Synaptic mechanisms of functional recovery after stroke
Synaptic mechanisms of functional recovery after stroke
批准号:
10528428
负责人:
Martin Hruska
金额:
$27.32万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
未结题
起止时间:
2014-09-08 至 2025-05-31
关键词:
ArchitectureBehavioralBehavioral ParadigmBrainCenters of Research ExcellenceDataDendritic SpinesEphrin-B3ExhibitsGlutamate ReceptorImageIndividualKnockout MiceLeadLinkModificationMolecularMusN-MethylaspartatePathologyPhasePlayRecoveryRecovery of FunctionResearchResolutionRoleSensorimotor functionsSignal TransductionSiteSomatosensory CortexStrokeSynapsesSynaptic TransmissionSynaptic plasticityTestingUniversitiesVertebral columnWest VirginiaWorkfunctional improvementfunctional plasticityhippocampal pyramidal neuronimprovedinsightmouse modelnanoarchitecturenanoscalenew therapeutic targetnovelpost strokepresynapticpreventscaffoldstroke interventionstroke modelstroke patientstroke recoverytwo-photon
中文摘要
中风后功能的重新定位依赖于大脑皮层回路的重新连接。这些结构
电路的修改可能取决于个体分子结构的纳米级变化
产生交替连接并加强幸存联系的突触。NMDA型和AMPA型
谷氨酸受体在调节突触的结构和功能可塑性方面起着关键作用。
中风后,通过AMPAR和NMDAR的信号发生变化,可能是由于它们的
纳米级定位。突触的小尺寸阻碍了我们理解突触是如何
纳米结构因中风而改变,以及纳米级突触变化如何导致功能性
恢复,限制了我们针对突触进行中风干预的能力。我们的建议试图打破
这一障碍通过将最先进的STED超分辨率成像与行为分析相结合
卒中小鼠模型的感觉运动功能。我们的初步数据显示AMPAR和
NMDAR相对于脊柱大小和突触前释放部位表现出不同的组织原则,
这表明,支配突触传递和可塑性的正是一套纳米级规则。我们会
测试这一假设,即单个脊柱突触的精确纳米级重塑是
卒中后功能恢复。在目标1,我们将确定突触前和突触后的变化
皮质锥体神经元上的纳米结构与中风后的功能恢复有关。通过成像
脚手架的组织(PSD-95和巴松管)和功能(AMPAR、NMDAR、MUNC-13)
在卒中后恢复的早期和晚期,突触的成分,我们将确定如何变化
在突触中,纳米结构与幼年和老年小鼠感觉运动功能的恢复有关。
在目标2中,我们将确定ephin-B3在脊柱皮质纳米结构重塑中的作用。
中风恢复期的锥体神经元。检测eaffin-B3基因缺失小鼠的感觉运动行为
范型,我们将确定卒中后功能恢复是否需要eaffin-B3。
最后,使用双光子和STED成像对躯体感觉皮质中的树突进行成像,我们将
确定eaffin-B3是否调节中风后的突触重构。新的分子洞察
这项研究将提高我们对中风病理的理解,同时提供
机能恢复的机械性基础。
英文摘要
Remapping of function after stroke relies on the rewiring of cortical circuitry. These structural
modifications of circuits likely depend on nanoscale alteration in the molecular architecture of individual
synapses that generate alternate connectivity and strengthen surviving contacts. NMDA- and AMPA-type
glutamate receptors play critical roles in regulating structural and functional plasticity of synapses.
Following a stroke, the signaling via AMPARsand NMDARs changes, likely due to changes in their
nanoscale localization. The small size of synapses has prevented us from understanding how synaptic
nano-architecture is altered by stroke and how nanoscale synaptic changes might lead to functional
recovery, limiting our ability to target synapses for stroke intervention. Our proposal seeks to break down
this barrier by combining state-of-the-art STEDsuper-resolution imaging with behavioral analyses of
sensorimotor function in the mouse model of stroke. Our preliminary data indicate that AMPARsand
NMDARs exhibit distinct organizational principles relative to spine size and presynaptic release sites,
suggesting that the exact set of nanoscale rules governs synaptic transmission and plasticity. We will
test the hypothesis that precise nanoscale remodeling of individual spine synapses underlies the
functional recovery after stroke. In aim 1, we will determine how changes in pre- and post-synaptic
nano-architecture on cortical pyramidal neurons are linked to functional recovery after stroke. By imaging
the organization of scaffolding (PSD-95 and Bassoon) and functional (AMPARs, NMDARs, Munc-13)
components of synapses in early and late phases of recovery after stroke, we will establish how changes
in synaptic nano-architecture relate to the recovery of sensorimotor function in both young and old mice.
In aim 2, we will determine the role of ephrin-B3 on the remodeling of spine nano-architecture on cortical
pyramidal neurons during stroke recovery. Testing ephrin-B3 null mice in sensorimotor behavioral
paradigms, we will determine whether ephrin-B3 is required for the functional recovery after stroke.
Finally, using two-photon and STEDimaging of dendritic spines in the somatosensory cortex, we will
determine whether ephrin-B3 regulates synaptic remodeling after stroke. Novel molecular insights
gained from this research will improve our understanding of stroke pathology while providing
mechanistic underpinnings into functional recovery.
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会议论文
Synaptic mechanisms of functional recovery after stroke
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批准号:10508556
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项目类别:
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资助金额:$26.6万
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财政年份:2021
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负责人:Martin Hruska
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依托单位:
Linking molecular nano-organization of spine synapses and structural plasticity using super-resolution imaging
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批准号:10367876
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财政年份:2019
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负责人:Martin Hruska
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依托单位:
Linking molecular nano-organization of spine synapses and structural plasticity using super-resolution imaging
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批准号:9808591
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项目类别:
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资助金额:$23.4万
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财政年份:2019
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负责人:Martin Hruska
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依托单位:
Synaptic mechanisms of functional recovery after stroke
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批准号:10640995
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项目类别:
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资助金额:$29.29万
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财政年份:2014
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负责人:Martin Hruska
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依托单位:
国内基金
海外基金
Behavioral Insights on Cooperation in Social Dilemmas
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批准号:--
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项目类别:外国优秀青年学者研究基金项目
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资助金额:--
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批准年份:2024
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负责人:LIEN,Jaimie Wei-Hung
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依托单位: