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快速神经传导的演变

Evolution of rapid nerve conduction.

作者信息

Castelfranco Ann M, Hartline Daniel K

机构信息

Békésy Laboratory of Neurobiology Pacific Biosciences Research Center University of Hawai'i at Manoa, 1993 East-West Rd, Honolulu, HI 96822, United States.

Békésy Laboratory of Neurobiology Pacific Biosciences Research Center University of Hawai'i at Manoa, 1993 East-West Rd, Honolulu, HI 96822, United States.

出版信息

Brain Res. 2016 Jun 15;1641(Pt A):11-33. doi: 10.1016/j.brainres.2016.02.015. Epub 2016 Feb 12.

Abstract

Rapid conduction of nerve impulses is a priority for organisms needing to react quickly to events in their environment. While myelin may be viewed as the crowning innovation bringing about rapid conduction, the evolution of rapid communication mechanisms, including those refined and enhanced in the evolution of myelin, has much deeper roots. In this review, a sequence is traced starting with diffusional communication, followed by transport-facilitated communication, the rise of electrical signaling modalities, the invention of voltage-gated channels and "all-or-none" impulses, the emergence of elongate nerve axons specialized for communication and their fine-tuning to enhance impulse conduction speeds. Finally within the evolution of myelin itself, several innovations have arisen and have been interactively refined for speed enhancement, including the addition and sealing of layers, their limitation by space availability, and the optimization of key parameters: channel density, lengths of exposed nodes and lengths of internodes. We finish by suggesting several design principles that appear to govern the evolution of rapid conduction. This article is part of a Special Issue entitled SI: Myelin Evolution.

摘要

对于需要对环境中的事件迅速做出反应的生物体来说,神经冲动的快速传导至关重要。虽然髓鞘可被视为实现快速传导的最高创新,但快速通讯机制的进化,包括那些在髓鞘进化过程中得到完善和增强的机制,有着更深的根源。在这篇综述中,我们追溯了一个序列,从扩散通讯开始,接着是运输促进通讯、电信号传导方式的兴起、电压门控通道和“全或无”冲动的发明、专门用于通讯的细长神经轴突的出现以及它们为提高冲动传导速度而进行的微调。最后,在髓鞘自身的进化过程中,出现了几种创新,并通过相互作用进行了优化以提高速度,包括层的添加和封闭、受空间可用性限制以及关键参数的优化:通道密度、暴露节点的长度和节间长度。我们最后提出了一些似乎支配快速传导进化的设计原则。本文是名为“髓鞘进化”特刊的一部分。

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