Quantitative Analysis of Cerebral Cortex in Aging Monkeys
Quantitative Analysis of Cerebral Cortex in Aging Monkeys
批准号:
7903366
负责人:
Luis R Cruz Cruz
金额:
$58.08万
依托单位国家:
美国
项目类别:
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-09-01 至 2013-07-31
关键词:
5 year oldAccountingAction PotentialsAddressAdultAffectAgeAge-YearsAge-associated memory impairmentAgingAging-Related ProcessAlgorithmsAlzheimer&aposs DiseaseAnatomyAnimal ModelAnimalsApicalArchitectureAreaAstrocytesAtrophicAxonBehavioralBindingBostonBrainCellsCerebral cortexCognitionCognitiveComputer SimulationDataDendritesDeteriorationDigital PhotographyElementsFemaleFiberFrozen SectionsFunctional disorderFundingFutureGenerationsHarvestHumanImage AnalysisImmunohistochemistryImpaired cognitionImpairmentIndiumIndividualInflammationIntercellular Adhesion MoleculesInterdisciplinary StudyLabelLearningLengthLongevityMacaca mulattaMapsMeasuresMemoryMethodsMicrogliaModelingMonkeysMyelinNeocortexNeurobiologyNeurodegenerative DisordersNeurogliaNeuronsNeuropilOutcomePathologyPeriodicityPhysicsPopulationPositioning AttributePrefrontal CortexProcessProgram Research Project GrantsProgress ReportsProtocols documentationProxyPublicationsPublishingQuantitative EvaluationsRanvier&aposs NodesResearch PersonnelSeriesStagingStaining methodStainsStructureStudy SubjectStudy modelsSynapsesSystemTestingTissuesUncertaintyUniversitiesVisual CortexWidthWorkage effectage relatedbasecase-basedcognitive functiondensitydigitalexecutive functioninformation processinginsightmalemild neurocognitive impairmentmyelinationneuronal cell bodyneuronal excitabilitynormal agingorientation columnspublic health relevancespatial relationshipyoung adult
中文摘要
描述(由申请人提供):在与年龄相关的神经退行性疾病(如阿尔茨海默病)中,皮质神经元的丢失可能是进行性认知障碍的原因。相比之下,在正常衰老过程中,由于皮层神经元没有丢失,相对轻度的认知障碍的原因仍然不清楚。然而,皮质神经元已被证明以多种方式变得功能障碍,从互连皮质区域的有髓轴突的退化到索马处的动作电位产生的变化。皮层信息处理的一个关键功能组件是微柱,这是一个紧密相连的垂直神经元阵列,它们共同处理基本信息。经典的例子是视觉皮层的方向列。越来越多的证据表明,年龄相关的变化,微柱状组织可能是一个重要的标志,年龄相关的皮质功能障碍。将使用从恒河猴研究中获得的存档脑材料来解决微柱中的脑相关改变,在该研究中,对所有动物进行行为测试以表征认知状态,并收获脑用于神经生物学研究。第一个目的是获得全脑照片,以定量评估覆盖整个成年寿命的雄性和雌性恒河猴整个大脑皮层的微柱结构。这将确定微柱中发生最大年龄相关中断的区域,以及这些变化与认知障碍最密切相关的区域。这将检验微柱结构的区域改变和相关的皮质功能障碍解释年龄相关的认知障碍的假设。基于最受影响的皮质区的识别,目标2将利用免疫组织化学方法标记皮质神经元树突的细胞内细胞骨架元素。这些将进行分析,以测试的假设,即在树突状结构的改变与微柱结构的破坏。类似地,Aim 3将利用NeuN免疫组织化学将神经元与神经胶质独特地分离,从而允许单独分析神经胶质变化。这一目标将测试的假设,即在胶质细胞分布的中断与年龄相关的中断的微柱。对于树突和神经胶质,交叉相关方法将用于量化与微柱变化的关系,对于所有三个目标,多变量方法将评估与认知障碍的关系。这些数据将产生可测试的机制假说的原因微柱功能障碍,并将提供洞察的基础上,年龄相关的皮质功能障碍和认知障碍。这项研究的未来方向将包括分析小但功能重要的GABA能神经元群体和将皮质结合在一起的细胞间粘附分子的分布。公共卫生相关性:在正常衰老过程中,认知功能障碍的发生不会导致皮质神经元的丧失,但有证据表明,组织为微柱的皮质神经元垂直阵列的结构发生了破坏。这些微柱是大脑皮层的基本计算单元,它们的年龄相关性退化与年龄相关性认知障碍相关。这些将使用先进的定量方法进行研究,并与树突结构和神经胶质细胞的变化进行比较,以确定与年龄相关的认知障碍的潜在过程。
英文摘要
DESCRIPTION (provided by applicant): In age-related neurodegenerative disorders like Alzheimer's disease, the loss of cortical neurons is the likely cause of progressive cognitive impairments. In contrast, in normal aging, the cause of the relatively mild cognitive impairments that develops remains unclear as cortical neurons are not lost. However, cortical neurons have been shown to become dysfunctional in a number of ways ranging from deterioration of myelinated axons that interconnect cortical areas to changes in action potential generation at the soma. A critical functional component of cortical information processing is the microcolumn, a vertical array of neurons that are tightly interconnected and that work together to process fundamental information. The classic example is the orientation column of the visual cortex. Accumulating evidence suggests that