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Voltage-Gated Sodium Channels:Mechanistic Insights From Atomistic Molecular Dynamics Simulations

机译:电压门控钠通道:从原子分子动力学模拟获得的机理见解

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摘要

The permeation of ions and other molecules across biological membranes is an inherent requirement of all cellular organisms. Ion channels, in particular, are responsible for the conduction of charged species, hence modulating the propagation of electrical signals. Despite the universal physiological implications of this property, the molecular functioning of ion channels remains ambiguous. The combination of atomistic structural data with computational methodologies, such as molecular dynamics (MD) simulations, is now considered routine to investigate structure–function relationships in biological systems. A fuller understanding of conduction, selectivity, and gating, therefore, is steadily emerging due to the applicability of these techniques to ion channels. However, because their structure is known at atomic resolution, studies have consistently been biased toward K+ channels, thus the molecular determinants of ionic selectivity, activation, and drug blockage in Na+ channels are often overlooked. The recent increase of available crystallographic data has eminently encouraged the investigation of voltage-gated sodium (NaV) channels via computational methods. Here, we present an overview of simulation studies that have contributed to our understanding of key principles that underlie ionic conduction and selectivity in Na+ channels, in comparison to the K+ channel analogs.
机译:离子和其他分子在生物膜上的渗透是所有细胞有机体的固有要求。离子通道尤其负责带电物质的传导,从而调节电信号的传播。尽管此特性具有普遍的生理意义,但离子通道的分子功能仍然不明确。现在,将原子结构数据与诸如分子动力学(MD)模拟之类的计算方法相结合,被认为是研究生物系统中结构与功能关系的常规方法。因此,由于这些技术对离子通道的适用性,对导电,选择性和门控的全面了解正在稳步发展。但是,由于它们的结构在原子分辨率上是已知的,因此研究一直偏向于K +通道,因此,经常忽视Na +通道中离子选择性,活化和药物阻滞的分子决定因素。可用晶体学数据的最新增长显着鼓励了通过计算方法研究电压门控钠(NaV)通道。在这里,我们提供了模拟研究的概述,这些研究有助于我们理解与K +通道类似物相比,对Na +通道中离子传导和选择性的重要原理的理解。

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