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一个活跃区物质介导的突触囊泡停泊和引发的随机模型,位于静止的活跃区。

A stochastic model of active zone material mediated synaptic vesicle docking and priming at resting active zones.

机构信息

Department of Physics, Stanford University School of Humanities and Sciences, Stanford, CA, 94305, USA.

Department of Biology, Texas A&M University, College Station, TX, 77843, USA.

出版信息

Sci Rep. 2017 Mar 21;7(1):278. doi: 10.1038/s41598-017-00360-z.

Abstract

Synaptic vesicles (SVs) fuse with the presynaptic membrane (PM) at specialized regions called active zones for synaptic transmission. SVs are associated with dense aggregates of macromolecules called active zone material (AZM) that has been thought to be involved in SV release. However, its role has recently begun to be elucidated. Several morphological studies proposed distinctively different AZM mediated SV docking and priming models: sequential and concurrent SV docking/priming. To explore ways to reconcile the contradictory models we develop a stochastic AZM mediated SV docking and priming model. We assume that the position of each connection site of the AZM macromolecules on their SV, directly linking the SV with the PM, varies by random shortening and lengthening of the macromolecules at resting active zones. We also perform computer simulations of SVs near the PM at resting active zones, and the results show that the distribution of the AZM connection sites can significantly affect the SV's docking efficiency and distribution of its contact area with the PM, thus priming and that the area correlates with the shape of the SVs providing a way to account for seemingly irreconcilable observations reported about the spatial relationship of SVs with the PM at active zones.

摘要

突触小泡(SVs)在称为活性区的特化区域与突触前膜(PM)融合,用于突触传递。SVs 与称为活性区物质(AZM)的大分子致密聚集体相关联,据认为 AZM 参与 SV 释放。然而,其作用最近才开始被阐明。几项形态学研究提出了截然不同的 AZM 介导的 SV 对接和引发模型:顺序和并发 SV 对接/引发。为了探索协调矛盾模型的方法,我们开发了一个随机 AZM 介导的 SV 对接和引发模型。我们假设 AZM 大分子在 SV 上与 PM 直接连接的每个连接位点的位置通过休息时活性区中大分子的随机缩短和延长而变化。我们还在休息时的活性区中 PM 附近对 SV 进行了计算机模拟,结果表明 AZM 连接位点的分布可以显著影响 SV 的对接效率及其与 PM 的接触面积的分布,从而引发和该区域与 SV 的形状相关,为解释关于活性区中 SV 与 PM 的空间关系的看似不可调和的观察结果提供了一种方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79df/5428245/6622c44ba460/41598_2017_360_Fig1_HTML.jpg

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