnology Gapdh-ps15 antibody (Santa Cruz Biotechnology, sc-59540) was used in western blot on mouse samples . Infect Immun (2012) ncbi
Abcam
mouse monoclonal (6C5)
  • immunocytochemistry; human; 1:500; loading ...; fig 3c
  • western blot; human; 1:2000; loading ...; fig 3j
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in immunocytochemistry on human samples at 1:500 (fig 3c) and in western blot on human samples at 1:2000 (fig 3j). Atherosclerosis (2019) ncbi
rabbit monoclonal (EPR16891)
  • western blot; human; 1:5000; loading ...; fig 2a
Abcam Gapdh-ps15 antibody (Abcam, EPR-16891) was used in western blot on human samples at 1:5000 (fig 2a). Cancer Res (2019) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; loading ...; fig 3d
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:5000 (fig 3d). EMBO Mol Med (2019) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1:1000; loading ...; fig 1e
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples at 1:1000 (fig 1e). Br J Cancer (2019) ncbi
rabbit monoclonal (EPR16891)
  • western blot; human; 1:10,000; loading ...; fig 3e
Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on human samples at 1:10,000 (fig 3e). Biomed Res Int (2018) ncbi
mouse monoclonal (6C5)
  • western blot; human; loading ...; fig 5e
Abcam Gapdh-ps15 antibody (ABCAM, ab8245) was used in western blot on human samples (fig 5e). Dev Cell (2018) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; loading ...; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples (fig 3). J Cell Biol (2018) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 3b
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples (fig 3b). J Am Heart Assoc (2018) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10,000; loading ...; fig 6i
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:10,000 (fig 6i). Oncogene (2018) ncbi
rabbit monoclonal (EPR16891)
  • western blot; human; loading ...; fig 1c
Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on human samples (fig 1c). Biosci Rep (2018) ncbi
rabbit monoclonal (EPR16891)
  • western blot; human; loading ...; fig 4a
In order to report that Human PIWIL2 suppresses microtubule polymerization and promotes cell proliferation, migration and invasion via TBCB, Abcam Gapdh-ps15 antibody (abcam, ab181602) was used in western blot on human samples (fig 4a). Sci Rep (2017) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1:1500; tbl 1
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples at 1:1500 (tbl 1). J Neuroinflammation (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples (fig 1). J Exp Clin Cancer Res (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:1000 (fig 3). Exp Ther Med (2016) ncbi
rabbit monoclonal (EPR16891)
  • western blot; mouse; 1:2000; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on mouse samples at 1:2000 (fig 1). J Neuroinflammation (2016) ncbi
mouse monoclonal (6C5)
  • western blot; zebrafish ; fig 1
In order to report that ZNF644 is a co-regulator of G9a/H3K9me2-mediated gene silencing during neuronal differentiation, Abcam Gapdh-ps15 antibody (AbCam, ab8245) was used in western blot on zebrafish samples (fig 1). Stem Cell Reports (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 5
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 5). Cell Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig s4
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:1000 (fig s4). Oncotarget (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; fig 2
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples (fig 2). Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 3). J Virol (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; mouse; fig 8
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on mouse samples (fig 8). PLoS Pathog (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1:1000; fig 4
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples at 1:1000 (fig 4). PLoS ONE (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; mouse; 1:4000; fig 6
In order to study recapitulation of SCA7 pathology and promotion of accumulation of the FUS/TLS and MBNL1 RNA-binding proteins by lentiviral vector-mediated overexpression of mutant ataxin-7, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on mouse samples at 1:4000 (fig 6). Mol Neurodegener (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; fig s3
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples (fig s3). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; fig 4
Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on mouse samples at 1:5000 (fig 4). MBio (2016) ncbi
rabbit monoclonal (EPR16891)
  • western blot; mouse; fig 5
Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on mouse samples (fig 5). Physiol Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:10,000; fig 3e
  • western blot; human; 1:10,000; fig 5b
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:10,000 (fig 3e) and in western blot on human samples at 1:10,000 (fig 5b). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; rabbit; 1:5000; fig 3
In order to characterize the role of endolysosomes in skeletal muscle pathology observed in a model of Alzheimer's disease with a cholesterol-fed rabbit, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on rabbit samples at 1:5000 (fig 3). Front Aging Neurosci (2016) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:1000; fig 4
In order to report that crumbs homolog 3 is an actin microfilament regulator, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on rat samples at 1:1000 (fig 4). Sci Rep (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; fig 3
Abcam Gapdh-ps15 antibody (Abcam, 9484) was used in western blot on human samples (fig 3). PLoS ONE (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:500; fig 2
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:500 (fig 2). Oncol Lett (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig s3
In order to assess activation of the estrogen receptor alpha by estrogen and cAMP and due to LSD1 engaging as a corepressor complex, Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on human samples (fig s3). Nucleic Acids Res (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:20,000; fig 1
In order to assess the requirement for retinal ganglion cell survival after optic nerve trauma and sphingosine 1-phosphate receptor 1, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:20,000 (fig 1). J Neurochem (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; rat; 1:5000; fig 4
In order to use a herpes simplex virus carrying a small interfering RNA targeting platelet-derived growth factor to alleviate bone cancer pain, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on rat samples at 1:5000 (fig 4). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 2
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:1000 (fig 2). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10,000; fig 4
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:10,000 (fig 4). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 9
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 9). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 3). Oncogenesis (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; mouse; fig 5
Abcam Gapdh-ps15 antibody (Abcam, Ab9484) was used in western blot on mouse samples (fig 5). J Transl Med (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000; fig 1
In order to characterize calcium waves propagation in rat ventricular myocytes by the role of SERCA and the sarcoplasmic reticulum calcium content, Abcam Gapdh-ps15 antibody (Abcam, Ab8245) was used in western blot on mouse samples at 1:1000 (fig 1). Arch Biochem Biophys (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; scFv; 1:1000; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on scFv samples at 1:1000 (fig 3). Cell Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:10,000; fig 1e
In order to research modulation of regenerative potential of MSCs and enhancement of skeletal muscle regeneration by a synthetic niche, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:10,000 (fig 1e). Biomaterials (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1:600; fig 1
Abcam Gapdh-ps15 antibody (abcam, ab9484) was used in western blot on human samples at 1:600 (fig 1). RNA (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:3000; fig 4
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:3000 (fig 4). Biol Open (2016) ncbi
rabbit monoclonal (EPR16891)
  • western blot; human; fig 4
In order to assess the mediation of EGF-stimulated expression of the prostaglandin synthase COX2 and prostaglandin release in human myometrium via the steroid receptor co-activator interacting protein (SIP), Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on human samples (fig 4). Mol Hum Reprod (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; mouse; 1:1000; fig 7
In order to study regulation of muscle development and PDGRFbeta(+)cell stemness by laminin, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on mouse samples at 1:1000 (fig 7). Nat Commun (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1:5000; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples at 1:5000 (fig 1). Schizophr Res (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; fig 6a
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:5000 (fig 6a). PLoS ONE (2016) ncbi
rabbit monoclonal (EPR16891)
  • western blot; mouse; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on mouse samples (fig 1). Iran J Basic Med Sci (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; mouse; 1:50,000; fig 5
In order to analyze reactive glial nets in Alzheimer's disease by high resolution dissection, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on mouse samples at 1:50,000 (fig 5). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:15,000; fig 2
  • western blot; human; 1:15,000; fig 3
In order to research the modulation of beta-amyloidogenic processing of APP by affecting the sorting and accumulation of BACE1 by SEPT8, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:15,000 (fig 2) and in western blot on human samples at 1:15,000 (fig 3). J Cell Sci (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:2000; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:2000 (fig 3). elife (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; fig 5
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples (fig 5). J Cancer (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:2000; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:2000 (fig 3). Cell Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 4
In order to study the prevention of amyloid-beta induced blood-brain barrier disruption and endothelial cell dysfunction by targeting Endophilin-1 by MicroRNA-107, Abcam Gapdh-ps15 antibody (Abcam, Ab8245) was used in western blot on human samples (fig 4). Exp Cell Res (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1:1000; fig 4
Abcam Gapdh-ps15 antibody (abcam, ab9484) was used in western blot on human samples at 1:1000 (fig 4). Mol Med Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:500; fig 3
Abcam Gapdh-ps15 antibody (abcam, ab8245) was used in western blot on rat samples at 1:500 (fig 3). Int J Mol Med (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:50,000; fig s16
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:50,000 (fig s16). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:3000; fig 8
Abcam Gapdh-ps15 antibody (abcam, ab8245) was used in western blot on human samples at 1:3000 (fig 8). Cancer Cell Int (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 5
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 5). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; fig 1d
Abcam Gapdh-ps15 antibody (Abcam, Ab8245) was used in western blot on human samples at 1:5000 (fig 1d). PLoS ONE (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 5
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 5). Cell Rep (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1:10,000; fig 2
In order to study the clathrin- and caveolin- independent entry of BKPgammaV into primary human proximal tubule epithelial cells, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples at 1:10,000 (fig 2). Virology (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:25,000; fig 7
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:25,000 (fig 7). elife (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; fig 8
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples (fig 8). Mol Syst Biol (2016) ncbi
rabbit monoclonal (EPR16891)
  • western blot; mouse; fig 6
Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on mouse samples (fig 6). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 7
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples (fig 7). Mol Cell Biol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 6
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 6). Sci Rep (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to characterize human medulloblastoma-SLCs by microRNAs-proteomic networks, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 2). Stem Cells Int (2016) ncbi
mouse monoclonal (6C5)
  • immunocytochemistry; Caenorhabditis elegans
  • immunocytochemistry; human
  • western blot; human; fig 3s
In order to examine how histone H3 threonine 118 alters chromosome structure, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in immunocytochemistry on Caenorhabditis elegans samples , in immunocytochemistry on human samples and in western blot on human samples (fig 3s). elife (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 4
In order to elucidate miR-21 that induces fibrosis in an acute cardiac allograft transplantation model, Abcam Gapdh-ps15 antibody (Abcam, 8245) was used in western blot on mouse samples (fig 4). Cardiovasc Res (2016) ncbi
mouse monoclonal (6C5)
  • western blot; rat; fig 4
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on rat samples (fig 4). Nat Neurosci (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; rat; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on rat samples (fig 1). J Neurosci (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; rat; 1:1000; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on rat samples at 1:1000 (fig 1). Front Cell Neurosci (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
In order to investigate proteolytic processing of p27, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 3). Oncogene (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10,000; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:10,000 (fig 1). PLoS Genet (2016) ncbi
rabbit monoclonal (EPR16891)
  • western blot; mouse; fig 5
Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on mouse samples (fig 5). J Cell Mol Med (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; rabbit; 1:1000; fig 7
In order to examine the role of meniscus-derived stromal cells in healing, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on rabbit samples at 1:1000 (fig 7). Cytotechnology (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1:15,000; fig 3
In order to study cargo deficits in multiple sclerosis lesional and normal-appearing white matter for the axonal motor protein KIF5A, Abcam Gapdh-ps15 antibody (Abcam, AB9484) was used in western blot on human samples at 1:15,000 (fig 3). Neuropathol Appl Neurobiol (2017) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 1). J Cell Sci (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; fig s4
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples (fig s4). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
In order to characterize barrier breakdown and MAPK/NF-kappaB mediated stress response in the intestinal epithelial cell line C2BBe1 due to Candida albicans infection, Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on human samples (fig 2). Cell Microbiol (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10,000; fig 1
In order to determine cell differences in skeletal muscle from aged individuals regardidng protein abundances of GAPDH and NA,K-ATPase, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:10,000 (fig 1). Exp Gerontol (2016) ncbi
rabbit monoclonal (EPR16891)
  • western blot; mouse; fig 5
Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on mouse samples (fig 5). Oncotarget (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 1). Oncotarget (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 4
Abcam Gapdh-ps15 antibody (abcam, ab8245) was used in western blot on human samples (fig 4). Cell Cycle (2015) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; fig 3
Abcam Gapdh-ps15 antibody (mAbcam, 9484) was used in western blot on human samples (fig 3). Oncotarget (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000; fig 1c
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:5000 (fig 1c). PLoS ONE (2015) ncbi
rabbit monoclonal (EPR16891)
  • western blot; mouse; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on mouse samples (fig 3). J Cell Mol Med (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:1000 (fig 3). Cancer Sci (2016) ncbi
mouse monoclonal (6C5)
  • western blot; rat; fig 2
In order to analyze acute pulmonary exposure to mountaintop removal mining particulate matter and cardiac and mitochondrial dysfunction, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on rat samples (fig 2). Am J Physiol Heart Circ Physiol (2015) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1 ug/ml; fig 3k
In order to discover the role of MiR137 and its effect on transciptional coregulators, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples at 1 ug/ml (fig 3k). Oncotarget (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1
Abcam Gapdh-ps15 antibody (abcam, ab8245) was used in western blot on mouse samples (fig 1). Nucleic Acids Res (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; fig 3
In order to study how the Fanconi anemia pathway promotes homologous recombination at stalled replication forks, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples (fig 3). Nucleic Acids Res (2016) ncbi
rabbit monoclonal (EPR16891)
  • western blot; human; fig 4
Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on human samples (fig 4). Reproduction (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 2
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples (fig 2). Oncotarget (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:60,000; fig 1
In order to test if p11 regulates the serotonin receptor 4 pathway in the heart, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on rat samples at 1:60,000 (fig 1). Cell Calcium (2015) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; rat; 1:5000; fig 7
Abcam Gapdh-ps15 antibody (abcam, ab9484) was used in western blot on rat samples at 1:5000 (fig 7). PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:2000
In order to present data from the first donated Lothian Birth Cohort of 1936 and compare it with other aged and diseased samples, Abcam Gapdh-ps15 antibody (Abcam, Ab8245) was used in western blot on human samples at 1:2000. Acta Neuropathol Commun (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:4000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:4000. J Cell Sci (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:500; fig 1
In order to study Brd4 function in the brain, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:500 (fig 1). Nat Neurosci (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
In order to study different bacterial guanine nucleotide exchange factor of ADP-ribosylation factors, Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on human samples (fig 3). PLoS Pathog (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:4000; fig 5
  • western blot; human; 1:4000; fig 5
In order to determine how starvation-induced autophagy is promoted by transcriptional regulation of Annexin A2, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:4000 (fig 5) and in western blot on human samples at 1:4000 (fig 5). Nat Commun (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1g
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples (fig 1g). RNA (2015) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples . Physiol Rep (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 2
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples (fig 2). PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 4b
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples (fig 4b). Autophagy (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 5b
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 5b). Autophagy (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:7500; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:7500 (fig 3). PLoS ONE (2015) ncbi
rabbit monoclonal (EPR16891)
  • western blot; human; 1:10,000; fig 6
Abcam Gapdh-ps15 antibody (Abcam, ab181602) was used in western blot on human samples at 1:10,000 (fig 6). PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000; fig 1
Abcam Gapdh-ps15 antibody (abcam, ab8245) was used in western blot on mouse samples at 1:1000 (fig 1). PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 1). PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3a
In order to elucidate the mechanism of p53-dependent upregulation of OCT4A and p21Cip1, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 3a). Cell Cycle (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
Abcam Gapdh-ps15 antibody (abcam, ab8245) was used in western blot on human samples (fig 3). Oncotarget (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
In order to study the effect of G9a histone methyltransferase inhibitor on bone marrow mesenchymal stem cells, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples . Stem Cells Int (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:3000; fig 5
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:3000 (fig 5). Hum Mol Genet (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 4
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:1000 (fig 4). Int J Oncol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:1000
In order to study the role of plastin 3 in ectoplasmic specialization dynamics during spermatogenesis in the rat testis, Abcam Gapdh-ps15 antibody (Abcam, ab824) was used in western blot on rat samples at 1:1000. FASEB J (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:20,000; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:20,000 (fig 1). MBio (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:3000; fig 1c
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:3000 (fig 1c). Circ Res (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 7
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 7). Oncotarget (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:2000; fig 5
In order to show that the human artificial chromosome carrying the whole dystrophin genomic sequence is stably maintained throughout the cardiac differentiation process and demonstrate that the dystrophin gene promoters are properly activated, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:2000 (fig 5). Mol Ther Methods Clin Dev (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:3000; fig 2
In order to use of chaperone-mediated autophagy to facilitate lipolysis by degradation of lipid droplet-associated proteins, Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on mouse samples at 1:3000 (fig 2). Nat Cell Biol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3b
In order to study the effect of human cytomegalovirus microRNAs on TLR2, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 3b). PLoS Pathog (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1, 6
In order to develop a flow cytometry-based approach to study mitophagy by using MitoTracker Deep Red, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples (fig 1, 6). Autophagy (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:5000; fig 2
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on rat samples at 1:5000 (fig 2). Front Cell Neurosci (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:2000; fig 7
Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on human samples at 1:2000 (fig 7). PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to identify and characterize a novel variant of MET that is expressed in high-grade gliomas, Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on human samples . Acta Neuropathol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:5000; fig s6
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:5000 (fig s6). Nat Commun (2015) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; mouse; 1:2000; fig 2
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on mouse samples at 1:2000 (fig 2). Front Pharmacol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:5000; fig 9
Abcam Gapdh-ps15 antibody (Abcam, 8245) was used in western blot on rat samples at 1:5000 (fig 9). Mol Neurobiol (2016) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; mouse; 1:10000
In order to characterize mice harboring a disrupted allele for the Lem2 gene, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on mouse samples at 1:10000. PLoS ONE (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:2000
In order to investigate the role of gp210/Nup210 in muscle cell differentiation, Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on mouse samples at 1:2000. J Cell Biol (2015) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; rat; 1:2000
In order to study the involvement of heat shock protein 27 (Hsp27) in a transgenic rat model of Alzheimer's disease, Abcam Gapdh-ps15 antibody (Abcam, 9484) was used in western blot on rat samples at 1:2000. Biochim Biophys Acta (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; loading ...; fig 3,7,8
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples (fig 3,7,8). J Am Heart Assoc (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 2
Abcam Gapdh-ps15 antibody (abcam, ab8245) was used in western blot on human samples (fig 2). Cell Death Dis (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 4
In order to analyze microRNA expression in oral squamous cell carcnioma to determine the functional role of microRNA-26a/b in regulation of novel cancer pathways, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 4). Br J Cancer (2015) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; fig 6
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples (fig 6). Mol Syst Biol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10,000; fig 5
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:10,000 (fig 5). Oncol Rep (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:3000; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:3000 (fig 1). Cell Metab (2015) ncbi
mouse monoclonal (6C5)
  • western blot; baker's yeast; 1:2500; fig 4f
Abcam Gapdh-ps15 antibody (AbCam, ab8245) was used in western blot on baker's yeast samples at 1:2500 (fig 4f). Nat Chem Biol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000
In order to study how knockdown of Robo4 alters the blood-tumor barrier, Abcam Gapdh-ps15 antibody (Abcam, Ab8245) was used in western blot on human samples at 1:1000. J Neuropathol Exp Neurol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
  • western blot; human
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples and in western blot on human samples . J Mol Cell Cardiol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:1000
In order to study the role of EB1 in tubulin and actin cytoskeletal networks at the sertoli cell blood-testis barrier, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on rat samples at 1:1000. Endocrinology (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:20000
In order to study the expression and the nuclear localization of VPAC1 and VPAC2 in glioma, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:20000. Biochem Biophys Res Commun (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:20,000; loading ...; fig 2
In order to develop an efficient system to culture hepatitis C virus, Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on human samples at 1:20,000 (fig 2). Jpn J Infect Dis (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:2000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:2000. Stem Cell Reports (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples (fig 3). Proteomics (2015) ncbi
mouse monoclonal (6C5)
  • immunocytochemistry; human
In order to investigate the role of the actin cytoskeleton of the endothelium in transmigration, Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in immunocytochemistry on human samples . Mol Biol Cell (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
Abcam Gapdh-ps15 antibody (Abcam, Ab8245) was used in western blot on human samples . J Virol (2015) ncbi
mouse monoclonal (6C5)
  • western blot; rat
Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on rat samples . Pharm Res (2015) ncbi
mouse monoclonal (6C5)
  • western blot; human
Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on human samples . J Immunol (2014) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; pig
Abcam Gapdh-ps15 antibody (Abcam Inc, ab9484) was used in western blot on pig samples . PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; rabbit; 1:2000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on rabbit samples at 1:2000. Biomed Res Int (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:2000; fig 1
In order to report that CALM modulates autophagy and affects tau clearance, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:2000 (fig 1). Nat Commun (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:50,000
  • western blot; rat; 1:50,000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:50,000 and in western blot on rat samples at 1:50,000. Gene Ther (2014) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1:1000; fig 2
In order to assess O-GlcNAc transferase expression in male, female, and triple-X female human fibroblasts, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples at 1:1000 (fig 2). Front Genet (2014) ncbi
mouse monoclonal (mAbcam 9484)
  • immunocytochemistry; human
  • western blot; mouse
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in immunocytochemistry on human samples and in western blot on mouse samples . J Neurosci (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:20000
In order to investigate the role of EphA4 and EphrinA3 in adult axon regeneration using a model of adult mouse optic nerve injury, Abcam Gapdh-ps15 antibody (abcam, ab8245) was used in western blot on mouse samples at 1:20000. Eur J Neurosci (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples . Cell Death Dis (2014) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; pig
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on pig samples . Vet Microbiol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:20000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:20000. Am J Pathol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on mouse samples . J Neurosci (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:10000
In order to demonstrate that the Parkinson's disease-causing D620N mutation in VPS35 restricts WASH complex recruitment to endosomes and alters autophagosome formation, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:10000. Nat Commun (2014) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; rat; 1:1000
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on rat samples at 1:1000. Cell Signal (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:2000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:2000. Glia (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:60,000; fig 5
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:60,000 (fig 5). Cardiovasc Res (2014) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human
In order to study the role of flotillin in the oncogenic effect of ErbB, Abcam Gapdh-ps15 antibody (Abcam, Ab-9484) was used in western blot on human samples . Biochim Biophys Acta (2014) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; rat; 1:900
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on rat samples at 1:900. PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; rat; 1:5000
  • western blot; human; 1:5000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on rat samples at 1:5000 and in western blot on human samples at 1:5000. Am J Transplant (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:1000
In order to study the regulation of autophagosome biogenesis by connexins, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:1000. Nat Cell Biol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:3000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:3000. PLoS ONE (2014) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human
  • western blot; mouse
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples and in western blot on mouse samples . J Clin Invest (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to investigate the role of nuclear ARVCF protein during alternative splicing, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples . J Biol Chem (2014) ncbi
