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蛋白质在高压下的分子动力学模拟:结构、功能和热力学。

Molecular dynamics simulation of proteins under high pressure: Structure, function and thermodynamics.

机构信息

School of Life Science and Technology, Tokyo Institute of Technology, Ookayama, 2-12-1 Meguro-ku, Tokyo 152-8550, Japan.

Department of Physics, Kindai University, 3-4-1 Kowakae, Higashiosaka, Osaka 577-8502, Japan.

出版信息

Biochim Biophys Acta Gen Subj. 2020 Feb;1864(2):129395. doi: 10.1016/j.bbagen.2019.07.004. Epub 2019 Jul 11.

Abstract

BACKGROUND

Molecular dynamics (MD) simulation is well-recognized as a powerful tool to investigate protein structure, function, and thermodynamics. MD simulation is also used to investigate high pressure effects on proteins. For conducting better MD simulation under high pressure, the main issues to be addressed are: (i) protein force fields and water models were originally developed to reproduce experimental properties obtained at ambient pressure; and (ii) the timescale to observe the pressure effect is often much longer than that of conventional MD simulations.

SCOPE OF REVIEW

First, we describe recent developments in MD simulation methodologies for studying the high-pressure structure and dynamics of protein molecules. These developments include force fields for proteins and water molecules, and enhanced simulation techniques. Then, we summarize recent studies of MD simulations of proteins in water under high pressure.

MAJOR CONCLUSIONS

Recent MD simulations of proteins in solution under pressure have reproduced various phenomena identified by experiments using high pressure, such as hydration, water penetration, conformational change, helix stabilization, and molecular stiffening.

GENERAL SIGNIFICANCE

MD simulations demonstrate differences in the properties of proteins and water molecules between ambient and high-pressure conditions. Comparing the results obtained by MD calculations with those obtained experimentally could reveal the mechanism by which biological molecular machines work well in collaboration with water molecules.

摘要

背景

分子动力学(MD)模拟已被公认为研究蛋白质结构、功能和热力学的强大工具。MD 模拟也用于研究高压对蛋白质的影响。为了在高压下进行更好的 MD 模拟,需要解决的主要问题是:(i)蛋白质力场和水模型最初是为了再现常压下获得的实验性质而开发的;(ii)观察压力影响的时间尺度通常比常规 MD 模拟长得多。

综述范围

首先,我们描述了用于研究蛋白质分子高压结构和动力学的 MD 模拟方法的最新进展。这些进展包括蛋白质和水分子的力场以及增强的模拟技术。然后,我们总结了最近在高压下水溶液中蛋白质的 MD 模拟研究。

主要结论

最近在高压下对溶液中蛋白质的 MD 模拟再现了使用高压识别的各种现象,例如水合、水渗透、构象变化、螺旋稳定和分子变硬。

一般意义

MD 模拟表明蛋白质和水分子在环境和高压条件下的性质存在差异。将 MD 计算得到的结果与实验结果进行比较,可以揭示生物分子机器与水分子协同工作的机制。

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