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异步释放这一不断演变的谜题。

The Ever-Growing Puzzle of Asynchronous Release.

作者信息

Rozov Andrei, Bolshakov Alexey P, Valiullina-Rakhmatullina Fliza

机构信息

Laboratory of Neurobiology, Institute of Fundamental Medicine and Biology, Kazan Federal University, Kazan, Russia.

Department of Physiology and Pathophysiology, University of Heidelberg, Heidelberg, Germany.

出版信息

Front Cell Neurosci. 2019 Feb 12;13:28. doi: 10.3389/fncel.2019.00028. eCollection 2019.

Abstract

Invasion of an action potential (AP) to presynaptic terminals triggers calcium dependent vesicle fusion in a relatively short time window, about a millisecond, after the onset of the AP. This allows fast and precise information transfer from neuron to neuron by means of synaptic transmission and phasic mediator release. However, at some synapses a single AP or a short burst of APs can generate delayed or asynchronous synaptic release lasting for tens or hundreds of milliseconds. Understanding the mechanisms underlying asynchronous release (AR) is important, since AR can better recruit extrasynaptic metabotropic receptors and maintain a high level of neurotransmitter in the extracellular space for a substantially longer period of time after presynaptic activity. Over the last decade substantial work has been done to identify the presynaptic calcium sensor that may be involved in AR. Several models have been suggested which may explain the long lasting presynaptic calcium elevation a prerequisite for prolonged delayed release. However, the presynaptic mechanisms underlying asynchronous vesicle release are still not well understood. In this review article, we provide an overview of the current state of knowledge on the molecular components involved in delayed vesicle fusion and in the maintenance of sufficient calcium concentration to trigger AR. In addition, we discuss possible alternative models that may explain intraterminal calcium dynamics underlying AR.

摘要

动作电位(AP)侵入突触前终末会在AP起始后的相对短时间窗口(约一毫秒)内触发钙依赖性囊泡融合。这使得通过突触传递和阶段性递质释放能够在神经元之间进行快速且精确的信息传递。然而,在某些突触处,单个AP或短串AP可产生持续数十或数百毫秒的延迟或异步突触释放。理解异步释放(AR)背后的机制很重要,因为AR能够更好地募集突触外代谢型受体,并在突触前活动后在细胞外空间维持高水平的神经递质长达更长时间。在过去十年中,人们开展了大量工作来确定可能参与AR的突触前钙传感器。已经提出了几种模型,它们可能解释了持久的突触前钙升高这一延长延迟释放的先决条件。然而,异步囊泡释放背后的突触前机制仍未得到很好的理解。在这篇综述文章中,我们概述了关于延迟囊泡融合以及维持足以触发AR的钙浓度所涉及的分子成分的当前知识状态。此外,我们讨论了可能解释AR背后终末内钙动力学的替代模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3999/6379310/d89ecfb7b287/fncel-13-00028-g0001.jpg

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