mouse monoclonal (6C5)
  • reverse phase protein lysate microarray; human; 0.1 ug/ml
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in reverse phase protein lysate microarray on human samples at 0.1 ug/ml. PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; loading ...; fig 1a
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples (fig 1a). Biochem J (2014) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples . PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
Abcam Gapdh-ps15 antibody (Abcam, 8245) was used in western blot on human samples . J Biol Chem (2014) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1:5000
In order to study the Involvement of EED in the organization of polycomb group complexes, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples at 1:5000. Nat Commun (2014) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; mouse
In order to investigate the role of huntingtin in the the regulation of autophagosome dynamics, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on mouse samples . J Neurosci (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:1000. J Pharm Pharmacol (2014) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; fig 6
In order to study the effect of panobinostat treatment on disease using an acute myeloid leukemia mouse model, Abcam Gapdh-ps15 antibody (Abcam, AB9484) was used in western blot on human samples (fig 6). Blood (2014) ncbi
mouse monoclonal (6C5)
  • western blot; chicken
Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on chicken samples . PLoS ONE (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples . Arch Oral Biol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; rat; fig 1
  • western blot; mouse; fig 5b
In order to elucidate the autophagic status in spinobulbar muscular atrophy using both cellular and mouse models, Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on rat samples (fig 1) and in western blot on mouse samples (fig 5b). Hum Mol Genet (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples . PLoS ONE (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples . Am J Physiol Gastrointest Liver Physiol (2013) ncbi
mouse monoclonal (6C5)
  • immunohistochemistry - paraffin section; human; 1:1000; fig 3
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in immunohistochemistry - paraffin section on human samples at 1:1000 (fig 3). Tumour Biol (2014) ncbi
mouse monoclonal (6C5)
  • western blot; human
  • western blot; mouse
Abcam Gapdh-ps15 antibody (Abcam, Ab8245) was used in western blot on human samples and in western blot on mouse samples . BMC Cell Biol (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples . J Biol Chem (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples . Cell Cycle (2013) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; African green monkey
  • western blot; mouse
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on African green monkey samples and in western blot on mouse samples . J Biol Chem (2013) ncbi
mouse monoclonal (6C5)
  • immunocytochemistry; human
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in immunocytochemistry on human samples . Stem Cells (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples . J Biol Chem (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:10000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:10000. Stem Cells (2013) ncbi
chicken polyclonal
  • western blot; mouse; 1:1000
In order to study the role of TRPM8 channels in insulin regulation, Abcam Gapdh-ps15 antibody (Abcam, AB83956) was used in western blot on mouse samples at 1:1000. Am J Physiol Endocrinol Metab (2013) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; mouse; 1:1500
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on mouse samples at 1:1500. Am J Physiol Heart Circ Physiol (2013) ncbi
mouse monoclonal (6C5)
  • western blot; human; fig 4
In order to study the interaction of the TIP47 lipid droplet-binding protein with HCV NS5A and the role of this interaction in the regulation of viral RNA replication, Abcam Gapdh-ps15 antibody (Abcam, ab8245-100) was used in western blot on human samples (fig 4). PLoS Pathog (2013) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; common platanna
In order to study metabolic regulation of CaMKII protein and caspases in Xenopus, Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on common platanna samples . J Biol Chem (2013) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; human; 1:5000
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on human samples at 1:5000. Pathol Oncol Res (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:10,000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples at 1:10,000. Neurobiol Dis (2013) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 1
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples (fig 1). PLoS ONE (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:100000
Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on human samples at 1:100000. J Biol Chem (2012) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000
Abcam Gapdh-ps15 antibody (Abcam, 6C5) was used in western blot on human samples at 1:5000. J Neurosci (2012) ncbi
mouse monoclonal (6C5)
  • western blot; mouse
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on mouse samples . Stem Cells (2013) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; rat
Abcam Gapdh-ps15 antibody (Abcam, ab9484) was used in western blot on rat samples . Mol Biol Cell (2012) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; mouse; 1:3000
Abcam Gapdh-ps15 antibody (Abcam, 9484) was used in western blot on mouse samples at 1:3000. J Comp Neurol (2011) ncbi
mouse monoclonal (6C5)
  • western blot; human
In order to study a novel Fanconi anemia subtype in which SLX4 is mutated, Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples . Nat Genet (2011) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:5000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:5000. J Immunol (2009) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:40000
Abcam Gapdh-ps15 antibody (Abcam, ab8245) was used in western blot on human samples at 1:40000. BMC Cancer (2008) ncbi
mouse monoclonal (mAbcam 9484)
  • western blot; mouse; 1:1000
Abcam Gapdh-ps15 antibody (Abcam, 9484) was used in western blot on mouse samples at 1:1000. J Comp Neurol (2008) ncbi
GeneTex
mouse monoclonal (GT239)
  • western blot; root; loading ...; fig 5b
GeneTex Gapdh-ps15 antibody (GeneTEX, GT239) was used in western blot on root samples (fig 5b). Exp Eye Res (2018) ncbi
rabbit polyclonal
  • western blot; mouse; fig 4
GeneTex Gapdh-ps15 antibody (Genetex, GTX100118) was used in western blot on mouse samples (fig 4). Sci Rep (2016) ncbi
mouse monoclonal (GT239)
  • western blot; human; 1:5000; fig 2
GeneTex Gapdh-ps15 antibody (GeneTex, GT239) was used in western blot on human samples at 1:5000 (fig 2). Nat Commun (2016) ncbi
rabbit polyclonal
  • western blot; human; fig 6
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on human samples (fig 6). J Virol (2016) ncbi
mouse monoclonal (GT239)
  • western blot; human; 1:5000; fig 1h
In order to elucidate how hematopoietic ANGPTL4 deficiency increases atherogenesis, GeneTex Gapdh-ps15 antibody (GeneTex, GTX627408) was used in western blot on human samples at 1:5000 (fig 1h). Nat Commun (2016) ncbi
mouse monoclonal (GT239)
  • western blot; mouse; fig 2
In order to analyze regulation of NLRP3 inflammasome in adipose tissue by phosphodiesterase 3B (PDE3B), GeneTex Gapdh-ps15 antibody (GeneTex, GTX627408) was used in western blot on mouse samples (fig 2). Sci Rep (2016) ncbi
mouse monoclonal (GT239)
  • western blot; human; fig 4
In order to analyze MicroRNA-193a arm selection preference that varies in breast cancer, GeneTex Gapdh-ps15 antibody (GeneTex, GTX627408) was used in western blot on human samples (fig 4). Sci Rep (2016) ncbi
rabbit polyclonal
  • western blot; human; 1:500; fig 1
In order to analyze the induction of the phosphorylation of EGFR and downregulation of cdc25C and MEK phosphorylation by CD147-targeted siRNA in A375 malignant melanoma cells, GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on human samples at 1:500 (fig 1). Oncol Lett (2016) ncbi
mouse monoclonal (GT239)
  • western blot; human; fig s7
GeneTex Gapdh-ps15 antibody (Genetex, GTX627408) was used in western blot on human samples (fig s7). Nat Immunol (2016) ncbi
rabbit polyclonal
  • western blot; mouse; fig 3
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on mouse samples (fig 3). Int J Mol Sci (2016) ncbi
rabbit polyclonal
  • western blot; African green monkey; 1:3000; fig 4
GeneTex Gapdh-ps15 antibody (Genetex, GTX100118) was used in western blot on African green monkey samples at 1:3000 (fig 4). PLoS ONE (2016) ncbi
mouse monoclonal (GT239)
  • western blot; human; 1:2000
GeneTex Gapdh-ps15 antibody (Genetex, GT239) was used in western blot on human samples at 1:2000. Nature (2016) ncbi
rabbit polyclonal
  • western blot; human; 1:10,000; fig 1
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on human samples at 1:10,000 (fig 1). PLoS ONE (2015) ncbi
mouse monoclonal (GT239)
  • western blot; mouse; 1:1000; fig 3
  • western blot; human; 1:1000; fig 2
In order to test if SRC, SHP1, and SHP2 target focal adhesions via their SH2 domains, GeneTex Gapdh-ps15 antibody (GeneTex, GTX627408) was used in western blot on mouse samples at 1:1000 (fig 3) and in western blot on human samples at 1:1000 (fig 2). Sci Rep (2015) ncbi
rabbit polyclonal
  • western blot; human; fig 7
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on human samples (fig 7). Int J Mol Med (2016) ncbi
rabbit polyclonal
  • western blot; human; fig 1a
In order to investigate the role of mitochondrial ATR during the response to UV damage, GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on human samples (fig 1a). Mol Cell (2015) ncbi
mouse monoclonal (GT239)
  • western blot; human; fig 2
GeneTex Gapdh-ps15 antibody (GeneTex, GTX627408) was used in western blot on human samples (fig 2). Oncotarget (2015) ncbi
mouse monoclonal (GT239)
  • western blot; human; fig 1e
GeneTex Gapdh-ps15 antibody (Gentex, GTX627408) was used in western blot on human samples (fig 1e). Mol Cell Biol (2015) ncbi
mouse monoclonal (GT239)
  • western blot; mouse; 1:1000
In order to assess the effect of PINK1-deficiency on mitochondrial quality control in myocytes, GeneTex Gapdh-ps15 antibody (Genetex, 627408) was used in western blot on mouse samples at 1:1000. PLoS ONE (2015) ncbi
mouse monoclonal (GT239)
  • western blot; human; 1:5000; fig 4
GeneTex Gapdh-ps15 antibody (GeneTex, GTX627408) was used in western blot on human samples at 1:5000 (fig 4). Nat Genet (2015) ncbi
rabbit polyclonal
  • western blot; human; 1:10,000; fig 3
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100283) was used in western blot on human samples at 1:10,000 (fig 3). Cell Death Dis (2015) ncbi
mouse monoclonal (GT239)
  • western blot; human; 1:5000; fig 3
In order to study the role of Mus81 in DNA replication, GeneTex Gapdh-ps15 antibody (Gene Tex, GTX627408) was used in western blot on human samples at 1:5000 (fig 3). Nat Commun (2015) ncbi
rabbit polyclonal
  • western blot; human; fig 6
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on human samples (fig 6). PLoS Pathog (2015) ncbi
rabbit polyclonal
  • western blot; mouse; 1:20,000; fig 1
GeneTex Gapdh-ps15 antibody (GeneTex, 100118) was used in western blot on mouse samples at 1:20,000 (fig 1). PLoS ONE (2015) ncbi
rabbit polyclonal
  • western blot; mouse; fig 2
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on mouse samples (fig 2). PLoS Genet (2015) ncbi
rabbit polyclonal
  • western blot; human; 1:20,000; fig 5
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on human samples at 1:20,000 (fig 5). PLoS ONE (2015) ncbi
rabbit polyclonal
  • western blot; mouse; 1:5000
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100283) was used in western blot on mouse samples at 1:5000. Neuropharmacology (2015) ncbi
mouse monoclonal (GT239)
  • western blot; human; 1:1000
GeneTex Gapdh-ps15 antibody (GeneTex, GTX627408) was used in western blot on human samples at 1:1000. J Cell Mol Med (2015) ncbi
mouse monoclonal (GT239)
  • western blot; human
In order to study how glial cell line-derived neurotrophic factor promotes prostate cancer growth, GeneTex Gapdh-ps15 antibody (GeneTex, GTX627408) was used in western blot on human samples . Oncotarget (2015) ncbi
rabbit polyclonal
  • western blot; human
In order to identify targets of SUMO2/3 during mitosis, GeneTex Gapdh-ps15 antibody (Genetex, GTX100118) was used in western blot on human samples . Proteomics (2015) ncbi
mouse monoclonal (GT239)
  • western blot; human; 1:10; fig 4
GeneTex Gapdh-ps15 antibody (Genetex, GTX627408) was used in western blot on human samples at 1:10 (fig 4). Anal Chem (2014) ncbi
mouse monoclonal (GT239)
  • western blot; mouse; 1:4000; fig 2
In order to study the activation of NF-kappaB and JNK signaling cascades mediated by tumor necrosis factor-alpha activation in retinal ganglion cells and astrocytes in opposite ways, GeneTex Gapdh-ps15 antibody (GeneTex, GTX627408) was used in western blot on mouse samples at 1:4000 (fig 2). Eur J Neurosci (2014) ncbi
rabbit polyclonal
  • immunocytochemistry; human; 1:10000
In order to study age-related macular degeneration pathogenesis using stem cells differentiation into retinal pigment epithelial cells using T cells, GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in immunocytochemistry on human samples at 1:10000. Front Aging Neurosci (2014) ncbi
mouse monoclonal (GT239)
  • western blot; human; 1:1000
GeneTex Gapdh-ps15 antibody (Genetex, GTX627408) was used in western blot on human samples at 1:1000. Hum Mol Genet (2014) ncbi
mouse monoclonal (GT239)
  • western blot; mouse; 1:2000; fig 4
GeneTex Gapdh-ps15 antibody (Genetex, gt239) was used in western blot on mouse samples at 1:2000 (fig 4). Sci Rep (2014) ncbi
rabbit polyclonal
  • western blot; rat; 1:5000
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on rat samples at 1:5000. J Comp Physiol A Neuroethol Sens Neural Behav Physiol (2014) ncbi
rabbit polyclonal
  • western blot; human
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on human samples . Gene (2012) ncbi
rabbit polyclonal
  • western blot; human
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on human samples . Nucleic Acids Res (2012) ncbi
rabbit polyclonal
  • western blot; human
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on human samples . J Virol (2012) ncbi
rabbit polyclonal
  • western blot; human
GeneTex Gapdh-ps15 antibody (GeneTex, GTX100118) was used in western blot on human samples . Hum Mutat (2010) ncbi
Proteintech Group
rabbit polyclonal
  • western blot; mouse; loading ...; fig 1a
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on mouse samples (fig 1a). Science (2019) ncbi
rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 1f
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on mouse samples at 1:1000 (fig 1f). Cell Death Dis (2018) ncbi
mouse monoclonal (1E6D9)
  • western blot; human; fig 1
Proteintech Group Gapdh-ps15 antibody (Proteintech, 1E6D9) was used in western blot on human samples (fig 1). Sci Rep (2016) ncbi
mouse monoclonal (1E6D9)
  • western blot; rat; 1:10,000; fig 2
Proteintech Group Gapdh-ps15 antibody (Wuhan Sanying Biotechnology, 60004-1-Ig) was used in western blot on rat samples at 1:10,000 (fig 2). Mol Med Rep (2016) ncbi
rabbit polyclonal
  • western blot; human; 1:8000; fig 3
Proteintech Group Gapdh-ps15 antibody (Proteintech Group, 10494-1-AP) was used in western blot on human samples at 1:8000 (fig 3). Oncol Lett (2016) ncbi
mouse monoclonal (1E6D9)
  • western blot; human; 1:5000; fig 3
Proteintech Group Gapdh-ps15 antibody (proteintech, 60004-1-Ig) was used in western blot on human samples at 1:5000 (fig 3). Nat Commun (2016) ncbi
rabbit polyclonal
  • western blot; mouse; fig 1
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on mouse samples (fig 1). PLoS Genet (2016) ncbi
rabbit polyclonal
  • western blot; human; 1:1000; fig 5
  • western blot; mouse; 1:1000; fig 2
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on human samples at 1:1000 (fig 5) and in western blot on mouse samples at 1:1000 (fig 2). Sci Rep (2016) ncbi
mouse monoclonal (1E6D9)
  • western blot; human; 1:5000; fig 5
Proteintech Group Gapdh-ps15 antibody (proteintech, 60004-1-Ig) was used in western blot on human samples at 1:5000 (fig 5). Oncotarget (2016) ncbi
mouse monoclonal (1E6D9)
  • western blot; human; fig 5
Proteintech Group Gapdh-ps15 antibody (Proteintech, 60004-1-Ig) was used in western blot on human samples (fig 5). PLoS ONE (2016) ncbi
rabbit polyclonal
  • western blot; human; fig 1
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on human samples (fig 1). BMC Cancer (2016) ncbi
rabbit polyclonal
  • western blot; human; fig 4
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on human samples (fig 4). Mol Cells (2016) ncbi
mouse monoclonal (1E6D9)
  • western blot; human; fig 2a
In order to identify residues of Y14 that are needed for binding to the mRNA cap, Proteintech Group Gapdh-ps15 antibody (ProteinTech, 60004-1-Ig) was used in western blot on human samples (fig 2a). J Biol Chem (2016) ncbi
mouse monoclonal (1E6D9)
  • western blot; human; fig 3
Proteintech Group Gapdh-ps15 antibody (Proteintech, 60004) was used in western blot on human samples (fig 3). Sci Rep (2016) ncbi
rabbit polyclonal
  • western blot; human; 1:5000; fig 3
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on human samples at 1:5000 (fig 3). Int J Oncol (2016) ncbi
mouse monoclonal (1E6D9)
  • western blot; rat; 1:5000; fig 4
Proteintech Group Gapdh-ps15 antibody (Proteintech, 60004-1-Ig) was used in western blot on rat samples at 1:5000 (fig 4). Stem Cells Int (2016) ncbi
mouse monoclonal (1E6D9)
  • western blot; mouse; 1:8000; fig 1
Proteintech Group Gapdh-ps15 antibody (Proteintech group, 60004-1-Ig) was used in western blot on mouse samples at 1:8000 (fig 1). PLoS ONE (2015) ncbi
rabbit polyclonal
  • western blot; human; fig 4
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on human samples (fig 4). Sci Rep (2015) ncbi
mouse monoclonal (1E6D9)
  • western blot; human; 1:10,000; fig 5
Proteintech Group Gapdh-ps15 antibody (Proteintech, 60004-1-Ig) was used in western blot on human samples at 1:10,000 (fig 5). elife (2015) ncbi
rabbit polyclonal
  • western blot; human; fig 4
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on human samples (fig 4). Mar Drugs (2015) ncbi
mouse monoclonal (1E6D9)
  • western blot; human; fig 2h
Proteintech Group Gapdh-ps15 antibody (Proteintech, 60004-1-Ig) was used in western blot on human samples (fig 2h). EMBO J (2015) ncbi
mouse monoclonal (1E6D9)
  • western blot; human; 1:5000; fig 2
Proteintech Group Gapdh-ps15 antibody (Protein Tech Group, 60004-1-Ig) was used in western blot on human samples at 1:5000 (fig 2). Nucleic Acids Res (2015) ncbi
mouse monoclonal (1E6D9)
  • western blot; mouse; 1:2000; fig 2
  • western blot; human; 1:2000; fig 2
Proteintech Group Gapdh-ps15 antibody (Proteintech, 60004-1-Ig) was used in western blot on mouse samples at 1:2000 (fig 2) and in western blot on human samples at 1:2000 (fig 2). Nat Cell Biol (2015) ncbi
rabbit polyclonal
  • western blot; human
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on human samples . J Exp Clin Cancer Res (2014) ncbi
rabbit polyclonal
  • western blot; human
In order to study the effect of interleukin 7 on CD95 protein in CD4+ T cells and its mechanism, Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on human samples . J Biol Chem (2015) ncbi
rabbit polyclonal
  • western blot; human
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on human samples . Cell Commun Signal (2014) ncbi
rabbit polyclonal
  • western blot; mouse
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on mouse samples . Mol Cell (2014) ncbi
rabbit polyclonal
  • western blot; rat; 1:1500
Proteintech Group Gapdh-ps15 antibody (Proteintech, 10494-1-AP) was used in western blot on rat samples at 1:1500. Cell Mol Neurobiol (2014) ncbi
Novus Biologicals
rabbit polyclonal
  • western blot; fruit fly; loading ...; fig 2b
Novus Biologicals Gapdh-ps15 antibody (Novus Biologicals, NB100-56875) was used in western blot on fruit fly samples (fig 2b). PLoS ONE (2017) ncbi
mouse monoclonal (1D4)
  • western blot; mouse; fig 1
In order to elucidate the mechanism by which RIPK1 counteracts RIPK3-MLKL-mediated necroptosis, Novus Biologicals Gapdh-ps15 antibody (Novus, NB300-221) was used in western blot on mouse samples (fig 1). Nature (2016) ncbi
rabbit polyclonal
  • western blot; rat; fig 8
Novus Biologicals Gapdh-ps15 antibody (Novus, NB300-327) was used in western blot on rat samples (fig 8). J Am Heart Assoc (2016) ncbi
mouse monoclonal (1D4)
  • western blot; mouse; 1:1000; fig 1
Novus Biologicals Gapdh-ps15 antibody (Novus Biologicals, 1D4) was used in western blot on mouse samples at 1:1000 (fig 1). elife (2016) ncbi
mouse monoclonal (1D4)
  • western blot; human; 1:1000; fig 3a
Novus Biologicals Gapdh-ps15 antibody (Novus, NB300-221) was used in western blot on human samples at 1:1000 (fig 3a). Sci Rep (2016) ncbi
mouse monoclonal (1D4)
  • western blot; mouse; 1:5000; fig 3
Novus Biologicals Gapdh-ps15 antibody (Novus Biologicals, 1D4) was used in western blot on mouse samples at 1:5000 (fig 3). Front Cell Neurosci (2015) ncbi
mouse monoclonal (1D4)
  • western blot; human; 1:1000
Novus Biologicals Gapdh-ps15 antibody (Novus Biologicals, NB300-221) was used in western blot on human samples at 1:1000. J Cell Mol Med (2016) ncbi
mouse monoclonal (NB615)
  • western blot; human; fig 5
In order to identify host cell factors involved in the replication of respiratory syncytial virus, Novus Biologicals Gapdh-ps15 antibody (Novus Biologicals, NB615) was used in western blot on human samples (fig 5). Virus Res (2015) ncbi
rabbit polyclonal
  • western blot; mouse; 1:1000
In order to study the role of oocyte GSK3 on fertility, fetal development, and offspring health using transgenic mice, Novus Biologicals Gapdh-ps15 antibody (Novus, NB300-326) was used in western blot on mouse samples at 1:1000. Biol Reprod (2015) ncbi
mouse monoclonal (1D4)
  • western blot; cow; fig 2
Novus Biologicals Gapdh-ps15 antibody (Novus Biologicals, NB300-221SS) was used in western blot on cow samples (fig 2). J Reprod Dev (2015) ncbi
mouse monoclonal (1D4)
Novus Biologicals Gapdh-ps15 antibody (NOVUS, NB300-221) was used . Stem Cell Res Ther (2015) ncbi
rabbit polyclonal
  • western blot; human; fig 4
Novus Biologicals Gapdh-ps15 antibody (Abgent, NB100-56875) was used in western blot on human samples (fig 4). Bone (2015) ncbi
mouse monoclonal (1D4)
  • western blot; human; fig 6b
In order to investigate the function of the alanine repeat-containing C-terminal domain of RNA-binding motif protein 4, Novus Biologicals Gapdh-ps15 antibody (NOVUS, NB300-221) was used in western blot on human samples (fig 6b). Nucleic Acids Res (2014) ncbi
mouse monoclonal (1D4)
  • western blot; mouse; fig 1
Novus Biologicals Gapdh-ps15 antibody (Novus Biologicals, NB300-221) was used in western blot on mouse samples (fig 1). Toxicol Sci (2014) ncbi
mouse monoclonal (1D4)
  • western blot; pig
Novus Biologicals Gapdh-ps15 antibody (Novus Bio, NB300-221) was used in western blot on pig samples . J Mol Cell Cardiol (2013) ncbi
mouse monoclonal (1D4)
  • western blot; mouse
Novus Biologicals Gapdh-ps15 antibody (Novus, NB300-221) was used in western blot on mouse samples . Curr Biol (2012) ncbi
Bio-Rad
mouse monoclonal (4G5)
  • western blot; human; 1:50,000; fig 7
Bio-Rad Gapdh-ps15 antibody (ABD Serotec, MCA4740) was used in western blot on human samples at 1:50,000 (fig 7). Nat Commun (2016) ncbi
mouse monoclonal (6C5)
  • western blot; human; 1:1000; fig 7
Bio-Rad Gapdh-ps15 antibody (Bio-Rad, MCA4739) was used in western blot on human samples at 1:1000 (fig 7). PLoS ONE (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; 1:2000; fig 2
Bio-Rad Gapdh-ps15 antibody (ABD Serotec, MCA4739) was used in western blot on mouse samples at 1:2000 (fig 2). Nat Commun (2016) ncbi
mouse monoclonal (4G5)
  • western blot; human; fig 5c
Bio-Rad Gapdh-ps15 antibody (AbD Serotec, MCA4740) was used in western blot on human samples (fig 5c). Nucleic Acids Res (2016) ncbi
mouse monoclonal (6C5)
  • western blot; mouse; fig 6
In order to study the role of Rpn10 and Rpn13 in recognition of cellular homeostasis and ubiquitinated protein, Bio-Rad Gapdh-ps15 antibody (AbD Serotec, MCA4739) was used in western blot on mouse samples (fig 6). PLoS Genet (2015) ncbi
mouse monoclonal (4G5)
  • western blot; human
In order to study OGR1-mediated, pH-dependent signaling pathways in intestinal epithelial cells, Bio-Rad Gapdh-ps15 antibody (AbD Serotec, MCA4740) was used in western blot on human samples . Am J Physiol Gastrointest Liver Physiol (2015) ncbi
rabbit polyclonal
  • western blot; mouse; 1:1000
Bio-Rad Gapdh-ps15 antibody (AbDSerotec, AHP1628) was used in western blot on mouse samples at 1:1000. PLoS ONE (2014) ncbi
mouse monoclonal (4G5)
  • immunocytochemistry; human
Bio-Rad Gapdh-ps15 antibody (AbD Serotech, 4G5) was used in immunocytochemistry on human samples . Eur J Cell Biol (2014) ncbi
Abnova
goat polyclonal
  • western blot; human; 1:50,000; fig 6
Abnova Gapdh-ps15 antibody (Abnova, PAB6637) was used in western blot on human samples at 1:50,000 (fig 6). Front Cell Infect Microbiol (2016) ncbi
mouse monoclonal (3C2)
  • western blot; human; 1:4000
Abnova Gapdh-ps15 antibody (Abnova, H00002597-M01) was used in western blot on human samples at 1:4000. Cancer Lett (2015) ncbi
rabbit polyclonal
  • western blot; human; 1:5000
Abnova Gapdh-ps15 antibody (Abnova, H00002597-D01P) was used in western blot on human samples at 1:5000. J Inherit Metab Dis (2015) ncbi
mouse monoclonal (3C2)
  • western blot; human; fig 7
Abnova Gapdh-ps15 antibody (Abnova, H00002597-M01) was used in western blot on human samples (fig 7). Tissue Eng Part A (2015) ncbi
EnCor Biotechnology
mouse monoclonal
  • western blot; human; 1:2000
EnCor Biotechnology Gapdh-ps15 antibody (Encor, MCA-1D4) was used in western blot on human samples at 1:2000. Mol Cell Endocrinol (2015) ncbi
mouse monoclonal
  • western blot; mouse; 1:10,000; fig 2
EnCor Biotechnology Gapdh-ps15 antibody (Encor Biotechnology Inc., MCA-1D4) was used in western blot on mouse samples at 1:10,000 (fig 2). ASN Neuro (2015) ncbi
mouse monoclonal
  • western blot; human
EnCor Biotechnology Gapdh-ps15 antibody (Encor, MCA-1D4) was used in western blot on human samples . Br J Pharmacol (2014) ncbi
mouse monoclonal
  • western blot; mouse; 1:10000
EnCor Biotechnology Gapdh-ps15 antibody (Encor Biotechnology, MCA-1D4) was used in western blot on mouse samples at 1:10000. ASN Neuro (2013) ncbi
SICGEN
goat polyclonal
  • western blot; mouse
SICGEN Gapdh-ps15 antibody (Sicgen, AB006720) was used in western blot on mouse samples . J Cell Biol (2015) ncbi
goat polyclonal
  • western blot; mouse; 1:2000; fig 5
In order to report that K63 ubiquitination is required for chaperone-mediated autophagy degradation of HIF1A in vitro and in vivo, SICGEN Gapdh-ps15 antibody (Sicgen, AB0049-200) was used in western blot on mouse samples at 1:2000 (fig 5). Sci Rep (2015) ncbi
R&D Systems
goat polyclonal
  • western blot; mouse; 1:2000; fig 2
R&D Systems Gapdh-ps15 antibody (R&D Systems, AF5718) was used in western blot on mouse samples at 1:2000 (fig 2). Cell Physiol Biochem (2014) ncbi
mouse monoclonal (686613)
  • western blot; pig; fig 4
R&D Systems Gapdh-ps15 antibody (R&D Systems, MAB5718) was used in western blot on pig samples (fig 4). Mol Neurobiol (2015) ncbi
Synaptic Systems
rabbit polyclonal (/)
  • western blot; rat; fig 3
Synaptic Systems Gapdh-ps15 antibody (SYSY, 247002) was used in western blot on rat samples (fig 3). Front Cell Neurosci (2015) ncbi
MilliporeSigma
chicken polyclonal
  • western blot; dog; fig 2
In order to define the apical recycling pathway of epithelial cells by studying the fast-recycling receptor Megalin, MilliporeSigma Gapdh-ps15 antibody (Sigma-Aldrich, GW22763) was used in western blot on dog samples (fig 2). Nat Commun (2016) ncbi
rabbit polyclonal
  • western blot; human; 1:10,000; fig 1
In order to assess the failure to induce overstimulation-based cytotoxicity in breast and prostate cancer cells and not pain-sensing neurons after activation of endogenous TRPV1, MilliporeSigma Gapdh-ps15 antibody (Sigma, SAB2100894) was used in western blot on human samples at 1:10,000 (fig 1). Biochim Biophys Acta (2016) ncbi
chicken polyclonal
  • western blot; human; fig 1
In order to study the impact of different B-lymphocyte kinase variants, MilliporeSigma Gapdh-ps15 antibody (Sigma-Aldrich, SAB3500247) was used in western blot on human samples (fig 1). Genes Immun (2016) ncbi
chicken polyclonal
  • western blot; mouse; 1:5000; fig s6
In order to show that impaired SOCS3 feedback leads to permissive IL10/STAT3 signaling that promotes alternative macrophage activation and pathological neovascularization in the eyes, MilliporeSigma Gapdh-ps15 antibody (Sigma, SAB3500247) was used in western blot on mouse samples at 1:5000 (fig s6). Nat Commun (2015) ncbi
chicken polyclonal
  • western blot; dog; fig 4
In order to investigate the apical transcytotic pathway, MilliporeSigma Gapdh-ps15 antibody (Sigma, GW22763) was used in western blot on dog samples (fig 4). J Cell Sci (2014) ncbi
Articles Reviewed
  1. Liu Y, You Y, Lu Z, Yang J, Li P, Liu L, et al. N6-methyladenosine RNA modification-mediated cellular metabolism rewiring inhibits viral replication. Science. 2019;365:1171-1176 pubmed publisher
  2. Nandakumar S, McFarland S, Mateyka L, Lareau C, Ulirsch J, Ludwig L, et al. Gene-centric functional dissection of human genetic variation uncovers regulators of hematopoiesis. elife. 2019;8: pubmed publisher
  3. Zhu Y, Zhang Y, Huang X, Xie Y, Qu Y, Long H, et al. Z-Ligustilide protects vascular endothelial cells from oxidative stress and rescues high fat diet-induced atherosclerosis by activating multiple NRF2 downstream genes. Atherosclerosis. 2019;284:110-120 pubmed publisher
  4. Poondla N, Chandrasekaran A, Heese K, Kim K, Ramakrishna S. CRISPR-mediated upregulation of DR5 and downregulation of cFLIP synergistically sensitize HeLa cells to TRAIL-mediated apoptosis. Biochem Biophys Res Commun. 2019;: pubmed publisher
  5. Nagaoka K, Bai X, Ogawa K, Dong X, Zhang S, Zhou Y, et al. Anti-tumor activity of antibody drug conjugate targeting aspartate-β-hydroxylase in pancreatic ductal adenocarcinoma. Cancer Lett. 2019;449:87-98 pubmed publisher
  6. Chen S, Huang V, Xu X, Livingstone J, Soares F, Jeon J, et al. Widespread and Functional RNA Circularization in Localized Prostate Cancer. Cell. 2019;176:831-843.e22 pubmed publisher
  7. Rangel L, Bernabé Rubio M, Fernández Barrera J, Casares Arias J, Millan J, Alonso M, et al. Caveolin-1α regulates primary cilium length by controlling RhoA GTPase activity. Sci Rep. 2019;9:1116 pubmed publisher
  8. Mooney M, Geerts D, Kort E, Bachmann A. Anti-tumor effect of sulfasalazine in neuroblastoma. Biochem Pharmacol. 2019;162:237-249 pubmed publisher
  9. Silberman A, Goldman O, Boukobza Assayag O, Jacob A, Rabinovich S, Adler L, et al. Acid-Induced Downregulation of ASS1 Contributes to the Maintenance of Intracellular pH in Cancer. Cancer Res. 2019;79:518-533 pubmed publisher
  10. Signes A, Cerutti R, Dickson A, Benincá C, Hinchy E, Ghezzi D, et al. APOPT1/COA8 assists COX assembly and is oppositely regulated by UPS and ROS. EMBO Mol Med. 2019;11: pubmed publisher
  11. Bigenzahn J, Collu G, Kartnig F, Pieraks M, Vladimer G, Heinz L, et al. LZTR1 is a regulator of RAS ubiquitination and signaling. Science. 2018;362:1171-1177 pubmed publisher
  12. Leoz M, Kukanja P, Luo Z, Huang F, Cary D, Peterlin B, et al. HEXIM1-Tat chimera inhibits HIV-1 replication. PLoS Pathog. 2018;14:e1007402 pubmed publisher
  13. Mulati K, Hamanishi J, Matsumura N, Chamoto K, Mise N, Abiko K, et al. VISTA expressed in tumour cells regulates T cell function. Br J Cancer. 2019;120:115-127 pubmed publisher
  14. Schwartz A, Das N, Ramakrishnan S, Jain C, Jurkovic M, Wu J, et al. Hepatic hepcidin/intestinal HIF-2α axis maintains iron absorption during iron deficiency and overload. J Clin Invest. 2019;129:336-348 pubmed publisher
  15. Qiu T, Pei P, Yao X, Jiang L, Wei S, Wang Z, et al. Taurine attenuates arsenic-induced pyroptosis and nonalcoholic steatohepatitis by inhibiting the autophagic-inflammasomal pathway. Cell Death Dis. 2018;9:946 pubmed publisher
  16. Heusinger E, Deppe K, Sette P, Krapp C, Kmiec D, Kluge S, et al. Preadaptation of Simian Immunodeficiency Virus SIVsmm Facilitated Env-Mediated Counteraction of Human Tetherin by Human Immunodeficiency Virus Type 2. J Virol. 2018;92: pubmed publisher
  17. Schlögl E, Radeva M, Vielmuth F, Schinner C, Waschke J, Spindler V. Keratin Retraction and Desmoglein3 Internalization Independently Contribute to Autoantibody-Induced Cell Dissociation in Pemphigus Vulgaris. Front Immunol. 2018;9:858 pubmed publisher
