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水通道蛋白中的水运输:分子动力学模拟的渗透渗透率矩阵分析

Water transport in aquaporins: osmotic permeability matrix analysis of molecular dynamics simulations.

作者信息

Hashido Masanori, Kidera Akinori, Ikeguchi Mitsunori

机构信息

International Graduate School of Arts and Sciences, Yokohama City University, Yokohama, Japan.

出版信息

Biophys J. 2007 Jul 15;93(2):373-85. doi: 10.1529/biophysj.106.101170. Epub 2007 Apr 20.

Abstract

Single-channel osmotic water permeability (p(f)) is a key quantity for investigating the transport capability of the water channel protein, aquaporin. However, the direct connection between the single scalar quantity p(f) and the channel structure remains unclear. In this study, based on molecular dynamics simulations, we propose a p(f)-matrix method, in which p(f) is decomposed into contributions from each local region of the channel. Diagonal elements of the p(f) matrix are equivalent to the local permeability at each region of the channel, and off-diagonal elements represent correlated motions of water molecules in different regions. Averaging both diagonal and off-diagonal elements of the p(f) matrix recovers p(f) for the entire channel; this implies that correlated motions between distantly-separated water molecules, as well as adjacent water molecules, influence the osmotic permeability. The p(f) matrices from molecular dynamics simulations of five aquaporins (AQP0, AQP1, AQP4, AqpZ, and GlpF) indicated that the reduction in the water correlation across the Asn-Pro-Ala region, and the small local permeability around the ar/R region, characterize the transport efficiency of water. These structural determinants in water permeation were confirmed in molecular dynamics simulations of three mutants of AqpZ, which mimic AQP1.

摘要

单通道渗透水通透性(p(f))是研究水通道蛋白水通道转运能力的关键参数。然而,单一标量p(f)与通道结构之间的直接联系仍不明确。在本研究中,基于分子动力学模拟,我们提出了一种p(f)矩阵方法,其中p(f)被分解为通道各局部区域的贡献。p(f)矩阵的对角元素等同于通道各区域的局部通透性,非对角元素表示不同区域水分子的相关运动。对p(f)矩阵的对角和非对角元素进行平均可恢复整个通道的p(f);这意味着远距离分离的水分子以及相邻水分子之间的相关运动影响渗透通透性。对五种水通道蛋白(AQP0、AQP1、AQP4、AqpZ和GlpF)进行分子动力学模拟得到的p(f)矩阵表明,Asn-Pro-Ala区域水相关性的降低以及ar/R区域周围较小的局部通透性,是水转运效率的特征。在模拟模仿AQP1的AqpZ三种突变体的分子动力学中,证实了水渗透中的这些结构决定因素。

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