Regulation of Synaptic Rhythmicity by Astrocytic Clock
星形细胞钟对突触节律的调节
基本信息
- 批准号:10715728
- 负责人:
- 金额:$ 29.47万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2023
- 资助国家:美国
- 起止时间:2023-09-01 至 2028-08-31
- 项目状态:未结题
- 来源:
- 关键词:AMPA ReceptorsARNTL geneAddressAffectAlzheimer&aposs DiseaseAreaAstrocytesBehaviorBrainBrain regionCalciumCalcium SignalingChronicCircadian DysregulationCognitionCognition DisordersCognitiveCognitive deficitsDataDiseaseEatingExhibitsFunctional disorderFutureGenesGeneticGlutamatesGlypicanHarvestHealthHippocampusHumanHypothalamic structureITPR1 geneImpaired cognitionInvestigationKnockout MiceKnowledgeLearningLife StyleLightLinkMaintenanceMass Spectrum AnalysisMediatingMemoryMemory impairmentMental DepressionModernizationMolecularMusNatureNeurogliaNeuronsPeriodicityPersonsPopulationPrevalenceProcessProductionProsencephalonProtein SecretionProteinsProteomePublishingRegulationResearchRoleSleepSleep disturbancesStressSynapsesTestingTimeTravelWorkcell typechordincircadiancircadian pacemakercognitive functioncognitive performancecognitive processcomorbiditydifferential expressionepidemiology studyexperimental studyin vivomemory processmolecular clocknervous system disordernovelreceptor expressionshift worksleep patternsuprachiasmatic nucleussynaptic function
项目摘要
Cognitive deficits such as learning and memory impairments are common in people subjected to chronic
disturbance of the circadian cycle due to shift work, travel, or genetic dysregulation of the circadian clock.
Epidemiological studies have revealed a global rise in cognitive disorders with circadian disruptions comorbidity
such as depression, and Alzheimer’s disease, stressing the need to identify the causal relationship between
these phenomena. However, the molecular mechanisms linking the circadian cycle and cognitive performance
in health and disease remain largely unresolved. Neuronal synapses are the cellular basis for learning and
memory processes. Synapse number, activity, and expression levels of synaptic proteins show rhythmic time-
of-day-dependent changes, yet how these changes are regulated by the circadian clock is poorly understood. A
growing body of work supports a critical role for the glial cells, astrocytes in normal clock function. Astrocytes are
important synaptic regulators, and key for establishment and maintenance of memory and learning. Yet, how the
astrocytic clock regulates synaptic rhythmicity and related cognitive performance has not been thoroughly
examined. This critical gap in knowledge must be addressed in order to understand not only the fundamental
functions of the astrocytic clock, but also to characterize the regulatory mechanisms that control circadian
changes in synaptic levels. This application will define the role of astrocytic clocks in regulating synaptic
rhythmicity and subsequent learning and memory behaviors in three aims. Aim 1 investigates how the astrocytic
clock expressed in brain regions responsible for cognitive processes (e.g., cortex, and hippocampus; outside the
central clock located in the suprachiasmatic nucleus (SCN)), affects time-of-day-dependent changes in synapses
and cognitive performance. Aim 2 investigates how the astrocytic clock is regulated by calcium activity to
influence synaptic rhythmicity. In Aim 3, we test the hypothesis that astrocyte-derived synapse-regulating factors
are rhythmically produced to facilitate time-of-day-dependent modulation of synapses. Successful completion of
these aims will uncover the role of astrocytic clock in regulating synaptic and cognitive rhythms, and reveal
strategies for future manipulation of synaptic rhythmicity through astrocyte-targeting, to restore clock-associated
cognitive deficits prevalent in neurological disorders.
学习和记忆障碍等认知缺陷在慢性病患者中很常见
由于轮班工作、旅行或生物钟遗传失调而扰乱昼夜节律。
流行病学研究表明,伴随昼夜节律紊乱共病的认知障碍在全球范围内呈上升趋势
例如抑郁症和阿尔茨海默病,强调需要确定之间的因果关系
然而,这些现象将昼夜节律周期和认知表现联系起来。
健康和疾病中的神经元突触是学习和学习的细胞基础。
记忆过程的突触数量、活动和突触蛋白的表达水平表现出有节奏的时间。
依赖于一天的变化,但人们对这些变化是如何受昼夜节律时钟调节的知之甚少。
越来越多的研究支持星形胶质细胞在正常时钟功能中发挥着关键作用。
重要的突触调节因子,也是建立和维持记忆和学习的关键。
星形胶质细胞时钟调节突触节律和相关认知表现尚未得到彻底研究
必须解决这一知识上的关键差距,以便不仅了解基本知识。
星形细胞钟的功能,还可以表征控制昼夜节律的调节机制
该应用程序将定义星形胶质细胞时钟在调节突触中的作用。
目标 1 研究星形细胞的节律性以及随后的学习和记忆行为。
时钟在负责认知过程的大脑区域(例如皮层和海马体;在
位于视交叉上核(SCN)的中央时钟,影响突触的时间依赖性变化
目标 2 研究星形胶质细胞时钟如何通过钙活性进行调节。
在目标 3 中,我们检验了星形胶质细胞衍生的突触调节因子的假设。
有节奏地产生,以促进突触的时间依赖性调节。
这些目标将揭示星形胶质细胞时钟在调节突触和认知节律中的作用,并揭示
未来通过星形胶质细胞靶向操纵突触节律的策略,以恢复时钟相关
认知缺陷普遍存在于神经系统疾病中。
项目成果
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