  18. Pearce M, Gamble J, Kopparapu P, O Donnell E, Mueller M, Jang H, et al. Induction of apoptosis and suppression of tumor growth by Nur77-derived Bcl-2 converting peptide in chemoresistant lung cancer cells. Oncotarget. 2018;9:26072-26085 pubmed publisher
  19. Ashok A, Karmakar S, Chandel R, Ravikumar R, Dalal S, Kong Q, et al. Prion protein modulates iron transport in the anterior segment: Implications for ocular iron homeostasis and prion transmission. Exp Eye Res. 2018;175:1-13 pubmed publisher
  20. Liu L, Liu K, Yan Y, Chu Z, Tang Y, Tang C. Two Transcripts of FBXO5 Promote Migration and Osteogenic Differentiation of Human Periodontal Ligament Mesenchymal Stem Cells. Biomed Res Int. 2018;2018:7849294 pubmed publisher
  21. Luisier R, Tyzack G, Hall C, Mitchell J, Devine H, Taha D, et al. Intron retention and nuclear loss of SFPQ are molecular hallmarks of ALS. Nat Commun. 2018;9:2010 pubmed publisher
  22. Park J, Kim I, Choi J, Lim H, Shin J, Kim Y, et al. AHNAK Loss in Mice Promotes Type II Pneumocyte Hyperplasia and Lung Tumor Development. Mol Cancer Res. 2018;16:1287-1298 pubmed publisher
  23. Puri C, Vicinanza M, Ashkenazi A, Gratian M, Zhang Q, Bento C, et al. The RAB11A-Positive Compartment Is a Primary Platform for Autophagosome Assembly Mediated by WIPI2 Recognition of PI3P-RAB11A. Dev Cell. 2018;45:114-131.e8 pubmed publisher
  24. Melzer C, von der Ohe J, Hass R. In Vitro Fusion of Normal and Neoplastic Breast Epithelial Cells with Human Mesenchymal Stroma/Stem Cells Partially Involves Tumor Necrosis Factor Receptor Signaling. Stem Cells. 2018;36:977-989 pubmed publisher
  25. Ng P, Li J, Jeong K, Shao S, Chen H, Tsang Y, et al. Systematic Functional Annotation of Somatic Mutations in Cancer. Cancer Cell. 2018;33:450-462.e10 pubmed publisher
  26. Yurchenko M, Skjesol A, Ryan L, Richard G, Kandasamy R, Wang N, et al. SLAMF1 is required for TLR4-mediated TRAM-TRIF-dependent signaling in human macrophages. J Cell Biol. 2018;217:1411-1429 pubmed publisher
  27. Wen G, An W, Chen J, Maguire E, Chen Q, Yang F, et al. Genetic and Pharmacologic Inhibition of the Neutrophil Elastase Inhibits Experimental Atherosclerosis. J Am Heart Assoc. 2018;7: pubmed publisher
  28. Liu F, Dai M, Xu Q, Zhu X, Zhou Y, Jiang S, et al. SRSF10-mediated IL1RAP alternative splicing regulates cervical cancer oncogenesis via mIL1RAP-NF-κB-CD47 axis. Oncogene. 2018;37:2394-2409 pubmed publisher
  29. Xue C, Hong L, Lin J, Yao X, Wu D, Lin X, et al. β-Elemene inhibits the proliferation of primary human airway granulation fibroblasts by down-regulating canonical Wnt/β-catenin pathway. Biosci Rep. 2018;38: pubmed publisher
  30. Zhao Z, Jia Q, Wu M, Xie X, Wang Y, Song G, et al. Degalactotigonin, a Natural Compound from Solanum nigrum L., Inhibits Growth and Metastasis of Osteosarcoma through GSK3β Inactivation-Mediated Repression of the Hedgehog/Gli1 Pathway. Clin Cancer Res. 2018;24:130-144 pubmed publisher
  31. Xu Y, Wang Y, Yao A, Xu Z, Dou H, Shen S, et al. Low Frequency Magnetic Fields Induce Autophagy-associated Cell Death in Lung Cancer through miR-486-mediated Inhibition of Akt/mTOR Signaling Pathway. Sci Rep. 2017;7:11776 pubmed publisher
  32. Wu X, Zhou H, Yue B, Li M, Liu F, Qiu C, et al. Upregulation of microRNA-25-3p inhibits proliferation, migration and invasion of osteosarcoma cells in vitro by directly targeting SOX4. Mol Med Rep. 2017;16:4293-4300 pubmed publisher
  33. Whitson J, Zhang X, Medvedovic M, Chen J, Wei Z, Monnier V, et al. Transcriptome of the GSH-Depleted Lens Reveals Changes in Detoxification and EMT Signaling Genes, Transport Systems, and Lipid Homeostasis. Invest Ophthalmol Vis Sci. 2017;58:2666-2684 pubmed publisher
  34. Shah M, Garcia Pak I, Darling E. Influence of Inherent Mechanophenotype on Competitive Cellular Adherence. Ann Biomed Eng. 2017;45:2036-2047 pubmed publisher
  35. Tan H, Liao H, Zhao L, Lu Y, Jiang S, Tao D, et al. HILI destabilizes microtubules by suppressing phosphorylation and Gigaxonin-mediated degradation of TBCB. Sci Rep. 2017;7:46376 pubmed publisher
  36. Bi P, Ramirez Martinez A, Li H, Cannavino J, McAnally J, Shelton J, et al. Control of muscle formation by the fusogenic micropeptide myomixer. Science. 2017;356:323-327 pubmed publisher
  37. AlAmri M, Kadri H, Alderwick L, Simpkins N, Mehellou Y. Rafoxanide and Closantel Inhibit SPAK and OSR1 Kinases by Binding to a Highly Conserved Allosteric Site on Their C-terminal Domains. ChemMedChem. 2017;12:639-645 pubmed publisher
  38. Suresh S, Chavalmane A, Dj V, Yarreiphang H, Rai S, Paul A, et al. A novel autophagy modulator 6-Bio ameliorates SNCA/?-synuclein toxicity. Autophagy. 2017;13:1221-1234 pubmed publisher
  39. 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
  40. Longo F, Mercatelli D, Novello S, Arcuri L, Brugnoli A, Vincenzi F, et al. Age-dependent dopamine transporter dysfunction and Serine129 phospho-α-synuclein overload in G2019S LRRK2 mice. Acta Neuropathol Commun. 2017;5:22 pubmed publisher
  41. de Oliveira R, Vicente Miranda H, Francelle L, Pinho R, Szego E, Martinho R, et al. The mechanism of sirtuin 2-mediated exacerbation of alpha-synuclein toxicity in models of Parkinson disease. PLoS Biol. 2017;15:e2000374 pubmed publisher
  42. Xiang J, Yang S, Xin N, Gaertig M, Reeves R, Li S, et al. DYRK1A regulates Hap1-Dcaf7/WDR68 binding with implication for delayed growth in Down syndrome. Proc Natl Acad Sci U S A. 2017;114:E1224-E1233 pubmed publisher
  43. Guo R, Si R, Scott B, Makino A. Mitochondrial connexin40 regulates mitochondrial calcium uptake in coronary endothelial cells. Am J Physiol Cell Physiol. 2017;312:C398-C406 pubmed publisher
  44. . Integrated genomic and molecular characterization of cervical cancer. Nature. 2017;543:378-384 pubmed publisher
  45. Vonk J, Yeshaw W, Pinto F, Faber A, Lahaye L, Kanon B, et al. Drosophila Vps13 Is Required for Protein Homeostasis in the Brain. PLoS ONE. 2017;12:e0170106 pubmed publisher
  46. Herold N, Rudd S, Ljungblad L, Sanjiv K, Myrberg I, Paulin C, et al. Targeting SAMHD1 with the Vpx protein to improve cytarabine therapy for hematological malignancies. Nat Med. 2017;23:256-263 pubmed publisher
  47. Babagana M, Johnson S, Slabodkin H, Bshara W, Morrison C, Kandel E. P21-activated kinase 1 regulates resistance to BRAF inhibition in human cancer cells. Mol Carcinog. 2017;56:1515-1525 pubmed publisher
  48. Yu X, Curlik D, Oh M, Yin J, Disterhoft J. CREB overexpression in dorsal CA1 ameliorates long-term memory deficits in aged rats. elife. 2017;6: pubmed publisher
  49. Miroshnychenko O, Chang W, Dragoo J. The Use of Platelet-Rich and Platelet-Poor Plasma to Enhance Differentiation of Skeletal Myoblasts: Implications for the Use of Autologous Blood Products for Muscle Regeneration. Am J Sports Med. 2017;45:945-953 pubmed publisher
  50. Zhang D, Wu B, Wang P, Wang Y, Lu P, Nechiporuk T, et al. Non-CpG methylation by DNMT3B facilitates REST binding and gene silencing in developing mouse hearts. Nucleic Acids Res. 2017;45:3102-3115 pubmed publisher
  51. Radhakrishnan V, Gilpatrick M, Parsa N, Kiela P, Ghishan F. Expression of Cav1.3 calcium channel in the human and mouse colon: posttranscriptional inhibition by IFN?. Am J Physiol Gastrointest Liver Physiol. 2017;312:G77-G84 pubmed publisher
  52. Akagi R, Akatsu Y, Fisch K, Alvarez Garcia O, Teramura T, Muramatsu Y, et al. Dysregulated circadian rhythm pathway in human osteoarthritis: NR1D1 and BMAL1 suppression alters TGF-? signaling in chondrocytes. Osteoarthritis Cartilage. 2017;25:943-951 pubmed publisher
  53. Hwang D, Jo H, Hwang S, Kim J, Kim I, Lim Y. Conditioned medium from LS 174T goblet cells treated with oxyresveratrol strengthens tight junctions in Caco-2 cells. Biomed Pharmacother. 2017;85:280-286 pubmed publisher
  54. Takács E, Boto P, Simo E, Csuth T, Toth B, Raveh Amit H, et al. Immunogenic Dendritic Cell Generation from Pluripotent Stem Cells by Ectopic Expression of Runx3. J Immunol. 2017;198:239-248 pubmed
  55. Lin J, Kumari S, Kim C, Van T, Wachsmuth L, Polykratis A, et al. RIPK1 counteracts ZBP1-mediated necroptosis to inhibit inflammation. Nature. 2016;540:124-128 pubmed publisher
  56. Chehaibi K, le Maire L, Bradoni S, Escolà J, Blanco Vaca F, Slimane M. Effect of PPAR-β/δ agonist GW0742 treatment in the acute phase response and blood-brain barrier permeability following brain injury. Transl Res. 2017;182:27-48 pubmed publisher
  57. Liu L, Tao Z, Zheng L, Brooke J, Smith C, Liu D, et al. FoxO1 interacts with transcription factor EB and differentially regulates mitochondrial uncoupling proteins via autophagy in adipocytes. Cell Death Discov. 2016;2:16066 pubmed
  58. Pachulec E, Neitzke Montinelli V, Viola J. NFAT2 Regulates Generation of Innate-Like CD8+ T Lymphocytes and CD8+ T Lymphocytes Responses. Front Immunol. 2016;7:411 pubmed
  59. Nguyen A, Nyberg K, Scott M, Welsh A, Nguyen A, Wu N, et al. Stiffness of pancreatic cancer cells is associated with increased invasive potential. Integr Biol (Camb). 2016;8:1232-1245 pubmed
  60. Yang T, Wang J, Pang Y, Dang X, Ren H, Liu Y, et al. Emodin suppresses silica-induced lung fibrosis by promoting Sirt1 signaling via direct contact. Mol Med Rep. 2016;14:4643-4649 pubmed publisher
  61. Jain S, Krishna Meka S, Chatterjee K. Curcumin eluting nanofibers augment osteogenesis toward phytochemical based bone tissue engineering. Biomed Mater. 2016;11:055007 pubmed
  62. Baravalle R, Di Nardo G, Bandino A, Barone I, Catalano S, Ando S, et al. Impact of R264C and R264H polymorphisms in human aromatase function. J Steroid Biochem Mol Biol. 2017;167:23-32 pubmed publisher
  63. Alphonse M, Duong T, Shumitzu C, Hoang T, McCrindle B, Franco A, et al. Inositol-Triphosphate 3-Kinase C Mediates Inflammasome Activation and Treatment Response in Kawasaki Disease. J Immunol. 2016;197:3481-3489 pubmed
  64. Ho T, Huang J, Zhou N, Zhang Z, Koirala P, Zhou X, et al. Regulation of PCGEM1 by p54/nrb in prostate cancer. Sci Rep. 2016;6:34529 pubmed publisher
  65. Cao R, Meng Z, Liu T, Wang G, Qian G, Cao T, et al. Decreased TRPM7 inhibits activities and induces apoptosis of bladder cancer cells via ERK1/2 pathway. Oncotarget. 2016;7:72941-72960 pubmed publisher
  66. Kim Y, Yadava R, Mandal M, Mahadevan K, Yu Q, Leitges M, et al. Disease Phenotypes in a Mouse Model of RNA Toxicity Are Independent of Protein Kinase Cα and Protein Kinase Cβ. PLoS ONE. 2016;11:e0163325 pubmed publisher
  67. Jansson D, Scotter E, Rustenhoven J, Coppieters N, Smyth L, Oldfield R, et al. Interferon-? blocks signalling through PDGFR? in human brain pericytes. J Neuroinflammation. 2016;13:249 pubmed
  68. Bi P, Yue F, Sato Y, Wirbisky S, Liu W, Shan T, et al. Stage-specific effects of Notch activation during skeletal myogenesis. elife. 2016;5: pubmed publisher
  69. Wu H, Li S, Hu J, Yu X, Xu H, Chen Z, et al. Demystifying the mechanistic and functional aspects of p21 gene activation with double-stranded RNAs in human cancer cells. J Exp Clin Cancer Res. 2016;35:145 pubmed publisher
  70. Vernia S, Edwards Y, Han M, Cavanagh Kyros J, Barrett T, Kim J, et al. An alternative splicing program promotes adipose tissue thermogenesis. elife. 2016;5: pubmed publisher
  71. Charrier A, Wang L, Stephenson E, Ghanta S, Ko C, Croniger C, et al. Zinc finger protein 407 overexpression upregulates PPAR target gene expression and improves glucose homeostasis in mice. Am J Physiol Endocrinol Metab. 2016;311:E869-E880 pubmed publisher
  72. Gao C, Wang J, Li C, Zhang W, Liu G. A Functional Polymorphism (rs10817938) in the XPA Promoter Region Is Associated with Poor Prognosis of Oral Squamous Cell Carcinoma in a Chinese Han Population. PLoS ONE. 2016;11:e0160801 pubmed publisher
  73. Waasdorp M, Duitman J, Florquin S, Spek C. Protease-activated receptor-1 deficiency protects against streptozotocin-induced diabetic nephropathy in mice. Sci Rep. 2016;6:33030 pubmed publisher
  74. De Los Santos S, García Pérez V, Hernández Reséndiz S, Palma Flores C, González Gutiérrez C, Zazueta C, et al. (-)-Epicatechin induces physiological cardiac growth by activation of the PI3K/Akt pathway in mice. Mol Nutr Food Res. 2017;61: pubmed publisher
  75. Deeg K, Chung I, Bauer C, Rippe K. Cancer Cells with Alternative Lengthening of Telomeres Do Not Display a General Hypersensitivity to ATR Inhibition. Front Oncol. 2016;6:186 pubmed publisher
  76. Luo H, Zhang J, Miao F. Effects of pramipexole treatment on the ?-synuclein content in serum exosomes of Parkinson's disease patients. Exp Ther Med. 2016;12:1373-1376 pubmed
  77. Rosa C, Gimenes R, Campos D, Guirado G, Gimenes C, Fernandes A, et al. Apocynin influence on oxidative stress and cardiac remodeling of spontaneously hypertensive rats with diabetes mellitus. Cardiovasc Diabetol. 2016;15:126 pubmed publisher
  78. Mao S, Li X, Wang J, Ding X, Zhang C, Li L. miR-17-92 facilitates neuronal differentiation of transplanted neural stem/precursor cells under neuroinflammatory conditions. J Neuroinflammation. 2016;13:208 pubmed publisher
  79. Diokmetzidou A, Soumaka E, Kloukina I, Tsikitis M, Makridakis M, Varela A, et al. Desmin and ?B-crystallin interplay in the maintenance of mitochondrial homeostasis and cardiomyocyte survival. J Cell Sci. 2016;129:3705-3720 pubmed
  80. Georgescu M, Gagea M, Cote G. NHERF1/EBP50 Suppresses Wnt-?-Catenin Pathway-Driven Intestinal Neoplasia. Neoplasia. 2016;18:512-23 pubmed publisher
  81. Skrdlant L, Stark J, Lin R. Myelodysplasia-associated mutations in serine/arginine-rich splicing factor SRSF2 lead to alternative splicing of CDC25C. BMC Mol Biol. 2016;17:18 pubmed publisher
  82. 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
  83. Olsen J, Wong L, Deimling S, Miles A, Guo H, Li Y, et al. G9a and ZNF644 Physically Associate to Suppress Progenitor Gene Expression during Neurogenesis. Stem Cell Reports. 2016;7:454-470 pubmed publisher
  84. Kupka S, De Miguel D, Dráber P, Martino L, Surinova S, Rittinger K, et al. SPATA2-Mediated Binding of CYLD to HOIP Enables CYLD Recruitment to Signaling Complexes. Cell Rep. 2016;16:2271-80 pubmed publisher
  85. Ahn J, Kim K, Park S, Ahn Y, Kim H, Yoon H, et al. Target sequencing and CRISPR/Cas editing reveal simultaneous loss of UTX and UTY in urothelial bladder cancer. Oncotarget. 2016;7:63252-63260 pubmed publisher
  86. Fokkelman M, Balcıoğlu H, Klip J, Yan K, Verbeek F, Danen E, et al. Cellular adhesome screen identifies critical modulators of focal adhesion dynamics, cellular traction forces and cell migration behaviour. Sci Rep. 2016;6:31707 pubmed publisher
  87. Koizumi S, Irie T, Hirayama S, Sakurai Y, Yashiroda H, Naguro I, et al. The aspartyl protease DDI2 activates Nrf1 to compensate for proteasome dysfunction. elife. 2016;5: pubmed publisher
  88. Damgaard R, Walker J, Marco Casanova P, Morgan N, Titheradge H, Elliott P, et al. The Deubiquitinase OTULIN Is an Essential Negative Regulator of Inflammation and Autoimmunity. Cell. 2016;166:1215-1230.e20 pubmed publisher
  89. Yuan W, Guo Y, Li X, Deng M, Shen Z, Bo C, et al. MicroRNA-126 inhibits colon cancer cell proliferation and invasion by targeting the chemokine (C-X-C motif) receptor 4 and Ras homolog gene family, member A, signaling pathway. Oncotarget. 2016;7:60230-60244 pubmed publisher
  90. Moreno A, Carrington J, Albergante L, Al Mamun M, Haagensen E, Komseli E, et al. Unreplicated DNA remaining from unperturbed S phases passes through mitosis for resolution in daughter cells. Proc Natl Acad Sci U S A. 2016;113:E5757-64 pubmed publisher
  91. Koch F, Lamp O, Eslamizad M, Weitzel J, Kuhla B. Metabolic Response to Heat Stress in Late-Pregnant and Early Lactation Dairy Cows: Implications to Liver-Muscle Crosstalk. PLoS ONE. 2016;11:e0160912 pubmed publisher
  92. Nadeau Vallée M, Boudreault A, Leimert K, Hou X, Obari D, Madaan A, et al. Uterotonic Neuromedin U Receptor 2 and Its Ligands Are Upregulated by Inflammation in Mice and Humans, and Elicit Preterm Birth. Biol Reprod. 2016;95:72 pubmed
  93. Surtees R, Dowall S, Shaw A, Armstrong S, Hewson R, Carroll M, et al. Heat Shock Protein 70 Family Members Interact with Crimean-Congo Hemorrhagic Fever Virus and Hazara Virus Nucleocapsid Proteins and Perform a Functional Role in the Nairovirus Replication Cycle. J Virol. 2016;90:9305-16 pubmed publisher
  94. Batalha V, Ferreira D, Coelho J, Valadas J, Gomes R, Temido Ferreira M, et al. The caffeine-binding adenosine A2A receptor induces age-like HPA-axis dysfunction by targeting glucocorticoid receptor function. Sci Rep. 2016;6:31493 pubmed publisher
  95. Meliopoulos V, Van De Velde L, Van De Velde N, Karlsson E, Neale G, Vogel P, et al. An Epithelial Integrin Regulates the Amplitude of Protective Lung Interferon Responses against Multiple Respiratory Pathogens. PLoS Pathog. 2016;12:e1005804 pubmed publisher
  96. Ramo K, Sugamura K, Craige S, Keaney J, Davis R. Suppression of ischemia in arterial occlusive disease by JNK-promoted native collateral artery development. elife. 2016;5: pubmed publisher
  97. Wang X, Buechler N, Martin A, Wells J, Yoza B, McCall C, et al. Sirtuin-2 Regulates Sepsis Inflammation in ob/ob Mice. PLoS ONE. 2016;11:e0160431 pubmed publisher
  98. Liou A, Wu S, Liao C, Chang Y, Chang C, Shih C. A new animal model containing human SCARB2 and lacking stat-1 is highly susceptible to EV71. Sci Rep. 2016;6:31151 pubmed publisher
  99. Wang Y, Lin S, Hsieh P, Hung S. Concomitant beige adipocyte differentiation upon induction of mesenchymal stem cells into brown adipocytes. Biochem Biophys Res Commun. 2016;478:689-95 pubmed publisher
  100. Wilhelmi I, Kanski R, Neumann A, Herdt O, Hoff F, Jacob R, et al. Sec16 alternative splicing dynamically controls COPII transport efficiency. Nat Commun. 2016;7:12347 pubmed publisher
  101. Wong M, Chen S. Human Choline Kinase-? Promotes Hepatitis C Virus RNA Replication through Modulation of Membranous Viral Replication Complex Formation. J Virol. 2016;90:9075-95 pubmed publisher
  102. Jiang Q, Chen S, Hu C, Huang P, Shen H, Zhao W. Neuregulin-1 (Nrg1) signaling has a preventive role and is altered in the frontal cortex under the pathological conditions of Alzheimer's disease. Mol Med Rep. 2016;14:2614-24 pubmed publisher
  103. Wang S, Li Y, Miao W, Zhao H, Zhang F, Liu N, et al. Angiopoietin-like protein 2 expression is suppressed by angiotensin II via the angiotensin II type 1 receptor in rat cardiomyocytes. Mol Med Rep. 2016;14:2607-13 pubmed publisher
  104. Kim H, Lee K, Kim A, Choi M, Choi K, Kang M, et al. A chemical with proven clinical safety rescues Down-syndrome-related phenotypes in through DYRK1A inhibition. Dis Model Mech. 2016;9:839-48 pubmed publisher
  105. Al Sady B, Greenstein R, El Samad H, Braun S, Madhani H. Sensitive and Quantitative Three-Color Protein Imaging in Fission Yeast Using Spectrally Diverse, Recoded Fluorescent Proteins with Experimentally-Characterized In Vivo Maturation Kinetics. PLoS ONE. 2016;11:e0159292 pubmed publisher
  106. Ito G, Katsemonova K, Tonelli F, Lis P, Baptista M, Shpiro N, et al. Phos-tag analysis of Rab10 phosphorylation by LRRK2: a powerful assay for assessing kinase function and inhibitors. Biochem J. 2016;473:2671-85 pubmed publisher
  107. Sullivan K, Lewis H, Hill A, Pandey A, Jackson L, Cabral J, et al. Trisomy 21 consistently activates the interferon response. elife. 2016;5: pubmed publisher
  108. Ortega A, Gil Cayuela C, Tarazón E, García Manzanares M, Montero J, Cinca J, et al. New Cell Adhesion Molecules in Human Ischemic Cardiomyopathy. PCDHGA3 Implications in Decreased Stroke Volume and Ventricular Dysfunction. PLoS ONE. 2016;11:e0160168 pubmed publisher
  109. Koopmans T, Kumawat K, Halayko A, Gosens R. Regulation of actin dynamics by WNT-5A: implications for human airway smooth muscle contraction. Sci Rep. 2016;6:30676 pubmed publisher
  110. Alves S, Marais T, Biferi M, Furling D, Marinello M, El Hachimi K, et al. Lentiviral vector-mediated overexpression of mutant ataxin-7 recapitulates SCA7 pathology and promotes accumulation of the FUS/TLS and MBNL1 RNA-binding proteins. Mol Neurodegener. 2016;11:58 pubmed publisher
  111. Song Y, Li A, Zhang L, Duan L. Expression of G protein-coupled receptor 56 is associated with tumor progression in non-small-cell lung carcinoma patients. Onco Targets Ther. 2016;9:4105-12 pubmed publisher
  112. Aryal B, Rotllan N, Araldi E, Ramírez C, He S, Chousterman B, et al. ANGPTL4 deficiency in haematopoietic cells promotes monocyte expansion and atherosclerosis progression. Nat Commun. 2016;7:12313 pubmed publisher
  113. Fotouhi O, Kjellin H, Larsson C, Hashemi J, Barriuso J, Juhlin C, et al. Proteomics Suggests a Role for APC-Survivin in Response to Somatostatin Analog Treatment of Neuroendocrine Tumors. J Clin Endocrinol Metab. 2016;101:3616-3627 pubmed
  114. Bao H, Liu P, Jiang K, Zhang X, Xie L, Wang Z, et al. Huaier polysaccharide induces apoptosis in hepatocellular carcinoma cells through p38 MAPK. Oncol Lett. 2016;12:1058-1066 pubmed
  115. Ling D, Chen Z, Liao Q, Feng J, Zhang X, Yin T. Differential effects of MTSS1 on invasion and proliferation in subtypes of non-small cell lung cancer cells. Exp Ther Med. 2016;12:1225-1231 pubmed
  116. Cheng Y, Huang C, Lee Y, Tien L, Ku W, Chien R, et al. Knocking down of heat-shock protein 27 directs differentiation of functional glutamatergic neurons from placenta-derived multipotent cells. Sci Rep. 2016;6:30314 pubmed publisher
  117. Bieberstein N, Kozáková E, Huranová M, Thakur P, Krchňáková Z, Krausova M, et al. TALE-directed local modulation of H3K9 methylation shapes exon recognition. Sci Rep. 2016;6:29961 pubmed publisher
  118. Gong K, Qu B, Liao D, Liu D, Wang C, Zhou J, et al. MiR-132 regulates osteogenic differentiation via downregulating Sirtuin1 in a peroxisome proliferator-activated receptor ?/?-dependent manner. Biochem Biophys Res Commun. 2016;478:260-267 pubmed publisher
  119. Liu S, Hossinger A, Hofmann J, Denner P, Vorberg I. Horizontal Transmission of Cytosolic Sup35 Prions by Extracellular Vesicles. MBio. 2016;7: pubmed publisher
  120. Tichon A, Gil N, Lubelsky Y, Havkin Solomon T, Lemze D, Itzkovitz S, et al. A conserved abundant cytoplasmic long noncoding RNA modulates repression by Pumilio proteins in human cells. Nat Commun. 2016;7:12209 pubmed publisher
  121. Pagliuso A, Valente C, Giordano L, Filograna A, Li G, Circolo D, et al. Golgi membrane fission requires the CtBP1-S/BARS-induced activation of lysophosphatidic acid acyltransferase ?. Nat Commun. 2016;7:12148 pubmed publisher
  122. Chandler J, Wongtrakool C, Banton S, Li S, Orr M, Barr D, et al. Low-dose oral cadmium increases airway reactivity and lung neuronal gene expression in mice. Physiol Rep. 2016;4: pubmed publisher
  123. Mao P, Liu J, Zhang Z, Zhang H, Liu H, Gao S, et al. Homologous recombination-dependent repair of telomeric DSBs in proliferating human cells. Nat Commun. 2016;7:12154 pubmed publisher
  124. Qu B, Ma Y, Yan M, Gong K, Liang F, Deng S, et al. Sirtuin1 promotes osteogenic differentiation through downregulation of peroxisome proliferator-activated receptor ? in MC3T3-E1 cells. Biochem Biophys Res Commun. 2016;478:439-445 pubmed publisher
  125. Kapeli K, Pratt G, Vu A, Hutt K, Martinez F, Sundararaman B, et al. Distinct and shared functions of ALS-associated proteins TDP-43, FUS and TAF15 revealed by multisystem analyses. Nat Commun. 2016;7:12143 pubmed publisher
  126. Gao Y, Mutter Rottmayer E, Greenwalt A, Goldfarb D, Yan F, Yang Y, et al. A neomorphic cancer cell-specific role of MAGE-A4 in trans-lesion synthesis. Nat Commun. 2016;7:12105 pubmed publisher
  127. Chen X, Wagener J, Ghribi O, Geiger J. Role of Endolysosomes in Skeletal Muscle Pathology Observed in a Cholesterol-Fed Rabbit Model of Alzheimer's Disease. Front Aging Neurosci. 2016;8:129 pubmed publisher
  128. Brai E, Alina Raio N, Alberi L. Notch1 hallmarks fibrillary depositions in sporadic Alzheimer's disease. Acta Neuropathol Commun. 2016;4:64 pubmed publisher
  129. Gao Y, Lui W, Lee W, Cheng C. Polarity protein Crumbs homolog-3 (CRB3) regulates ectoplasmic specialization dynamics through its action on F-actin organization in Sertoli cells. Sci Rep. 2016;6:28589 pubmed publisher
  130. Dai L, Cui X, Zhang X, Cheng L, Liu Y, Yang Y, et al. SARI inhibits angiogenesis and tumour growth of human colon cancer through directly targeting ceruloplasmin. Nat Commun. 2016;7:11996 pubmed publisher
  131. Edmondson R, Adcock A, Yang L. Influence of Matrices on 3D-Cultured Prostate Cancer Cells' Drug Response and Expression of Drug-Action Associated Proteins. PLoS ONE. 2016;11:e0158116 pubmed publisher
  132. Helland Ø, Popa M, Bischof K, Gjertsen B, McCormack E, Bjørge L. The HDACi Panobinostat Shows Growth Inhibition Both In Vitro and in a Bioluminescent Orthotopic Surgical Xenograft Model of Ovarian Cancer. PLoS ONE. 2016;11:e0158208 pubmed publisher
  133. Cheng Y, Li H, Li J, Li J, Gao Y, Liu B. O-GlcNAcylation enhances anaplastic thyroid carcinoma malignancy. Oncol Lett. 2016;12:572-578 pubmed
  134. Zhao J, Chen F, Zhou Q, Pan W, Wang X, Xu J, et al. B7-H3 protein expression in a murine model of osteosarcoma. Oncol Lett. 2016;12:383-386 pubmed
  135. Zheng C, Yang K, Zhang M, Zou M, Bai E, Ma Q, et al. Specific protein 1 depletion attenuates glucose uptake and proliferation of human glioma cells by regulating GLUT3 expression. Oncol Lett. 2016;12:125-131 pubmed
  136. Justis A, Hansen B, Beare P, King K, Heinzen R, Gilk S. Interactions between the Coxiella burnetii parasitophorous vacuole and the endoplasmic reticulum involve the host protein ORP1L. Cell Microbiol. 2017;19: pubmed publisher
  137. Inoue T, Ikeda M, Ide T, Fujino T, Matsuo Y, Arai S, et al. Twinkle overexpression prevents cardiac rupture after myocardial infarction by alleviating impaired mitochondrial biogenesis. Am J Physiol Heart Circ Physiol. 2016;311:H509-19 pubmed publisher
  138. Choi H, Jin S, Kwon J, Kim J, Jeong J, Kim J, et al. Characterization of Mammalian ADAM2 and Its Absence from Human Sperm. PLoS ONE. 2016;11:e0158321 pubmed publisher
  139. Ortiz D, Glassbrook J, Pellett P. Protein-Protein Interactions Suggest Novel Activities of Human Cytomegalovirus Tegument Protein pUL103. J Virol. 2016;90:7798-810 pubmed publisher
  140. Bennesch M, Segala G, Wider D, Picard D. LSD1 engages a corepressor complex for the activation of the estrogen receptor ? by estrogen and cAMP. Nucleic Acids Res. 2016;44:8655-8670 pubmed
  141. Zhang W, Chin T, Yang H, Nga M, Lunny D, Lim E, et al. Tumour-initiating cell-specific miR-1246 and miR-1290 expression converge to promote non-small cell lung cancer progression. Nat Commun. 2016;7:11702 pubmed publisher
  142. Gautheron J, Vucur M, Schneider A, Severi I, Roderburg C, Roy S, et al. The necroptosis-inducing kinase RIPK3 dampens adipose tissue inflammation and glucose intolerance. Nat Commun. 2016;7:11869 pubmed publisher
  143. Li Y, Liu C, Su T, Cheng H, Jeng Y, Lin H, et al. Characterization of metastatic tumor antigen 1 and its interaction with hepatitis B virus X protein in NF-κB signaling and tumor progression in a woodchuck hepatocellular carcinoma model. Oncotarget. 2016;7:47173-47185 pubmed publisher
  144. Muñoz Félix J, Pérez Roque L, Núñez Gómez E, Oujo B, Arevalo M, Ruiz Remolina L, et al. Overexpression of the short endoglin isoform reduces renal fibrosis and inflammation after unilateral ureteral obstruction. Biochim Biophys Acta. 2016;1862:1801-14 pubmed publisher
  145. Ahmad F, Chung Y, Tang Y, Hockman S, Liu S, Khan Y, et al. Phosphodiesterase 3B (PDE3B) regulates NLRP3 inflammasome in adipose tissue. Sci Rep. 2016;6:28056 pubmed publisher
  146. Joly S, Pernet V. Sphingosine 1-phosphate receptor 1 is required for retinal ganglion cell survival after optic nerve trauma. J Neurochem. 2016;138:571-86 pubmed publisher
  147. Tsai K, Leung C, Lo Y, Chen T, Chan W, Yu S, et al. Arm Selection Preference of MicroRNA-193a Varies in Breast Cancer. Sci Rep. 2016;6:28176 pubmed publisher
  148. Pomo J, Taylor R, Gullapalli R. Influence of TP53 and CDH1 genes in hepatocellular cancer spheroid formation and culture: a model system to understand cancer cell growth mechanics. Cancer Cell Int. 2016;16:44 pubmed publisher
  149. Zhai W, Chen D, Shen H, Chen Z, Li H, Yu Z, et al. A1 adenosine receptor attenuates intracerebral hemorrhage-induced secondary brain injury in rats by activating the P38-MAPKAP2-Hsp27 pathway. Mol Brain. 2016;9:66 pubmed publisher
  150. Tagscherer K, Fassl A, Sinkovic T, Richter J, Schecher S, Macher Goeppinger S, et al. MicroRNA-210 induces apoptosis in colorectal cancer via induction of reactive oxygen. Cancer Cell Int. 2016;16:42 pubmed publisher
  151. Jin P, Li T, Li X, Shen X, Zhao Y. Suppression of oxidative stress in endothelial progenitor cells promotes angiogenesis and improves cardiac function following myocardial infarction in diabetic mice. Exp Ther Med. 2016;11:2163-2170 pubmed
  152. Ryan T, Schmidt C, Green T, Spangenburg E, Neufer P, McClung J. Targeted Expression of Catalase to Mitochondria Protects Against Ischemic Myopathy in High-Fat Diet-Fed Mice. Diabetes. 2016;65:2553-68 pubmed publisher
  153. Xu Y, Liu J, He M, Liu R, Belegu V, Dai P, et al. Mechanisms of PDGF siRNA-mediated inhibition of bone cancer pain in the spinal cord. Sci Rep. 2016;6:27512 pubmed publisher
  154. Bento C, Ashkenazi A, Jimenez Sanchez M, Rubinsztein D. The Parkinson's disease-associated genes ATP13A2 and SYT11 regulate autophagy via a common pathway. Nat Commun. 2016;7:11803 pubmed publisher
  155. Boada Romero E, Serramito Gómez I, Sacristán M, Boone D, Xavier R, Pimentel Muiños F. The T300A Crohn's disease risk polymorphism impairs function of the WD40 domain of ATG16L1. Nat Commun. 2016;7:11821 pubmed publisher
  156. Zhang Z, Zhao G, Zhuang C, Shen Y, Zhao W, Xu J, et al. Long non-coding RNA LINC00628 functions as a gastric cancer suppressor via long-range modulating the expression of cell cycle related genes. Sci Rep. 2016;6:27435 pubmed publisher
  157. Duran C, Lee D, Jung J, Ravi S, Pogue C, Toussaint L, et al. NIK regulates MT1-MMP activity and promotes glioma cell invasion independently of the canonical NF-?B pathway. Oncogenesis. 2016;5:e231 pubmed publisher
  158. Liu L, Zheng L, Zou P, Brooke J, Smith C, Long Y, et al. FoxO1 antagonist suppresses autophagy and lipid droplet growth in adipocytes. Cell Cycle. 2016;15:2033-41 pubmed publisher
  159. Hartmann L, Dutta S, Opatz S, Vosberg S, Reiter K, Leubolt G, et al. ZBTB7A mutations in acute myeloid leukaemia with t(8;21) translocation. Nat Commun. 2016;7:11733 pubmed publisher
  160. Petrera A, Gassenhuber J, Ruf S, Gunasekaran D, Esser J, Shahinian J, et al. Cathepsin A inhibition attenuates myocardial infarction-induced heart failure on the functional and proteomic levels. J Transl Med. 2016;14:153 pubmed publisher
  161. Salazar Cantú A, Pérez Treviño P, Montalvo Parra D, Balderas Villalobos J, Gómez Víquez N, García N, et al. Role of SERCA and the sarcoplasmic reticulum calcium content on calcium waves propagation in rat ventricular myocytes. Arch Biochem Biophys. 2016;604:11-9 pubmed publisher
  162. Nutter C, Jaworski E, Verma S, Deshmukh V, Wang Q, Botvinnik O, et al. Dysregulation of RBFOX2 Is an Early Event in Cardiac Pathogenesis of Diabetes. Cell Rep. 2016;15:2200-2213 pubmed publisher
  163. Pumberger M, Qazi T, Ehrentraut M, Textor M, Kueper J, Stoltenburg Didinger G, et al. Synthetic niche to modulate regenerative potential of MSCs and enhance skeletal muscle regeneration. Biomaterials. 2016;99:95-108 pubmed publisher
  164. Høydal M, Stølen T, Kettlewell S, Maier L, Brown J, Sowa T, et al. Exercise training reverses myocardial dysfunction induced by CaMKII?C overexpression by restoring Ca2+ homeostasis. J Appl Physiol (1985). 2016;121:212-20 pubmed publisher
  165. Zhu K, Liu L, Zhang J, Wang Y, Liang H, Fan G, et al. MiR-29b suppresses the proliferation and migration of osteosarcoma cells by targeting CDK6. Protein Cell. 2016;7:434-44 pubmed publisher
  166. Han B, Poppinga W, Zuo H, Zuidhof A, Bos I, Smit M, et al. The novel compound Sul-121 inhibits airway inflammation and hyperresponsiveness in experimental models of chronic obstructive pulmonary disease. Sci Rep. 2016;6:26928 pubmed publisher
  167. Yang Z, Jiang Q, Chen S, Hu C, Shen H, Huang P, et al. Differential changes in Neuregulin-1 signaling in major brain regions in a lipopolysaccharide-induced neuroinflammation mouse model. Mol Med Rep. 2016;14:790-6 pubmed publisher
  168. Lin J, Xue A, Li L, Li B, Li Y, Shen Y, et al. MicroRNA-19b Downregulates Gap Junction Protein Alpha1 and Synergizes with MicroRNA-1 in Viral Myocarditis. Int J Mol Sci. 2016;17: pubmed publisher
  169. Huang Y, Yang X, Xu T, Kong Q, Zhang Y, Shen Y, et al. Overcoming resistance to TRAIL-induced apoptosis in solid tumor cells by simultaneously targeting death receptors, c-FLIP and IAPs. Int J Oncol. 2016;49:153-63 pubmed publisher
  170. Zeng L, Cai C, Li S, Wang W, Li Y, Chen J, et al. Essential Roles of Cyclin Y-Like 1 and Cyclin Y in Dividing Wnt-Responsive Mammary Stem/Progenitor Cells. PLoS Genet. 2016;12:e1006055 pubmed publisher
  171. Kohler T, Scholz A, Kiachludis D, Hammerschmidt S. Induction of Central Host Signaling Kinases during Pneumococcal Infection of Human THP-1 Cells. Front Cell Infect Microbiol. 2016;6:48 pubmed publisher
  172. Kalantari R, Hicks J, Li L, Gagnon K, Sridhara V, Lemoff A, et al. Stable association of RNAi machinery is conserved between the cytoplasm and nucleus of human cells. RNA. 2016;22:1085-98 pubmed publisher
