离子在K+通道中渗透的非平衡分子动力学模拟:1 .渗透能量学和结构稳定性。

A Neamţu, Daniela Suciu
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引用次数: 0

摘要

由于离子通道所涉及的生理和病理生理过程的重要性,以及它们的运作是由物理化学定律描述的,人们已经尝试建立能够描述膜通透性以及通道蛋白结构和功能特性的物理模型。在本研究(分两部分)中,我们利用非平衡分子动力学模拟(NEMD)对K+通道模型(KcsA)进行了一系列模拟,以跟踪结构稳定性、渗透能量学以及利用线性响应理论(LRT)获得渗透过程定量信息的可能性。在K+离子上施加外力,以确定它们在相对较短的时间内通过通道,可计算。我们确定了即使在离子上施加很大的力的情况下,蛋白质也具有很高的抗变形能力(系统远未达到平衡)。离子通过通道过程中能量分布的估计表明,这些蛋白质创造了一个电导率途径,没有离子穿过通道的能量障碍(这可能是由于离子脱水造成的)。所使用的动态模型表明(正如之前在文献中提出的那样,在检查了x射线晶体学获得的静态KcsA结构后),这是由于离子与选择性过滤区域主多肽链上带负电的羰基氧的相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modelling of ion permeation in K+ channels by nonequilibrium molecular dynamics simulations: I. Permeation energetics and structure stability.

Because of the great importance of physiological and pathophysiological processes in which ion channels are involved and because their operation is described by physicochemical laws, there have been many attempts to develop physical models able to describe the membrane permeability and also the structural and functional properties of the channel protein structures. In this study (in two parts) we present a series of simulations on a K+ channel model (KcsA) using Nonequilibrium Molecular Dynamics simulations (NEMD), in order to follow structure stability, permeation energetics and the possibility of obtaining quantitative information about the permeation process using the Linear Response Theory (LRT). On K+ ions were applied external forces to determine them to pass through the channel in a relatively small amount of time, accessible computationally. We ascertained a high resistance of the protein to deformation even in conditions when great forces were applied on ions (the system was far from equilibrium). The estimation of energy profiles in the course of ions passage through the channel demonstrates that these proteins create a conductivity pathway with no energetic barriers for ions movement across the channel (which could be present due to ions dehydration). The dynamic model used demonstrates (as proposed before in the literature after the examination of the static KcsA structure obtained by X-Ray crystallography) that this is due to the interaction of ions with the negatively charged carbonyl oxygens of the main polypeptide chain in the selectivity filter region.

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