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^“Roles of CHOP/GADD153 in endoplasmic reticulum stress”. Cell Death and Differentiation11 (4): 381–9. (April 2004). doi:10.1038/sj.cdd.4401373. PMID14685163.
^“GRP78 and CHOP modulate macrophage apoptosis and the development of bleomycin-induced pulmonary fibrosis”. The Journal of Pathology239 (4): 411–25. (August 2016). doi:10.1002/path.4738. PMID27135434.
^“Endoplasmic reticulum stress implicated in chronic traumatic encephalopathy”. Journal of Neurosurgery124 (3): 687–702. (March 2016). doi:10.3171/2015.3.JNS141802. PMID26381255.
^“Apelin-13 Alleviates Early Brain Injury after Subarachnoid Hemorrhage via Suppression of Endoplasmic Reticulum Stress-mediated Apoptosis and Blood-Brain Barrier Disruption: Possible Involvement of ATF6/CHOP Pathway”. Neuroscience388: 284–296. (September 2018). doi:10.1016/j.neuroscience.2018.07.023. PMID30036660.
^“XBP1 mRNA is induced by ATF6 and spliced by IRE1 in response to ER stress to produce a highly active transcription factor”. Cell107 (7): 881–91. (December 2001). doi:10.1016/s0092-8674(01)00611-0. PMID11779464.
^“Attenuation of CHOP-mediated myocardial apoptosis in pressure-overloaded dominant negative p38α mitogen-activated protein kinase mice”. Cellular Physiology and Biochemistry27 (5): 487–96. (2011). doi:10.1159/000329970. PMID21691066.
^ ab“Tunicamycin enhances human colon cancer cells to TRAIL-induced apoptosis by JNK-CHOP-mediated DR5 upregulation and the inhibition of the EGFR pathway”. Anti-Cancer Drugs28 (1): 66–74. (January 2017). doi:10.1097/CAD.0000000000000431. PMID27603596.
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^ ab“Targeting unfolded protein response in cancer and diabetes”. Endocrine-Related Cancer22 (3): C1-4. (June 2015). doi:10.1530/ERC-15-0106. PMID25792543.
^“Physical and functional association between GADD153 and CCAAT/enhancer-binding protein beta during cellular stress”. The Journal of Biological Chemistry271 (24): 14285–9. (June 1996). doi:10.1074/jbc.271.24.14285. PMID8662954.
^“CHOP transcription factor phosphorylation by casein kinase 2 inhibits transcriptional activation”. The Journal of Biological Chemistry278 (42): 40514–20. (October 2003). doi:10.1074/jbc.M306404200. PMID12876286.
^“Novel interaction between the transcription factor CHOP (GADD153) and the ribosomal protein FTE/S3a modulates erythropoiesis”. The Journal of Biological Chemistry275 (11): 7591–6. (March 2000). doi:10.1074/jbc.275.11.7591. PMID10713066.
^WO application 2017192820, Monia, Brett P.; Thazha P. Prakash & Garth A. Kinberger et al., "GLP-1 receptor ligand moiety conjugated oligonucleotides and uses thereof", published 2017-11-09, assigned to Ionis Pharmaceuticals Inc. and AstraZeneca AB
^“Different induction of GRP78 and CHOP as a predictor of sensitivity to proteasome inhibitors in thyroid cancer cells”. Endocrinology148 (7): 3258–70. (July 2007). doi:10.1210/en.2006-1564. PMID17431003.
^“C/EBP homologous protein inhibits tissue repair in response to gut injury and is inversely regulated with chronic inflammation”. Mucosal Immunology7 (6): 1452–66. (November 2014). doi:10.1038/mi.2014.34. PMID24850428.
“Roles of CHOP/GADD153 in endoplasmic reticulum stress”. Cell Death and Differentiation11 (4): 381–9. (April 2004). doi:10.1038/sj.cdd.4401373. PMID14685163.
“Rearrangement of the transcription factor gene CHOP in myxoid liposarcomas with t(12;16)(q13;p11)”. Genes, Chromosomes & Cancer5 (4): 278–85. (November 1992). doi:10.1002/gcc.2870050403. PMID1283316.
“CHOP, a novel developmentally regulated nuclear protein that dimerizes with transcription factors C/EBP and LAP and functions as a dominant-negative inhibitor of gene transcription”. Genes & Development6 (3): 439–53. (March 1992). doi:10.1101/gad.6.3.439. PMID1547942.
“Localization of the chromosomal breakpoints of the t(12;16) in liposarcoma to subbands 12q13.3 and 16p11.2”. Cancer Genetics and Cytogenetics48 (1): 101–7. (August 1990). doi:10.1016/0165-4608(90)90222-V. PMID2372777.
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“Physical and functional association between GADD153 and CCAAT/enhancer-binding protein beta during cellular stress”. The Journal of Biological Chemistry271 (24): 14285–9. (June 1996). doi:10.1074/jbc.271.24.14285. PMID8662954.
“Novel interaction between the transcription factor CHOP (GADD153) and the ribosomal protein FTE/S3a modulates erythropoiesis”. The Journal of Biological Chemistry275 (11): 7591–6. (March 2000). doi:10.1074/jbc.275.11.7591. PMID10713066.
“Nitric oxide-induced apoptosis in RAW 264.7 macrophages is mediated by endoplasmic reticulum stress pathway involving ATF6 and CHOP”. The Journal of Biological Chemistry277 (14): 12343–50. (April 2002). doi:10.1074/jbc.M107988200. PMID11805088.
“Activation of peroxisome proliferator-activated receptor-gamma stimulates the growth arrest and DNA-damage inducible 153 gene in non-small cell lung carcinoma cells”. Oncogene21 (14): 2171–80. (March 2002). doi:10.1038/sj.onc.1205279. PMID11948400.
“Activator protein-1 and CCAAT/enhancer-binding protein mediated GADD153 expression is involved in deoxycholic acid-induced apoptosis”. Biochimica et Biophysica Acta (BBA) - Molecular and Cell Biology of Lipids1583 (1): 108–16. (June 2002). doi:10.1016/s1388-1981(02)00190-7. PMID12069855.
“Expression and transactivating functions of the bZIP transcription factor GADD153 in mammary epithelial cells”. Oncogene21 (27): 4289–300. (June 2002). doi:10.1038/sj.onc.1205529. PMID12082616.