  173. Lee J, Kwon G, Park J, Kim J, Lim Y. Brief Communication: SIR-2.1-dependent lifespan extension of Caenorhabditis elegans by oxyresveratrol and resveratrol. Exp Biol Med (Maywood). 2016;241:1757-63 pubmed publisher
  174. Dar A, Majid S, Bezrookove V, Phan B, Ursu S, Nosrati M, et al. BPTF transduces MITF-driven prosurvival signals in melanoma cells. Proc Natl Acad Sci U S A. 2016;113:6254-8 pubmed publisher
  175. Chen R, Liu H, Cheng Q, Jiang B, Peng R, Zou Q, et al. MicroRNA-93 promotes the malignant phenotypes of human glioma cells and induces their chemoresistance to temozolomide. Biol Open. 2016;5:669-77 pubmed publisher
  176. Bianchi Smiraglia A, Bagati A, Fink E, Moparthy S, Wawrzyniak J, Marvin E, et al. Microphthalmia-associated transcription factor suppresses invasion by reducing intracellular GTP pools. Oncogene. 2017;36:84-96 pubmed publisher
  177. Perez Bay A, Schreiner R, Benedicto I, Paz Marzolo M, Banfelder J, Weinstein A, et al. The fast-recycling receptor Megalin defines the apical recycling pathway of epithelial cells. Nat Commun. 2016;7:11550 pubmed publisher
  178. Pecze L, Jósvay K, Blum W, Petrovics G, Vizler C, Olah Z, et al. Activation of endogenous TRPV1 fails to induce overstimulation-based cytotoxicity in breast and prostate cancer cells but not in pain-sensing neurons. Biochim Biophys Acta. 2016;1863:2054-64 pubmed publisher
  179. Chen Z, Mei Y, Lei H, Tian R, Ni N, Han F, et al. LYTAK1, a TAK1 inhibitor, suppresses proliferation and epithelial?mesenchymal transition in retinal pigment epithelium cells. Mol Med Rep. 2016;14:145-50 pubmed publisher
  180. Hou D, Jin Y, Nie X, Zhang M, Ta N, Zhao L, et al. Derivation of Porcine Embryonic Stem-Like Cells from In Vitro-Produced Blastocyst-Stage Embryos. Sci Rep. 2016;6:25838 pubmed publisher
  181. Pastore N, Brady O, Diab H, Martina J, Sun L, Huynh T, et al. TFEB and TFE3 cooperate in the regulation of the innate immune response in activated macrophages. Autophagy. 2016;12:1240-58 pubmed publisher
  182. Hudson C, McArdle C, López Bernal A. Steroid receptor co-activator interacting protein (SIP) mediates EGF-stimulated expression of the prostaglandin synthase COX2 and prostaglandin release in human myometrium. Mol Hum Reprod. 2016;22:512-25 pubmed publisher
  183. Chen C, Wei X, Lv Z, Sun X, Wang S, Zhang Y, et al. Cyclic Equibiaxial Tensile Strain Alters Gene Expression of Chondrocytes via Histone Deacetylase 4 Shuttling. PLoS ONE. 2016;11:e0154951 pubmed publisher
  184. Scott T, Wicker C, Suganya R, Dhar B, Pittman T, Horbinski C, et al. Polyubiquitination of apurinic/apyrimidinic endonuclease 1 by Parkin. Mol Carcinog. 2017;56:325-336 pubmed publisher
  185. Maza P, Suzuki E. Histoplasma capsulatum-Induced Cytokine Secretion in Lung Epithelial Cells Is Dependent on Host Integrins, Src-Family Kinase Activation, and Membrane Raft Recruitment. Front Microbiol. 2016;7:580 pubmed publisher
  186. Humoud M, Doyle N, Royall E, Willcocks M, Sorgeloos F, van Kuppeveld F, et al. Feline Calicivirus Infection Disrupts Assembly of Cytoplasmic Stress Granules and Induces G3BP1 Cleavage. J Virol. 2016;90:6489-6501 pubmed publisher
  187. Yao Y, Norris E, Mason C, Strickland S. Laminin regulates PDGFR?(+) cell stemness and muscle development. Nat Commun. 2016;7:11415 pubmed publisher
  188. 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
  189. García Bea A, Walker M, Hyde T, Kleinman J, Harrison P, Lane T. Metabotropic glutamate receptor 3 (mGlu3; mGluR3; GRM3) in schizophrenia: Antibody characterisation and a semi-quantitative western blot study. Schizophr Res. 2016;177:18-27 pubmed publisher
  190. Watanabe Y, Papoutsoglou P, Maturi V, Tsubakihara Y, Hottiger M, Heldin C, et al. Regulation of Bone Morphogenetic Protein Signaling by ADP-ribosylation. J Biol Chem. 2016;291:12706-23 pubmed publisher
  191. Josipovic I, Fork C, Preussner J, Prior K, Iloska D, Vasconez A, et al. PAFAH1B1 and the lncRNA NONHSAT073641 maintain an angiogenic phenotype in human endothelial cells. Acta Physiol (Oxf). 2016;218:13-27 pubmed publisher
  192. Tran N, Su H, Khodadadi Jamayran A, Lin S, Zhang L, Zhou D, et al. The AS-RBM15 lncRNA enhances RBM15 protein translation during megakaryocyte differentiation. EMBO Rep. 2016;17:887-900 pubmed publisher
  193. Seo J, Singh N, Ottesen E, Sivanesan S, Shishimorova M, Singh R. Oxidative Stress Triggers Body-Wide Skipping of Multiple Exons of the Spinal Muscular Atrophy Gene. PLoS ONE. 2016;11:e0154390 pubmed publisher
  194. Dong F, Ling Q, Ye D, Zhang Z, Shu J, Chen G, et al. TCF7L2 involvement in estradiol- and progesterone-modulated islet and hepatic glucose homeostasis. Sci Rep. 2016;6:24859 pubmed publisher
  195. Kii I, Sumida Y, Goto T, Sonamoto R, Okuno Y, Yoshida S, et al. Selective inhibition of the kinase DYRK1A by targeting its folding process. Nat Commun. 2016;7:11391 pubmed publisher
  196. Liang Q, Wang B, Pang L, Wang Y, Zheng M, Wang Q, et al. Application of citrate as a tricarboxylic acid (TCA) cycle intermediate, prevents diabetic-induced heart damages in mice. Iran J Basic Med Sci. 2016;19:43-8 pubmed
  197. Bouvier D, Jones E, Quesseveur G, Davoli M, A Ferreira T, Quirion R, et al. High Resolution Dissection of Reactive Glial Nets in Alzheimer's Disease. Sci Rep. 2016;6:24544 pubmed publisher
  198. Dokas J, Chadt A, Joost H, Al Hasani H. Tbc1d1 deletion suppresses obesity in leptin-deficient mice. Int J Obes (Lond). 2016;40:1242-9 pubmed publisher
  199. Huang C, Lee C, Yang S, Chien C, Huang C, Yang R, et al. Upregulation of the growth arrest-specific-2 in recurrent colorectal cancers, and its susceptibility to chemotherapy in a model cell system. Biochim Biophys Acta. 2016;1862:1345-53 pubmed publisher
  200. Feng L, Wang Y, Cai H, Sun G, Niu W, Xin Q, et al. ADAM10-Notch signaling governs the recruitment of ovarian pregranulosa cells and controls folliculogenesis in mice. J Cell Sci. 2016;129:2202-12 pubmed publisher
  201. Kurkinen K, Marttinen M, Turner L, Natunen T, Mäkinen P, Haapalinna F, et al. SEPT8 modulates ?-amyloidogenic processing of APP by affecting the sorting and accumulation of BACE1. J Cell Sci. 2016;129:2224-38 pubmed publisher
  202. Terauchi A, Johnson Venkatesh E, Bullock B, Lehtinen M, Umemori H. Retrograde fibroblast growth factor 22 (FGF22) signaling regulates insulin-like growth factor 2 (IGF2) expression for activity-dependent synapse stabilization in the mammalian brain. elife. 2016;5: pubmed publisher
  203. Zeng W, Liu Q, Chen Z, Wu X, Zhong Y, Wu J. Silencing of hERG1 Gene Inhibits Proliferation and Invasion, and Induces Apoptosis in Human Osteosarcoma Cells by Targeting the NF-?B Pathway. J Cancer. 2016;7:746-57 pubmed publisher
  204. Hatanaka M, Higashi Y, Kawai K, Su J, Zeng W, Chen X, et al. CD147-targeted siRNA in A375 malignant melanoma cells induces the phosphorylation of EGFR and downregulates cdc25C and MEK phosphorylation. Oncol Lett. 2016;11:2424-2428 pubmed
  205. Chen W, Cao Z, Sugaya S, Lopez M, Sendra V, Laver N, et al. Pathological lymphangiogenesis is modulated by galectin-8-dependent crosstalk between podoplanin and integrin-associated VEGFR-3. Nat Commun. 2016;7:11302 pubmed publisher
  206. Elosegui Artola A, Oria R, Chen Y, Kosmalska A, Pérez González C, Castro N, et al. Mechanical regulation of a molecular clutch defines force transmission and transduction in response to matrix rigidity. Nat Cell Biol. 2016;18:540-8 pubmed publisher
  207. Flodby P, Kim Y, Beard L, Gao D, Ji Y, Kage H, et al. Knockout Mice Reveal a Major Role for Alveolar Epithelial Type I Cells in Alveolar Fluid Clearance. Am J Respir Cell Mol Biol. 2016;55:395-406 pubmed publisher
  208. Fortes M, Marzuca Nassr G, Vitzel K, da Justa Pinheiro C, Newsholme P, Curi R. Housekeeping proteins: How useful are they in skeletal muscle diabetes studies and muscle hypertrophy models?. Anal Biochem. 2016;504:38-40 pubmed publisher
  209. Hall A, Lu W, Godfrey J, Antonov A, Paicu C, Moxon S, et al. The cytoskeleton adaptor protein ankyrin-1 is upregulated by p53 following DNA damage and alters cell migration. Cell Death Dis. 2016;7:e2184 pubmed publisher
  210. Hwang H, Park C, Goodarzi H, Fak J, Mele A, Moore M, et al. PAPERCLIP Identifies MicroRNA Targets and a Role of CstF64/64tau in Promoting Non-canonical poly(A) Site Usage. Cell Rep. 2016;15:423-35 pubmed publisher
  211. Wang Z, Xie J, Yan M, Wang J, Wang X, Zhang J, et al. Downregulation of ATOH8 induced by EBV-encoded LMP1 contributes to the malignant phenotype of nasopharyngeal carcinoma. Oncotarget. 2016;7:26765-79 pubmed publisher
  212. Liu Z, Wang S, Liu J, Wang F, Liu Y, Zhao Y. Leukocyte Infiltration Triggers Seizure Recurrence in a Rat Model of Temporal Lobe Epilepsy. Inflammation. 2016;39:1090-8 pubmed publisher
  213. Liu W, Cai H, Lin M, Zhu L, Gao L, Zhong R, et al. MicroRNA-107 prevents amyloid-beta induced blood-brain barrier disruption and endothelial cell dysfunction by targeting Endophilin-1. Exp Cell Res. 2016;343:248-257 pubmed publisher
  214. Navarra A, Musto A, Gargiulo A, Petrosino G, Pierantoni G, Fusco A, et al. Hmga2 is necessary for Otx2-dependent exit of embryonic stem cells from the pluripotent ground state. BMC Biol. 2016;14:24 pubmed publisher
  215. Cheng C, Jiao J, Qian Y, Guo X, Huang J, Dai M, et al. Curcumin induces G2/M arrest and triggers apoptosis via FoxO1 signaling in U87 human glioma cells. Mol Med Rep. 2016;13:3763-70 pubmed publisher
  216. Jia W, Jian Z, Li J, Luo L, Zhao L, Zhou Y, et al. Upregulated ATF6 contributes to chronic intermittent hypoxia-afforded protection against myocardial ischemia/reperfusion injury. Int J Mol Med. 2016;37:1199-208 pubmed publisher
  217. Wang Y, Lichter Konecki U, Anyane Yeboa K, Shaw J, Lu J, Ostlund C, et al. A mutation abolishing the ZMPSTE24 cleavage site in prelamin A causes a progeroid disorder. J Cell Sci. 2016;129:1975-80 pubmed publisher
  218. Ledsaak M, Bengtsen M, Molværsmyr A, Fuglerud B, Matre V, Eskeland R, et al. PIAS1 binds p300 and behaves as a coactivator or corepressor of the transcription factor c-Myb dependent on SUMO-status. Biochim Biophys Acta. 2016;1859:705-18 pubmed publisher
  219. Lee B, Kang H, Lee D, Ahn C, Jeung E. Claudin-1, -2, -4, and -5: comparison of expression levels and distribution in equine tissues. J Vet Sci. 2016;17:445-451 pubmed publisher
  220. 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
  221. Liang H, Wang F, Chu D, Zhang W, Liao Z, Fu Z, et al. miR-93 functions as an oncomiR for the downregulation of PDCD4 in gastric carcinoma. Sci Rep. 2016;6:23772 pubmed publisher
  222. Starokadomskyy P, Gemelli T, Rios J, Xing C, Wang R, Li H, et al. DNA polymerase-? regulates the activation of type I interferons through cytosolic RNA:DNA synthesis. Nat Immunol. 2016;17:495-504 pubmed publisher
  223. Del Debbio C, Mir Q, Parameswaran S, Mathews S, Xia X, Zheng L, et al. Notch Signaling Activates Stem Cell Properties of Müller Glia through Transcriptional Regulation and Skp2-mediated Degradation of p27Kip1. PLoS ONE. 2016;11:e0152025 pubmed publisher
  224. Kimball S, Gordon B, Moyer J, Dennis M, Jefferson L. Leucine induced dephosphorylation of Sestrin2 promotes mTORC1 activation. Cell Signal. 2016;28:896-906 pubmed publisher
  225. 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
  226. Douanne T, Gavard J, Bidère N. The paracaspase MALT1 cleaves the LUBAC subunit HOIL1 during antigen receptor signaling. J Cell Sci. 2016;129:1775-80 pubmed publisher
  227. Ortuno D, Carlisle H, Miller S. Does inactivation of USP14 enhance degradation of proteasomal substrates that are associated with neurodegenerative diseases?. F1000Res. 2016;5:137 pubmed publisher
  228. Yu L, Fan Y, Ye G, Li J, Feng X, Lin K, et al. Curcumin alleviates brain edema by lowering AQP4 expression levels in a rat model of hypoxia-hypercapnia-induced brain damage. Exp Ther Med. 2016;11:709-716 pubmed
  229. Salzman D, Nakamura K, Nallur S, Dookwah M, Metheetrairut C, Slack F, et al. miR-34 activity is modulated through 5'-end phosphorylation in response to DNA damage. Nat Commun. 2016;7:10954 pubmed publisher
  230. Hayashi K, Michiue H, Yamada H, Takata K, Nakayama H, Wei F, et al. Fluvoxamine, an anti-depressant, inhibits human glioblastoma invasion by disrupting actin polymerization. Sci Rep. 2016;6:23372 pubmed publisher
  231. Giannogonas P, Apostolou A, Manousopoulou A, Theocharis S, Macari S, Psarras S, et al. Identification of a novel interaction between corticotropin releasing hormone (Crh) and macroautophagy. Sci Rep. 2016;6:23342 pubmed publisher
  232. Lin R, Zhang J, Zhou L, Wang B. Altered function of monocytes/macrophages in patients with autoimmune hepatitis. Mol Med Rep. 2016;13:3874-80 pubmed publisher
  233. Liu Y, Chen C, Xu Z, Scuoppo C, Rillahan C, Gao J, et al. Deletions linked to TP53 loss drive cancer through p53-independent mechanisms. Nature. 2016;531:471-475 pubmed publisher
  234. Kang R, Zhao S, Liu L, Li F, Li E, Luo L, et al. Knockdown of PSCA induces EMT and decreases metastatic potentials of the human prostate cancer DU145 cells. Cancer Cell Int. 2016;16:20 pubmed publisher
  235. Ye L, Qiu L, Zhang H, Chen H, Jiang C, Hong H, et al. Cardiomyocytes in Young Infants With Congenital Heart Disease: a Three-Month Window of Proliferation. Sci Rep. 2016;6:23188 pubmed publisher
  236. German P, Bai S, Liu X, Sun M, Zhou L, Kalra S, et al. Phosphorylation-dependent cleavage regulates von Hippel Lindau proteostasis and function. Oncogene. 2016;35:4973-80 pubmed publisher
  237. Álvarez Santos M, Carbajal V, Tellez Jiménez O, Martínez Cordero E, Ruiz V, Hernández Pando R, et al. Airway Hyperresponsiveness in Asthma Model Occurs Independently of Secretion of β1 Integrins in Airway Wall and Focal Adhesions Proteins Down Regulation. J Cell Biochem. 2016;117:2385-96 pubmed publisher
  238. Barja Fernández S, Folgueira C, Castelao C, Al Massadi O, Bravo S, Garcia Caballero T, et al. FNDC5 is produced in the stomach and associated to body composition. Sci Rep. 2016;6:23067 pubmed publisher
  239. Martínez Pizarro A, Desviat L, Ugarte M, Perez B, Richard E. Endoplasmic Reticulum Stress and Autophagy in Homocystinuria Patients with Remethylation Defects. PLoS ONE. 2016;11:e0150357 pubmed publisher
  240. Chang L, Huang J, Wang K, Li J, Yan R, Zhu L, et al. Targeting Rad50 sensitizes human nasopharyngeal carcinoma cells to radiotherapy. BMC Cancer. 2016;16:190 pubmed publisher
  241. Gdynia G, Sauer S, Kopitz J, Fuchs D, Duglova K, Ruppert T, et al. The HMGB1 protein induces a metabolic type of tumour cell death by blocking aerobic respiration. Nat Commun. 2016;7:10764 pubmed publisher
  242. Chen Y, Wang Y, Yu Y, Xu L, Zhang Y, Yu S, et al. Transcription Factor HBP1 Enhances Radiosensitivity by Inducing Apoptosis in Prostate Cancer Cell Lines. Anal Cell Pathol (Amst). 2016;2016:7015659 pubmed publisher
  243. Makani V, Jang Y, Christopher K, Judy W, Eckstein J, Hensley K, et al. BBB-Permeable, Neuroprotective, and Neurotrophic Polysaccharide, Midi-GAGR. PLoS ONE. 2016;11:e0149715 pubmed publisher
  244. Li S, Wang F, Yang Y, Tiao M, Chuang J, Huang Y. Microarray Study of Pathway Analysis Expression Profile Associated with MicroRNA-29a with Regard to Murine Cholestatic Liver Injuries. Int J Mol Sci. 2016;17:324 pubmed publisher
  245. Jing H, Sun W, Fan J, Zhang Y, Yang J, Jia J, et al. Shikonin induces apoptosis of HaCaT cells via the mitochondrial, Erk and Akt pathways. Mol Med Rep. 2016;13:3009-16 pubmed publisher
  246. Ren B, Wei X, Zou G, He J, Xu G, Xu F, et al. Cancer testis antigen SPAG9 is a promising marker for the diagnosis and treatment of lung cancer. Oncol Rep. 2016;35:2599-605 pubmed publisher
  247. Cannavo A, Liccardo D, Eguchi A, Elliott K, Traynham C, Ibetti J, et al. Myocardial pathology induced by aldosterone is dependent on non-canonical activities of G protein-coupled receptor kinases. Nat Commun. 2016;7:10877 pubmed publisher
  248. Nguyen J, Bernert R, In K, Kang P, Sebastiao N, Hu C, et al. Gamma-interferon-inducible lysosomal thiol reductase is upregulated in human melanoma. Melanoma Res. 2016;26:125-37 pubmed publisher
  249. Chen L, Wang W, Cao L, Li Z, Wang X. Long Non-Coding RNA CCAT1 Acts as a Competing Endogenous RNA to Regulate Cell Growth and Differentiation in Acute Myeloid Leukemia. Mol Cells. 2016;39:330-6 pubmed publisher
  250. Hyrsová L, Smutny T, Carazo A, Moravcik S, Mandíková J, Trejtnar F, et al. The pregnane X receptor down-regulates organic cation transporter 1 (SLC22A1) in human hepatocytes by competing for ("squelching") SRC-1 coactivator. Br J Pharmacol. 2016;173:1703-15 pubmed publisher
  251. Haven B, Heilig E, Donham C, Settles M, Vasilevsky N, Owen K. Registered report: A chromatin-mediated reversible drug-tolerant state in cancer cell subpopulations. elife. 2016;5: pubmed publisher
  252. Ganesan A, Siekierska A, Beerten J, Brams M, Van Durme J, De Baets G, et al. Structural hot spots for the solubility of globular proteins. Nat Commun. 2016;7:10816 pubmed publisher
  253. Wild T, Larsen M, Narita T, Schou J, Nilsson J, Choudhary C. The Spindle Assembly Checkpoint Is Not Essential for Viability of Human Cells with Genetically Lowered APC/C Activity. Cell Rep. 2016;14:1829-40 pubmed publisher
  254. Zhao L, Marciano A, Rivet C, Imperiale M. Caveolin- and clathrin-independent entry of BKPyV into primary human proximal tubule epithelial cells. Virology. 2016;492:66-72 pubmed publisher
  255. Scheckel C, Drapeau E, Frias M, Park C, Fak J, Zucker Scharff I, et al. Regulatory consequences of neuronal ELAV-like protein binding to coding and non-coding RNAs in human brain. elife. 2016;5: pubmed publisher
  256. Gawron D, Ndah E, Gevaert K, Van Damme P. Positional proteomics reveals differences in N-terminal proteoform stability. Mol Syst Biol. 2016;12:858 pubmed publisher
  257. Zhang Q, Gao X, Li C, Feliciano C, Wang D, Zhou D, et al. Impaired Dendritic Development and Memory in Sorbs2 Knock-Out Mice. J Neurosci. 2016;36:2247-60 pubmed publisher
  258. Liu Z, Gan L, Chen Y, Luo D, Zhang Z, Cao W, et al. Mark4 promotes oxidative stress and inflammation via binding to PPARγ and activating NF-κB pathway in mice adipocytes. Sci Rep. 2016;6:21382 pubmed publisher
  259. Chuang T, Lee K, Lou Y, Lu C, Tarn W. A Point Mutation in the Exon Junction Complex Factor Y14 Disrupts Its Function in mRNA Cap Binding and Translation Enhancement. J Biol Chem. 2016;291:8565-74 pubmed publisher
  260. Echeverría P, Briand P, Picard D. A Remodeled Hsp90 Molecular Chaperone Ensemble with the Novel Cochaperone Aarsd1 Is Required for Muscle Differentiation. Mol Cell Biol. 2016;36:1310-21 pubmed publisher
  261. Yang Y, Poe J, Yang L, Fedoriw A, Desai S, Magnuson T, et al. Rad18 confers hematopoietic progenitor cell DNA damage tolerance independently of the Fanconi Anemia pathway in vivo. Nucleic Acids Res. 2016;44:4174-88 pubmed publisher
  262. Hwang S, Lee H, Kim H, Lee H, Shin C, Yun S, et al. Ubiquitin-specific protease 4 controls metastatic potential through β-catenin stabilization in brain metastatic lung adenocarcinoma. Sci Rep. 2016;6:21596 pubmed publisher
  263. Catanzaro G, Besharat Z, Garg N, Ronci M, Pieroni L, Miele E, et al. MicroRNAs-Proteomic Networks Characterizing Human Medulloblastoma-SLCs. Stem Cells Int. 2016;2016:2683042 pubmed publisher
  264. Wike C, Graves H, Hawkins R, Gibson M, Ferdinand M, Zhang T, et al. Aurora-A mediated histone H3 phosphorylation of threonine 118 controls condensin I and cohesin occupancy in mitosis. elife. 2016;5:e11402 pubmed publisher
  265. Awad P, Sanon N, Chattopadhyaya B, Carriço J, Ouardouz M, Gagné J, et al. Reducing premature KCC2 expression rescues seizure susceptibility and spine morphology in atypical febrile seizures. Neurobiol Dis. 2016;91:10-20 pubmed publisher
  266. Liu T, Fang Z, Wang G, Shi M, Wang X, Jiang K, et al. Anti-tumor activity of the TRPM8 inhibitor BCTC in prostate cancer DU145 cells. Oncol Lett. 2016;11:182-188 pubmed
  267. Khalid S, Drasche A, Thurner M, Hermann M, Ashraf M, Fresser F, et al. cJun N-terminal kinase (JNK) phosphorylation of serine 36 is critical for p66Shc activation. Sci Rep. 2016;6:20930 pubmed publisher
  268. Astorquiza P, Usorach J, Racagni G, Villasuso A. Diacylglycerol pyrophosphate binds and inhibits the glyceraldehyde-3-phosphate dehydrogenase in barley aleurone. Plant Physiol Biochem. 2016;101:88-95 pubmed publisher
  269. Gupta S, Itagaki R, Zheng X, Batkai S, Thum S, Ahmad F, et al. miR-21 promotes fibrosis in an acute cardiac allograft transplantation model. Cardiovasc Res. 2016;110:215-26 pubmed publisher
  270. Cekan P, Hasegawa K, Pan Y, Tubman E, Odde D, Chen J, et al. RCC1-dependent activation of Ran accelerates cell cycle and DNA repair, inhibiting DNA damage-induced cell senescence. Mol Biol Cell. 2016;27:1346-57 pubmed publisher
  271. Cherepanova N, Gilmore R. Mammalian cells lacking either the cotranslational or posttranslocational oligosaccharyltransferase complex display substrate-dependent defects in asparagine linked glycosylation. Sci Rep. 2016;6:20946 pubmed publisher
  272. Flønes I, Sztromwasser P, Haugarvoll K, Dölle C, Lykouri M, Schwarzlmüller T, et al. Novel SLC19A3 Promoter Deletion and Allelic Silencing in Biotin-Thiamine-Responsive Basal Ganglia Encephalopathy. PLoS ONE. 2016;11:e0149055 pubmed publisher
  273. Tung H, Wei S, Lo H, Chao Y. Baculovirus IE2 Stimulates the Expression of Heat Shock Proteins in Insect and Mammalian Cells to Facilitate Its Proper Functioning. PLoS ONE. 2016;11:e0148578 pubmed publisher
  274. Li Y, Banerjee S, Wang Y, Goldstein S, Dong B, Gaughan C, et al. Activation of RNase L is dependent on OAS3 expression during infection with diverse human viruses. Proc Natl Acad Sci U S A. 2016;113:2241-6 pubmed publisher
  275. Weilinger N, Lohman A, Rakai B, Ma E, Bialecki J, Maslieieva V, et al. Metabotropic NMDA receptor signaling couples Src family kinases to pannexin-1 during excitotoxicity. Nat Neurosci. 2016;19:432-42 pubmed publisher
  276. Wang M, Dong Q, Wang H, He Y, Chen Y, Zhang H, et al. Oblongifolin M, an active compound isolated from a Chinese medical herb Garcinia oblongifolia, potently inhibits enterovirus 71 reproduction through downregulation of ERp57. Oncotarget. 2016;7:8797-808 pubmed publisher
  277. Zhang Y, Zou C, Yang S, Fu J. P120 catenin attenuates the angiotensin II-induced apoptosis of human umbilical vein endothelial cells by suppressing the mitochondrial pathway. Int J Mol Med. 2016;37:623-30 pubmed publisher
  278. Furman J, Sompol P, Kraner S, Pleiss M, Putman E, Dunkerson J, et al. Blockade of Astrocytic Calcineurin/NFAT Signaling Helps to Normalize Hippocampal Synaptic Function and Plasticity in a Rat Model of Traumatic Brain Injury. J Neurosci. 2016;36:1502-15 pubmed publisher
  279. Lima W, De Hoyos C, Liang X, Crooke S. RNA cleavage products generated by antisense oligonucleotides and siRNAs are processed by the RNA surveillance machinery. Nucleic Acids Res. 2016;44:3351-63 pubmed publisher
  280. Johnson J, Miller D, Jiang R, Liu Y, Shi Z, Tarwater L, et al. Protease-activated Receptor-2 (PAR-2)-mediated Nf-κB Activation Suppresses Inflammation-associated Tumor Suppressor MicroRNAs in Oral Squamous Cell Carcinoma. J Biol Chem. 2016;291:6936-45 pubmed publisher
  281. Schoen M, Reichel J, Demestre M, Putz S, Deshpande D, Proepper C, et al. Super-Resolution Microscopy Reveals Presynaptic Localization of the ALS/FTD Related Protein FUS in Hippocampal Neurons. Front Cell Neurosci. 2015;9:496 pubmed publisher
  282. Buzhdygan T, Lisinicchia J, Patel V, Johnson K, Neugebauer V, Paessler S, et al. Neuropsychological, Neurovirological and Neuroimmune Aspects of Abnormal GABAergic Transmission in HIV Infection. J Neuroimmune Pharmacol. 2016;11:279-93 pubmed publisher
  283. Podmirseg S, Jäkel H, Ranches G, Kullmann M, Sohm B, Villunger A, et al. Caspases uncouple p27(Kip1) from cell cycle regulated degradation and abolish its ability to stimulate cell migration and invasion. Oncogene. 2016;35:4580-90 pubmed publisher
  284. Bondy Chorney E, Crawford Parks T, Ravel Chapuis A, Klinck R, Rocheleau L, Pelchat M, et al. Staufen1 Regulates Multiple Alternative Splicing Events either Positively or Negatively in DM1 Indicating Its Role as a Disease Modifier. PLoS Genet. 2016;12:e1005827 pubmed publisher
  285. Sun H, Chen J, Qian W, Kang J, Wang J, Jiang L, et al. Integrated long non-coding RNA analyses identify novel regulators of epithelial-mesenchymal transition in the mouse model of pulmonary fibrosis. J Cell Mol Med. 2016;20:1234-46 pubmed publisher
  286. Díaz Barreiro A, Bernal Quirós M, Georg I, Marañón C, Alarcón Riquelme M, Castillejo López C. The SLE variant Ala71Thr of BLK severely decreases protein abundance and binding to BANK1 through impairment of the SH3 domain function. Genes Immun. 2016;17:128-38 pubmed publisher
  287. Long C, Guo W, Zhou H, Wang J, Wang H, Sun X. Triptolide decreases expression of latency-associated nuclear antigen 1 and reduces viral titers in Kaposi's sarcoma-associated and herpesvirus-related primary effusion lymphoma cells. Int J Oncol. 2016;48:1519-30 pubmed publisher
  288. Evans M, Sauer S, Nath S, Robinson T, Morse M, Devi G. X-linked inhibitor of apoptosis protein mediates tumor cell resistance to antibody-dependent cellular cytotoxicity. Cell Death Dis. 2016;7:e2073 pubmed publisher
  289. Huang H, Wang S, Gui J, Shen H. A study to identify and characterize the stem/progenitor cell in rabbit meniscus. Cytotechnology. 2016;68:2083-103 pubmed publisher
  290. Panda A, Abdelmohsen K, Martindale J, Di Germanio C, Yang X, Grammatikakis I, et al. Novel RNA-binding activity of MYF5 enhances Ccnd1/Cyclin D1 mRNA translation during myogenesis. Nucleic Acids Res. 2016;44:2393-408 pubmed publisher
  291. Pillay S, Meyer N, Puschnik A, Davulcu O, Diep J, Ishikawa Y, et al. An essential receptor for adeno-associated virus infection. Nature. 2016;530:108-12 pubmed publisher
  292. Button R, Vincent J, Strang C, Luo S. Dual PI-3 kinase/mTOR inhibition impairs autophagy flux and induces cell death independent of apoptosis and necroptosis. Oncotarget. 2016;7:5157-75 pubmed publisher
  293. Grego Bessa J, Bloomekatz J, Castel P, Omelchenko T, Baselga J, Anderson K. The tumor suppressor PTEN and the PDK1 kinase regulate formation of the columnar neural epithelium. elife. 2016;5:e12034 pubmed publisher
  294. Iorga A, Li J, Sharma S, Umar S, Bopassa J, Nadadur R, et al. Rescue of Pressure Overload-Induced Heart Failure by Estrogen Therapy. J Am Heart Assoc. 2016;5: pubmed publisher
  295. Martone J, Briganti F, Legnini I, Morlando M, Picillo E, Sthandier O, et al. The lack of the Celf2a splicing factor converts a Duchenne genotype into a Becker phenotype. Nat Commun. 2016;7:10488 pubmed publisher
  296. Chavoshi S, Egorova O, Lacdao I, Farhadi S, Sheng Y, Saridakis V. Identification of Kaposi Sarcoma Herpesvirus (KSHV) vIRF1 Protein as a Novel Interaction Partner of Human Deubiquitinase USP7. J Biol Chem. 2016;291:6281-91 pubmed publisher
  297. Hares K, Redondo J, Kemp K, Rice C, Scolding N, Wilkins A. Axonal motor protein KIF5A and associated cargo deficits in multiple sclerosis lesional and normal-appearing white matter. Neuropathol Appl Neurobiol. 2017;43:227-241 pubmed publisher
  298. Chen X, Yang Q, Zheng T, Bian J, Sun X, Shi Y, et al. Neurotrophic Effect of Adipose Tissue-Derived Stem Cells on Erectile Function Recovery by Pigment Epithelium-Derived Factor Secretion in a Rat Model of Cavernous Nerve Injury. Stem Cells Int. 2016;2016:5161248 pubmed publisher
  299. Korwitz A, Merkwirth C, Richter Dennerlein R, Tröder S, Sprenger H, Quirós P, et al. Loss of OMA1 delays neurodegeneration by preventing stress-induced OPA1 processing in mitochondria. J Cell Biol. 2016;212:157-66 pubmed publisher
  300. Owen S, Sanders A, Mason M, Jiang W. Importance of osteoprotegrin and receptor activator of nuclear factor κB in breast cancer response to hepatocyte growth factor and the bone microenvironment in vitro. Int J Oncol. 2016;48:919-28 pubmed publisher
  301. Roßner F, Gieseler C, Morkel M, Royer H, Rivera M, Bläker H, et al. Uncoupling of EGFR-RAS signaling and nuclear localization of YBX1 in colorectal cancer. Oncogenesis. 2016;5:e187 pubmed publisher
  302. Dave J, Abbey C, Duran C, Seo H, Johnson G, Bayless K. Hic-5 mediates the initiation of endothelial sprouting by regulating a key surface metalloproteinase. J Cell Sci. 2016;129:743-56 pubmed publisher
  303. Kümper S, Mardakheh F, McCarthy A, Yeo M, Stamp G, Paul A, et al. Rho-associated kinase (ROCK) function is essential for cell cycle progression, senescence and tumorigenesis. elife. 2016;5:e12994 pubmed publisher
  304. Berge T, Leikfoss I, Brorson I, Bos S, Page C, Gustavsen M, et al. The multiple sclerosis susceptibility genes TAGAP and IL2RA are regulated by vitamin D in CD4+ T cells. Genes Immun. 2016;17:118-27 pubmed publisher
  305. Puvirajesinghe T, Bertucci F, Jain A, Scerbo P, Belotti E, Audebert S, et al. Identification of p62/SQSTM1 as a component of non-canonical Wnt VANGL2-JNK signalling in breast cancer. Nat Commun. 2016;7:10318 pubmed publisher
  306. Böhringer M, Pohlers S, Schulze S, Albrecht Eckardt D, Piegsa J, Weber M, et al. Candida albicans infection leads to barrier breakdown and a MAPK/NF-κB mediated stress response in the intestinal epithelial cell line C2BBe1. Cell Microbiol. 2016;18:889-904 pubmed publisher
  307. Weilner S, Keider V, Winter M, Harreither E, Salzer B, Weiss F, et al. Vesicular Galectin-3 levels decrease with donor age and contribute to the reduced osteo-inductive potential of human plasma derived extracellular vesicles. Aging (Albany NY). 2016;8:16-33 pubmed
  308. Wyckelsma V, McKenna M, Levinger I, Petersen A, Lamboley C, Murphy R. Cell specific differences in the protein abundances of GAPDH and Na(+),K(+)-ATPase in skeletal muscle from aged individuals. Exp Gerontol. 2016;75:8-15 pubmed publisher
  309. Chen Y, Statt S, Wu R, Chang H, Liao J, Wang C, et al. High mobility group box 1-induced epithelial mesenchymal transition in human airway epithelial cells. Sci Rep. 2016;6:18815 pubmed publisher
  310. Leen E, Sorgeloos F, Correia S, Chaudhry Y, Cannac F, Pastore C, et al. A Conserved Interaction between a C-Terminal Motif in Norovirus VPg and the HEAT-1 Domain of eIF4G Is Essential for Translation Initiation. PLoS Pathog. 2016;12:e1005379 pubmed publisher
  311. da Silva P, Do Amaral V, Gabrielli V, Montt Guevara M, Mannella P, Baracat E, et al. Prolactin Promotes Breast Cancer Cell Migration through Actin Cytoskeleton Remodeling. Front Endocrinol (Lausanne). 2015;6:186 pubmed publisher
  312. 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
  313. Singh A, Kan C, Dong B, Liu J. SREBP2 Activation Induces Hepatic Long-chain Acyl-CoA Synthetase 1 (ACSL1) Expression in Vivo and in Vitro through a Sterol Regulatory Element (SRE) Motif of the ACSL1 C-promoter. J Biol Chem. 2016;291:5373-84 pubmed publisher
  314. Baude A, Aaes T, Zhai B, Al Nakouzi N, Oo H, Daugaard M, et al. Hepatoma-derived growth factor-related protein 2 promotes DNA repair by homologous recombination. Nucleic Acids Res. 2016;44:2214-26 pubmed publisher
  315. Yang X, Liang L, Zong C, Lai F, Zhu P, Liu Y, et al. Kupffer cells-dependent inflammation in the injured liver increases recruitment of mesenchymal stem cells in aging mice. Oncotarget. 2016;7:1084-95 pubmed publisher
  316. Yuan D, Chi X, Jin Y, Li X, Ge M, Gao W, et al. Intestinal injury following liver transplantation was mediated by TLR4/NF-κB activation-induced cell apoptosis. Mol Med Rep. 2016;13:1525-32 pubmed publisher
  317. Blachère N, Parveen S, Fak J, Frank M, Orange D. Inflammatory but not apoptotic death of granulocytes citrullinates fibrinogen. Arthritis Res Ther. 2015;17:369 pubmed publisher
  318. Liu T, You H, Weng S, Wei Y, Eng H, Huang W. Recurrent Amplification at 13q34 Targets at CUL4A, IRS2, and TFDP1 As an Independent Adverse Prognosticator in Intrahepatic Cholangiocarcinoma. PLoS ONE. 2015;10:e0145388 pubmed publisher
  319. Wu J, Chen Y, Kuo C, Wenshin Yu H, Chen Y, Chiou A, et al. Focal adhesion kinase-dependent focal adhesion recruitment of SH2 domains directs SRC into focal adhesions to regulate cell adhesion and migration. Sci Rep. 2015;5:18476 pubmed publisher
  320. Smith K, Zhou B, Avdulov S, Benyumov A, Peterson M, Liu Y, et al. Transforming Growth Factor-β1 Induced Epithelial Mesenchymal Transition is blocked by a chemical antagonist of translation factor eIF4E. Sci Rep. 2015;5:18233 pubmed publisher
  321. Yan L, Liu Y, Xiang J, Wu Q, Xu L, Luo X, et al. PIK3R1 targeting by miR-21 suppresses tumor cell migration and invasion by reducing PI3K/AKT signaling and reversing EMT, and predicts clinical outcome of breast cancer. Int J Oncol. 2016;48:471-84 pubmed publisher
  322. Pei S, Yang X, Wang H, Zhang H, Zhou B, Zhang D, et al. Plantamajoside, a potential anti-tumor herbal medicine inhibits breast cancer growth and pulmonary metastasis by decreasing the activity of matrix metalloproteinase-9 and -2. BMC Cancer. 2015;15:965 pubmed publisher
  323. 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
