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突触形态在神经可塑性中的作用:突触效能背后的结构相互作用。

The role of synaptic morphology in neural plasticity: structural interactions underlying synaptic power.

作者信息

Marrone Diano F, Petit Ted L

机构信息

Department of Psychology and Program in Neuroscience, University of Toronto, 1265 Military Trail, Ont., M1C 1A4, Scarborough, Toronto, Canada.

出版信息

Brain Res Brain Res Rev. 2002 Feb;38(3):291-308. doi: 10.1016/s0165-0173(01)00147-3.

Abstract

The study of synaptic plasticity has revealed a common cascade of ultrastructural events across several paradigms. Most notable of these paradigms are development, long-term potentiation (LTP), and adult reactive synaptogenesis (RS). These plastic neural events are discussed in terms of major categories of synaptic morphological change--synaptic density, curvature, and perforations, as well as the size of synaptic elements. The potential functional implications of these morphological changes are reviewed, along with considerations based on recently developed mathematical models of synaptic function. These considerations are then incorporated into the common structural alterations observed during multiple forms of synaptic activation, producing a sequential model supporting increased efficacy associated with neural plasticity. The data suggest that during a plastic challenge, synapses move through a continuum of morphological change, dependent upon the interaction of structural parameters and their effect on various aspects critical to synaptic efficacy. This complex interplay of morphological alterations and synaptic types over time and location may form a critical aspect of neural plasticity.

摘要

对突触可塑性的研究揭示了几种模式下超微结构事件的常见级联反应。这些模式中最值得注意的是发育、长时程增强(LTP)和成年期反应性突触形成(RS)。这些可塑性神经事件根据突触形态变化的主要类别进行讨论——突触密度、曲率和穿孔,以及突触元件的大小。本文回顾了这些形态变化的潜在功能意义,并结合了基于最近开发的突触功能数学模型的考量。然后,这些考量被纳入多种形式突触激活过程中观察到的常见结构改变,从而产生一个支持与神经可塑性相关的效能增加的顺序模型。数据表明,在可塑性挑战期间,突触会经历一系列形态变化,这取决于结构参数的相互作用及其对突触效能关键方面的影响。随着时间和位置的推移,形态改变和突触类型之间这种复杂的相互作用可能构成神经可塑性的一个关键方面。

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