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乌贼巨大轴突中钾离子转运的单文件模型。正常离子浓度下钾电流的模拟。

A single-file model for potassium transport in squid giant axon. Simulation of potassium currents at normal ionic concentrations.

作者信息

Kohler H H

出版信息

Biophys J. 1977 Aug;19(2):125-40. doi: 10.1016/S0006-3495(77)85575-6.

Abstract

A physical model for potassium transport in squid giant axon is proposed. The model is designed to explain the empirical data given by the Hodgkin-Huxley model and related experiments. It is assumed that K(+) moves across the axon membrane by single-file diffusion through narrow pores. In the model a pore has three negatively charged sites that can be occupied alternatively by K(+) or by a gating particle, GP(++), coming from the external surface. GP(++) is considered to be part of the membrane rather than a diffusible component of the surrounding solutions. A high activation barrier for GP(++) is supposed at the inner membrane border so that it cannot change over to the internal surface. Therefore potassium diffusion can be blocked by GP(++) penetrating into the pores. This mechanism controls the dynamic behaviour of the model. The time-dependent probabilities of the pore states are described by a system of differential equations. The rate constants in these equations depend on the ionic concentrations, the membrane voltage, and the electrostatic interaction between ions in a single pore. Detailed computational tests for normal composition of external and internal solutions show that the model agrees remarkably well with the stationary and dynamic behaviour of the Hodgkin-Huxley model. However, the hyperpolarization delay is not reproduced. A structural modification, concerning this delay and the way in which GP(++) is attached to the membrane, is proposed, and the qualitative behavior of the model at varied external and internal concentrations is discussed.

摘要

提出了一种乌贼巨轴突中钾离子转运的物理模型。该模型旨在解释霍奇金 - 赫胥黎模型及相关实验给出的经验数据。假设钾离子(K⁺)通过狭窄孔隙的单排扩散穿过轴突膜。在该模型中,一个孔隙有三个带负电荷的位点,它们可被来自外表面的钾离子或门控粒子GP(++)交替占据。GP(++)被认为是膜的一部分,而非周围溶液的可扩散成分。在内膜边界处假设GP(++)存在一个高激活势垒,使得它不能转变到内表面。因此,钾离子扩散可被渗入孔隙的GP(++)阻断。该机制控制着模型的动态行为。孔隙状态的时间相关概率由一个微分方程组描述。这些方程中的速率常数取决于离子浓度、膜电压以及单个孔隙中离子间的静电相互作用。对外部和内部溶液正常组成的详细计算测试表明,该模型与霍奇金 - 赫胥黎模型的稳态和动态行为非常吻合。然而,超极化延迟未被重现。针对此延迟以及GP(++)附着于膜的方式提出了一种结构修改,并讨论了该模型在不同外部和内部浓度下的定性行为。

相似文献

8
Kinetics of activation of the potassium conductance in the squid giant axon.
Proc R Soc Lond B Biol Sci. 1988 Jan 22;232(1269):375-94. doi: 10.1098/rspb.1988.0002.

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