  324. Song G, Shi L, Guo Y, Yu L, Wang L, Zhang X, et al. A novel PAD4/SOX4/PU.1 signaling pathway is involved in the committed differentiation of acute promyelocytic leukemia cells into granulocytic cells. Oncotarget. 2016;7:3144-57 pubmed publisher
  325. Drilon A, Somwar R, Wagner J, Vellore N, Eide C, Zabriskie M, et al. A Novel Crizotinib-Resistant Solvent-Front Mutation Responsive to Cabozantinib Therapy in a Patient with ROS1-Rearranged Lung Cancer. Clin Cancer Res. 2016;22:2351-8 pubmed publisher
  326. Yuniati L, van der Meer L, Tijchon E, van Ingen Schenau D, van Emst L, Levers M, et al. Tumor suppressor BTG1 promotes PRMT1-mediated ATF4 function in response to cellular stress. Oncotarget. 2016;7:3128-43 pubmed publisher
  327. Dupont T, Yang S, Patel J, Hatzi K, Malik A, Tam W, et al. Selective targeting of BCL6 induces oncogene addiction switching to BCL2 in B-cell lymphoma. Oncotarget. 2016;7:3520-32 pubmed publisher
  328. Marazita M, Dugour A, Marquioni Ramella M, Figueroa J, Suburo A. Oxidative stress-induced premature senescence dysregulates VEGF and CFH expression in retinal pigment epithelial cells: Implications for Age-related Macular Degeneration. Redox Biol. 2016;7:78-87 pubmed publisher
  329. Adam M, Matt S, Christian S, Hess Stumpp H, Haegebarth A, Hofmann T, et al. SIAH ubiquitin ligases regulate breast cancer cell migration and invasion independent of the oxygen status. Cell Cycle. 2015;14:3734-47 pubmed publisher
  330. Kim J, Lee K, Rhee K. PLK1 regulation of PCNT cleavage ensures fidelity of centriole separation during mitotic exit. Nat Commun. 2015;6:10076 pubmed publisher
  331. Brai E, Marathe S, Astori S, Fredj N, Perry E, Lamy C, et al. Notch1 Regulates Hippocampal Plasticity Through Interaction with the Reelin Pathway, Glutamatergic Transmission and CREB Signaling. Front Cell Neurosci. 2015;9:447 pubmed publisher
  332. Garcia Manteiga J, Bonfiglio S, Folladori L, Malosio M, Lazarevic D, Stupka E, et al. REST-Governed Gene Expression Profiling in a Neuronal Cell Model Reveals Novel Direct and Indirect Processes of Repression and Up-Regulation. Front Cell Neurosci. 2015;9:438 pubmed publisher
  333. Yang B, Zhang M, Gao J, Li J, Fan L, Xiang G, et al. Small molecule RL71 targets SERCA2 at a novel site in the treatment of human colorectal cancer. Oncotarget. 2015;6:37613-25 pubmed publisher
  334. Li M, Huang R, Jiang X, Chen Y, Zhang Z, Zhang X, et al. CRISPR/Cas9 Promotes Functional Study of Testis Specific X-Linked Gene In Vivo. PLoS ONE. 2015;10:e0143148 pubmed publisher
  335. Safavi S, Järnum S, Vannas C, Udhane S, Jonasson E, Tomić T, et al. HSP90 inhibition blocks ERBB3 and RET phosphorylation in myxoid/round cell liposarcoma and causes massive cell death in vitro and in vivo. Oncotarget. 2016;7:433-45 pubmed publisher
  336. Gao X, Krokowski D, Guan B, Bederman I, Majumder M, Parisien M, et al. Quantitative H2S-mediated protein sulfhydration reveals metabolic reprogramming during the integrated stress response. elife. 2015;4:e10067 pubmed publisher
  337. Nouws J, Goswami A, Bestwick M, McCann B, Surovtseva Y, Shadel G. Mitochondrial Ribosomal Protein L12 Is Required for POLRMT Stability and Exists as Two Forms Generated by Alternative Proteolysis during Import. J Biol Chem. 2016;291:989-97 pubmed publisher
  338. Wang X, Liu Y, Chen H, Mei L, He C, Jiang L, et al. LEF-1 Regulates Tyrosinase Gene Transcription In Vitro. PLoS ONE. 2015;10:e0143142 pubmed publisher
  339. Zhang L, Tran N, Su H, Wang R, Lu Y, Tang H, et al. Cross-talk between PRMT1-mediated methylation and ubiquitylation on RBM15 controls RNA splicing. elife. 2015;4: pubmed publisher
  340. Huang Y, Chen Y, Lai Y, Cheng C, Lin T, Su Y, et al. Resveratrol alleviates the cytotoxicity induced by the radiocontrast agent, ioxitalamate, by reducing the production of reactive oxygen species in HK-2 human renal proximal tubule epithelial cells in vitro. Int J Mol Med. 2016;37:83-91 pubmed publisher
  341. Chandrani P, Upadhyay P, Iyer P, Tanna M, Shetty M, Raghuram G, et al. Integrated genomics approach to identify biologically relevant alterations in fewer samples. BMC Genomics. 2015;16:936 pubmed publisher
  342. Xi L, Schmidt J, Zaug A, Ascarrunz D, Cech T. A novel two-step genome editing strategy with CRISPR-Cas9 provides new insights into telomerase action and TERT gene expression. Genome Biol. 2015;16:231 pubmed publisher
  343. Albrecht I, Wick C, Hallgren Ã, Tjärnlund A, Nagaraju K, Andrade F, et al. Development of autoantibodies against muscle-specific FHL1 in severe inflammatory myopathies. J Clin Invest. 2015;125:4612-24 pubmed publisher
  344. Gatticchi L, Bellezza I, Del Sordo R, Peirce M, Sidoni A, Roberti R, et al. The Tm7sf2 Gene Deficiency Protects Mice against Endotoxin-Induced Acute Kidney Injury. PLoS ONE. 2015;10:e0141885 pubmed publisher
  345. Hu J, Man W, Shen M, Zhang M, Lin J, Wang T, et al. Luteolin alleviates post-infarction cardiac dysfunction by up-regulating autophagy through Mst1 inhibition. J Cell Mol Med. 2016;20:147-56 pubmed publisher
  346. Ding C, Wu Z, Huang L, Wang Y, Xue J, Chen S, et al. Mitofilin and CHCHD6 physically interact with Sam50 to sustain cristae structure. Sci Rep. 2015;5:16064 pubmed publisher
  347. Tibullo D, Di Rosa M, Giallongo C, La Cava P, Parrinello N, Romano A, et al. Bortezomib modulates CHIT1 and YKL40 in monocyte-derived osteoclast and in myeloma cells. Front Pharmacol. 2015;6:226 pubmed publisher
  348. Xu D, Shan B, Lee B, Zhu K, Zhang T, Sun H, et al. Phosphorylation and activation of ubiquitin-specific protease-14 by Akt regulates the ubiquitin-proteasome system. elife. 2015;4:e10510 pubmed publisher
  349. Valcourt U, Carthy J, Okita Y, Alcaraz L, Kato M, Thuault S, et al. Analysis of Epithelial-Mesenchymal Transition Induced by Transforming Growth Factor β. Methods Mol Biol. 2016;1344:147-81 pubmed publisher
  350. Leal L, Bueno A, Gomes D, Abduch R, de Castro M, Antonini S. Inhibition of the Tcf/beta-catenin complex increases apoptosis and impairs adrenocortical tumor cell proliferation and adrenal steroidogenesis. Oncotarget. 2015;6:43016-32 pubmed publisher
  351. d Avenia M, Citro R, De Marco M, Veronese A, Rosati A, Visone R, et al. A novel miR-371a-5p-mediated pathway, leading to BAG3 upregulation in cardiomyocytes in response to epinephrine, is lost in Takotsubo cardiomyopathy. Cell Death Dis. 2015;6:e1948 pubmed publisher
  352. Kurozumi A, Goto Y, Matsushita R, Fukumoto I, Kato M, Nishikawa R, et al. Tumor-suppressive microRNA-223 inhibits cancer cell migration and invasion by targeting ITGA3/ITGB1 signaling in prostate cancer. Cancer Sci. 2016;107:84-94 pubmed publisher
  353. Oh Y, Park H, Shin J, Lee J, Park H, Kho D, et al. Ndrg1 is a T-cell clonal anergy factor negatively regulated by CD28 costimulation and interleukin-2. Nat Commun. 2015;6:8698 pubmed publisher
  354. Zhou X, Wei J, Chen F, Xiao X, Huang T, He Q, et al. Epigenetic downregulation of the ISG15-conjugating enzyme UbcH8 impairs lipolysis and correlates with poor prognosis in nasopharyngeal carcinoma. Oncotarget. 2015;6:41077-91 pubmed publisher
  355. Quigley H, Pitha I, Welsbie D, Nguyen C, Steinhart M, Nguyen T, et al. Losartan Treatment Protects Retinal Ganglion Cells and Alters Scleral Remodeling in Experimental Glaucoma. PLoS ONE. 2015;10:e0141137 pubmed publisher
  356. Becs G, Zarjou A, Agarwal A, Kovács K, Becs Ã, Nyitrai M, et al. Pharmacological induction of ferritin prevents osteoblastic transformation of smooth muscle cells. J Cell Mol Med. 2016;20:217-30 pubmed publisher
  357. Nichols C, Shepherd D, Knuckles T, Thapa D, Stricker J, Stapleton P, et al. Cardiac and mitochondrial dysfunction following acute pulmonary exposure to mountaintop removal mining particulate matter. Am J Physiol Heart Circ Physiol. 2015;309:H2017-30 pubmed publisher
  358. Slezak Prochazka I, Kluiver J, de Jong D, Smigielska Czepiel K, Kortman G, Winkle M, et al. Inhibition of the miR-155 target NIAM phenocopies the growth promoting effect of miR-155 in B-cell lymphoma. Oncotarget. 2016;7:2391-400 pubmed publisher
  359. Bauer J, Ozden O, Akagi N, Carroll T, Principe D, Staudacher J, et al. Activin and TGFβ use diverging mitogenic signaling in advanced colon cancer. Mol Cancer. 2015;14:182 pubmed publisher
  360. Pasini L, Re A, Tebaldi T, Ricci G, Boi S, Adami V, et al. TrkA is amplified in malignant melanoma patients and induces an anti-proliferative response in cell lines. BMC Cancer. 2015;15:777 pubmed publisher
  361. Graindorge D, Martineau S, Machon C, Arnoux P, Guitton J, Francesconi S, et al. Singlet Oxygen-Mediated Oxidation during UVA Radiation Alters the Dynamic of Genomic DNA Replication. PLoS ONE. 2015;10:e0140645 pubmed publisher
  362. Evans C, Rosser R, Waby J, Noirel J, Lai D, Wright P, et al. Reduced keratin expression in colorectal neoplasia and associated fields is reversible by diet and resection. BMJ Open Gastroenterol. 2015;2:e000022 pubmed publisher
  363. Nilsson E, Laursen K, Whitchurch J, McWilliam A, Ødum N, Persson J, et al. MiR137 is an androgen regulated repressor of an extended network of transcriptional coregulators. Oncotarget. 2015;6:35710-25 pubmed publisher
  364. 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
  365. Chen D, Tao X, Wang Y, Tian F, Wei Y, Chen G, et al. Curcumin accelerates reendothelialization and ameliorates intimal hyperplasia in balloon-injured rat carotid artery via the upregulation of endothelial cell autophagy. Int J Mol Med. 2015;36:1563-71 pubmed publisher
  366. Hyenne V, Apaydin A, Rodriguez D, Spiegelhalter C, Hoff Yoessle S, Diem M, et al. RAL-1 controls multivesicular body biogenesis and exosome secretion. J Cell Biol. 2015;211:27-37 pubmed publisher
  367. Fidaleo M, Svetoni F, Volpe E, Miñana B, Caporossi D, Paronetto M. Genotoxic stress inhibits Ewing sarcoma cell growth by modulating alternative pre-mRNA processing of the RNA helicase DHX9. Oncotarget. 2015;6:31740-57 pubmed publisher
  368. Akhade V, Dighe S, Kataruka S, Rao M. Mechanism of Wnt signaling induced down regulation of mrhl long non-coding RNA in mouse spermatogonial cells. Nucleic Acids Res. 2016;44:387-401 pubmed publisher
  369. Renaud E, Barascu A, Rosselli F. Impaired TIP60-mediated H4K16 acetylation accounts for the aberrant chromatin accumulation of 53BP1 and RAP80 in Fanconi anemia pathway-deficient cells. Nucleic Acids Res. 2016;44:648-56 pubmed publisher
  370. Hurley P, Sundi D, Shinder B, Simons B, Hughes R, Miller R, et al. Germline Variants in Asporin Vary by Race, Modulate the Tumor Microenvironment, and Are Differentially Associated with Metastatic Prostate Cancer. Clin Cancer Res. 2016;22:448-58 pubmed publisher
  371. 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
  372. Adesina A, Veo B, Courteau G, Mehta V, Wu X, Pang K, et al. FOXG1 expression shows correlation with neuronal differentiation in cerebellar development, aggressive phenotype in medulloblastomas, and survival in a xenograft model of medulloblastoma. Hum Pathol. 2015;46:1859-71 pubmed publisher
  373. Xiong W, Zhang L, Yu L, Xie W, Man Y, Xiong Y, et al. Estradiol promotes cells invasion by activating β-catenin signaling pathway in endometriosis. Reproduction. 2015;150:507-16 pubmed publisher
  374. Kosinsky R, Wegwitz F, Hellbach N, Dobbelstein M, Mansouri A, Vogel T, et al. Usp22 deficiency impairs intestinal epithelial lineage specification in vivo. Oncotarget. 2015;6:37906-18 pubmed publisher
  375. Krisenko M, Higgins R, Ghosh S, Zhou Q, Trybula J, Wang W, et al. Syk Is Recruited to Stress Granules and Promotes Their Clearance through Autophagy. J Biol Chem. 2015;290:27803-15 pubmed publisher
  376. Meschin P, Demion M, Cazorla O, Finan A, Thireau J, Richard S, et al. p11 modulates calcium handling through 5-HTâ‚„R pathway in rat ventricular cardiomyocytes. Cell Calcium. 2015;58:549-57 pubmed publisher
  377. Görtz D, Braun G, Maruta Y, Djudjaj S, van Roeyen C, Martin I, et al. Anti-interleukin-6 therapy through application of a monogenic protein inhibitor via gene delivery. Sci Rep. 2015;5:14685 pubmed publisher
  378. Ha J, Gomathinayagam R, Yan M, Jayaraman M, Ramesh R, Dhanasekaran D. Determinant role for the gep oncogenes, Gα12/13, in ovarian cancer cell proliferation and xenograft tumor growth. Genes Cancer. 2015;6:356-364 pubmed
  379. Seo M, Jang W, Rhee K. Integrity of the Pericentriolar Material Is Essential for Maintaining Centriole Association during M Phase. PLoS ONE. 2015;10:e0138905 pubmed publisher
  380. Kimball S, Ravi S, Gordon B, Dennis M, Jefferson L. Amino Acid-Induced Activation of mTORC1 in Rat Liver Is Attenuated by Short-Term Consumption of a High-Fat Diet. J Nutr. 2015;145:2496-502 pubmed publisher
  381. Barroso M, Tucker H, Drake L, Nichol K, Drake J. Antigen-B Cell Receptor Complexes Associate with Intracellular major histocompatibility complex (MHC) Class II Molecules. J Biol Chem. 2015;290:27101-12 pubmed publisher
  382. Granato M, Santarelli R, Filardi M, Gonnella R, Farina A, Torrisi M, et al. The activation of KSHV lytic cycle blocks autophagy in PEL cells. Autophagy. 2015;11:1978-1986 pubmed publisher
  383. Hilton B, Li Z, Musich P, Wang H, Cartwright B, SERRANO M, et al. ATR Plays a Direct Antiapoptotic Role at Mitochondria, which Is Regulated by Prolyl Isomerase Pin1. Mol Cell. 2015;60:35-46 pubmed publisher
  384. Davare M, Vellore N, Wagner J, Eide C, Goodman J, Drilon A, et al. Structural insight into selectivity and resistance profiles of ROS1 tyrosine kinase inhibitors. Proc Natl Acad Sci U S A. 2015;112:E5381-90 pubmed publisher
  385. Barros B, Maza P, Alcantara C, Suzuki E. Paracoccidioides brasiliensis induces recruitment of α3 and α5 integrins into epithelial cell membrane rafts, leading to cytokine secretion. Microbes Infect. 2016;18:68-77 pubmed publisher
  386. Du Y, Ge M, Xue W, Yang Q, Wang S, Xu Y, et al. Chronic Lead Exposure and Mixed Factors of Gender×Age×Brain Regions Interactions on Dendrite Growth, Spine Maturity and NDR Kinase. PLoS ONE. 2015;10:e0138112 pubmed publisher
  387. Wei Q, Chen Z, Wang L, Zhang T, Duan L, Behrens C, et al. LZTFL1 suppresses lung tumorigenesis by maintaining differentiation of lung epithelial cells. Oncogene. 2016;35:2655-63 pubmed publisher
  388. Suzuki M, Watanabe M, Nakamaru Y, Takagi D, Takahashi H, Fukuda S, et al. TRIM39 negatively regulates the NFκB-mediated signaling pathway through stabilization of Cactin. Cell Mol Life Sci. 2016;73:1085-101 pubmed publisher
  389. Zhao Y, Zhao L, Wang P, Miao Y, Liu Y, Wang Z, et al. Overexpression of miR-18a negatively regulates myocyte enhancer factor 2D to increase the permeability of the blood-tumor barrier via Krüppel-like factor 4-mediated downregulation of zonula occluden-1, claudin-5, and occludin. J Neurosci Res. 2015;93:1891-902 pubmed publisher
  390. 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
  391. Renaud J, Dumont F, Khelfaoui M, Foisset S, Letourneur F, Bienvenu T, et al. Identification of intellectual disability genes showing circadian clock-dependent expression in the mouse hippocampus. Neuroscience. 2015;308:11-50 pubmed publisher
  392. Granato M, Gilardini Montani M, Filardi M, Faggioni A, Cirone M. Capsaicin triggers immunogenic PEL cell death, stimulates DCs and reverts PEL-induced immune suppression. Oncotarget. 2015;6:29543-54 pubmed publisher
  393. Kennedy A, Vallurupalli M, Chen L, Crompton B, Cowley G, Vazquez F, et al. Functional, chemical genomic, and super-enhancer screening identify sensitivity to cyclin D1/CDK4 pathway inhibition in Ewing sarcoma. Oncotarget. 2015;6:30178-93 pubmed publisher
  394. Clark D, Tripathi K, Dorsman J, Palle K. FANCJ protein is important for the stability of FANCD2/FANCI proteins and protects them from proteasome and caspase-3 dependent degradation. Oncotarget. 2015;6:28816-32 pubmed publisher
  395. Henstridge C, Jackson R, Kim J, Herrmann A, Wright A, Harris S, et al. Post-mortem brain analyses of the Lothian Birth Cohort 1936: extending lifetime cognitive and brain phenotyping to the level of the synapse. Acta Neuropathol Commun. 2015;3:53 pubmed publisher
  396. Mori S, Kodaira M, Ito A, Okazaki M, Kawaguchi N, Hamada Y, et al. Enhanced Expression of Integrin αvβ3 Induced by TGF-β Is Required for the Enhancing Effect of Fibroblast Growth Factor 1 (FGF1) in TGF-β-Induced Epithelial-Mesenchymal Transition (EMT) in Mammary Epithelial Cells. PLoS ONE. 2015;10:e0137486 pubmed publisher
  397. Yao X, Tang Z, Fu X, Yin J, Liang Y, Li C, et al. The Mediator subunit MED23 couples H2B mono-ubiquitination to transcriptional control and cell fate determination. EMBO J. 2015;34:2885-902 pubmed publisher
  398. Paret C, Simon P, Vormbrock K, Bender C, Kölsch A, Breitkreuz A, et al. CXorf61 is a target for T cell based immunotherapy of triple-negative breast cancer. Oncotarget. 2015;6:25356-67 pubmed publisher
  399. Xia H, Najafov A, Geng J, Galan Acosta L, Han X, Guo Y, et al. Degradation of HK2 by chaperone-mediated autophagy promotes metabolic catastrophe and cell death. J Cell Biol. 2015;210:705-16 pubmed publisher
  400. Rolyan H, Tyurina Y, Hernandez M, Amoscato A, Sparvero L, Nmezi B, et al. Defects of Lipid Synthesis Are Linked to the Age-Dependent Demyelination Caused by Lamin B1 Overexpression. J Neurosci. 2015;35:12002-17 pubmed publisher
  401. Kurgonaite K, Gandhi H, Kurth T, Pautot S, Schwille P, Weidemann T, et al. Essential role of endocytosis for interleukin-4-receptor-mediated JAK/STAT signalling. J Cell Sci. 2015;128:3781-95 pubmed publisher
  402. Zha L, Li F, Wu R, Artinian L, Rehder V, Yu L, et al. The Histone Demethylase UTX Promotes Brown Adipocyte Thermogenic Program Via Coordinated Regulation of H3K27 Demethylation and Acetylation. J Biol Chem. 2015;290:25151-63 pubmed publisher
  403. Goh V, Tan J, Tan B, Seow C, Ong W, Lim Y, et al. Postnatal Deletion of Fat Storage-inducing Transmembrane Protein 2 (FIT2/FITM2) Causes Lethal Enteropathy. J Biol Chem. 2015;290:25686-99 pubmed publisher
  404. Korb E, Herre M, Zucker Scharff I, Darnell R, Allis C. BET protein Brd4 activates transcription in neurons and BET inhibitor Jq1 blocks memory in mice. Nat Neurosci. 2015;18:1464-73 pubmed publisher
  405. Rennoll Bankert K, Rahman M, Gillespie J, Guillotte M, Kaur S, Lehman S, et al. Which Way In? The RalF Arf-GEF Orchestrates Rickettsia Host Cell Invasion. PLoS Pathog. 2015;11:e1005115 pubmed publisher
  406. Moreau K, Ghislat G, Hochfeld W, Renna M, Zavodszky E, Runwal G, et al. Transcriptional regulation of Annexin A2 promotes starvation-induced autophagy. Nat Commun. 2015;6:8045 pubmed publisher
  407. Galicia Vázquez G, Chu J, Pelletier J. eIF4AII is dispensable for miRNA-mediated gene silencing. RNA. 2015;21:1826-33 pubmed publisher
  408. Volta M, Cataldi S, Beccano Kelly D, Munsie L, Tatarnikov I, Chou P, et al. Chronic and acute LRRK2 silencing has no long-term behavioral effects, whereas wild-type and mutant LRRK2 overexpression induce motor and cognitive deficits and altered regulation of dopamine release. Parkinsonism Relat Disord. 2015;21:1156-63 pubmed publisher
  409. Shirato K, Ujike M, Kawase M, Matsuyama S. Identification of CCL2, RARRES2 and EFNB2 as host cell factors that influence the multistep replication of respiratory syncytial virus. Virus Res. 2015;210:213-26 pubmed publisher
  410. Wang Y, Li Z, Zhang P, Poon E, Kong C, Boheler K, et al. Nitric Oxide-cGMP-PKG Pathway Acts on Orai1 to Inhibit the Hypertrophy of Human Embryonic Stem Cell-Derived Cardiomyocytes. Stem Cells. 2015;33:2973-84 pubmed publisher
  411. Kumar P, Thirkill T, Ji J, Monte L, Douglas G. Differential Effects of Sodium Butyrate and Lithium Chloride on Rhesus Monkey Trophoblast Differentiation. PLoS ONE. 2015;10:e0135089 pubmed publisher
  412. Pourteymour S, Lee S, Langleite T, Eckardt K, Hjorth M, Bindesbøll C, et al. Perilipin 4 in human skeletal muscle: localization and effect of physical activity. Physiol Rep. 2015;3: pubmed publisher
  413. 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
  414. Hwang J, Byun M, Kim A, Kim K, Cho H, Lee Y, et al. Extracellular Matrix Stiffness Regulates Osteogenic Differentiation through MAPK Activation. PLoS ONE. 2015;10:e0135519 pubmed publisher
  415. Nakamura R, Sene A, Santeford A, Gdoura A, Kubota S, Zapata N, et al. IL10-driven STAT3 signalling in senescent macrophages promotes pathological eye angiogenesis. Nat Commun. 2015;6:7847 pubmed publisher
  416. Wu G, Huang C, Yu Y. Pseudouridine in mRNA: Incorporation, Detection, and Recoding. Methods Enzymol. 2015;560:187-217 pubmed publisher
  417. Wang H, Lööf S, Borg P, Nader G, Blau H, Simon A. Turning terminally differentiated skeletal muscle cells into regenerative progenitors. Nat Commun. 2015;6:7916 pubmed publisher
  418. Gurt I, Artsi H, Cohen Kfir E, Hamdani G, Ben Shalom G, Feinstein B, et al. The Sirt1 Activators SRT2183 and SRT3025 Inhibit RANKL-Induced Osteoclastogenesis in Bone Marrow-Derived Macrophages and Down-Regulate Sirt3 in Sirt1 Null Cells. PLoS ONE. 2015;10:e0134391 pubmed publisher
  419. Hamazaki J, Hirayama S, Murata S. Redundant Roles of Rpn10 and Rpn13 in Recognition of Ubiquitinated Proteins and Cellular Homeostasis. PLoS Genet. 2015;11:e1005401 pubmed publisher
  420. Treacy Abarca S, Mukherjee S. Legionella suppresses the host unfolded protein response via multiple mechanisms. Nat Commun. 2015;6:7887 pubmed publisher
  421. Hieke N, Löffler A, Kaizuka T, Berleth N, Böhler P, Drießen S, et al. Expression of a ULK1/2 binding-deficient ATG13 variant can partially restore autophagic activity in ATG13-deficient cells. Autophagy. 2015;11:1471-83 pubmed publisher
  422. Parchem R, Moore N, Fish J, Parchem J, Braga T, Shenoy A, et al. miR-302 Is Required for Timing of Neural Differentiation, Neural Tube Closure, and Embryonic Viability. Cell Rep. 2015;12:760-73 pubmed publisher
  423. Drießen S, Berleth N, Friesen O, Löffler A, Böhler P, Hieke N, et al. Deubiquitinase inhibition by WP1130 leads to ULK1 aggregation and blockade of autophagy. Autophagy. 2015;11:1458-70 pubmed publisher
  424. de Vallière C, Vidal S, Clay I, Jurisic G, Tcymbarevich I, Lang S, et al. The pH-sensing receptor OGR1 improves barrier function of epithelial cells and inhibits migration in an acidic environment. Am J Physiol Gastrointest Liver Physiol. 2015;309:G475-90 pubmed publisher
  425. Zhu C, Chen C, Huang J, Zhang H, Zhao X, Deng R, et al. SUMOylation at K707 of DGCR8 controls direct function of primary microRNA. Nucleic Acids Res. 2015;43:7945-60 pubmed publisher
  426. Stiess M, Wegehingel S, Nguyen C, Nickel W, Bradke F, Cambridge S. A Dual SILAC Proteomic Labeling Strategy for Quantifying Constitutive and Cell-Cell Induced Protein Secretion. J Proteome Res. 2015;14:3229-38 pubmed publisher
  427. Xu J, Wan P, Wang M, Zhang J, Gao X, Hu B, et al. AIP1-mediated actin disassembly is required for postnatal germ cell migration and spermatogonial stem cell niche establishment. Cell Death Dis. 2015;6:e1818 pubmed publisher
  428. Kortüm F, Harms F, Hennighausen N, Rosenberger G. αPIX Is a Trafficking Regulator that Balances Recycling and Degradation of the Epidermal Growth Factor Receptor. PLoS ONE. 2015;10:e0132737 pubmed publisher
  429. Wu Y, Feng G, Song J, Zhang Y, Yu Y, Huang L, et al. TrAmplification of Human Dental Follicle Cells by piggyBac Transposon - Mediated Reversible Immortalization System. PLoS ONE. 2015;10:e0130937 pubmed publisher
  430. Ripperger T, Manukjan G, Meyer J, Wolter S, Schambach A, Bohne J, et al. The heteromeric transcription factor GABP activates the ITGAM/CD11b promoter and induces myeloid differentiation. Biochim Biophys Acta. 2015;1849:1145-54 pubmed publisher
  431. Shi J, Liu Y, Xu X, Zhang W, Yu T, Jia J, et al. Deubiquitinase USP47/UBP64E Regulates β-Catenin Ubiquitination and Degradation and Plays a Positive Role in Wnt Signaling. Mol Cell Biol. 2015;35:3301-11 pubmed publisher
  432. Hobbs R, DePianto D, Jacob J, Han M, Chung B, Batazzi A, et al. Keratin-dependent regulation of Aire and gene expression in skin tumor keratinocytes. Nat Genet. 2015;47:933-8 pubmed publisher
  433. Fei Q, Yang X, Jiang H, Wang Q, Yu Y, Yu Y, et al. SETDB1 modulates PRC2 activity at developmental genes independently of H3K9 trimethylation in mouse ES cells. Genome Res. 2015;25:1325-35 pubmed publisher
  434. Xiong H, Zhou S, Sun A, He Y, Li J, Yuan X. MicroRNA‑197 reverses the drug resistance of fluorouracil‑induced SGC7901 cells by targeting mitogen‑activated protein kinase 1. Mol Med Rep. 2015;12:5019-25 pubmed publisher
  435. Siriwardana N, Meyer R, Panchenko M. The novel function of JADE1S in cytokinesis of epithelial cells. Cell Cycle. 2015;14:2821-34 pubmed publisher
  436. Hoover H, Li J, Marchese J, Rothwell C, Borawoski J, Jeffery D, et al. Quantitative Proteomic Verification of Membrane Proteins as Potential Therapeutic Targets Located in the 11q13 Amplicon in Cancers. J Proteome Res. 2015;14:3670-9 pubmed publisher
  437. Sharma V, Jordan J, Ciribilli Y, Resnick M, Bisio A, Inga A. Quantitative Analysis of NF-κB Transactivation Specificity Using a Yeast-Based Functional Assay. PLoS ONE. 2015;10:e0130170 pubmed publisher
  438. Ueda S, Kokaji Y, Simizu S, Honda K, Yoshino K, Kamisoyama H, et al. Chicken heat shock protein HSPB1 increases and interacts with αB-crystallin in aged skeletal muscle. Biosci Biotechnol Biochem. 2015;79:1867-75 pubmed publisher
  439. Li F, Buck D, De Winter J, Kolb J, Meng H, Birch C, et al. Nebulin deficiency in adult muscle causes sarcomere defects and muscle-type-dependent changes in trophicity: novel insights in nemaline myopathy. Hum Mol Genet. 2015;24:5219-33 pubmed publisher
  440. Cardona M, López J, Serafín A, Rongvaux A, Inserte J, García Dorado D, et al. Executioner Caspase-3 and 7 Deficiency Reduces Myocyte Number in the Developing Mouse Heart. PLoS ONE. 2015;10:e0131411 pubmed publisher
  441. Zhang J, Gao Q, Zhou Y, Dier U, Hempel N, Hochwald S. Focal adhesion kinase-promoted tumor glucose metabolism is associated with a shift of mitochondrial respiration to glycolysis. Oncogene. 2016;35:1926-42 pubmed publisher
  442. Ding B, Gomi K, Rafii S, Crystal R, Walters M. Endothelial MMP14 is required for endothelial-dependent growth support of human airway basal cells. J Cell Sci. 2015;128:2983-8 pubmed publisher
  443. Yuzefovych Y, Blasczyk R, Huyton T. Oncogenic acidic nuclear phosphoproteins ANP32C/D are novel clients of heat shock protein 90. Biochim Biophys Acta. 2015;1853:2338-48 pubmed publisher
  444. Kubli D, Cortez M, Moyzis A, Najor R, Lee Y, Gustafsson Ã. PINK1 Is Dispensable for Mitochondrial Recruitment of Parkin and Activation of Mitophagy in Cardiac Myocytes. PLoS ONE. 2015;10:e0130707 pubmed publisher
  445. Roda D, Castillo J, Telechea Fernández M, Gil A, López Rodas G, Franco L, et al. EGF-Induced Acetylation of Heterogeneous Nuclear Ribonucleoproteins Is Dependent on KRAS Mutational Status in Colorectal Cancer Cells. PLoS ONE. 2015;10:e0130543 pubmed publisher
  446. Liu Q, Zhu Y, Yong W, Sze N, Tan N, Ding J. Cutting Edge: Synchronization of IRF1, JunB, and C/EBPβ Activities during TLR3-TLR7 Cross-Talk Orchestrates Timely Cytokine Synergy in the Proinflammatory Response. J Immunol. 2015;195:801-5 pubmed publisher
  447. Cases O, Joseph A, Obry A, Santin M, Ben Yacoub S, Pâques M, et al. Foxg1-Cre Mediated Lrp2 Inactivation in the Developing Mouse Neural Retina, Ciliary and Retinal Pigment Epithelia Models Congenital High Myopia. PLoS ONE. 2015;10:e0129518 pubmed publisher
  448. Huna A, Salmina K, Erenpreisa J, Vazquez Martin A, Krigerts J, Inashkina I, et al. Role of stress-activated OCT4A in the cell fate decisions of embryonal carcinoma cells treated with etoposide. Cell Cycle. 2015;14:2969-84 pubmed publisher
  449. Ibeawuchi S, Agbor L, Quelle F, Sigmund C. Hypertension-causing Mutations in Cullin3 Protein Impair RhoA Protein Ubiquitination and Augment the Association with Substrate Adaptors. J Biol Chem. 2015;290:19208-17 pubmed publisher
  450. Verma S, Mohapatra G, Ahmad S, Rana S, Jain S, Khalsa J, et al. Salmonella Engages Host MicroRNAs To Modulate SUMOylation: a New Arsenal for Intracellular Survival. Mol Cell Biol. 2015;35:2932-46 pubmed publisher
  451. Carthy J, Sundqvist A, Heldin A, van Dam H, Kletsas D, Heldin C, et al. Tamoxifen Inhibits TGF-β-Mediated Activation of Myofibroblasts by Blocking Non-Smad Signaling Through ERK1/2. J Cell Physiol. 2015;230:3084-92 pubmed publisher
  452. Song L, Ma L, Cong F, Shen X, Jing P, Ying X, et al. Radioprotective effects of genistein on HL-7702 cells via the inhibition of apoptosis and DNA damage. Cancer Lett. 2015;366:100-11 pubmed publisher
  453. Masuda Y, Takahashi H, Sato S, Tomomori Sato C, Saraf A, Washburn M, et al. TRIM29 regulates the assembly of DNA repair proteins into damaged chromatin. Nat Commun. 2015;6:7299 pubmed publisher
  454. Zeidan B, Jackson T, Larkin S, Cutress R, Coulton G, Ashton Key M, et al. Annexin A3 is a mammary marker and a potential neoplastic breast cell therapeutic target. Oncotarget. 2015;6:21421-7 pubmed
  455. Yang J, Kaur K, Ong L, Eisenberg C, Eisenberg L. Inhibition of G9a Histone Methyltransferase Converts Bone Marrow Mesenchymal Stem Cells to Cardiac Competent Progenitors. Stem Cells Int. 2015;2015:270428 pubmed publisher
  456. Heinemann A, Cullinane C, De Paoli Iseppi R, Wilmott J, Gunatilake D, Madore J, et al. Combining BET and HDAC inhibitors synergistically induces apoptosis of melanoma and suppresses AKT and YAP signaling. Oncotarget. 2015;6:21507-21 pubmed
  457. 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
  458. Hannan F, Howles S, Rogers A, Cranston T, Gorvin C, Babinsky V, et al. Adaptor protein-2 sigma subunit mutations causing familial hypocalciuric hypercalcaemia type 3 (FHH3) demonstrate genotype-phenotype correlations, codon bias and dominant-negative effects. Hum Mol Genet. 2015;24:5079-92 pubmed publisher
  459. Yuan Y, Wu Q, Cheng G, Liu X, Liu S, Luo J, et al. Recombinant human lactoferrin enhances the efficacy of triple therapy in mice infected with Helicobacter pylori. Int J Mol Med. 2015;36:363-8 pubmed publisher
  460. Ma S, Yin N, Qi X, Pfister S, Zhang M, Ma R, et al. Tyrosine dephosphorylation enhances the therapeutic target activity of epidermal growth factor receptor (EGFR) by disrupting its interaction with estrogen receptor (ER). Oncotarget. 2015;6:13320-33 pubmed
  461. Li X, Yang X, Biskup E, Zhou J, Li H, Wu Y, et al. Co-expression of CXCL8 and HIF-1α is associated with metastasis and poor prognosis in hepatocellular carcinoma. Oncotarget. 2015;6:22880-9 pubmed
  462. Masuda Y, Takahashi H, Hatakeyama S. TRIM29 regulates the p63-mediated pathway in cervical cancer cells. Biochim Biophys Acta. 2015;1853:2296-305 pubmed publisher
  463. Robertson C, Srivastava J, Siddiq A, Gredler R, Emdad L, Rajasekaran D, et al. Astrocyte Elevated Gene-1 (AEG-1) Regulates Lipid Homeostasis. J Biol Chem. 2015;290:18227-36 pubmed publisher
  464. M baye M, Hua G, Khan H, Yang L. RNAi-mediated knockdown of INHBB increases apoptosis and inhibits steroidogenesis in mouse granulosa cells. J Reprod Dev. 2015;61:391-7 pubmed publisher
  465. Kato M, Goto Y, Matsushita R, Kurozumi A, Fukumoto I, Nishikawa R, et al. MicroRNA-26a/b directly regulate La-related protein 1 and inhibit cancer cell invasion in prostate cancer. Int J Oncol. 2015;47:710-8 pubmed publisher
  466. Ronchi G, Haastert Talini K, Fornasari B, Perroteau I, Geuna S, Gambarotta G. The Neuregulin1/ErbB system is selectively regulated during peripheral nerve degeneration and regeneration. Eur J Neurosci. 2016;43:351-64 pubmed publisher
  467. Li N, Mruk D, Wong C, Lee W, Han D, Cheng C. Actin-bundling protein plastin 3 is a regulator of ectoplasmic specialization dynamics during spermatogenesis in the rat testis. FASEB J. 2015;29:3788-805 pubmed publisher
  468. Botto S, Totonchy J, Gustin J, Moses A. Kaposi Sarcoma Herpesvirus Induces HO-1 during De Novo Infection of Endothelial Cells via Viral miRNA-Dependent and -Independent Mechanisms. MBio. 2015;6:e00668 pubmed publisher
  469. Song M, Gong G, Burelle Y, Gustafsson Ã, Kitsis R, Matkovich S, et al. Interdependence of Parkin-Mediated Mitophagy and Mitochondrial Fission in Adult Mouse Hearts. Circ Res. 2015;117:346-51 pubmed publisher
  470. Lenzi J, De Santis R, de Turris V, Morlando M, Laneve P, Calvo A, et al. ALS mutant FUS proteins are recruited into stress granules in induced pluripotent stem cell-derived motoneurons. Dis Model Mech. 2015;8:755-66 pubmed publisher
  471. Liang H, Fu Z, Jiang X, Wang N, Wang F, Wang X, et al. miR-16 promotes the apoptosis of human cancer cells by targeting FEAT. BMC Cancer. 2015;15:448 pubmed publisher
  472. Sachweh M, Stafford W, Drummond C, McCarthy A, Higgins M, Campbell J, et al. Redox effects and cytotoxic profiles of MJ25 and auranofin towards malignant melanoma cells. Oncotarget. 2015;6:16488-506 pubmed
  473. Kohl S, Zobor D, Chiang W, Weisschuh N, Staller J, González Menéndez I, et al. Mutations in the unfolded protein response regulator ATF6 cause the cone dysfunction disorder achromatopsia. Nat Genet. 2015;47:757-65 pubmed publisher
  474. Hofmann B, Schlüter L, Lange P, Mercanoglu B, Ewald F, Fölster A, et al. COSMC knockdown mediated aberrant O-glycosylation promotes oncogenic properties in pancreatic cancer. Mol Cancer. 2015;14:109 pubmed publisher
  475. Luan Q, Jin L, Jiang C, Tay K, Lai F, Liu X, et al. RIPK1 regulates survival of human melanoma cells upon endoplasmic reticulum stress through autophagy. Autophagy. 2015;11:975-94 pubmed publisher
