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Axonal Membranes and Their Domains: Assembly and Function of the Axon Initial Segment and Node of Ranvier

机译:轴突膜及其域:轴突初始节和Ranvier节点的组装和功能。

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摘要

Neurons are highly specialized cells of the nervous system that receive, process and transmit electrical signals critical for normal brain function. Here, we review the intricate organization of axonal membrane domains that facilitate rapid action potential conduction underlying communication between complex neuronal circuits. Two critical excitable domains of vertebrate axons are the axon initial segment (AIS) and the nodes of Ranvier, which are characterized by the high concentrations of voltage-gated ion channels, cell adhesion molecules and specialized cytoskeletal networks. The AIS is located at the proximal region of the axon and serves as the site of action potential initiation, while nodes of Ranvier, gaps between adjacent myelin sheaths, allow rapid propagation of the action potential through saltatory conduction. The AIS and nodes of Ranvier are assembled by ankyrins, spectrins and their associated binding partners through the clustering of membrane proteins and connection to the underlying cytoskeleton network. Although the AIS and nodes of Ranvier share similar protein composition, their mechanisms of assembly are strikingly different. Here we will cover the mechanisms of formation and maintenance of these axonal excitable membrane domains, specifically highlighting the similarities and differences between them. We will also discuss recent advances in super resolution fluorescence imaging which have elucidated the arrangement of the submembranous axonal cytoskeleton revealing a surprising structural organization necessary to maintain axonal organization and function. Finally, human mutations in axonal domain components have been associated with a growing number of neurological disorders including severe cognitive dysfunction, epilepsy, autism, neurodegenerative diseases and psychiatric disorders. Overall, this review highlights the assembly, maintenance and function of axonal excitable domains, particularly the AIS and nodes of Ranvier, and how abnormalities in these processes may contribute to disease.
机译:神经元是神经系统的高度专门化的细胞,可接收,处理和传输对正常大脑功能至关重要的电信号。在这里,我们审查了复杂的轴突膜结构域的组织,这些结构促进了复杂神经元回路之间通信背后的快速动作电位传导。脊椎动物轴突的两个关键的可兴奋结构域是轴突初始节(AIS)和Ranvier的节,其特征是高浓度的电压门控离子通道,细胞粘附分子和专门的细胞骨架网络。 AIS位于轴突的近端区域,并作为动作电位的起始部位,而Ranvier的结节(相邻髓鞘之间的间隙)则允许通过盐传导快速传播动作电位。 Ranvier的AIS和节点由锚蛋白,血影蛋白及其相关的结合配偶体通过膜蛋白的聚类和与基础细胞骨架网络的连接来组装。尽管AIS和Ranvier的节点共享相似的蛋白质组成,但它们的组装机制却截然不同。在这里,我们将介绍这些轴突可兴奋膜结构域的形成和维持机制,特别强调它们之间的异同。我们还将讨论超分辨率荧光成像的最新进展,阐明了膜下轴突细胞骨架的排列,揭示了维持轴突组织和功能所必需的令人惊讶的结构组织。最后,人轴突域成分的突变与越来越多的神经系统疾病有关,包括严重的认知功能障碍,癫痫,自闭症,神经退行性疾病和精神病。总的来说,本综述重点介绍了轴突可兴奋域的组装,维护和功能,特别是AIS和Ranvier的结节,以及这些过程中的异常可能如何导致疾病。

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