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Ultrastructure of an electroreceptor (mormyromast) in a mormyrid fish, Gnathonemus petersii. II.彼氏颈鳍电鳗(Gnathonemus petersii)中一种电感受器(电丘)的超微结构。II.
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Mormyromast electroreceptor organs and their afferent fibers in mormyrid fish: I. Morphology.裸臀鱼的电感受器器官及其传入纤维:I. 形态学
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弱电鱼彼得氏无须魮的电感受器模型。I. 模型以及A受体和B受体之间差异的起源。

Electroreceptor model of the weakly electric fish Gnathonemus petersii. I. The model and the origin of differences between A- and B-receptors.

作者信息

Shuai J, Kashimori Y, Kambara T

机构信息

Department of Applied Physics and Chemistry, The University of Electro-Communications, Chofu, Tokyo 182-8585, Japan.

出版信息

Biophys J. 1998 Oct;75(4):1712-26. doi: 10.1016/S0006-3495(98)77613-1.

DOI:10.1016/S0006-3495(98)77613-1
PMID:9746513
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1299843/
Abstract

We present an electroreceptor model of the A- and B-receptors of the weakly electric fish Gnathonemus petersii. The model consists of a sensory cell, whose membrane is separated into an apical and basal portions by support cells, and an afferent fiber. The apical membrane of the cell contains only leak channels, while the basal membrane contains voltage-sensitive Ca2+ channels, voltage-sensitive and Ca2+-activated K+ channels, and leak channels. The afferent fiber is described with the modified Hodgkin-Huxley equation, in which the voltage-sensitive gate of the K+ channels is a dynamic variable. In our model we suggest that the electroreceptors detect and process the information provided by an electric organ discharge (EOD) as follows: the current caused by an EOD stimulus depolarizes the basal membrane to a greatly depolarized state. Then the release of transmitter excites the afferent fiber to oscillate after a certain time interval. Due to the resistance-capacitance structure of the cells, they not only perceive the EOD intensity, but also sense the variation of the EOD waveform, which can be strongly distorted by the capacitive component of an object. Because of the different morphologies of A- and B-cells, as well as the different conductance of leak ion channels in the apical membrane and the different capacitance of A- and B-cells, A-receptors mainly respond to the EOD intensity, while B-receptors are sensitive to the variation of EOD waveform.

摘要

我们提出了一种关于弱电鱼彼得氏裸臀鱼A受体和B受体的电感受器模型。该模型由一个感觉细胞和一条传入纤维组成,感觉细胞的膜被支持细胞分隔为顶端部分和基部部分。细胞的顶端膜仅含有泄漏通道,而基部膜含有电压敏感的Ca2+通道、电压敏感和Ca2+激活的K+通道以及泄漏通道。传入纤维用修正的霍奇金-赫胥黎方程描述,其中K+通道的电压敏感门是一个动态变量。在我们的模型中,我们认为电感受器检测并处理由电器官放电(EOD)提供的信息如下:EOD刺激引起的电流使基部膜去极化到一个深度去极化状态。然后,在一定时间间隔后,递质的释放激发传入纤维振荡。由于细胞的电阻-电容结构,它们不仅能感知EOD强度,还能感知EOD波形的变化,而这种变化会因物体的电容成分而严重失真。由于A细胞和B细胞的形态不同,以及顶端膜中泄漏离子通道的电导不同和A细胞与B细胞的电容不同,A受体主要对EOD强度作出反应,而B受体对EOD波形的变化敏感。