  476. Zatti S, Martewicz S, Serena E, Uno N, Giobbe G, Kazuki Y, et al. Complete restoration of multiple dystrophin isoforms in genetically corrected Duchenne muscular dystrophy patient-derived cardiomyocytes. Mol Ther Methods Clin Dev. 2014;1:1 pubmed publisher
  477. Ferry A, Parlakian A, Joanne P, Fraysse B, Mgrditchian T, Roy P, et al. Mechanical Overloading Increases Maximal Force and Reduces Fragility in Hind Limb Skeletal Muscle from Mdx Mouse. Am J Pathol. 2015;185:2012-24 pubmed publisher
  478. Boisson B, Laplantine E, Dobbs K, Cobat A, Tarantino N, Hazen M, et al. Human HOIP and LUBAC deficiency underlies autoinflammation, immunodeficiency, amylopectinosis, and lymphangiectasia. J Exp Med. 2015;212:939-51 pubmed publisher
  479. Coudé M, Braun T, Berrou J, Dupont M, Bertrand S, Massé A, et al. BET inhibitor OTX015 targets BRD2 and BRD4 and decreases c-MYC in acute leukemia cells. Oncotarget. 2015;6:17698-712 pubmed
  480. Lucido C, Vermeer P, Wieking B, Vermeer D, Lee J. CD137 enhancement of HPV positive head and neck squamous cell carcinoma tumor clearance. Vaccines (Basel). 2014;2:841-53 pubmed publisher
  481. Dell Ovo V, Rosenzweig J, Burd I, Merabova N, Darbinian N, Goetzl L. An animal model for chorioamnionitis at term. Am J Obstet Gynecol. 2015;213:387.e1-10 pubmed publisher
  482. Hodges A, Gallegos I, Laughery M, Meas R, Tran L, Wyrick J. Histone Sprocket Arginine Residues Are Important for Gene Expression, DNA Repair, and Cell Viability in Saccharomyces cerevisiae. Genetics. 2015;200:795-806 pubmed publisher
  483. Reales E, Bernabé Rubio M, Casares Arias J, Rentero C, Fernández Barrera J, Rangel L, et al. The MAL protein is crucial for proper membrane condensation at the ciliary base, which is required for primary cilium elongation. J Cell Sci. 2015;128:2261-70 pubmed publisher
  484. Kaushik S, Cuervo A. Degradation of lipid droplet-associated proteins by chaperone-mediated autophagy facilitates lipolysis. Nat Cell Biol. 2015;17:759-70 pubmed publisher
  485. Wang X, Buechler N, Yoza B, McCall C, Vachharajani V. Resveratrol attenuates microvascular inflammation in sepsis via SIRT-1-Induced modulation of adhesion molecules in ob/ob mice. Obesity (Silver Spring). 2015;23:1209-17 pubmed publisher
  486. Ferreira J, Soares A, Ramalho J, Pereira P, Girao H. K63 linked ubiquitin chain formation is a signal for HIF1A degradation by Chaperone-Mediated Autophagy. Sci Rep. 2015;5:10210 pubmed publisher
  487. Landais I, Pelton C, Streblow D, DeFilippis V, McWeeney S, Nelson J. Human Cytomegalovirus miR-UL112-3p Targets TLR2 and Modulates the TLR2/IRAK1/NFκB Signaling Pathway. PLoS Pathog. 2015;11:e1004881 pubmed publisher
  488. Stangel D, Erkan M, Buchholz M, Gress T, Michalski C, Raulefs S, et al. Kif20a inhibition reduces migration and invasion of pancreatic cancer cells. J Surg Res. 2015;197:91-100 pubmed publisher
  489. 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
  490. Mauro Lizcano M, Esteban Martínez L, Seco E, Serrano Puebla A, García Ledo L, Figueiredo Pereira C, et al. New method to assess mitophagy flux by flow cytometry. Autophagy. 2015;11:833-43 pubmed publisher
  491. Sadowski S, Boufraqech M, Zhang L, Mehta A, Kapur P, Zhang Y, et al. Torin2 targets dysregulated pathways in anaplastic thyroid cancer and inhibits tumor growth and metastasis. Oncotarget. 2015;6:18038-49 pubmed
  492. Yamagishi S, Yamada K, Sawada M, Nakano S, Mori N, Sawamoto K, et al. Netrin-5 is highly expressed in neurogenic regions of the adult brain. Front Cell Neurosci. 2015;9:146 pubmed publisher
  493. Zhao Y, Xiao Z, Chen W, Yang J, Li T, Fan B. Disulfiram sensitizes pituitary adenoma cells to temozolomide by regulating O6-methylguanine-DNA methyltransferase expression. Mol Med Rep. 2015;12:2313-22 pubmed publisher
  494. Haley J, Thackeray J, Kolajova M, Thorn S, DaSilva J. Insulin therapy normalizes reduced myocardial β-adrenoceptors at both the onset and after sustained hyperglycemia in diabetic rats. Life Sci. 2015;132:101-7 pubmed publisher
  495. Wright J, Atwan Z, Morris S, Leppard K. The Human Adenovirus Type 5 L4 Promoter Is Negatively Regulated by TFII-I and L4-33K. J Virol. 2015;89:7053-63 pubmed publisher
  496. Iguchi Y, Ishihara S, Uchida Y, Tajima K, Mizutani T, Kawabata K, et al. Filamin B Enhances the Invasiveness of Cancer Cells into 3D Collagen Matrices. Cell Struct Funct. 2015;40:61-7 pubmed publisher
  497. Martínez A, Sesé M, Losa J, Robichaud N, Sonenberg N, Aasen T, et al. Phosphorylation of eIF4E Confers Resistance to Cellular Stress and DNA-Damaging Agents through an Interaction with 4E-T: A Rationale for Novel Therapeutic Approaches. PLoS ONE. 2015;10:e0123352 pubmed publisher
  498. Hsu P, Liu X, Zhang J, Wang H, Ye J, Shi Y. Cardiolipin remodeling by TAZ/tafazzin is selectively required for the initiation of mitophagy. Autophagy. 2015;11:643-52 pubmed publisher
  499. Pasqualon T, Pruessmeyer J, Weidenfeld S, Babendreyer A, Groth E, Schumacher J, et al. A transmembrane C-terminal fragment of syndecan-1 is generated by the metalloproteinase ADAM17 and promotes lung epithelial tumor cell migration and lung metastasis formation. Cell Mol Life Sci. 2015;72:3783-801 pubmed publisher
  500. Mayer A, Di Iulio J, Maleri S, Eser U, Vierstra J, Reynolds A, et al. Native elongating transcript sequencing reveals human transcriptional activity at nucleotide resolution. Cell. 2015;161:541-554 pubmed publisher
  501. Ljubicic V, Jasmin B. Metformin increases peroxisome proliferator-activated receptor γ Co-activator-1α and utrophin a expression in dystrophic skeletal muscle. Muscle Nerve. 2015;52:139-42 pubmed publisher
  502. Zou Z, Cai Y, Chen Y, Chen S, Liu L, Shen Z, et al. Bone marrow-derived mesenchymal stem cells attenuate acute liver injury and regulate the expression of fibrinogen-like-protein 1 and signal transducer and activator of transcription 3. Mol Med Rep. 2015;12:2089-97 pubmed publisher
  503. Rocco M, Balzamino B, Petrocchi Passeri P, Micera A, Aloe L. Effect of purified murine NGF on isolated photoreceptors of a rodent developing retinitis pigmentosa. PLoS ONE. 2015;10:e0124810 pubmed publisher
  504. 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
  505. Telese F, Ma Q, Perez P, Notani D, Oh S, Li W, et al. LRP8-Reelin-Regulated Neuronal Enhancer Signature Underlying Learning and Memory Formation. Neuron. 2015;86:696-710 pubmed publisher
  506. Ji T, Guo Y, Kim K, McQueen P, Ghaffar S, Christ A, et al. Neuropilin-2 expression is inhibited by secreted Wnt antagonists and its down-regulation is associated with reduced tumor growth and metastasis in osteosarcoma. Mol Cancer. 2015;14:86 pubmed publisher
  507. Moreira J, Wohlwend M, Alves M, Wisløff U, Bye A. A small molecule activator of AKT does not reduce ischemic injury of the rat heart. J Transl Med. 2015;13:76 pubmed publisher
  508. Bettaieb A, Jiang J, Sasaki Y, Chao T, Kiss Z, Chen X, et al. Hepatocyte Nicotinamide Adenine Dinucleotide Phosphate Reduced Oxidase 4 Regulates Stress Signaling, Fibrosis, and Insulin Sensitivity During Development of Steatohepatitis in Mice. Gastroenterology. 2015;149:468-80.e10 pubmed publisher
  509. Roca Rodríguez M, El Bekay R, Garrido Sanchez L, Gómez Serrano M, Coin Aragüez L, Oliva Olivera W, et al. Parathyroid Hormone-Related Protein, Human Adipose-Derived Stem Cells Adipogenic Capacity and Healthy Obesity. J Clin Endocrinol Metab. 2015;100:E826-35 pubmed publisher
  510. Fu H, Martin M, Regairaz M, Huang L, You Y, Lin C, et al. The DNA repair endonuclease Mus81 facilitates fast DNA replication in the absence of exogenous damage. Nat Commun. 2015;6:6746 pubmed publisher
  511. Chien P, Lin C, Hsiao L, Yang C. c-Src/Pyk2/EGFR/PI3K/Akt/CREB-activated pathway contributes to human cardiomyocyte hypertrophy: Role of COX-2 induction. Mol Cell Endocrinol. 2015;409:59-72 pubmed publisher
  512. Sheng X, Arnoldussen Y, Storm M, Tesikova M, Nenseth H, Zhao S, et al. Divergent androgen regulation of unfolded protein response pathways drives prostate cancer. EMBO Mol Med. 2015;7:788-801 pubmed publisher
  513. Navis A, van Lith S, van Duijnhoven S, de Pooter M, Yetkin Arik B, Wesseling P, et al. Identification of a novel MET mutation in high-grade glioma resulting in an auto-active intracellular protein. Acta Neuropathol. 2015;130:131-44 pubmed publisher
  514. Zhang D, Zhu L, Li C, Mu J, Fu Y, Zhu Q, et al. Sialyltransferase7A, a Klf4-responsive gene, promotes cardiomyocyte apoptosis during myocardial infarction. Basic Res Cardiol. 2015;110:28 pubmed publisher
  515. Hagen J, te Brinke H, Wanders R, Knegt A, Oussoren E, Hoogeboom A, et al. Genetic basis of alpha-aminoadipic and alpha-ketoadipic aciduria. J Inherit Metab Dis. 2015;38:873-9 pubmed publisher
  516. Milan G, Romanello V, Pescatore F, Armani A, Paik J, Frasson L, et al. Regulation of autophagy and the ubiquitin-proteasome system by the FoxO transcriptional network during muscle atrophy. Nat Commun. 2015;6:6670 pubmed publisher
  517. Simões A, Pereira D, Gomes S, Brito H, Carvalho T, French A, et al. Aberrant MEK5/ERK5 signalling contributes to human colon cancer progression via NF-κB activation. Cell Death Dis. 2015;6:e1718 pubmed publisher
  518. Janes K. An analysis of critical factors for quantitative immunoblotting. Sci Signal. 2015;8:rs2 pubmed publisher
  519. Amrutkar M, Cansby E, Chursa U, Nuñez Durán E, Chanclón B, Ståhlman M, et al. Genetic Disruption of Protein Kinase STK25 Ameliorates Metabolic Defects in a Diet-Induced Type 2 Diabetes Model. Diabetes. 2015;64:2791-804 pubmed publisher
  520. Monteiro da Rocha A, Ding J, Slawny N, Wolf A, Smith G. Loss of glycogen synthase kinase 3 isoforms during murine oocyte growth induces offspring cardiac dysfunction. Biol Reprod. 2015;92:127 pubmed publisher
  521. 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
  522. Maquigussa E, Arnoni C, Pereira L, Boim M. Calcitriol ameliorates renal damage in a pre-established proteinuria model. Mol Med Rep. 2015;12:1009-15 pubmed publisher
  523. Ikeda M, Ide T, Fujino T, Arai S, Saku K, Kakino T, et al. Overexpression of TFAM or twinkle increases mtDNA copy number and facilitates cardioprotection associated with limited mitochondrial oxidative stress. PLoS ONE. 2015;10:e0119687 pubmed publisher
  524. Lee I, Hüttemann M, Kruger A, Bollig Fischer A, Malek M. (-)-Epicatechin combined with 8 weeks of treadmill exercise is associated with increased angiogenic and mitochondrial signaling in mice. Front Pharmacol. 2015;6:43 pubmed publisher
  525. Aboelenain M, Kawahara M, Balboula A, Montasser A, Zaabel S, Okuda K, et al. Status of autophagy, lysosome activity and apoptosis during corpus luteum regression in cattle. J Reprod Dev. 2015;61:229-36 pubmed publisher
  526. Kao Y, Chang B, Liang J, Tsai H, Lee Y, Lin R, et al. Japanese encephalitis virus nonstructural protein NS5 interacts with mitochondrial trifunctional protein and impairs fatty acid β-oxidation. PLoS Pathog. 2015;11:e1004750 pubmed publisher
  527. Verduzco D, Lloyd M, Xu L, Ibrahim Hashim A, Balagurunathan Y, Gatenby R, et al. Intermittent hypoxia selects for genotypes and phenotypes that increase survival, invasion, and therapy resistance. PLoS ONE. 2015;10:e0120958 pubmed publisher
  528. Iervolino A, Trepiccione F, Petrillo F, Spagnuolo M, Scarfò M, Frezzetti D, et al. Selective dicer suppression in the kidney alters GSK3β/β-catenin pathways promoting a glomerulocystic disease. PLoS ONE. 2015;10:e0119142 pubmed publisher
  529. Kaneko Y, Sullivan R, Dailey T, Vale F, Tajiri N, Borlongan C. Kainic Acid-Induced Golgi Complex Fragmentation/Dispersal Shifts the Proteolysis of Reelin in Primary Rat Neuronal Cells: An In Vitro Model of Early Stage Epilepsy. Mol Neurobiol. 2016;53:1874-1883 pubmed publisher
  530. Tapia O, Fong L, Huber M, Young S, Gerace L. Nuclear envelope protein Lem2 is required for mouse development and regulates MAP and AKT kinases. PLoS ONE. 2015;10:e0116196 pubmed publisher
  531. Kawada M, Inoue H, Ohba S, Yoshida J, Masuda T, Yamasaki M, et al. Stromal cells positively and negatively modulate the growth of cancer cells: stimulation via the PGE2-TNFα-IL-6 pathway and inhibition via secreted GAPDH-E-cadherin interaction. PLoS ONE. 2015;10:e0119415 pubmed publisher
  532. Zeng H, Vaka V, He X, Booz G, Chen J. High-fat diet induces cardiac remodelling and dysfunction: assessment of the role played by SIRT3 loss. J Cell Mol Med. 2015;19:1847-56 pubmed publisher
  533. Gomez Cavazos J, Hetzer M. The nucleoporin gp210/Nup210 controls muscle differentiation by regulating nuclear envelope/ER homeostasis. J Cell Biol. 2015;208:671-81 pubmed publisher
  534. Richardson E, Shukla S, Sweet D, Wearsch P, Tsichlis P, Boom W, et al. Toll-like receptor 2-dependent extracellular signal-regulated kinase signaling in Mycobacterium tuberculosis-infected macrophages drives anti-inflammatory responses and inhibits Th1 polarization of responding T cells. Infect Immun. 2015;83:2242-54 pubmed publisher
  535. Filipcik P, Cente M, Zilka N, Smolek T, Hanes J, Kučerák J, et al. Intraneuronal accumulation of misfolded tau protein induces overexpression of Hsp27 in activated astrocytes. Biochim Biophys Acta. 2015;1852:1219-29 pubmed publisher
  536. Hutchins A, Takahashi Y, Miranda Saavedra D. Genomic analysis of LPS-stimulated myeloid cells identifies a common pro-inflammatory response but divergent IL-10 anti-inflammatory responses. Sci Rep. 2015;5:9100 pubmed publisher
  537. Liu Y, Li Y, Zhang D, Liu J, Gou K, Cui S. Mitogen-Activated Protein Kinase 8 (MAP3K8) Mediates the Signaling Pathway of Estradiol Stimulating Progesterone Production Through G Protein-Coupled Receptor 30 (GPR30) in Mouse Corpus Luteum. Mol Endocrinol. 2015;29:703-15 pubmed publisher
  538. Cheng H, Chern Y, Chen I, Liu C, Li S, Chun S, et al. Effects on murine behavior and lifespan of selectively decreasing expression of mutant huntingtin allele by supt4h knockdown. PLoS Genet. 2015;11:e1005043 pubmed publisher
  539. Griffin J, Sondalle S, del Viso F, Baserga S, Khokha M. The ribosome biogenesis factor Nol11 is required for optimal rDNA transcription and craniofacial development in Xenopus. PLoS Genet. 2015;11:e1005018 pubmed publisher
  540. Chen W, Wu J, Li L, Zhang Z, Ren J, Liang Y, et al. Ppm1b negatively regulates necroptosis through dephosphorylating Rip3. Nat Cell Biol. 2015;17:434-44 pubmed publisher
  541. Chen S, Jiao J, Jiang D, Wan Z, Li L, Li K, et al. T-box transcription factor Brachyury in lung cancer cells inhibits macrophage infiltration by suppressing CCL2 and CCL4 chemokines. Tumour Biol. 2015;36:5881-90 pubmed publisher
  542. Å talekar M, Yin X, Rebolj K, Darovic S, Troakes C, Mayr M, et al. Proteomic analyses reveal that loss of TDP-43 affects RNA processing and intracellular transport. Neuroscience. 2015;293:157-70 pubmed publisher
  543. Li B, Li H, Wang Z, Wang Y, Gao A, Cui Y, et al. Evidence for the role of phosphatidylcholine-specific phospholipase in experimental subarachnoid hemorrhage in rats. Exp Neurol. 2015;272:145-51 pubmed publisher
  544. Grego Bessa J, Hildebrand J, Anderson K. Morphogenesis of the mouse neural plate depends on distinct roles of cofilin 1 in apical and basal epithelial domains. Development. 2015;142:1305-14 pubmed publisher
  545. Braun F, Mathur R, Sehgal L, Wilkie Grantham R, Chandra J, Berkova Z, et al. Inhibition of methyltransferases accelerates degradation of cFLIP and sensitizes B-cell lymphoma cells to TRAIL-induced apoptosis. PLoS ONE. 2015;10:e0117994 pubmed publisher
  546. Takemoto K, Ishihara S, Mizutani T, Kawabata K, Haga H. Compressive stress induces dephosphorylation of the myosin regulatory light chain via RhoA phosphorylation by the adenylyl cyclase/protein kinase A signaling pathway. PLoS ONE. 2015;10:e0117937 pubmed publisher
  547. Jarosinski K, Donovan K, Du G. Expression of fluorescent proteins within the repeat long region of the Marek's disease virus genome allows direct identification of infected cells while retaining full pathogenicity. Virus Res. 2015;201:50-60 pubmed publisher
  548. Schisler J, Grevengoed T, Pascual F, Cooper D, Ellis J, Paul D, et al. Cardiac energy dependence on glucose increases metabolites related to glutathione and activates metabolic genes controlled by mechanistic target of rapamycin. J Am Heart Assoc. 2015;4: pubmed publisher
  549. Maganti A, Maier B, Tersey S, Sampley M, Mosley A, Özcan S, et al. Transcriptional activity of the islet β cell factor Pdx1 is augmented by lysine methylation catalyzed by the methyltransferase Set7/9. J Biol Chem. 2015;290:9812-22 pubmed publisher
  550. Ekumi K, Paculova H, Lenasi T, Pospichalova V, Bösken C, Rybarikova J, et al. Ovarian carcinoma CDK12 mutations misregulate expression of DNA repair genes via deficient formation and function of the Cdk12/CycK complex. Nucleic Acids Res. 2015;43:2575-89 pubmed publisher
  551. Bulk E, Ay A, Hammadi M, Ouadid Ahidouch H, Schelhaas S, Hascher A, et al. Epigenetic dysregulation of KCa 3.1 channels induces poor prognosis in lung cancer. Int J Cancer. 2015;137:1306-17 pubmed publisher
  552. López Ibarra Z, Modrego J, Valero Muñoz M, Rodríguez Sierra P, Zamorano León J, González Cantalapiedra A, et al. Metabolic differences between white and brown fat from fasting rabbits at physiological temperature. J Mol Endocrinol. 2015;54:105-13 pubmed publisher
  553. Okamoto M, Iguchi T, Hattori T, Matsuzaki S, Koyama Y, Taniguchi M, et al. DBZ regulates cortical cell positioning and neurite development by sustaining the anterograde transport of Lis1 and DISC1 through control of Ndel1 dual-phosphorylation. J Neurosci. 2015;35:2942-58 pubmed publisher
  554. Hsiao H, Hsu T, Liu W, Hsieh W, Chou T, Wu Y, et al. Deltex1 antagonizes HIF-1α and sustains the stability of regulatory T cells in vivo. Nat Commun. 2015;6:6353 pubmed publisher
  555. Chittoor Vinod V, Lee S, Judge S, Notterpek L. Inducible HSP70 is critical in preventing the aggregation and enhancing the processing of PMP22. ASN Neuro. 2015;7: pubmed publisher
  556. Hung S, Huang W, Liou H, Fu W. LC3 overexpression reduces Aβ neurotoxicity through increasing α7nAchR expression and autophagic activity in neurons and mice. Neuropharmacology. 2015;93:243-51 pubmed publisher
  557. Yu H, Chen Y, Huang C, Liu C, Chiou A, Wang Y, et al. β-PIX controls intracellular viscoelasticity to regulate lung cancer cell migration. J Cell Mol Med. 2015;19:934-47 pubmed publisher
  558. Shi S, Wang Q, Xu J, Jang J, Padilla M, Nyunoya T, et al. Synergistic anticancer effect of cisplatin and Chal-24 combination through IAP and c-FLIPL degradation, Ripoptosome formation and autophagy-mediated apoptosis. Oncotarget. 2015;6:1640-51 pubmed
  559. Kramer D, Schön M, Bayerlová M, Bleckmann A, Schön M, Zörnig M, et al. A pro-apoptotic function of iASPP by stabilizing p300 and CBP through inhibition of BRMS1 E3 ubiquitin ligase activity. Cell Death Dis. 2015;6:e1634 pubmed publisher
  560. Morlé A, Garrido C, Micheau O. Hyperthermia restores apoptosis induced by death receptors through aggregation-induced c-FLIP cytosolic depletion. Cell Death Dis. 2015;6:e1633 pubmed publisher
  561. Okita N, Honda Y, Kishimoto N, Liao W, Azumi E, Hashimoto Y, et al. Supplementation of strontium to a chondrogenic medium promotes chondrogenic differentiation of human dedifferentiated fat cells. Tissue Eng Part A. 2015;21:1695-704 pubmed publisher
  562. Fukumoto I, Hanazawa T, Kinoshita T, Kikkawa N, Koshizuka K, Goto Y, et al. MicroRNA expression signature of oral squamous cell carcinoma: functional role of microRNA-26a/b in the modulation of novel cancer pathways. Br J Cancer. 2015;112:891-900 pubmed publisher
  563. Diner B, Li T, Greco T, Crow M, Fuesler J, Wang J, et al. The functional interactome of PYHIN immune regulators reveals IFIX is a sensor of viral DNA. Mol Syst Biol. 2015;11:787 pubmed publisher
  564. He Z, Li B, Rankin G, Rojanasakul Y, Chen Y. Selecting bioactive phenolic compounds as potential agents to inhibit proliferation and VEGF expression in human ovarian cancer cells. Oncol Lett. 2015;9:1444-1450 pubmed
  565. Schreiber K, Ortiz D, Academia E, Anies A, Liao C, Kennedy B. Rapamycin-mediated mTORC2 inhibition is determined by the relative expression of FK506-binding proteins. Aging Cell. 2015;14:265-73 pubmed publisher
  566. Radhakrishnan V, Kojs P, Ramalingam R, Midura Kiela M, Angeli P, Kiela P, et al. Experimental colitis is associated with transcriptional inhibition of Na+/Ca2+ exchanger isoform 1 (NCX1) expression by interferon γ in the renal distal convoluted tubules. J Biol Chem. 2015;290:8964-74 pubmed publisher
  567. West A, Khoury Hanold W, Staron M, Tal M, Pineda C, Lang S, et al. Mitochondrial DNA stress primes the antiviral innate immune response. Nature. 2015;520:553-7 pubmed publisher
  568. Laemmle A, Hahn D, Hu L, Rüfenacht V, Gautschi M, Leibundgut K, et al. Fatal hyperammonemia and carbamoyl phosphate synthetase 1 (CPS1) deficiency following high-dose chemotherapy and autologous hematopoietic stem cell transplantation. Mol Genet Metab. 2015;114:438-44 pubmed publisher
  569. Bai M, Yuan M, Liao H, Chen J, Xie B, Yan D, et al. OCT4 pseudogene 5 upregulates OCT4 expression to promote proliferation by competing with miR-145 in endometrial carcinoma. Oncol Rep. 2015;33:1745-52 pubmed publisher
  570. Liu S, Lee W, Lai D, Wu S, Liu C, Tien H, et al. Honokiol confers immunogenicity by dictating calreticulin exposure, activating ER stress and inhibiting epithelial-to-mesenchymal transition. Mol Oncol. 2015;9:834-49 pubmed publisher
  571. Du Z, Abedalthagafi M, Aizer A, McHenry A, Sun H, Bray M, et al. Increased expression of the immune modulatory molecule PD-L1 (CD274) in anaplastic meningioma. Oncotarget. 2015;6:4704-16 pubmed
  572. Mandell D, Lajoie M, Mee M, Takeuchi R, Kuznetsov G, Norville J, et al. Biocontainment of genetically modified organisms by synthetic protein design. Nature. 2015;518:55-60 pubmed publisher
  573. Song M, Mihara K, Chen Y, Scorrano L, Dorn G. Mitochondrial fission and fusion factors reciprocally orchestrate mitophagic culling in mouse hearts and cultured fibroblasts. Cell Metab. 2015;21:273-85 pubmed publisher
  574. Azimzadeh O, Sievert W, Sarioglu H, Merl Pham J, Yentrapalli R, Bakshi M, et al. Integrative proteomics and targeted transcriptomics analyses in cardiac endothelial cells unravel mechanisms of long-term radiation-induced vascular dysfunction. J Proteome Res. 2015;14:1203-19 pubmed publisher
  575. Peralta D, Bronowska A, Morgan B, Dóka Ã, Van Laer K, Nagy P, et al. A proton relay enhances H2O2 sensitivity of GAPDH to facilitate metabolic adaptation. Nat Chem Biol. 2015;11:156-63 pubmed publisher
  576. Cheng Y, Song L, Huang Y, Xiong Y, Zhang X, Sun H, et al. Effect of enterohaemorrhagic Escherichia coli O157:H7-specific enterohaemolysin on interleukin-1β production differs between human and mouse macrophages due to the different sensitivity of NLRP3 activation. Immunology. 2015;145:258-67 pubmed publisher
  577. Huber R, Lucas J, Gomez Sarosi L, Coleman I, Zhao S, Coleman R, et al. DNA damage induces GDNF secretion in the tumor microenvironment with paracrine effects promoting prostate cancer treatment resistance. Oncotarget. 2015;6:2134-47 pubmed
  578. Li P, Ma X, Adams I, Yuan P. A tight control of Rif1 by Oct4 and Smad3 is critical for mouse embryonic stem cell stability. Cell Death Dis. 2015;6:e1588 pubmed publisher
  579. Liu L, Zou P, Zheng L, Linarelli L, Amarell S, Passaro A, et al. Tamoxifen reduces fat mass by boosting reactive oxygen species. Cell Death Dis. 2015;6:e1586 pubmed publisher
  580. Ikhapoh I, Pelham C, Agrawal D. Synergistic effect of angiotensin II on vascular endothelial growth factor-A-mediated differentiation of bone marrow-derived mesenchymal stem cells into endothelial cells. Stem Cell Res Ther. 2015;6:4 pubmed publisher
  581. Cao H, Zheng L, Wang N, Wang L, Li Y, Li D, et al. Src blockage by siRNA inhibits VEGF-induced vascular hyperpemeability and osteoclast activity - an in vitro mechanism study for preventing destructive repair of osteonecrosis. Bone. 2015;74:58-68 pubmed publisher
  582. Tao W, Liang X, Liu Y, Wang C, Pang D. Decrease of let-7f in low-dose metronomic Paclitaxel chemotherapy contributed to upregulation of thrombospondin-1 in breast cancer. Int J Biol Sci. 2015;11:48-58 pubmed publisher
  583. Li W, Ouyang Z, Zhang Q, Wang L, Shen Y, Gu Y, et al. SBF-1 exerts strong anticervical cancer effect through inducing endoplasmic reticulum stress-associated cell death via targeting sarco/endoplasmic reticulum Ca(2+)-ATPase 2. Cell Death Dis. 2014;5:e1581 pubmed publisher
  584. Hennig D, Müller S, Wichmann C, Drube S, Pietschmann K, Pelzl L, et al. Antagonism between granulocytic maturation and deacetylase inhibitor-induced apoptosis in acute promyelocytic leukaemia cells. Br J Cancer. 2015;112:329-37 pubmed publisher
  585. Mohan H, Ramesh N, Mortazavi S, Le A, Iwakura H, Unniappan S. Nutrients differentially regulate nucleobindin-2/nesfatin-1 in vitro in cultured stomach ghrelinoma (MGN3-1) cells and in vivo in male mice. PLoS ONE. 2014;9:e115102 pubmed publisher
  586. Bisson J, Mills B, Paul Helt J, Zwaka T, Cohen E. Wnt5a and Wnt11 inhibit the canonical Wnt pathway and promote cardiac progenitor development via the Caspase-dependent degradation of AKT. Dev Biol. 2015;398:80-96 pubmed publisher
  587. Zhang P, Wang L, Rodriguez Aguayo C, Yuan Y, Debeb B, Chen D, et al. miR-205 acts as a tumour radiosensitizer by targeting ZEB1 and Ubc13. Nat Commun. 2014;5:5671 pubmed publisher
  588. Renner I, Funk N, Geissler R, Friedrich S, Penzel A, Behrens S. Antiviral interferon-beta signaling induced by designed transcription activator-like effectors (TALE). PLoS ONE. 2014;9:e114288 pubmed publisher
  589. Cai H, Liu W, Xue Y, Shang X, Liu J, Li Z, et al. Roundabout 4 regulates blood-tumor barrier permeability through the modulation of ZO-1, Occludin, and Claudin-5 expression. J Neuropathol Exp Neurol. 2015;74:25-37 pubmed publisher
  590. Freund A, Zhong F, Venteicher A, Meng Z, Veenstra T, Frydman J, et al. Proteostatic control of telomerase function through TRiC-mediated folding of TCAB1. Cell. 2014;159:1389-403 pubmed publisher
  591. Thapa D, Nichols C, Lewis S, Shepherd D, Jagannathan R, Croston T, et al. Transgenic overexpression of mitofilin attenuates diabetes mellitus-associated cardiac and mitochondria dysfunction. J Mol Cell Cardiol. 2015;79:212-23 pubmed publisher
  592. Tang E, Mok K, Lee W, Cheng C. EB1 regulates tubulin and actin cytoskeletal networks at the sertoli cell blood-testis barrier in male rats: an in vitro study. Endocrinology. 2015;156:680-93 pubmed publisher
  593. Barbarin A, Séité P, Godet J, Bensalma S, Muller J, Chadéneau C. Atypical nuclear localization of VIP receptors in glioma cell lines and patients. Biochem Biophys Res Commun. 2014;454:524-30 pubmed publisher
  594. Guo L, Bai H, Zou D, Hong T, Liu J, Huang J, et al. The role of microRNA-133b and its target gene FSCN1 in gastric cancer. J Exp Clin Cancer Res. 2014;33:99 pubmed publisher
  595. Vigelsø A, Dybboe R, Hansen C, Dela F, Helge J, Guadalupe Grau A. GAPDH and β-actin protein decreases with aging, making Stain-Free technology a superior loading control in Western blotting of human skeletal muscle. J Appl Physiol (1985). 2015;118:386-94 pubmed publisher
  596. Rovetta A, Peña D, Hernández Del Pino R, Recalde G, Pellegrini J, Bigi F, et al. IFNG-mediated immune responses enhance autophagy against Mycobacterium tuberculosis antigens in patients with active tuberculosis. Autophagy. 2014;10:2109-21 pubmed publisher
  597. Caminos E, Garcia Pino E, Juiz J. Loss of auditory activity modifies the location of potassium channel KCNQ5 in auditory brainstem neurons. J Neurosci Res. 2015;93:604-14 pubmed publisher
  598. Shirasago Y, Sekizuka T, Saito K, Suzuki T, Wakita T, Hanada K, et al. Isolation and characterization of an Huh.7.5.1-derived cell clone highly permissive to hepatitis C virus. Jpn J Infect Dis. 2015;68:81-8 pubmed publisher
  599. Avitzour M, Mor Shaked H, Yanovsky Dagan S, Aharoni S, Altarescu G, Renbaum P, et al. FMR1 epigenetic silencing commonly occurs in undifferentiated fragile X-affected embryonic stem cells. Stem Cell Reports. 2014;3:699-706 pubmed publisher
  600. Chang S, Chang W, Lu C, Tarn W. Alanine repeats influence protein localization in splicing speckles and paraspeckles. Nucleic Acids Res. 2014;42:13788-98 pubmed publisher
  601. Yin Y, Zhang S, Luo H, Zhang X, Geng G, Li J, et al. Interleukin 7 up-regulates CD95 protein on CD4+ T cells by affecting mRNA alternative splicing: priming for a synergistic effect on HIV-1 reservoir maintenance. J Biol Chem. 2015;290:35-45 pubmed publisher
  602. Grünhagen J, Bhushan R, Degenkolbe E, Jäger M, Knaus P, Mundlos S, et al. MiR-497∼195 cluster microRNAs regulate osteoblast differentiation by targeting BMP signaling. J Bone Miner Res. 2015;30:796-808 pubmed publisher
  603. Shriver M, Stroka K, Vitolo M, Martin S, Huso D, Konstantopoulos K, et al. Loss of giant obscurins from breast epithelium promotes epithelial-to-mesenchymal transition, tumorigenicity and metastasis. Oncogene. 2015;34:4248-59 pubmed publisher
  604. Blair B, Wu X, Zahari M, Mohseni M, Cidado J, Wong H, et al. A phosphoproteomic screen demonstrates differential dependence on HER3 for MAP kinase pathway activation by distinct PIK3CA mutations. Proteomics. 2015;15:318-26 pubmed publisher
  605. Cubeñas Potts C, Srikumar T, Lee C, Osula O, Subramonian D, Zhang X, et al. Identification of SUMO-2/3-modified proteins associated with mitotic chromosomes. Proteomics. 2015;15:763-72 pubmed publisher
  606. Israeli Rosenberg S, Chen C, Li R, Deussen D, Niesman I, Okada H, et al. Caveolin modulates integrin function and mechanical activation in the cardiomyocyte. FASEB J. 2015;29:374-84 pubmed publisher
  607. Mooren O, Li J, Nawas J, Cooper J. Endothelial cells use dynamic actin to facilitate lymphocyte transendothelial migration and maintain the monolayer barrier. Mol Biol Cell. 2014;25:4115-29 pubmed publisher
  608. Munday D, Wu W, Smith N, Fix J, Noton S, Galloux M, et al. Interactome analysis of the human respiratory syncytial virus RNA polymerase complex identifies protein chaperones as important cofactors that promote L-protein stability and RNA synthesis. J Virol. 2015;89:917-30 pubmed publisher
  609. Sedlmeier E, Brunner S, Much D, Pagel P, Ulbrich S, Meyer H, et al. Human placental transcriptome shows sexually dimorphic gene expression and responsiveness to maternal dietary n-3 long-chain polyunsaturated fatty acid intervention during pregnancy. BMC Genomics. 2014;15:941 pubmed publisher
  610. Huang Y, Chen J, Lu C, Han J, Wang G, Song C, et al. HDAC1 and Klf4 interplay critically regulates human myeloid leukemia cell proliferation. Cell Death Dis. 2014;5:e1491 pubmed publisher
  611. Kaiser A, Jenewein B, Pircher H, Rostek U, Jansen Dürr P, Zwerschke W. Analysis of human papillomavirus E7 protein status in C-33A cervical cancer cells. Virus Genes. 2015;50:12-21 pubmed publisher
  612. Hofmann A, Takahashi T, Duess J, Gosemann J, Puri P. Increased pulmonary vascular expression of Krüppel-like factor 5 and activated survivin in experimental congenital diaphragmatic hernia. Pediatr Surg Int. 2014;30:1191-7 pubmed publisher
  613. Durk M, Fan J, Sun H, Yang Y, Pang H, Pang K, et al. Vitamin D receptor activation induces P-glycoprotein and increases brain efflux of quinidine: an intracerebral microdialysis study in conscious rats. Pharm Res. 2015;32:1128-40 pubmed publisher
  614. Oujo B, Muñoz Félix J, Arévalo M, Núñez Gómez E, Pérez Roque L, Pericacho M, et al. L-Endoglin overexpression increases renal fibrosis after unilateral ureteral obstruction. PLoS ONE. 2014;9:e110365 pubmed publisher
  615. Otabe K, Nakahara H, Hasegawa A, Matsukawa T, Ayabe F, Onizuka N, et al. Transcription factor Mohawk controls tenogenic differentiation of bone marrow mesenchymal stem cells in vitro and in vivo. J Orthop Res. 2015;33:1-8 pubmed publisher
  616. Hirota Y, Kubo K, Katayama K, Honda T, Fujino T, Yamamoto T, et al. Reelin receptors ApoER2 and VLDLR are expressed in distinct spatiotemporal patterns in developing mouse cerebral cortex. J Comp Neurol. 2015;523:463-78 pubmed publisher
  617. Xu H, Zhou Y, Coughlan K, Ding Y, Wang S, Wu Y, et al. AMPKα1 deficiency promotes cellular proliferation and DNA damage via p21 reduction in mouse embryonic fibroblasts. Biochim Biophys Acta. 2015;1853:65-73 pubmed publisher
  618. Wu J, Lv Q, He J, Zhang H, Mei X, Cui K, et al. MicroRNA-188 suppresses G1/S transition by targeting multiple cyclin/CDK complexes. Cell Commun Signal. 2014;12:66 pubmed publisher
  619. Ling C, Wang Y, Zhang Y, Ejjigani A, Yin Z, Lu Y, et al. Selective in vivo targeting of human liver tumors by optimized AAV3 vectors in a murine xenograft model. Hum Gene Ther. 2014;25:1023-34 pubmed publisher
  620. Maney N, Reynolds G, Krippner Heidenreich A, Hilkens C. Dendritic cell maturation and survival are differentially regulated by TNFR1 and TNFR2. J Immunol. 2014;193:4914-4923 pubmed publisher
  621. 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
