Regulation of Neurogenesis and Cognition by Systemic Age-Related Immune Factors
Regulation of Neurogenesis and Cognition by Systemic Age-Related Immune Factors
批准号:
8416094
负责人:
SAUL A VILLEDA
金额:
$34.34万
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-09-15 至 2017-08-31
关键词:
AddressAdenovirusesAdultAffectAgingAging-Related ProcessAlzheimer&aposs DiseaseAnimalsBloodBrainCCL11 geneCCL2 geneCell Culture TechniquesCell ProliferationCell physiologyCellsCoculture TechniquesCognitionCognitiveComplementDegenerative DisorderEnvironmentExposure toFunctional disorderGoalsHippocampus (Brain)ImmuneImpaired cognitionImpairmentIn VitroInjection of therapeutic agentLaboratoriesLearningMediatingMemoryMethodsMicrogliaMolecularMusNatural regenerationNervous system structureNeuraxisNeurodegenerative DisordersOrganParabiosisPathway interactionsProcessProteinsRNA InterferenceRadialRecombinantsRegulationResearchRoleSignal TransductionStem cellsTestingTherapeuticTissuesTrainingViralVirusWaterWorkadult neurogenesisage effectage relatedaging brainarmbasecell typecognitive functionconditioned fearenvironmental changein vivointerestnerve stem cellneurogenesisnormal agingreceptorreceptor expressionregenerativerelating to nervous systemrepairedresponseretroviral-mediatedself-renewalstemtissue repair
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Stem cells have been the focus of numerous scientific endeavors due to their potential for mediating enhanced tissue repair, regeneration from degenerative diseases, and amelioration of age-related organ dysfunction. The possibility of harnessing stem cells to reverse normal aging raises the question as to how the aging process modulates tissue specific stem cell activity. In the central nervous system, investigating the effect of aging on neural stem/progenitor cell (NPC) function is of particular interest due to the associated onset of cognitive impairments, and lack of neural repair in response to neurodegenerative diseases, such as Alzheimer's disease. During my doctoral work, I discovered that molecular changes occurring in the aging systemic milieu negatively regulate NPC function and cognition. Furthermore, I identified a subset of systemic immune factors - ¿2-Microglobulin (B2M), CCL11 and CCL2 -, as potential regulators of neurogenesis and cognitive function. Interestingly, immune signaling has emerged as a key player in the negative regulation of adult neurogenesis. Thus, the goal of this application is to investigate how immune-related molecular changes in the aging systemic milieu regulate NPC function and associated cognitive processes. Specifically, my hypothesis is that systemic age-related immune factors impair neurogenesis, and cognitive processes, by both inhibiting NPC function directly and indirectly via resident immune cells. I will address this hypothesis in three aims: 1.To determine the direct versus indirect effect of systemic age-related immune factors on NPC function in vitro, 2. To examine the direct effect of systemic age-related immune factors on neurogenesis and cognitive function in vivo, 3. To explore the indirect effect of systemic age-related immune factors mediated by resident immune cells on neurogenesis and cognitive function in vivo. Ultimately, I hope that by investigating the cellular and molecular mechanisms underlying impairments in NPC function, we can better understand how to ameliorate age-related cognitive dysfunction by harnessing the latent plasticity remaining within the old brain.
PUBLIC HEALTH RELEVANCE: The research described in this application aims to elucidate, not only ways by which to enhance the regenerative capacity of the aging brain, but also means by which to counteract the pre-existing effects of aging itself. Ultimately, I hope that by investigating the cellular and molecular mechanisms underlying impairments in neural stem cell function, we can better understand how to ameliorate age-related cognitive dysfunction by harnessing the latent plasticity remaining within the old brain.
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