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Role of ATF4 in Neuronal Death Mediated by DNA Damage, Endoplasmic Reticulum Stress and Ischemia-Hypoxia

dc.contributor.authorGalehdar, Zohreh
dc.contributor.supervisorPark, David
dc.date.accessioned2013-11-05T14:29:48Z
dc.date.available2013-11-05T14:29:48Z
dc.date.created2013
dc.date.issued2013
dc.degree.disciplineMédecine / Medicine
dc.degree.leveldoctorate
dc.degree.namePhD
dc.description.abstractAn increasing body of evidence points to a key role of endoplasmic reticulum (ER) stress in chronic and acute neurodegenerative diseases. Indeed, markers of ER stress are common features of neurons destined to die in these conditions. In the present study we demonstrate that PUMA, a BH3-only member of the Bcl-2 family is essential for ER stress-induced cell death. PUMA is known to be a key transcriptional target of p53, however we have found that ER stress triggers PUMA induction and cell death through a p53-independent mechanism involving instead the ER stress inducible transcription factor ATF4. Specifically, we demonstrate that ectopic expression of ATF4 sensitizes neurons to ER stress induced apoptosis, and that ATF4-deficient neurons exhibit markedly reduced levels of PUMA expression and cell death. However, chromatin immunoprecipitation experiments suggest that ATF4 does not directly regulate the PUMA promoter. Rather, we found that ATF4 induces expression of the transcription factor CHOP, and that CHOP in turn directly activates PUMA induction. Specifically, we demonstrate that CHOP binds to the PUMA promoter during ER stress and that CHOP knockdown attenuates PUMA induction and neuronal apoptosis. In summary, we have identified a key signaling pathway in ER stress induced neuronal death involving ATF4-CHOP mediated transactivation of the pro-apoptotic Bcl-2 family member PUMA. Protein aggregates and markers of ER stress response have also been observed in dying neurons in several animal models of cerebral ischemia. Therefore, to decipher the significance of the ER stress apoptotic response, we investigate the role of ATF4-CHOP signaling pathway in ischemic neuronal injury. Ischemic stroke results from a transient or permanent reduction in cerebral blood flow in the brain. In spite of much research in trying to develop therapeutic strategies, most clinical trials have failed. These failures demonstrate that effective treatments require a more complete understanding of molecular signals that lead to neuronal death. However, stroke is a complex scenario since distinct mechanisms may involve in rapid and/or delayed neuronal death. The signaling pathways regulating these mechanisms however are not fully defined. Previous studies had suggested that ER stress playing a pivotal role in post-ischemic neuronal death. Yet, the relevance of ER stress signals was not fully known in ischemic neuronal injury. Accordingly, this thesis research attempts to explore the functional role of ER stress -inducible pathway, ATF4-CHOP axis, in different models of neuronal death (delayed and excitotoxic cell death) evoked by ischemia. The data indicates that ATF4 is essential in delayed type of death in vitro. In focal ischemia model (tMCAO) ATF4 also plays a role as a mediator of death signal in vivo. However, CHOP function looks more complex, and our data did not support the role of CHOP in ischemic neuronal death.
dc.embargo.termsimmediate
dc.faculty.departmentMédecine cellulaire et moléculaire / Cellular and Molecular Medicine
dc.identifier.urihttp://hdl.handle.net/10393/26292
dc.identifier.urihttp://dx.doi.org/10.20381/ruor-3337
dc.language.isoen
dc.publisherUniversité d'Ottawa / University of Ottawa
dc.subjectATF4
dc.subjectCHOP
dc.subjectPUMA
dc.subjectNeuronal apoptosis
dc.subjectIschemic injury
dc.subjectHypoxia
dc.subjectDNA damage
dc.subjectER stress
dc.subjectExcitotoxicity
dc.subjectMCAO
dc.titleRole of ATF4 in Neuronal Death Mediated by DNA Damage, Endoplasmic Reticulum Stress and Ischemia-Hypoxia
dc.typeThesis
thesis.degree.disciplineMédecine / Medicine
thesis.degree.levelDoctoral
thesis.degree.namePhD
uottawa.departmentMédecine cellulaire et moléculaire / Cellular and Molecular Medicine

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