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与长时程增强相关的脊柱变化。

Spine changes associated with long-term potentiation.

作者信息

Muller D, Toni N, Buchs P A

机构信息

Neuropharmacology, Centre Médical Universitaire, Geneva, Switzerland.

出版信息

Hippocampus. 2000;10(5):596-604. doi: 10.1002/1098-1063(2000)10:5<596::AID-HIPO10>3.0.CO;2-Y.

Abstract

High-frequency stimulation of excitatory synapses in many regions of the brain triggers a lasting increase in the efficacy of synaptic transmission referred to as long-term potentiation (LTP) and believed to contribute to learning and memory. One hypothesis proposed to account for the stability and properties of this functional plasticity is a structural remodeling of spine synapses. This possibility has recently received support from several studies. It has been found that spines are highly dynamic structures, that they can be formed very rapidly, and that synaptic activity and calcium modulate changes in spine shape and formation of new spines. Ultrastructural analyses bring additional support to these observations and suggest that LTP is associated with a remodeling of the postsynaptic density (PSD) and a process of spine duplication. This new information is reviewed and interpreted in light of other recent advances concerning the mechanisms of LTP and especially the role of postsynaptic glutamate receptor turnover in this form of plasticity. Taken together, a view is emerging that suggests that morphologic changes of spine synapses are associated with LTP and that they not only correlate with, but probably also contribute to the increase in synaptic transmission.

摘要

高频刺激大脑许多区域的兴奋性突触会引发突触传递效能的持久增强,即长时程增强(LTP),人们认为这有助于学习和记忆。为解释这种功能可塑性的稳定性和特性而提出的一个假说是,棘突突触会发生结构重塑。这种可能性最近得到了多项研究的支持。人们发现,棘突是高度动态的结构,它们能够非常迅速地形成,而且突触活动和钙会调节棘突形状的变化以及新棘突的形成。超微结构分析为这些观察结果提供了更多支持,并表明LTP与突触后致密物(PSD)的重塑以及棘突复制过程有关。结合其他关于LTP机制,特别是突触后谷氨酸受体周转在这种可塑性形式中的作用的最新进展,对这些新信息进行了综述和解读。综合来看,一种观点正在形成,即棘突突触的形态变化与LTP相关,它们不仅与突触传递的增强相关,而且可能也对其有贡献。

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