Stochastic dynamics of remote knock-on permeation in biological ion channels

R. Tindjong, I. Kaufman, D. Luchinsky, P. McClintock, I. Khovanov, R. Eisenberg
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引用次数: 2

Abstract

Brownian dynamics simulations provide evidence for a remote knock-on mechanism facilitating the permeation of a biological ion channel by an ion that is initially trapped at the selectivity filter (SF). Unlike the case of conventional direct knock-on, the second ion that instigates permeation does not need to enter the channel. Nor does it necessarily take the place of the permeating ion at the SF, and it can even be of a different ionic species. The study is based on the simultaneous, self-consistent, solution of the coupled Poisson and Langevin equations for a simple generic model, taking account of all the charges present. The new permeation mechanism involves electrostatic amplification attributable to the permittivity mismatch between water and protein: the arrival of the instigating ion at the channel entrance reduces the exit barrier for the ion trapped at the SF, facilitating escape.
生物离子通道中远程连锁渗透的随机动力学
布朗动力学模拟为远程敲击机制提供了证据,该机制促进了最初被捕获在选择性过滤器(SF)的离子通过生物离子通道。与传统的直接撞击不同,促使渗透的第二个离子不需要进入通道。它也不一定要取代SF上的渗透离子,它甚至可以是不同的离子种类。该研究是基于一个简单的通用模型的耦合泊松和朗之万方程的同时,自一致的解,考虑到所有存在的电荷。新的渗透机制涉及由于水和蛋白质之间介电常数不匹配引起的静电放大:诱导离子到达通道入口降低了被困在SF的离子的出口障碍,促进了逃逸。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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