age-related changes in microcolumnar organization may be an important marker of age-related cortical dysfunction. Age-related alterations in microcolumns will be addressed using archival brain material available from a study of rhesus monkeys in which all animals are behaviorally tested to characterize cognitive status and the brains are harvested for neurobiological study. The first aim is to acquire whole brain photomontages to quantitatively assess microcolumnar structure throughout the entire cerebral cortex of both male and female rhesus monkeys that cover the entire adult life span. This will identify regions where the greatest age-related disruptions in microcolumns occur and where those changes are most strongly related to cognitive impairments. This will test the hypothesis that regional alterations in microcolumnar structure and associated cortical dysfunction account for age-related cognitive impairments. Based on the identification of most affected cortical areas, Aim 2 will utilize immunohistochemical methods to label intracellular cytoskeletal elements of dendrites of cortical neurons. These will be analyzed to test the hypothesis that alterations in dendritic structure are associated with the disruption of microcolumnar architecture. Similarly, Aim 3 will utilize NeuN immunohistochemistry to uniquely separate neurons from glia allowing for separate analysis of glia changes. This aim will test the hypothesis that disruptions in glial distribution are associated with age-related disruption of microcolumns. For both dendrites and glia, cross correlation methods will be used to quantify the relationship to microcolumn changes and for all three aims multivariate methods will assess the relationship with cognitive impairments. These data will generate testable mechanistic hypotheses regarding the causes of microcolumnar dysfunction and will provide insight into the basis of age-related cortical dysfunction and cognitive impairment. Future directions for this study will include analysis of the small but functionally significant population of GABAergic neurons and the distribution of intercellular adhesion molecules that bind the cortex together. PUBLIC HEALTH RELEVANCE: In normal aging, cognitive dysfunction occurs without the loss of cortical neurons yet evidence indicates disruption of the architecture of vertical arrays of cortical neurons that are organized as microcolumns. These microcolumns are a fundamental computational unit of the cerebral cortex, and their age-related degradation correlates with age-related cognitive impairment. These will be studied using advanced quantitative methods and compared with changes in dendritic structure and glia cells to determine the processes underlying age-related cognitive impairments.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Quantitative Analysis of Cerebral Cortex in Aging Monkeys
-
批准号:7919022
-
项目类别:
-
资助金额:$20.51万
-
财政年份:2009
-
负责人:Luis R Cruz Cruz
-
依托单位:
Quantitative Analysis of Cerebral Cortex in Aging Monkeys
-
批准号:7527014
-
项目类别:
-
资助金额:$52.59万
-
财政年份:2005
-
负责人:Luis R Cruz Cruz
-
依托单位:
Quantitative Analysis of Cerebral Cortex in Aging Monkeys
-
批准号:8306776
-
项目类别:
-
资助金额:$57.5万
-
财政年份:2005
-
负责人:Luis R Cruz Cruz
-
依托单位:
Quantitative Analysis of Cerebral Cortex in Aging Monkeys
-
批准号:8117040
-
项目类别:
-
资助金额:$57.5万
-
财政年份:2005
-
负责人:Luis R Cruz Cruz
-
依托单位:
Quantitative Analysis of Cerebral Cortex in Aging Monkeys
-
批准号:7667990
-
项目类别:
-
资助金额:$56.96万
-
财政年份:2005
-
负责人:Luis R Cruz Cruz
-
依托单位:
海外基金