Synaptic Function & Plasticity in CA3 Circuits in the Aging Hippocampus
Synaptic Function & Plasticity in CA3 Circuits in the Aging Hippocampus
批准号:
8119617
负责人:
Alfredo Kirkwood
金额:
$37.06万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-08-15 至 2014-07-31
关键词:
AddressAffectAgeAge-associated memory impairmentAgingAnimalsAreaBehavioralBrainCell physiologyCellsCognitiveCognitive deficitsDataExhibitsFunctional disorderGenesGoalsHippocampal FormationHippocampus (Brain)Hyperactive behaviorImpaired cognitionImpairmentIndividualIndividual DifferencesInterventionLearningLong-Evans RatsMedialMediatingMemoryModelingMolecularMusMutationNeurocognitiveNeuronsOutcomePathway interactionsPerformancePharmaceutical PreparationsPopulation StudyPreparationPrincipal InvestigatorPropertyPsyche structureRattusResearchSiteSliceSynapsesSynaptic TransmissionSynaptic plasticitySystemTechniquesTemporal LobeTestingTransgenic MiceWorkage relatedagedaging hippocampusbasecognitive functioncohorteffective therapygamma-Aminobutyric Acidhippocampal pyramidal neuronimprovedin vivoinsightintervention effectmalememory encodingmiddle agemouse modelneuron lossoverexpressionprogramspublic health relevancereceptorrelating to nervous systemresponsesynaptic function
中文摘要
描述(申请人提供):衰老对新记忆的学习和编码有深远的影响。衰老领域的进展表明,细胞水平的变化而不是结构变化与理解与衰老相关的认知缺陷更相关。在这方面,对海马区CA1区突触功能的电生理学分析提供了重要的见解,即年龄破坏了突触连接被修改以编码新记忆的机制。这些突触可塑性的变化为理解老年人的学习障碍提供了概念基础。虽然关注与学习障碍相关的CA1的改变是卓有成效的,但最近很明显有必要扩大研究范围。首先是意识到,在记忆编码过程中,海马体中的其他回路以不同的方式参与,衰老对它们的影响也不同,在CA3的情况下,这一点更加突出。此外,尽管平均而言,认知能力随着年龄的增长而下降,但可识别的老年个体群体保持着智力能力。因此,虽然最终目标可能是保持通常受年龄影响的细胞过程的完整性,但补充方法是专注于自然发生的适应性变化,以应对功能丧失。我们通过研究海马依赖学习任务中老年大鼠海马片的突触可塑性,在体外探讨了这些问题。该项目的目标是1)了解衰老如何影响支持CA3学习的突触功能,2)确定使一些老年人保持认知能力的机制,以及3)了解改善老年人学习的干预治疗如何影响突触可塑性。我们的研究表明,一些突触可塑性机制在老年大鼠中不可逆转地丧失。然而,那些保持认知表现的老年个体通过促进其他机制来设法弥补损失。这些适应性增强的可塑性机制显然是旨在恢复老年人学习的治疗策略的目标。
与公共健康相关:衰老会对精神能力产生显著影响,特别是对学习和记忆。尽管这种衰退非常普遍,通常被认为是衰老的一个正常方面,但一些年长的人仍然保持着很强的认知能力。这项建议将调查神经适应性变化的类型,这是在老年时保持认知能力所必需的。
英文摘要
DESCRIPTION (provided by applicant): Aging has a profound impact on learning and encoding new memories. Advances in the field of aging suggest that changes at the cellular level rather than structural alterations are more relevant for understanding cognitive deficits associated with aging. In this regard, electrophysiological analysis of synaptic function in the CA1 region of the hippocampus has provided the important insights that age disrupts the mechanisms by which the synaptic connectivity is modified to encode new memories. These changes in synaptic plasticity provide a conceptual basis to understand learning deficits in aged individuals. Although focusing on alterations in CA1 associated with learning deficits has been fruitful, recently it has become clear the need to expand the research scope. First is the realization that other circuits in the hippocampus participate differently during memory encoding, and that aging affects them differently, and even more prominently, in the case of CA3. In addition, although on average cognitive abilities decline with age, a recognizable subpopulation of aged individuals maintains mental abilities. Thus, while an ultimate goal could be to preserve the integrity of the cellular processes normally affected by age, a complementary approach is to focus on adaptative changes occuring naturally in response to lost functions. We approach these issues ex vivo, by studying synaptic plasticity in hippocampal slices from aged rats characterized in a hippocampal- dependent learning task. The goals of this project are to 1) understand how aging affects the synaptic functions that support learning in CA3, 2) identify mechanisms that allow some aged individuals to maintain cognitive abilities and 3) understand how intervention treatments that improve learning in aged individuals affect synaptic plasticity. Our research suggests that some mechanisms of synaptic plasticity are irreversibly lost in aged rats. However, those aged individuals that maintained cognitive performance manage to compensate for the lost by boosting other mechanisms. These adaptatively enhanced plasticity mechanisms are an obvious target for therapeutical strategies aimed at restoring learning in aged individuals.
PUBLIC HEALTH RELEVANCE: Aging can have a pronounced impact on mental abilities, particularly on learning and memory. Although such decline is widespread enough to be often considered a normal aspect of aging, some older individuals retain strong cognitive abilities. This proposal will investigate the type of neural adaptive changes that are required to maintain cognitive performance at old age.
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会议论文
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Regulation of Synaptic Plasticity in Visual Cortex
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REGULATION OF SYNAPTIC PLASTICITY IN VISUAL CORTEX
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海外基金