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膜电流的通用稳态电流-电压关系。

A universal steady state I-V relationship for membrane current.

作者信息

Chernyak Y B

机构信息

Division of Health Sciences and Technology, Harvard University, Cambridge, MA 02139, USA.

出版信息

IEEE Trans Biomed Eng. 1995 Dec;42(12):1145-57. doi: 10.1109/10.476121.

Abstract

A purely electrical mechanism for the gating of membrane ionic channel gives rise to a simple I-V relationship for membrane current. Our approach is based on the known presence of gating charge, which is an established property of the membrane channel gating. The gating charge is systematically treated as a polarization of the channel protein which varies with the external electric field and modifies the effective potential through which the ions migrate in the channel. Two polarization effects have been considered: 1) the up or down shift of the whole potential function, and 2) the change in the effective electric field inside the channel which is due to familiar effect of the effective reduction of the electric field inside a dielectric body because of the presence of surface charges on its surface. Both effects are linear in the channel polarization. The ionic current is described by a steady state solution of the Nernst-Planck equation with the potential directly controlled by the gating charge system. The solution describes reasonably well the steady state and peak-current I-V relationships for different channels, and when applied adiabatically, explains the time lag between the gating charge current and the rise of the ionic current. The approach developed can be useful as an effective way to model the ionic currents in axons, cardiac cells and other excitable tissues.

摘要

膜离子通道门控的纯电学机制产生了膜电流简单的电流-电压(I-V)关系。我们的方法基于门控电荷的已知存在,这是膜通道门控的一个既定特性。门控电荷被系统地视为通道蛋白的一种极化,它随外部电场变化,并改变离子在通道中迁移所通过的有效电位。考虑了两种极化效应:1)整个电位函数的上移或下移,以及2)通道内部有效电场的变化,这是由于介质体表面存在表面电荷而导致其内部电场有效降低的常见效应。两种效应在通道极化中都是线性的。离子电流由能斯特-普朗克方程的稳态解描述,电位由门控电荷系统直接控制。该解相当好地描述了不同通道的稳态和峰值电流I-V关系,并且当绝热应用时,解释了门控电荷电流与离子电流上升之间的时间滞后。所开发的方法可作为一种有效方式,用于模拟轴突、心肌细胞和其他可兴奋组织中的离子电流。

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