  622. Kaneko M, Noguchi T, Ikegami S, Sakurai T, Kakita A, Toyoshima Y, et al. Zinc transporters ZnT3 and ZnT6 are downregulated in the spinal cords of patients with sporadic amyotrophic lateral sclerosis. J Neurosci Res. 2015;93:370-9 pubmed publisher
  623. Lin Z, Xu Y, Namgoong S, Kim N. JMY functions as actin nucleation-promoting factor and mediator for p53-mediated DNA damage in porcine oocytes. PLoS ONE. 2014;9:e109385 pubmed publisher
  624. Brun C, Périé L, Baraige F, Vernus B, Bonnieu A, Blanquet V. Absence of hyperplasia in Gasp-1 overexpressing mice is dependent on myostatin up-regulation. Cell Physiol Biochem. 2014;34:1241-59 pubmed publisher
  625. Hsieh Y, Yang C, Liu S, Chou L, Hong C. Remote dose-dependent effects of dry needling at distant myofascial trigger spots of rabbit skeletal muscles on reduction of substance P levels of proximal muscle and spinal cords. Biomed Res Int. 2014;2014:982121 pubmed publisher
  626. Provenzano G, Pangrazzi L, Poli A, Pernigo M, Sgadò P, Genovesi S, et al. Hippocampal dysregulation of neurofibromin-dependent pathways is associated with impaired spatial learning in engrailed 2 knock-out mice. J Neurosci. 2014;34:13281-8 pubmed publisher
  627. Moreau K, Fleming A, Imarisio S, Lopez Ramirez A, Mercer J, Jimenez Sanchez M, et al. PICALM modulates autophagy activity and tau accumulation. Nat Commun. 2014;5:4998 pubmed publisher
  628. Gingold J, Fidalgo M, Guallar D, Lau Z, Sun Z, Zhou H, et al. A genome-wide RNAi screen identifies opposing functions of Snai1 and Snai2 on the Nanog dependency in reprogramming. Mol Cell. 2014;56:140-52 pubmed publisher
  629. Young D, Fong D, Lawlor P, Wu A, Mouravlev A, McRae M, et al. Adenosine kinase, glutamine synthetase and EAAT2 as gene therapy targets for temporal lobe epilepsy. Gene Ther. 2014;21:1029-40 pubmed publisher
  630. Tan X, Peng J, Fu Y, An S, Rezaei K, Tabbara S, et al. miR-638 mediated regulation of BRCA1 affects DNA repair and sensitivity to UV and cisplatin in triple-negative breast cancer. Breast Cancer Res. 2014;16:435 pubmed publisher
  631. Kang C, Lin J, Xu Z, Kumar S, Herr A. Single-cell Western blotting after whole-cell imaging to assess cancer chemotherapeutic response. Anal Chem. 2014;86:10429-36 pubmed publisher
  632. Kurokawa K, Mizuno K, Ohkuma S. Sensitization of ethanol-induced place preference as a result of up-regulation of type 1 inositol 1,4,5-trisphosphate receptors in mouse nucleus accumbens. J Neurochem. 2014;131:836-47 pubmed publisher
  633. Zhang S, Tang W, Weng S, Liu X, Rao B, Gu J, et al. Apollon modulates chemosensitivity in human esophageal squamous cell carcinoma. Oncotarget. 2014;5:7183-97 pubmed
  634. Haddock C, Blomenkamp K, Gautam M, James J, Mielcarska J, Gogol E, et al. PiZ mouse liver accumulates polyubiquitin conjugates that associate with catalytically active 26S proteasomes. PLoS ONE. 2014;9:e106371 pubmed publisher
  635. Sonzogni S, Ogara M, Castillo D, Sirkin P, Radicella J, Cánepa E. Nuclear translocation of p19INK4d in response to oxidative DNA damage promotes chromatin relaxation. Mol Cell Biochem. 2015;398:63-72 pubmed publisher
  636. Tantra M, Kröcher T, Papiol S, Winkler D, Röckle I, Jatho J, et al. St8sia2 deficiency plus juvenile cannabis exposure in mice synergistically affect higher cognition in adulthood. Behav Brain Res. 2014;275:166-75 pubmed publisher
  637. Zieger M, Ahnelt P, Uhrin P. CX3CL1 (fractalkine) protein expression in normal and degenerating mouse retina: in vivo studies. PLoS ONE. 2014;9:e106562 pubmed publisher
  638. Perez Bay A, Schreiner R, Benedicto I, RODRIGUEZ BOULAN E. Galectin-4-mediated transcytosis of transferrin receptor. J Cell Sci. 2014;127:4457-69 pubmed publisher
  639. Eberle M, Ebel P, Wegner M, Männich J, Tafferner N, Ferreirós N, et al. Regulation of ceramide synthase 6 in a spontaneous experimental autoimmune encephalomyelitis model is sex dependent. Biochem Pharmacol. 2014;92:326-35 pubmed publisher
  640. García E, Machesky L, Jones G, Antón I. WIP is necessary for matrix invasion by breast cancer cells. Eur J Cell Biol. 2014;93:413-23 pubmed publisher
  641. Maarouf C, Kokjohn T, Walker D, Whiteside C, Kalback W, Whetzel A, et al. Biochemical assessment of precuneus and posterior cingulate gyrus in the context of brain aging and Alzheimer's disease. PLoS ONE. 2014;9:e105784 pubmed publisher
  642. Niu F, Yao H, Zhang W, Sutliff R, Buch S. Tat 101-mediated enhancement of brain pericyte migration involves platelet-derived growth factor subunit B homodimer: implications for human immunodeficiency virus-associated neurocognitive disorders. J Neurosci. 2014;34:11812-25 pubmed publisher
  643. Dvoriantchikova G, Ivanov D. Tumor necrosis factor-alpha mediates activation of NF-κB and JNK signaling cascades in retinal ganglion cells and astrocytes in opposite ways. Eur J Neurosci. 2014;40:3171-8 pubmed publisher
  644. Welsh T, Hirst J, Palliser H, Zakar T. Progesterone receptor expression declines in the guinea pig uterus during functional progesterone withdrawal and in response to prostaglandins. PLoS ONE. 2014;9:e105253 pubmed publisher
  645. Chen Y, Zheng Z, Zhu X, Shi Y, Tian D, Zhao F, et al. Lactoferrin Promotes Early Neurodevelopment and Cognition in Postnatal Piglets by Upregulating the BDNF Signaling Pathway and Polysialylation. Mol Neurobiol. 2015;52:256-69 pubmed publisher
  646. 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
  647. Olivier Van Stichelen S, Hanover J. X-inactivation normalizes O-GlcNAc transferase levels and generates an O-GlcNAc-depleted Barr body. Front Genet. 2014;5:256 pubmed publisher
  648. Chang Y, Chang W, Hung K, Yang D, Cheng Y, Liao Y, et al. The generation of induced pluripotent stem cells for macular degeneration as a drug screening platform: identification of curcumin as a protective agent for retinal pigment epithelial cells against oxidative stress. Front Aging Neurosci. 2014;6:191 pubmed publisher
  649. Han P, Zhou X, Chang N, Xiao C, Yan S, Ren H, et al. Hydrogen peroxide primes heart regeneration with a derepression mechanism. Cell Res. 2014;24:1091-107 pubmed publisher
  650. Carrillo Sepúlveda M, Keen H, Davis D, Grobe J, Sigmund C. Role of vascular smooth muscle PPARγ in regulating AT1 receptor signaling and angiotensin II-dependent hypertension. PLoS ONE. 2014;9:e103786 pubmed publisher
  651. Sarkar J, Simanian E, Tuggy S, Bartlett J, Snead M, Sugiyama T, et al. Comparison of two mouse ameloblast-like cell lines for enamel-specific gene expression. Front Physiol. 2014;5:277 pubmed publisher
  652. Park S, Park J, Kim Y, Song S, Kwon H, Lee Y. Suberoylanilide hydroxamic acid induces ROS-mediated cleavage of HSP90 in leukemia cells. Cell Stress Chaperones. 2015;20:149-57 pubmed publisher
  653. Wilson S, Tocchi A, Holly M, Parks W, Smith J. A small intestinal organoid model of non-invasive enteric pathogen-epithelial cell interactions. Mucosal Immunol. 2015;8:352-61 pubmed publisher
  654. Curto G, Nieto Estévez V, Hurtado Chong A, Valero J, Gómez C, Alonso J, et al. Pax6 is essential for the maintenance and multi-lineage differentiation of neural stem cells, and for neuronal incorporation into the adult olfactory bulb. Stem Cells Dev. 2014;23:2813-30 pubmed publisher
  655. Tsai Y, Lai C, Lai C, Chang K, Wu K, Tseng S, et al. The role of homeostatic regulation between tumor suppressor DAB2IP and oncogenic Skp2 in prostate cancer growth. Oncotarget. 2014;5:6425-36 pubmed
  656. Riemer P, Sreekumar A, Reinke S, Rad R, Schäfer R, Sers C, et al. Transgenic expression of oncogenic BRAF induces loss of stem cells in the mouse intestine, which is antagonized by β-catenin activity. Oncogene. 2015;34:3164-75 pubmed publisher
  657. Dutta B, Yan R, Lim S, Tam J, Sze S. Quantitative profiling of chromatome dynamics reveals a novel role for HP1BP3 in hypoxia-induced oncogenesis. Mol Cell Proteomics. 2014;13:3236-49 pubmed publisher
  658. Zhang P, Wei Y, Wang L, Debeb B, Yuan Y, Zhang J, et al. ATM-mediated stabilization of ZEB1 promotes DNA damage response and radioresistance through CHK1. Nat Cell Biol. 2014;16:864-75 pubmed publisher
  659. Nagakura I, Van Wart A, Petravicz J, Tropea D, Sur M. STAT1 regulates the homeostatic component of visual cortical plasticity via an AMPA receptor-mediated mechanism. J Neurosci. 2014;34:10256-63 pubmed publisher
  660. Clewell R, Sun B, Adeleye Y, Carmichael P, Efremenko A, McMullen P, et al. Profiling dose-dependent activation of p53-mediated signaling pathways by chemicals with distinct mechanisms of DNA damage. Toxicol Sci. 2014;142:56-73 pubmed publisher
  661. Calabro S, Maczurek A, Morgan A, Tu T, Wen V, Yee C, et al. Hepatocyte produced matrix metalloproteinases are regulated by CD147 in liver fibrogenesis. PLoS ONE. 2014;9:e90571 pubmed publisher
  662. Wang B, Zhang Y, Liu T, Shi J, Sun F, Gui J. Fish viperin exerts a conserved antiviral function through RLR-triggered IFN signaling pathway. Dev Comp Immunol. 2014;47:140-9 pubmed publisher
  663. Requejo Aguilar R, Lopez Fabuel I, Fernandez E, Martins L, Almeida A, Bolanos J. PINK1 deficiency sustains cell proliferation by reprogramming glucose metabolism through HIF1. Nat Commun. 2014;5:4514 pubmed publisher
  664. Desideri E, Vegliante R, Cardaci S, Nepravishta R, Paci M, Ciriolo M. MAPK14/p38?-dependent modulation of glucose metabolism affects ROS levels and autophagy during starvation. Autophagy. 2014;10:1652-65 pubmed publisher
  665. Syhr K, Kallenborn Gerhardt W, Lu R, Olbrich K, Schmitz K, Männich J, et al. Lack of effect of a P2Y6 receptor antagonist on neuropathic pain behavior in mice. Pharmacol Biochem Behav. 2014;124:389-95 pubmed publisher
  666. Joly S, Jordi N, Schwab M, Pernet V. The Ephrin receptor EphA4 restricts axonal sprouting and enhances branching in the injured mouse optic nerve. Eur J Neurosci. 2014;40:3021-31 pubmed publisher
  667. Moorwood C, Philippou A, Spinazzola J, Keyser B, Macarak E, Barton E. Absence of ?-sarcoglycan alters the response of p70S6 kinase to mechanical perturbation in murine skeletal muscle. Skelet Muscle. 2014;4:13 pubmed publisher
  668. Vachharajani V, Liu T, Brown C, Wang X, Buechler N, Wells J, et al. SIRT1 inhibition during the hypoinflammatory phenotype of sepsis enhances immunity and improves outcome. J Leukoc Biol. 2014;96:785-96 pubmed publisher
  669. Walker M, Volta M, Cataldi S, Dinelle K, Beccano Kelly D, Munsie L, et al. Behavioral deficits and striatal DA signaling in LRRK2 p.G2019S transgenic rats: a multimodal investigation including PET neuroimaging. J Parkinsons Dis. 2014;4:483-98 pubmed publisher
  670. Ni Z, Xu C, Guo X, Hunter G, Kuznetsova O, Tempel W, et al. RPRD1A and RPRD1B are human RNA polymerase II C-terminal domain scaffolds for Ser5 dephosphorylation. Nat Struct Mol Biol. 2014;21:686-695 pubmed publisher
  671. Cowling R, Yeo S, Kim I, Park J, Gu Y, Dalton N, et al. Discoidin domain receptor 2 germline gene deletion leads to altered heart structure and function in the mouse. Am J Physiol Heart Circ Physiol. 2014;307:H773-81 pubmed publisher
  672. Charan R, Johnson B, Zaganelli S, Nardozzi J, LaVoie M. Inhibition of apoptotic Bax translocation to the mitochondria is a central function of parkin. Cell Death Dis. 2014;5:e1313 pubmed publisher
  673. Aligny C, Roux C, Dourmap N, Ramdani Y, do Rego J, Jegou S, et al. Ketamine alters cortical integration of GABAergic interneurons and induces long-term sex-dependent impairments in transgenic Gad67-GFP mice. Cell Death Dis. 2014;5:e1311 pubmed publisher
  674. Zhang X, Shi H, Chen J, Shi D, Li C, Feng L. EF1A interacting with nucleocapsid protein of transmissible gastroenteritis coronavirus and plays a role in virus replication. Vet Microbiol. 2014;172:443-8 pubmed publisher
  675. Olenich S, Audet G, Roberts K, Olfert I. Effects of detraining on the temporal expression of positive and negative angioregulatory proteins in skeletal muscle of mice. J Physiol. 2014;592:3325-38 pubmed publisher
  676. Stechschulte L, Hinds T, Khuder S, Shou W, Najjar S, SANCHEZ E. FKBP51 controls cellular adipogenesis through p38 kinase-mediated phosphorylation of GR? and PPAR?. Mol Endocrinol. 2014;28:1265-75 pubmed publisher
  677. Chung L, Bailey D, Leen E, Emmott E, Chaudhry Y, Roberts L, et al. Norovirus translation requires an interaction between the C Terminus of the genome-linked viral protein VPg and eukaryotic translation initiation factor 4G. J Biol Chem. 2014;289:21738-50 pubmed publisher
  678. Lebron M, Brennan L, Damoci C, Prewett M, O Mahony M, Duignan I, et al. A human monoclonal antibody targeting the stem cell factor receptor (c-Kit) blocks tumor cell signaling and inhibits tumor growth. Cancer Biol Ther. 2014;15:1208-18 pubmed publisher
  679. Kolanczyk M, Krawitz P, Hecht J, Hupalowska A, Miaczynska M, Marschner K, et al. Missense variant in CCDC22 causes X-linked recessive intellectual disability with features of Ritscher-Schinzel/3C syndrome. Eur J Hum Genet. 2015;23:633-8 pubmed publisher
  680. Screen M, Jonson P, Raheem O, Palmio J, Laaksonen R, Lehtimaki T, et al. Abnormal splicing of NEDD4 in myotonic dystrophy type 2: possible link to statin adverse reactions. Am J Pathol. 2014;184:2322-32 pubmed publisher
  681. Lamarca A, Gella A, Martiáñez T, Segura M, Figueiro Silva J, Grijota Martinez C, et al. Uridine 5'-triphosphate promotes in vitro Schwannoma cell migration through matrix metalloproteinase-2 activation. PLoS ONE. 2014;9:e98998 pubmed publisher
  682. Premkumar M, Sule G, Nagamani S, Chakkalakal S, Nordin A, Jain M, et al. Argininosuccinate lyase in enterocytes protects from development of necrotizing enterocolitis. Am J Physiol Gastrointest Liver Physiol. 2014;307:G347-54 pubmed publisher
  683. Chien P, Hsieh H, Chi P, Yang C. PAR1-dependent COX-2/PGE2 production contributes to cell proliferation via EP2 receptors in primary human cardiomyocytes. Br J Pharmacol. 2014;171:4504-19 pubmed publisher
  684. Relógio A, Thomas P, Medina Pérez P, Reischl S, Bervoets S, Gloc E, et al. Ras-mediated deregulation of the circadian clock in cancer. PLoS Genet. 2014;10:e1004338 pubmed publisher
  685. Chapnik E, Rivkin N, Mildner A, Beck G, Pasvolsky R, Metzl Raz E, et al. miR-142 orchestrates a network of actin cytoskeleton regulators during megakaryopoiesis. elife. 2014;3:e01964 pubmed publisher
  686. Shin J, Le Dour C, Sera F, Iwata S, Homma S, Joseph L, et al. Depletion of lamina-associated polypeptide 1 from cardiomyocytes causes cardiac dysfunction in mice. Nucleus. 2014;5:260-459 pubmed publisher
  687. Durk M, Han K, Chow E, Ahrens R, Henderson J, Fraser P, et al. 1?,25-Dihydroxyvitamin D3 reduces cerebral amyloid-? accumulation and improves cognition in mouse models of Alzheimer's disease. J Neurosci. 2014;34:7091-101 pubmed publisher
  688. Jafari M, Xu W, Pan R, Sweeting C, Karunaratne D, Chen P. Serum stability and physicochemical characterization of a novel amphipathic peptide C6M1 for siRNA delivery. PLoS ONE. 2014;9:e97797 pubmed publisher
  689. Li S, Zhou T, Li C, Dai Z, Che D, Yao Y, et al. High metastaticgastric and breast cancer cells consume oleic acid in an AMPK dependent manner. PLoS ONE. 2014;9:e97330 pubmed publisher
  690. Zavodszky E, Seaman M, Moreau K, Jimenez Sanchez M, Breusegem S, Harbour M, et al. Mutation in VPS35 associated with Parkinson's disease impairs WASH complex association and inhibits autophagy. Nat Commun. 2014;5:3828 pubmed publisher
  691. Waza A, Andrabi K, Hussain M. Protein kinase C (PKC) mediated interaction between conexin43 (Cx43) and K(+)(ATP) channel subunit (Kir6.1) in cardiomyocyte mitochondria: Implications in cytoprotection against hypoxia induced cell apoptosis. Cell Signal. 2014;26:1909-17 pubmed publisher
  692. 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
  693. Chucair Elliott A, Conrady C, Zheng M, Kroll C, Lane T, Carr D. Microglia-induced IL-6 protects against neuronal loss following HSV-1 infection of neural progenitor cells. Glia. 2014;62:1418-34 pubmed publisher
  694. Roberge S, Roussel J, Andersson D, Meli A, Vidal B, Blandel F, et al. TNF-?-mediated caspase-8 activation induces ROS production and TRPM2 activation in adult ventricular myocytes. Cardiovasc Res. 2014;103:90-9 pubmed publisher
  695. Lei Q, Pan X, Chang S, Malkowicz S, Guzzo T, Malykhina A. Response of the human detrusor to stretch is regulated by TREK-1, a two-pore-domain (K2P) mechano-gated potassium channel. J Physiol. 2014;592:3013-30 pubmed publisher
  696. Peffer M, Chandran U, Luthra S, Volonte D, Galbiati F, Garabedian M, et al. Caveolin-1 regulates genomic action of the glucocorticoid receptor in neural stem cells. Mol Cell Biol. 2014;34:2611-23 pubmed
  697. Abuali G, Chaisaklert W, Stelloo E, Pazarentzos E, Hwang M, Qize D, et al. The anticancer gene ORCTL3 targets stearoyl-CoA desaturase-1 for tumour-specific apoptosis. Oncogene. 2015;34:1718-28 pubmed publisher
  698. Ding Z, German P, Bai S, Reddy A, Liu X, Sun M, et al. Genetic and pharmacological strategies to refunctionalize the von Hippel Lindau R167Q mutant protein. Cancer Res. 2014;74:3127-36 pubmed publisher
  699. Asp N, Pust S, Sandvig K. Flotillin depletion affects ErbB protein levels in different human breast cancer cells. Biochim Biophys Acta. 2014;1843:1987-96 pubmed publisher
  700. Gonzalez Rodriguez A, Mayoral R, Agra N, Valdecantos M, Pardo V, Miquilena Colina M, et al. Impaired autophagic flux is associated with increased endoplasmic reticulum stress during the development of NAFLD. Cell Death Dis. 2014;5:e1179 pubmed publisher
  701. Sun Y, Chung H, Woo A, Lin V. Protein arginine methyltransferase 6 enhances ligand-dependent and -independent activity of estrogen receptor ? via distinct mechanisms. Biochim Biophys Acta. 2014;1843:2067-78 pubmed publisher
  702. Lomonosova Y, Shenkman B, Kalamkarov G, Kostrominova T, Nemirovskaya T. L-arginine supplementation protects exercise performance and structural integrity of muscle fibers after a single bout of eccentric exercise in rats. PLoS ONE. 2014;9:e94448 pubmed publisher
  703. Patoine A, Gaumond M, Jaiswal P, Fassier F, Rauch F, Moffatt P. Topological mapping of BRIL reveals a type II orientation and effects of osteogenesis imperfecta mutations on its cellular destination. J Bone Miner Res. 2014;29:2004-16 pubmed publisher
  704. Edwards J, Bruno J, Key P, Cheng Y. Absence of chloride intracellular channel 4 (CLIC4) predisposes to acute kidney injury but has minimal impact on recovery. BMC Nephrol. 2014;15:54 pubmed publisher
  705. Huang G, Wilson N, Reese S, Jacobson L, Zhong W, Djamali A. Characterization of transfusion-elicited acute antibody-mediated rejection in a rat model of kidney transplantation. Am J Transplant. 2014;14:1061-72 pubmed publisher
  706. Bejarano E, Yuste A, Patel B, Stout R, Spray D, Cuervo A. Connexins modulate autophagosome biogenesis. Nat Cell Biol. 2014;16:401-14 pubmed publisher
  707. Jung Y, Vermeer P, Vermeer D, Lee S, Goh A, Ahn H, et al. CD200: association with cancer stem cell features and response to chemoradiation in head and neck squamous cell carcinoma. Head Neck. 2015;37:327-35 pubmed publisher
  708. Erdozain A, Morentin B, Bedford L, King E, Tooth D, Brewer C, et al. Alcohol-related brain damage in humans. PLoS ONE. 2014;9:e93586 pubmed publisher
  709. Liu Y, Tsai I, Morleo M, Oh E, Leitch C, Massa F, et al. Ciliopathy proteins regulate paracrine signaling by modulating proteasomal degradation of mediators. J Clin Invest. 2014;124:2059-70 pubmed
  710. Wang Q, Shi S, He W, Padilla M, Zhang L, Wang X, et al. Retaining MKP1 expression and attenuating JNK-mediated apoptosis by RIP1 for cisplatin resistance through miR-940 inhibition. Oncotarget. 2014;5:1304-14 pubmed
  711. Kensler K, Slocum S, Chartoumpekis D, Dolan P, Johnson N, Ilic Z, et al. Genetic or pharmacologic activation of Nrf2 signaling fails to protect against aflatoxin genotoxicity in hypersensitive GSTA3 knockout mice. Toxicol Sci. 2014;139:293-300 pubmed publisher
  712. Li Y, Pan J, Wei C, Chen J, Liu Y, Liu J, et al. LIM homeodomain transcription factor Isl1 directs normal pyloric development by targeting Gata3. BMC Biol. 2014;12:25 pubmed publisher
  713. Sonzogni S, Ogara M, Belluscio L, Castillo D, Scassa M, Cánepa E. p19INK4d is involved in the cellular senescence mechanism contributing to heterochromatin formation. Biochim Biophys Acta. 2014;1840:2171-83 pubmed publisher
  714. Sharma A, Huard C, Vernochet C, Ziemek D, Knowlton K, Tyminski E, et al. Brown fat determination and development from muscle precursor cells by novel action of bone morphogenetic protein 6. PLoS ONE. 2014;9:e92608 pubmed publisher
  715. Rappe U, Schlechter T, Aschoff M, Hotz Wagenblatt A, Hofmann I. Nuclear ARVCF protein binds splicing factors and contributes to the regulation of alternative splicing. J Biol Chem. 2014;289:12421-34 pubmed publisher
  716. Chesarino N, McMichael T, Hach J, Yount J. Phosphorylation of the antiviral protein interferon-inducible transmembrane protein 3 (IFITM3) dually regulates its endocytosis and ubiquitination. J Biol Chem. 2014;289:11986-92 pubmed publisher
  717. Storm M, Kumpfmueller B, Bone H, Buchholz M, Sanchez Ripoll Y, Chaudhuri J, et al. Zscan4 is regulated by PI3-kinase and DNA-damaging agents and directly interacts with the transcriptional repressors LSD1 and CtBP2 in mouse embryonic stem cells. PLoS ONE. 2014;9:e89821 pubmed publisher
  718. Grewal N, Gittenberger de Groot A, Poelmann R, Klautz R, Lindeman J, Goumans M, et al. Ascending aorta dilation in association with bicuspid aortic valve: a maturation defect of the aortic wall. J Thorac Cardiovasc Surg. 2014;148:1583-90 pubmed publisher
  719. Yeo J, Lee E, Hendrickson E, Sobeck A. CtIP mediates replication fork recovery in a FANCD2-regulated manner. Hum Mol Genet. 2014;23:3695-705 pubmed publisher
  720. Kuo H, Liu H, Chuang Y, Birder L, Chancellor M. Pilot study of liposome-encapsulated onabotulinumtoxina for patients with overactive bladder: a single-center study. Eur Urol. 2014;65:1117-24 pubmed publisher
  721. Farg M, Sundaramoorthy V, Sultana J, Yang S, Atkinson R, Levina V, et al. C9ORF72, implicated in amytrophic lateral sclerosis and frontotemporal dementia, regulates endosomal trafficking. Hum Mol Genet. 2014;23:3579-95 pubmed publisher
  722. Puolakkainen P, Koski A, Vainionpää S, Shen Z, Repo H, Kemppainen E, et al. Anti-inflammatory macrophages activate invasion in pancreatic adenocarcinoma by increasing the MMP9 and ADAM8 expression. Med Oncol. 2014;31:884 pubmed publisher
  723. Muenyi C, Trivedi A, Helm C, States J. Cisplatin plus sodium arsenite and hyperthermia induces pseudo-G1 associated apoptotic cell death in ovarian cancer cells. Toxicol Sci. 2014;139:74-82 pubmed publisher
  724. Born N, Thiesen H, Lorenz P. The B-subdomain of the Xenopus laevis XFIN KRAB-AB domain is responsible for its weaker transcriptional repressor activity compared to human ZNF10/Kox1. PLoS ONE. 2014;9:e87609 pubmed publisher
  725. 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
  726. Yik J, Hu Z, Kumari R, Christiansen B, Haudenschild D. Cyclin-dependent kinase 9 inhibition protects cartilage from the catabolic effects of proinflammatory cytokines. Arthritis Rheumatol. 2014;66:1537-46 pubmed publisher
  727. Arnandis T, Ferrer Vicens I, Torres L, García C, García Trevijano E, Zaragoza R, et al. Differential functions of calpain 1 during epithelial cell death and adipocyte differentiation in mammary gland involution. Biochem J. 2014;459:355-68 pubmed publisher
  728. Galicia Vázquez G, Di Marco S, Lian X, Ma J, Gallouzi I, Pelletier J. Regulation of eukaryotic initiation factor 4AII by MyoD during murine myogenic cell differentiation. PLoS ONE. 2014;9:e87237 pubmed publisher
  729. Bayer M, Schjerling P, Herchenhan A, Zeltz C, Heinemeier K, Christensen L, et al. Release of tensile strain on engineered human tendon tissue disturbs cell adhesions, changes matrix architecture, and induces an inflammatory phenotype. PLoS ONE. 2014;9:e86078 pubmed publisher
  730. Kapoor Vazirani P, Vertino P. A dual role for the histone methyltransferase PR-SET7/SETD8 and histone H4 lysine 20 monomethylation in the local regulation of RNA polymerase II pausing. J Biol Chem. 2014;289:7425-37 pubmed publisher
  731. Gangoso E, Thirant C, Chneiweiss H, Medina J, Tabernero A. A cell-penetrating peptide based on the interaction between c-Src and connexin43 reverses glioma stem cell phenotype. Cell Death Dis. 2014;5:e1023 pubmed publisher
  732. Cao Q, Wang X, Zhao M, Yang R, Malik R, Qiao Y, et al. The central role of EED in the orchestration of polycomb group complexes. Nat Commun. 2014;5:3127 pubmed publisher
  733. Cao M, Hou D, Liang H, Gong F, Wang Y, Yan X, et al. miR-150 promotes the proliferation and migration of lung cancer cells by targeting SRC kinase signalling inhibitor 1. Eur J Cancer. 2014;50:1013-24 pubmed publisher
  734. Wong Y, Holzbaur E. The regulation of autophagosome dynamics by huntingtin and HAP1 is disrupted by expression of mutant huntingtin, leading to defective cargo degradation. J Neurosci. 2014;34:1293-305 pubmed publisher
  735. Dannoura A, Giraldo A, Pereira I, Gibbins J, Dash P, Bicknell K, et al. Ibuprofen inhibits migration and proliferation of human coronary artery smooth muscle cells by inducing a differentiated phenotype: role of peroxisome proliferator-activated receptor ?. J Pharm Pharmacol. 2014;66:779-92 pubmed publisher
  736. Ashraf M, Ebner M, Wallner C, Haller M, Khalid S, Schwelberger H, et al. A p38MAPK/MK2 signaling pathway leading to redox stress, cell death and ischemia/reperfusion injury. Cell Commun Signal. 2014;12:6 pubmed publisher
  737. Bots M, Verbrugge I, Martin B, Salmon J, Ghisi M, Baker A, et al. Differentiation therapy for the treatment of t(8;21) acute myeloid leukemia using histone deacetylase inhibitors. Blood. 2014;123:1341-52 pubmed publisher
  738. Al Sawaf O, Fragoulis A, Rosen C, Kan Y, Sönmez T, Pufe T, et al. Nrf2 protects against TWEAK-mediated skeletal muscle wasting. Sci Rep. 2014;4:3625 pubmed publisher
  739. Yan X, Lin J, Talabattula V, Mußmann C, Yang F, Wree A, et al. ADAM10 negatively regulates neuronal differentiation during spinal cord development. PLoS ONE. 2014;9:e84617 pubmed publisher
  740. Tsuyuki S, Takabayashi M, Kawazu M, Kudo K, Watanabe A, Nagata Y, et al. Detection of WIPI1 mRNA as an indicator of autophagosome formation. Autophagy. 2014;10:497-513 pubmed publisher
  741. Nakajima M, Honda T, Miyauchi S, Yamazaki K. Th2 cytokines efficiently stimulate periostin production in gingival fibroblasts but periostin does not induce an inflammatory response in gingival epithelial cells. Arch Oral Biol. 2014;59:93-101 pubmed publisher
  742. 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
  743. Xavier J, Morgado A, Sola S, Rodrigues C. Mitochondrial translocation of p53 modulates neuronal fate by preventing differentiation-induced mitochondrial stress. Antioxid Redox Signal. 2014;21:1009-24 pubmed publisher
  744. 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
  745. Gao X, Zhang J, Zhang J, Zou H, Liu J. Identification of rat respiratory mucosa stem cells and comparison of the early neural differentiation potential with the bone marrow mesenchymal stem cells in vitro. Cell Mol Neurobiol. 2014;34:257-68 pubmed publisher
  746. Lewis S, Hedman C, Ziegler T, Ricke W, Jorgensen J. Steroidogenic factor 1 promotes aggressive growth of castration-resistant prostate cancer cells by stimulating steroid synthesis and cell proliferation. Endocrinology. 2014;155:358-69 pubmed publisher
  747. Shtam T, Kovalev R, Varfolomeeva E, Makarov E, Kil Y, Filatov M. Exosomes are natural carriers of exogenous siRNA to human cells in vitro. Cell Commun Signal. 2013;11:88 pubmed publisher
  748. Arora S, Saini S, Fukuhara S, Majid S, Shahryari V, Yamamura S, et al. MicroRNA-4723 inhibits prostate cancer growth through inactivation of the Abelson family of nonreceptor protein tyrosine kinases. PLoS ONE. 2013;8:e78023 pubmed publisher
  749. Chang K, Chang W, Chang Y, Hung L, Lai C, Yeh Y, et al. Ran GTPase-activating protein 1 is a therapeutic target in diffuse large B-cell lymphoma. PLoS ONE. 2013;8:e79863 pubmed publisher
  750. Dong P, Kaneuchi M, Xiong Y, Cao L, Cai M, Liu X, et al. Identification of KLF17 as a novel epithelial to mesenchymal transition inducer via direct activation of TWIST1 in endometrioid endometrial cancer. Carcinogenesis. 2014;35:760-8 pubmed publisher
  751. Chittoor V, Sooyeon L, Rangaraju S, Nicks J, Schmidt J, Madorsky I, et al. Biochemical characterization of protein quality control mechanisms during disease progression in the C22 mouse model of CMT1A. ASN Neuro. 2013;5:e00128 pubmed publisher
  752. Chua J, Reddy S, Merry D, Adachi H, Katsuno M, Sobue G, et al. Transcriptional activation of TFEB/ZKSCAN3 target genes underlies enhanced autophagy in spinobulbar muscular atrophy. Hum Mol Genet. 2014;23:1376-86 pubmed publisher
  753. Alqudah M, Agarwal S, Al Keilani M, Sibenaller Z, Ryken T, Assem M. NOTCH3 is a prognostic factor that promotes glioma cell proliferation, migration and invasion via activation of CCND1 and EGFR. PLoS ONE. 2013;8:e77299 pubmed publisher
  754. Wang D, Liu P, Hung H, Chen T. Both PKM? and KIBRA are closely related to reference memory but not working memory in a T-maze task in rats. J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2014;200:77-82 pubmed publisher
  755. Elisia I, Kitts D. Modulation of NF-?B and Nrf2 control of inflammatory responses in FHs 74 Int cell line is tocopherol isoform-specific. Am J Physiol Gastrointest Liver Physiol. 2013;305:G940-9 pubmed publisher
  756. Di Carlo V, Grossi E, Laneve P, Morlando M, Dini Modigliani S, Ballarino M, et al. TDP-43 regulates the microprocessor complex activity during in vitro neuronal differentiation. Mol Neurobiol. 2013;48:952-63 pubmed publisher
  757. Gurha P, Wang T, Larimore A, Sassi Y, Abreu Goodger C, Ramirez M, et al. microRNA-22 promotes heart failure through coordinate suppression of PPAR/ERR-nuclear hormone receptor transcription. PLoS ONE. 2013;8:e75882 pubmed publisher
  758. Kyöstilä K, Lappalainen A, Lohi H. Canine chondrodysplasia caused by a truncating mutation in collagen-binding integrin alpha subunit 10. PLoS ONE. 2013;8:e75621 pubmed publisher
  759. Jiang K, Ren C, Nair V. MicroRNA-137 represses Klf4 and Tbx3 during differentiation of mouse embryonic stem cells. Stem Cell Res. 2013;11:1299-313 pubmed publisher
  760. Fan C, Tian Y, Miao Y, Lin X, Zhang X, Jiang G, et al. ASAP3 expression in non-small cell lung cancer: association with cancer development and patients' clinical outcome. Tumour Biol. 2014;35:1489-94 pubmed
  761. Murholm M, Isidor M, Basse A, Winther S, Sørensen C, Skovgaard Petersen J, et al. Retinoic acid has different effects on UCP1 expression in mouse and human adipocytes. BMC Cell Biol. 2013;14:41 pubmed publisher
  762. Goodwin A, Tidyman W, Jheon A, Sharir A, Zheng X, Charles C, et al. Abnormal Ras signaling in Costello syndrome (CS) negatively regulates enamel formation. Hum Mol Genet. 2014;23:682-92 pubmed publisher
  763. Kr cher T, Malinovskaja K, J rgenson M, Aonurm Helm A, Zharkovskaya T, Kalda A, et al. Schizophrenia-like phenotype of polysialyltransferase ST8SIA2-deficient mice. Brain Struct Funct. 2015;220:71-83 pubmed publisher
  764. Gao H, Fisher P, Lambi A, WADE C, Barr Gillespie A, Popoff S, et al. Increased serum and musculotendinous fibrogenic proteins following persistent low-grade inflammation in a rat model of long-term upper extremity overuse. PLoS ONE. 2013;8:e71875 pubmed publisher
  765. Dave J, Kang H, Abbey C, Maxwell S, Bayless K. Proteomic profiling of endothelial invasion revealed receptor for activated C kinase 1 (RACK1) complexed with vimentin to regulate focal adhesion kinase (FAK). J Biol Chem. 2013;288:30720-33 pubmed publisher
  766. Chen Y, Kamili A, Hardy J, Groblewski G, Khanna K, Byrne J. Tumor protein D52 represents a negative regulator of ATM protein levels. Cell Cycle. 2013;12:3083-97 pubmed publisher
  767. Voss M, Campbell K, Saranzewa N, Campbell D, Hastie C, Peggie M, et al. Protein phosphatase 4 is phosphorylated and inactivated by Cdk in response to spindle toxins and interacts with ?-tubulin. Cell Cycle. 2013;12:2876-87 pubmed publisher
  768. Perlson E, Hendricks A, Lazarus J, Ben Yaakov K, Gradus T, Tokito M, et al. Dynein interacts with the neural cell adhesion molecule (NCAM180) to tether dynamic microtubules and maintain synaptic density in cortical neurons. J Biol Chem. 2013;288:27812-24 pubmed publisher
  769. Shimojo M, Shudo Y, Ikeda M, Kobashi T, Ito S. The small cell lung cancer-specific isoform of RE1-silencing transcription factor (REST) is regulated by neural-specific Ser/Arg repeat-related protein of 100 kDa (nSR100). Mol Cancer Res. 2013;11:1258-68 pubmed publisher
  770. Jakobsson M, Moen A, Bousset L, Egge Jacobsen W, Kernstock S, Melki R, et al. Identification and characterization of a novel human methyltransferase modulating Hsp70 protein function through lysine methylation. J Biol Chem. 2013;288:27752-63 pubmed publisher
  771. Guo H, Gao M, Lu Y, Liang J, Lorenzi P, Bai S, et al. Coordinate phosphorylation of multiple residues on single AKT1 and AKT2 molecules. Oncogene. 2014;33:3463-72 pubmed publisher
  772. Holle A, Tang X, Vijayraghavan D, Vincent L, Fuhrmann A, Choi Y, et al. In situ mechanotransduction via vinculin regulates stem cell differentiation. Stem Cells. 2013;31:2467-77 pubmed publisher
