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从应力应变到电脉冲:蜘蛛缝感觉器中的机械转导

From stress and strain to spikes: mechanotransduction in spider slit sensilla.

作者信息

French Andrew S, Torkkeli Päivi H, Seyfarth Ernst-August

机构信息

Department of Physiology and Biophysics, Dalhousie University, Halifax, NS, B3H 4H7, Canada.

出版信息

J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2002 Nov;188(10):739-52. doi: 10.1007/s00359-002-0363-1. Epub 2002 Oct 31.

Abstract

This review focuses on the structure and function of a single mechanoreceptor organ in the cuticle of spiders. Knowledge emerging from the study of this organ promises to yield general principles that can be applied to mechanosensation in a wide range of animal systems. The lyriform slit sense organ on the antero-lateral leg patella of the spider Cupiennius salei is unusual in possessing large sensory neurons, whose cell bodies are close to the sites of sensory transduction, and accessible to intracellular recording during mechanotransduction. This situation, combined with recent technical developments, has made it possible to observe and experiment with all the major stages of mechanosensation. Important findings include the approximate size, number and ionic selectivity of the ion channels responsible for mechanotransduction, the types of voltage-activated ion channels responsible for action potential encoding, and the mechanisms controlling the dynamic properties of transduction and encoding. Most recently, a complex efferent system for peripheral modulation of mechanosensation has been discovered and partially characterized. Much remains to be learned about mechanosensation, but the lyriform slit sense organ system continues to offer important opportunities to advance our understanding of this crucial sense.

摘要

本综述聚焦于蜘蛛表皮中单个机械感受器器官的结构与功能。对该器官的研究成果有望产生可应用于广泛动物系统机械感觉的通用原理。蜘蛛Cupiennius salei前侧腿髌节上的琴形裂隙感觉器官不同寻常,它拥有大型感觉神经元,其细胞体靠近感觉转导位点,在机械转导过程中可进行细胞内记录。这种情况,再加上近期的技术发展,使得观察和实验机械感觉的所有主要阶段成为可能。重要发现包括负责机械转导的离子通道的大致大小、数量和离子选择性,负责动作电位编码的电压激活离子通道类型,以及控制转导和编码动态特性的机制。最近,还发现了一个用于机械感觉外周调节的复杂传出系统,并对其进行了部分表征。关于机械感觉仍有许多有待了解之处,但琴形裂隙感觉器官系统继续为推进我们对这一关键感觉的理解提供重要机遇。

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