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用于突触后信号传导和可塑性的脊柱微区

Spine microdomains for postsynaptic signaling and plasticity.

作者信息

Newpher Thomas M, Ehlers Michael D

机构信息

Department of Neurobiology, Duke University Medical Center, Durham, NC 27710, USA.

出版信息

Trends Cell Biol. 2009 May;19(5):218-27. doi: 10.1016/j.tcb.2009.02.004. Epub 2009 Mar 28.

Abstract

Changes in the molecular composition and signaling properties of excitatory glutamatergic synapses onto dendritic spines mediate learning-related plasticity in the mammalian brain. This molecular adaptation serves as the most celebrated cell biological model for learning and memory. Within their micron-sized dimensions, dendritic spines restrict the diffusion of signaling molecules and spatially confine the activation of signal transduction pathways. Much of this local regulation occurs by spatial compartmentalization of glutamate receptors. Here, we review recently identified cell biological mechanisms regulating glutamate receptor mobility within individual dendritic spines. We discuss the emerging functions of glutamate receptors residing within sub-spine microdomains and propose a model for distinct signaling platforms with specialized functions in synaptic plasticity.

摘要

树突棘上兴奋性谷氨酸能突触的分子组成和信号特性的变化介导了哺乳动物大脑中与学习相关的可塑性。这种分子适应性是学习和记忆最著名的细胞生物学模型。在其微米大小的范围内,树突棘限制了信号分子的扩散,并在空间上限制了信号转导通路的激活。这种局部调节大多是通过谷氨酸受体的空间分隔来实现的。在这里,我们综述了最近发现的调节单个树突棘内谷氨酸受体流动性的细胞生物学机制。我们讨论了位于棘内亚微域的谷氨酸受体的新功能,并提出了一个在突触可塑性中具有特殊功能的不同信号平台的模型。

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