  773. Dokas J, Chadt A, Nolden T, Himmelbauer H, Zierath J, Joost H, et al. Conventional knockout of Tbc1d1 in mice impairs insulin- and AICAR-stimulated glucose uptake in skeletal muscle. Endocrinology. 2013;154:3502-14 pubmed publisher
  774. Alfonso Pérez T, Domínguez Sánchez M, Garcia Dominguez M, Reyes J. Cytoplasmic interaction of the tumour suppressor protein hSNF5 with dynamin-2 controls endocytosis. Oncogene. 2014;33:3064-74 pubmed publisher
  775. Sun X, Bristol J, Iwahori S, Hagemeier S, Meng Q, Barlow E, et al. Hsp90 inhibitor 17-DMAG decreases expression of conserved herpesvirus protein kinases and reduces virus production in Epstein-Barr virus-infected cells. J Virol. 2013;87:10126-38 pubmed publisher
  776. Wu J, Huang Z, Ren J, Zhang Z, He P, Li Y, et al. Mlkl knockout mice demonstrate the indispensable role of Mlkl in necroptosis. Cell Res. 2013;23:994-1006 pubmed publisher
  777. He W, Wang Q, Srinivasan B, Xu J, Padilla M, Li Z, et al. A JNK-mediated autophagy pathway that triggers c-IAP degradation and necroptosis for anticancer chemotherapy. Oncogene. 2014;33:3004-13 pubmed publisher
  778. Katsushima Y, Sato T, Yamada C, Ito M, Suzuki Y, Ogawa E, et al. Interaction of PICK1 with C-terminus of growth hormone-releasing hormone receptor (GHRHR) modulates trafficking and signal transduction of human GHRHR. J Pharmacol Sci. 2013;122:193-204 pubmed
  779. Brouxhon S, Kyrkanides S, Teng X, O Banion M, Clarke R, Byers S, et al. Soluble-E-cadherin activates HER and IAP family members in HER2+ and TNBC human breast cancers. Mol Carcinog. 2014;53:893-906 pubmed publisher
  780. Larabee J, Shakir S, Barua S, Ballard J. Increased cAMP in monocytes augments Notch signaling mechanisms by elevating RBP-J and transducin-like enhancer of Split (TLE). J Biol Chem. 2013;288:21526-36 pubmed publisher
  781. Taylor Weiner H, Schwarzbauer J, Engler A. Defined extracellular matrix components are necessary for definitive endoderm induction. Stem Cells. 2013;31:2084-94 pubmed publisher
  782. Zhou D, Tan R, Lin L, Zhou L, Liu Y. Activation of hepatocyte growth factor receptor, c-met, in renal tubules is required for renoprotection after acute kidney injury. Kidney Int. 2013;84:509-20 pubmed publisher
  783. Xue W, Zhou X, Yi N, Jiang L, Tao W, Wu R, et al. Yueju pill rapidly induces antidepressant-like effects and acutely enhances BDNF expression in mouse brain. Evid Based Complement Alternat Med. 2013;2013:184367 pubmed publisher
  784. Zhou D, Tan R, Zhou L, Li Y, Liu Y. Kidney tubular ?-catenin signaling controls interstitial fibroblast fate via epithelial-mesenchymal communication. Sci Rep. 2013;3:1878 pubmed publisher
  785. Caramuta S, Lee L, Ozata D, Akçakaya P, Xie H, Höög A, et al. Clinical and functional impact of TARBP2 over-expression in adrenocortical carcinoma. Endocr Relat Cancer. 2013;20:551-64 pubmed publisher
  786. McCoy D, Zhou L, Nguyen A, Watts A, Donovan C, McKemy D. Enhanced insulin clearance in mice lacking TRPM8 channels. Am J Physiol Endocrinol Metab. 2013;305:E78-88 pubmed publisher
  787. Sakaki Yumoto M, Liu J, Ramalho Santos M, Yoshida N, Derynck R. Smad2 is essential for maintenance of the human and mouse primed pluripotent stem cell state. J Biol Chem. 2013;288:18546-60 pubmed publisher
  788. Medford H, Porter K, Marsh S. Immediate effects of a single exercise bout on protein O-GlcNAcylation and chromatin regulation of cardiac hypertrophy. Am J Physiol Heart Circ Physiol. 2013;305:H114-23 pubmed publisher
  789. Vogt D, Camus G, Herker E, Webster B, Tsou C, Greene W, et al. Lipid droplet-binding protein TIP47 regulates hepatitis C Virus RNA replication through interaction with the viral NS5A protein. PLoS Pathog. 2013;9:e1003302 pubmed publisher
  790. Birrane G, Li H, Yang S, Tachado S, Seng S. Cigarette smoke induces nuclear translocation of heme oxygenase 1 (HO-1) in prostate cancer cells: nuclear HO-1 promotes vascular endothelial growth factor secretion. Int J Oncol. 2013;42:1919-28 pubmed publisher
  791. Bosse K, Hans C, Zhao N, Koenig S, Huang N, Guggilam A, et al. Endothelial nitric oxide signaling regulates Notch1 in aortic valve disease. J Mol Cell Cardiol. 2013;60:27-35 pubmed publisher
  792. Sanchez Ripoll Y, Bone H, Owen T, Guedes A, Abranches E, Kumpfmueller B, et al. Glycogen synthase kinase-3 inhibition enhances translation of pluripotency-associated transcription factors to contribute to maintenance of mouse embryonic stem cell self-renewal. PLoS ONE. 2013;8:e60148 pubmed publisher
  793. Maier B, Kirsch M, Anderhub S, Zentgraf H, Krämer A. The novel actin/focal adhesion-associated protein MISP is involved in mitotic spindle positioning in human cells. Cell Cycle. 2013;12:1457-71 pubmed publisher
  794. Ishida K, Acharya C, Christiansen B, Yik J, Dicesare P, Haudenschild D. Cartilage oligomeric matrix protein enhances osteogenesis by directly binding and activating bone morphogenetic protein-2. Bone. 2013;55:23-35 pubmed publisher
  795. Fu H, Sohail A, Valiathan R, Wasinski B, Kumarasiri M, Mahasenan K, et al. Shedding of discoidin domain receptor 1 by membrane-type matrix metalloproteinases. J Biol Chem. 2013;288:12114-29 pubmed publisher
  796. Rejon C, Ho C, Wang Y, Zhou X, Bernard D, Hebert T. Cycloheximide inhibits follicle-stimulating hormone ? subunit transcription by blocking de novo synthesis of the labile activin type II receptor in gonadotrope cells. Cell Signal. 2013;25:1403-12 pubmed publisher
  797. Takeuchi Yorimoto A, Noto T, Yamada A, Miyamae Y, Oishi Y, Matsumoto M. Persistent fibrosis in the liver of choline-deficient and iron-supplemented L-amino acid-defined diet-induced nonalcoholic steatohepatitis rat due to continuing oxidative stress after choline supplementation. Toxicol Appl Pharmacol. 2013;268:264-77 pubmed publisher
  798. Li Y, Zheng Y, Izumi K, Ishiguro H, Ye B, Li F, et al. Androgen activates ?-catenin signaling in bladder cancer cells. Endocr Relat Cancer. 2013;20:293-304 pubmed publisher
  799. Gao Y, Yechikov S, Vazquez A, Chen D, Nie L. Distinct roles of molecular chaperones HSP90? and HSP90? in the biogenesis of KCNQ4 channels. PLoS ONE. 2013;8:e57282 pubmed publisher
  800. Chen S, Chung C, Cheng Y, Huang C, Ruaan R, Chen W, et al. Hydrostatic pressure enhances mitomycin C induced apoptosis in urothelial carcinoma cells. Urol Oncol. 2014;32:26.e17-24 pubmed publisher
  801. McCoy F, Darbandi R, Chen S, Eckard L, Dodd K, Jones K, et al. Metabolic regulation of CaMKII protein and caspases in Xenopus laevis egg extracts. J Biol Chem. 2013;288:8838-48 pubmed publisher
  802. Snyder A, Dulin Smith A, Houston R, Durban A, Brisbin B, Oostra T, et al. Expression pattern of id proteins in medulloblastoma. Pathol Oncol Res. 2013;19:437-46 pubmed publisher
  803. Shi J, Wu X, Surma M, Vemula S, Zhang L, Yang Y, et al. Distinct roles for ROCK1 and ROCK2 in the regulation of cell detachment. Cell Death Dis. 2013;4:e483 pubmed publisher
  804. Nowaczyk M, Thompson B, Zeesman S, Moog U, Sanchez Lara P, Magoulas P, et al. Deletion of MAP2K2/MEK2: a novel mechanism for a RASopathy?. Clin Genet. 2014;85:138-46 pubmed publisher
  805. Murakami K, Jiang Y, Tanaka T, Bando Y, Mitrovic B, Yoshida S. In vivo analysis of kallikrein-related peptidase 6 (KLK6) function in oligodendrocyte development and the expression of myelin proteins. Neuroscience. 2013;236:1-11 pubmed publisher
  806. Kim S, Ishida H, Yamane D, Yi M, Swinney D, Foung S, et al. Contrasting roles of mitogen-activated protein kinases in cellular entry and replication of hepatitis C virus: MKNK1 facilitates cell entry. J Virol. 2013;87:4214-24 pubmed publisher
  807. Torrell H, Montaña E, Abasolo N, Roig B, Gaviria A, Vilella E, et al. Mitochondrial DNA (mtDNA) in brain samples from patients with major psychiatric disorders: gene expression profiles, mtDNA content and presence of the mtDNA common deletion. Am J Med Genet B Neuropsychiatr Genet. 2013;162B:213-23 pubmed publisher
  808. Vega Almeida T, Salas Benito M, De Nova Ocampo M, del Angel R, Salas Benito J. Surface proteins of C6/36 cells involved in dengue virus 4 binding and entry. Arch Virol. 2013;158:1189-207 pubmed publisher
  809. Martiáñez T, Lamarca A, Casals N, Gella A. N-cadherin expression is regulated by UTP in schwannoma cells. Purinergic Signal. 2013;9:259-70 pubmed publisher
  810. Morlando M, Dini Modigliani S, Torrelli G, Rosa A, Di Carlo V, Caffarelli E, et al. FUS stimulates microRNA biogenesis by facilitating co-transcriptional Drosha recruitment. EMBO J. 2012;31:4502-10 pubmed publisher
  811. Yamamoto M, Matsuzaki T, Takahashi R, Adachi E, Maeda Y, Yamaguchi S, et al. The transformation suppressor gene Reck is required for postaxial patterning in mouse forelimbs. Biol Open. 2012;1:458-66 pubmed publisher
  812. Megison M, Stewart J, Nabers H, Gillory L, Beierle E. FAK inhibition decreases cell invasion, migration and metastasis in MYCN amplified neuroblastoma. Clin Exp Metastasis. 2013;30:555-68 pubmed publisher
  813. Yu L, Shao C, Gao L. Developmental expression patterns for angiotensin receptors in mouse skin and brain. J Renin Angiotensin Aldosterone Syst. 2014;15:139-49 pubmed publisher
  814. Guo Y, Chen Y, Zhang Y, Zhang Y, Chen L, Mo D. Up-regulated miR-145 expression inhibits porcine preadipocytes differentiation by targeting IRS1. Int J Biol Sci. 2012;8:1408-17 pubmed publisher
  815. Pernet V, Joly S, Dalkara D, Jordi N, Schwarz O, Christ F, et al. Long-distance axonal regeneration induced by CNTF gene transfer is impaired by axonal misguidance in the injured adult optic nerve. Neurobiol Dis. 2013;51:202-13 pubmed publisher
  816. Li A, Mo D, Zhao X, Jiang W, Cong P, He Z, et al. Comparison of the longissimus muscle proteome between obese and lean pigs at 180 days. Mamm Genome. 2013;24:72-9 pubmed publisher
  817. Shinozuka E, Miyashita M, Mizuguchi Y, Akagi I, Kikuchi K, Makino H, et al. SnoN/SKIL modulates proliferation through control of hsa-miR-720 transcription in esophageal cancer cells. Biochem Biophys Res Commun. 2013;430:101-6 pubmed publisher
  818. García Huerta P, Diaz Hernandez M, Delicado E, Pimentel Santillana M, Miras Portugal M, Gomez Villafuertes R. The specificity protein factor Sp1 mediates transcriptional regulation of P2X7 receptors in the nervous system. J Biol Chem. 2012;287:44628-44 pubmed publisher
  819. Nagpal P, Plant P, Correa J, Bain A, Takeda M, Kawabe H, et al. The ubiquitin ligase Nedd4-1 participates in denervation-induced skeletal muscle atrophy in mice. PLoS ONE. 2012;7:e46427 pubmed publisher
  820. Destouches D, Huet E, Sader M, Frechault S, Carpentier G, Ayoul F, et al. Multivalent pseudopeptides targeting cell surface nucleoproteins inhibit cancer cell invasion through tissue inhibitor of metalloproteinases 3 (TIMP-3) release. J Biol Chem. 2012;287:43685-93 pubmed publisher
  821. McClain C, Sim F, Goldman S. Pleiotrophin suppression of receptor protein tyrosine phosphatase-?/? maintains the self-renewal competence of fetal human oligodendrocyte progenitor cells. J Neurosci. 2012;32:15066-75 pubmed publisher
  822. Hübener J, Weber J, Richter C, Honold L, Weiss A, Murad F, et al. Calpain-mediated ataxin-3 cleavage in the molecular pathogenesis of spinocerebellar ataxia type 3 (SCA3). Hum Mol Genet. 2013;22:508-18 pubmed publisher
  823. Magli A, Schnettler E, Rinaldi F, Bremer P, Perlingeiro R. Functional dissection of Pax3 in paraxial mesoderm development and myogenesis. Stem Cells. 2013;31:59-70 pubmed publisher
  824. Krzysik Walker S, González Mariscal I, Scheibye Knudsen M, Indig F, Bernier M. The biarylpyrazole compound AM251 alters mitochondrial physiology via proteolytic degradation of ERR?. Mol Pharmacol. 2013;83:157-66 pubmed publisher
  825. Peschard P, McCarthy A, Leblanc Dominguez V, Yeo M, Guichard S, Stamp G, et al. Genetic deletion of RALA and RALB small GTPases reveals redundant functions in development and tumorigenesis. Curr Biol. 2012;22:2063-8 pubmed publisher
  826. Xie H, Zhao Y, Caramuta S, Larsson C, Lui W. miR-205 expression promotes cell proliferation and migration of human cervical cancer cells. PLoS ONE. 2012;7:e46990 pubmed publisher
  827. Liu Y, Chen Y, Lu X, Wang Y, Duan Y, Cheng C, et al. SCYL1BP1 modulates neurite outgrowth and regeneration by regulating the Mdm2/p53 pathway. Mol Biol Cell. 2012;23:4506-14 pubmed publisher
  828. Baltanás F, Berciano M, Valero J, Gómez C, Diaz D, Alonso J, et al. Differential glial activation during the degeneration of Purkinje cells and mitral cells in the PCD mutant mice. Glia. 2013;61:254-72 pubmed publisher
  829. Rosales R, Monte M, Blazquez A, Briz O, Marin J. ABCC2 is involved in the hepatocyte perinuclear barrier for small organic compounds. Biochem Pharmacol. 2012;84:1651-9 pubmed publisher
  830. Jones B, Brunet S, Gilbert M, Nichols C, Su T, Westenbroek R, et al. Cardiomyocytes from AKAP7 knockout mice respond normally to adrenergic stimulation. Proc Natl Acad Sci U S A. 2012;109:17099-104 pubmed publisher
  831. Zou Z, Yuan Z, Zhang Q, Long Z, Chen J, Tang Z, et al. Aurora kinase A inhibition-induced autophagy triggers drug resistance in breast cancer cells. Autophagy. 2012;8:1798-810 pubmed publisher
  832. Yui N, Lu H, Chen Y, Nomura N, Bouley R, Brown D. Basolateral targeting and microtubule-dependent transcytosis of the aquaporin-2 water channel. Am J Physiol Cell Physiol. 2013;304:C38-48 pubmed publisher
  833. Chatain N, Ziegler P, Fahrenkamp D, Jost E, Moriggl R, Schmitz Van de Leur H, et al. Src family kinases mediate cytoplasmic retention of activated STAT5 in BCR-ABL-positive cells. Oncogene. 2013;32:3587-97 pubmed publisher
  834. Lu C, Lin L, Tan H, Wu H, Sherman S, Gao F, et al. Fragile X premutation RNA is sufficient to cause primary ovarian insufficiency in mice. Hum Mol Genet. 2012;21:5039-47 pubmed publisher
  835. Lopez Ramirez M, Fischer R, Torres Badillo C, Davies H, Logan K, Pfizenmaier K, et al. Role of caspases in cytokine-induced barrier breakdown in human brain endothelial cells. J Immunol. 2012;189:3130-9 pubmed publisher
  836. Gao W, Liu M, Yang Y, Yang H, Liao Q, Bai Y, et al. The imprinted H19 gene regulates human placental trophoblast cell proliferation via encoding miR-675 that targets Nodal Modulator 1 (NOMO1). RNA Biol. 2012;9:1002-10 pubmed publisher
  837. Takayanagi S, Fukuda R, Takeuchi Y, Tsukada S, Yoshida K. Gene regulatory network of unfolded protein response genes in endoplasmic reticulum stress. Cell Stress Chaperones. 2013;18:11-23 pubmed publisher
  838. Sommer A, Sass J. Expression of aspartoacylase (ASPA) and Canavan disease. Gene. 2012;505:206-10 pubmed publisher
  839. Chao H, Lai Y, Lu Y, Lin C, Mai W, Huang Y. NMDAR signaling facilitates the IPO5-mediated nuclear import of CPEB3. Nucleic Acids Res. 2012;40:8484-98 pubmed
  840. Peluso J, Lodde V, Liu X. Progesterone regulation of progesterone receptor membrane component 1 (PGRMC1) sumoylation and transcriptional activity in spontaneously immortalized granulosa cells. Endocrinology. 2012;153:3929-39 pubmed publisher
  841. Esteves T, Psathaki O, Pfeiffer M, Balbach S, Zeuschner D, Shitara H, et al. Mitochondrial physiology and gene expression analyses reveal metabolic and translational dysregulation in oocyte-induced somatic nuclear reprogramming. PLoS ONE. 2012;7:e36850 pubmed publisher
  842. Turinetto V, Orlando L, Sanchez Ripoll Y, Kumpfmueller B, Storm M, Porcedda P, et al. High basal ?H2AX levels sustain self-renewal of mouse embryonic and induced pluripotent stem cells. Stem Cells. 2012;30:1414-23 pubmed publisher
  843. Zhou D, Li Y, Lin L, Zhou L, Igarashi P, Liu Y. Tubule-specific ablation of endogenous β-catenin aggravates acute kidney injury in mice. Kidney Int. 2012;82:537-47 pubmed publisher
  844. Zhang Y, Cooke M, Panjwani S, Cao K, Krauth B, Ho P, et al. Histone h1 depletion impairs embryonic stem cell differentiation. PLoS Genet. 2012;8:e1002691 pubmed publisher
  845. de Wispelaere M, Yang P. Mutagenesis of the DI/DIII linker in dengue virus envelope protein impairs viral particle assembly. J Virol. 2012;86:7072-83 pubmed publisher
  846. Estecha A, Aguilera Montilla N, Sánchez Mateos P, Puig Kröger A. RUNX3 regulates intercellular adhesion molecule 3 (ICAM-3) expression during macrophage differentiation and monocyte extravasation. PLoS ONE. 2012;7:e33313 pubmed publisher
  847. Romoser A, Figueroa D, Sooresh A, Scribner K, Chen P, Porter W, et al. Distinct immunomodulatory effects of a panel of nanomaterials in human dermal fibroblasts. Toxicol Lett. 2012;210:293-301 pubmed publisher
  848. Li L, Sarver A, Alamgir S, Subramanian S. Downregulation of microRNAs miR-1, -206 and -29 stabilizes PAX3 and CCND2 expression in rhabdomyosarcoma. Lab Invest. 2012;92:571-83 pubmed publisher
  849. Hutchins A, Poulain S, Miranda Saavedra D. Genome-wide analysis of STAT3 binding in vivo predicts effectors of the anti-inflammatory response in macrophages. Blood. 2012;119:e110-9 pubmed publisher
  850. Boulay G, Dubuissez M, Van Rechem C, Forget A, Helin K, Ayrault O, et al. Hypermethylated in cancer 1 (HIC1) recruits polycomb repressive complex 2 (PRC2) to a subset of its target genes through interaction with human polycomb-like (hPCL) proteins. J Biol Chem. 2012;287:10509-24 pubmed publisher
  851. O Hara J, Feener T, Fischer C, Buret A. Campylobacter jejuni disrupts protective Toll-like receptor 9 signaling in colonic epithelial cells and increases the severity of dextran sulfate sodium-induced colitis in mice. Infect Immun. 2012;80:1563-71 pubmed publisher
  852. Lee J, Jiffar T, Kupferman M. A novel role for BDNF-TrkB in the regulation of chemotherapy resistance in head and neck squamous cell carcinoma. PLoS ONE. 2012;7:e30246 pubmed publisher
  853. Pérez Pérez R, Lopez J, García Santos E, Camafeita E, Gomez Serrano M, Ortega Delgado F, et al. Uncovering suitable reference proteins for expression studies in human adipose tissue with relevance to obesity. PLoS ONE. 2012;7:e30326 pubmed publisher
  854. Shinohara R, Thumkeo D, Kamijo H, Kaneko N, Sawamoto K, Watanabe K, et al. A role for mDia, a Rho-regulated actin nucleator, in tangential migration of interneuron precursors. Nat Neurosci. 2012;15:373-80, S1-2 pubmed publisher
  855. Aytekin M, Aulak K, Haserodt S, Chakravarti R, Cody J, Minai O, et al. Abnormal platelet aggregation in idiopathic pulmonary arterial hypertension: role of nitric oxide. Am J Physiol Lung Cell Mol Physiol. 2012;302:L512-20 pubmed publisher
  856. Mork L, Tang H, Batchvarov I, Capel B. Mouse germ cell clusters form by aggregation as well as clonal divisions. Mech Dev. 2012;128:591-6 pubmed publisher
  857. Medrzycki M, Zhang Y, McDonald J, Fan Y. Profiling of linker histone variants in ovarian cancer. Front Biosci (Landmark Ed). 2012;17:396-406 pubmed
  858. Matousek S, Ghosh S, Shaftel S, Kyrkanides S, Olschowka J, O Banion M. Chronic IL-1?-mediated neuroinflammation mitigates amyloid pathology in a mouse model of Alzheimer's disease without inducing overt neurodegeneration. J Neuroimmune Pharmacol. 2012;7:156-64 pubmed publisher
  859. Gomez C, Curto G, Baltanás F, Valero J, O SHEA E, Colado M, et al. Changes in the serotonergic system and in brain-derived neurotrophic factor distribution in the main olfactory bulb of pcd mice before and after mitral cell loss. Neuroscience. 2012;201:20-33 pubmed publisher
  860. Chen Z, Kolokoltsov A, Wang J, Adhikary S, Lorinczi M, Elferink L, et al. GRB2 interaction with the ecotropic murine leukemia virus receptor, mCAT-1, controls virus entry and is stimulated by virus binding. J Virol. 2012;86:1421-32 pubmed publisher
  861. Miki T, Kamikawa Y, Kurono S, Kaneko Y, Katahira J, Yoneda Y. Cell type-dependent gene regulation by Staufen2 in conjunction with Upf1. BMC Mol Biol. 2011;12:48 pubmed publisher
  862. Kahr P, Piccini I, Fabritz L, Greber B, Schöler H, Scheld H, et al. Systematic analysis of gene expression differences between left and right atria in different mouse strains and in human atrial tissue. PLoS ONE. 2011;6:e26389 pubmed publisher
  863. Schulz N, Himmelbauer H, Rath M, van Weeghel M, Houten S, Kulik W, et al. Role of medium- and short-chain L-3-hydroxyacyl-CoA dehydrogenase in the regulation of body weight and thermogenesis. Endocrinology. 2011;152:4641-51 pubmed publisher
  864. Thumkeo D, Shinohara R, Watanabe K, Takebayashi H, Toyoda Y, Tohyama K, et al. Deficiency of mDia, an actin nucleator, disrupts integrity of neuroepithelium and causes periventricular dysplasia. PLoS ONE. 2011;6:e25465 pubmed publisher
  865. Kye M, Neveu P, Lee Y, Zhou M, Steen J, Sahin M, et al. NMDA mediated contextual conditioning changes miRNA expression. PLoS ONE. 2011;6:e24682 pubmed publisher
  866. Zumer K, Plemenitas A, Saksela K, Peterlin B. Patient mutation in AIRE disrupts P-TEFb binding and target gene transcription. Nucleic Acids Res. 2011;39:7908-19 pubmed publisher
  867. Michaelson J, Amatucci A, Kelly R, Su L, Garber E, Day E, et al. Development of an Fn14 agonistic antibody as an anti-tumor agent. MAbs. 2011;3:362-75 pubmed
  868. Zürner M, Mittelstaedt T, Tom Dieck S, Becker A, Schoch S. Analyses of the spatiotemporal expression and subcellular localization of liprin-? proteins. J Comp Neurol. 2011;519:3019-39 pubmed publisher
  869. Selinger C, Cooper W, Al Sohaily S, Mladenova D, Pangon L, Kennedy C, et al. Loss of special AT-rich binding protein 1 expression is a marker of poor survival in lung cancer. J Thorac Oncol. 2011;6:1179-89 pubmed publisher
  870. Billington C, Ng B, Forsman C, Schmidt B, Bagchi A, Symer D, et al. The molecular and cellular basis of variable craniofacial phenotypes and their genetic rescue in Twisted gastrulation mutant mice. Dev Biol. 2011;355:21-31 pubmed publisher
  871. Kim S, Welsch C, Yi M, Lemon S. Regulation of the production of infectious genotype 1a hepatitis C virus by NS5A domain III. J Virol. 2011;85:6645-56 pubmed publisher
  872. Baras A, Solomon A, Davidson R, Moskaluk C. Loss of VOPP1 overexpression in squamous carcinoma cells induces apoptosis through oxidative cellular injury. Lab Invest. 2011;91:1170-80 pubmed publisher
  873. Selvais C, D Auria L, Tyteca D, Perrot G, Lemoine P, Troeberg L, et al. Cell cholesterol modulates metalloproteinase-dependent shedding of low-density lipoprotein receptor-related protein-1 (LRP-1) and clearance function. FASEB J. 2011;25:2770-81 pubmed publisher
  874. Beguin P, Gosselin H, Mamarbachi M, Calderone A. Nestin expression is lost in ventricular fibroblasts during postnatal development of the rat heart and re-expressed in scar myofibroblasts. J Cell Physiol. 2012;227:813-20 pubmed publisher
  875. Revuelta Cervantes J, Mayoral R, Miranda S, Gonzalez Rodriguez A, Fernandez M, Martín Sanz P, et al. Protein Tyrosine Phosphatase 1B (PTP1B) deficiency accelerates hepatic regeneration in mice. Am J Pathol. 2011;178:1591-604 pubmed publisher
  876. Wang D, Li Y, Wu C, Liu Y. PINCH1 is transcriptional regulator in podocytes that interacts with WT1 and represses podocalyxin expression. PLoS ONE. 2011;6:e17048 pubmed publisher
  877. Fabritz L, Hoogendijk M, Scicluna B, van Amersfoorth S, Fortmueller L, Wolf S, et al. Load-reducing therapy prevents development of arrhythmogenic right ventricular cardiomyopathy in plakoglobin-deficient mice. J Am Coll Cardiol. 2011;57:740-50 pubmed publisher
  878. Stoepker C, Hain K, Schuster B, Hilhorst Hofstee Y, Rooimans M, Steltenpool J, et al. SLX4, a coordinator of structure-specific endonucleases, is mutated in a new Fanconi anemia subtype. Nat Genet. 2011;43:138-41 pubmed publisher
  879. Inaki M, Kato D, Utsugi T, Onoda F, Hanaoka F, Murakami Y. Genetic analyses using a mouse cell cycle mutant identifies magoh as a novel gene involved in Cdk regulation. Genes Cells. 2011;16:166-78 pubmed publisher
  880. Derbigny W, Johnson R, Toomey K, Ofner S, Jayarapu K. The Chlamydia muridarum-induced IFN-? response is TLR3-dependent in murine oviduct epithelial cells. J Immunol. 2010;185:6689-97 pubmed publisher
  881. Sass J, Fischer K, Wang R, Christensen E, Scholl Burgi S, Chang R, et al. D-glyceric aciduria is caused by genetic deficiency of D-glycerate kinase (GLYCTK). Hum Mutat. 2010;31:1280-5 pubmed publisher
  882. Nassirpour R, Bahima L, Lalive A, Lüscher C, Lujan R, Slesinger P. Morphine- and CaMKII-dependent enhancement of GIRK channel signaling in hippocampal neurons. J Neurosci. 2010;30:13419-30 pubmed publisher
  883. Liikanen I, Dias J, Nokisalmi P, Sloniecka M, Kangasniemi L, Rajecki M, et al. Adenoviral E4orf3 and E4orf6 proteins, but not E1B55K, increase killing of cancer cells by radiotherapy in vivo. Int J Radiat Oncol Biol Phys. 2010;78:1201-9 pubmed publisher
  884. Andersen N, Chopra A, Monahan T, Malek J, Jain M, Pradhan L, et al. Endothelial cells are susceptible to rapid siRNA transfection and gene silencing ex vivo. J Vasc Surg. 2010;52:1608-15 pubmed publisher
  885. Fett M, Pilsl A, Paquet D, van Bebber F, Haass C, Tatzelt J, et al. Parkin is protective against proteotoxic stress in a transgenic zebrafish model. PLoS ONE. 2010;5:e11783 pubmed publisher
  886. Stankowski J, Zeiger S, Cohen E, DeFranco D, Cai J, McLaughlin B. C-terminus of heat shock cognate 70 interacting protein increases following stroke and impairs survival against acute oxidative stress. Antioxid Redox Signal. 2011;14:1787-801 pubmed publisher
  887. Weber K, Hildner K, Murphy K, Allen P. Trpm4 differentially regulates Th1 and Th2 function by altering calcium signaling and NFAT localization. J Immunol. 2010;185:2836-46 pubmed publisher
  888. Dasgupta J, Kar S, Liu R, Joseph J, Kalyanaraman B, Remington S, et al. Reactive oxygen species control senescence-associated matrix metalloproteinase-1 through c-Jun-N-terminal kinase. J Cell Physiol. 2010;225:52-62 pubmed publisher
  889. Magdeldin S, Li H, Yoshida Y, Enany S, Zhang Y, Xu B, et al. Comparison of two dimensional electrophoresis mouse colon proteomes before and after knocking out Aquaporin 8. J Proteomics. 2010;73:2031-40 pubmed publisher
  890. Smith N, Baker D, James N, Ratcliffe K, Jenkins M, Ashton S, et al. Vascular endothelial growth factor receptors VEGFR-2 and VEGFR-3 are localized primarily to the vasculature in human primary solid cancers. Clin Cancer Res. 2010;16:3548-61 pubmed publisher
  891. Miller E, Berman S, Yuan T, Lees J. Disruption of calvarial ossification in E2f4 mutant embryos correlates with increased proliferation and progenitor cell populations. Cell Cycle. 2010;9:2620-8 pubmed publisher
  892. Dalmasso G, Nguyen H, Charrier Hisamuddin L, Yan Y, Laroui H, Demoulin B, et al. PepT1 mediates transport of the proinflammatory bacterial tripeptide L-Ala-{gamma}-D-Glu-meso-DAP in intestinal epithelial cells. Am J Physiol Gastrointest Liver Physiol. 2010;299:G687-96 pubmed publisher
  893. Smrt R, Szulwach K, Pfeiffer R, Li X, Guo W, Pathania M, et al. MicroRNA miR-137 regulates neuronal maturation by targeting ubiquitin ligase mind bomb-1. Stem Cells. 2010;28:1060-70 pubmed publisher
  894. Bergstrom R, Savary K, Morén A, Guibert S, Heldin C, Ohlsson R, et al. Transforming growth factor beta promotes complexes between Smad proteins and the CCCTC-binding factor on the H19 imprinting control region chromatin. J Biol Chem. 2010;285:19727-37 pubmed publisher
  895. Peluso J, Liu X, Gawkowska A, Lodde V, Wu C. Progesterone inhibits apoptosis in part by PGRMC1-regulated gene expression. Mol Cell Endocrinol. 2010;320:153-61 pubmed publisher
  896. Spatara M, Robinson A. Transgenic mouse and cell culture models demonstrate a lack of mechanistic connection between endoplasmic reticulum stress and tau dysfunction. J Neurosci Res. 2010;88:1951-61 pubmed publisher
  897. Feingold K, Shigenaga J, Patzek S, Chui L, Moser A, Grunfeld C. Endotoxin, zymosan, and cytokines decrease the expression of the transcription factor, carbohydrate response element binding protein, and its target genes. Innate Immun. 2011;17:174-82 pubmed publisher
  898. Qiang L, Yu W, Liu M, Solowska J, Baas P. Basic fibroblast growth factor elicits formation of interstitial axonal branches via enhanced severing of microtubules. Mol Biol Cell. 2010;21:334-44 pubmed publisher
  899. Nguyen H, Dalmasso G, Yan Y, Laroui H, Dahan S, Mayer L, et al. MicroRNA-7 modulates CD98 expression during intestinal epithelial cell differentiation. J Biol Chem. 2010;285:1479-89 pubmed publisher
  900. Hoffmann M, Bellance N, Rossignol R, Koopman W, Willems P, Mayatepek E, et al. C. elegans ATAD-3 is essential for mitochondrial activity and development. PLoS ONE. 2009;4:e7644 pubmed publisher
  901. Hoover A, Strand G, Nowicki P, Anderson M, Vermeer P, Klingelhutz A, et al. Impaired PTPN13 phosphatase activity in spontaneous or HPV-induced squamous cell carcinomas potentiates oncogene signaling through the MAP kinase pathway. Oncogene. 2009;28:3960-70 pubmed publisher
  902. Yu Z, Li M, Zhang D, Xu W, Kone B. Sp1 trans-activates the murine H(+)-K(+)-ATPase alpha(2)-subunit gene. Am J Physiol Renal Physiol. 2009;297:F63-70 pubmed publisher
  903. Dasgupta J, Kar S, Van Remmen H, Melendez J. Age-dependent increases in interstitial collagenase and MAP Kinase levels are exacerbated by superoxide dismutase deficiencies. Exp Gerontol. 2009;44:503-10 pubmed publisher
  904. Judson M, BERGMAN M, Campbell D, Eagleson K, Levitt P. Dynamic gene and protein expression patterns of the autism-associated met receptor tyrosine kinase in the developing mouse forebrain. J Comp Neurol. 2009;513:511-31 pubmed publisher
  905. Szeles L, Keresztes G, Torocsik D, Balajthy Z, Krenacs L, Poliska S, et al. 1,25-dihydroxyvitamin D3 is an autonomous regulator of the transcriptional changes leading to a tolerogenic dendritic cell phenotype. J Immunol. 2009;182:2074-83 pubmed publisher
  906. Semsroth S, Stigler R, Bernecker O, Ruttmann Ulmer E, Troppmair J, Macfelda K, et al. Everolimus attenuates neointimal hyperplasia in cultured human saphenous vein grafts. Eur J Cardiothorac Surg. 2009;35:515-20 pubmed publisher
  907. Hohjoh H, Akari H, Fujiwara Y, Tamura Y, Hirai H, Wada K. Molecular cloning and characterization of the common marmoset huntingtin gene. Gene. 2009;432:60-6 pubmed publisher
  908. Sugawara S, Kawano T, Omoto T, Hosono M, Tatsuta T, Nitta K. Binding of Silurus asotus lectin to Gb3 on Raji cells causes disappearance of membrane-bound form of HSP70. Biochim Biophys Acta. 2009;1790:101-9 pubmed publisher
  909. Argyropoulos G, Stütz A, Ilnytska O, Rice T, Teran Garcia M, Rao D, et al. KIF5B gene sequence variation and response of cardiac stroke volume to regular exercise. Physiol Genomics. 2009;36:79-88 pubmed publisher
  910. Jorgensen E, Stinson A, Shan L, Yang J, Gietl D, Albino A. Cigarette smoke induces endoplasmic reticulum stress and the unfolded protein response in normal and malignant human lung cells. BMC Cancer. 2008;8:229 pubmed publisher
  911. Inoue H, Ha V, Prekeris R, Randazzo P. Arf GTPase-activating protein ASAP1 interacts with Rab11 effector FIP3 and regulates pericentrosomal localization of transferrin receptor-positive recycling endosome. Mol Biol Cell. 2008;19:4224-37 pubmed publisher
  912. Prunier F, Kawase Y, Gianni D, Scapin C, Danik S, Ellinor P, et al. Prevention of ventricular arrhythmias with sarcoplasmic reticulum Ca2+ ATPase pump overexpression in a porcine model of ischemia reperfusion. Circulation. 2008;118:614-24 pubmed publisher
  913. Kano S, Miyajima N, Fukuda S, Hatakeyama S. Tripartite motif protein 32 facilitates cell growth and migration via degradation of Abl-interactor 2. Cancer Res. 2008;68:5572-80 pubmed publisher
  914. Zhang Q, Wu J, Nguyen A, Wang B, He P, Laurent G, et al. Molecular mechanism underlying differential apoptosis between human melanoma cell lines UACC903 and UACC903(+6) revealed by mitochondria-focused cDNA microarrays. Apoptosis. 2008;13:993-1004 pubmed publisher
  915. Cuende J, Moreno S, Bolanos J, Almeida A. Retinoic acid downregulates Rae1 leading to APC(Cdh1) activation and neuroblastoma SH-SY5Y differentiation. Oncogene. 2008;27:3339-44 pubmed publisher
  916. Kuznetsov A, Smigelskaite J, Doblander C, Janakiraman M, Hermann M, Wurm M, et al. Survival signaling by C-RAF: mitochondrial reactive oxygen species and Ca2+ are critical targets. Mol Cell Biol. 2008;28:2304-13 pubmed publisher
  917. Tseng K, Chau Y, Yang M, Lu K, Chien C. Abnormal cellular translocation of alpha-internexin in spinal motor neurons of Dystonia musculorum mice. J Comp Neurol. 2008;507:1053-64 pubmed
  918. Beck S, Carethers J. BMP suppresses PTEN expression via RAS/ERK signaling. Cancer Biol Ther. 2007;6:1313-7 pubmed
  919. Battaglino R, Pham L, Morse L, Vokes M, Sharma A, Odgren P, et al. NHA-oc/NHA2: a mitochondrial cation-proton antiporter selectively expressed in osteoclasts. Bone. 2008;42:180-92 pubmed
  920. Nguyen T, Galvan V, Huang W, Banwait S, Tang H, Zhang J, et al. Signal transduction in Alzheimer disease: p21-activated kinase signaling requires C-terminal cleavage of APP at Asp664. J Neurochem. 2008;104:1065-80 pubmed
  921. Saelim N, Holstein D, Chocron E, Camacho P, Lechleiter J. Inhibition of apoptotic potency by ligand stimulated thyroid hormone receptors located in mitochondria. Apoptosis. 2007;12:1781-94 pubmed
  922. Lu Z, Lam K, Wang N, Xu X, Cortes M, Andersen B. LMO4 can interact with Smad proteins and modulate transforming growth factor-beta signaling in epithelial cells. Oncogene. 2006;25:2920-30 pubmed