Free Energy Methods for the Description of Molecular Processes.

IF 10.4 1区 生物学 Q1 BIOPHYSICS
Christophe Chipot
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引用次数: 8

Abstract

Efforts to combine theory and experiment to advance our knowledge of molecular processes relevant to biophysics have been considerably enhanced by the contribution of statistical-mechanics simulations. Key to the understanding of such molecular processes is the underlying free-energy change. Being able to accurately predict this change from first principles represents an appealing prospect. Over the past decades, the synergy between steadily growing computational resources and unrelenting methodological developments has brought free-energy calculations into the arsenal of tools commonly utilized to tackle important questions that experiment alone has left unresolved. The continued emergence of new options to determine free energies has also bred confusion amid the community of users, who may find it difficult to choose the best-suited algorithm to address the problem at hand. In an attempt to clarify the current landscape, this review recounts how the field has been shaped and how the broad gamut of methods available today is rooted in a few foundational principles laid down many years ago.Three examples of molecular processes central to biophysics illustrate where free-energy calculations stand and what are the conceptual and practical obstacles that we must overcome to increase their predictive power.

描述分子过程的自由能方法。
由于统计力学模拟的贡献,结合理论和实验来提高我们对与生物物理学相关的分子过程的认识的努力得到了极大的加强。理解这种分子过程的关键是潜在的自由能变化。能够从基本原理中准确预测这种变化代表着一个吸引人的前景。在过去的几十年里,稳定增长的计算资源和不断发展的方法之间的协同作用,使自由能计算成为通常用于解决实验无法解决的重要问题的工具库。确定自由能的新选择的不断出现也在用户社区中引起了困惑,他们可能会发现很难选择最适合的算法来解决手头的问题。为了澄清目前的情况,本综述叙述了该领域是如何形成的,以及今天可用的广泛方法是如何植根于多年前制定的一些基本原则的。三个分子过程的例子是生物物理学的核心,说明了自由能计算的地位,以及我们必须克服的概念和实践障碍,以提高其预测能力。
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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来源期刊
Annual Review of Biophysics
Annual Review of Biophysics 生物-生物物理
CiteScore
21.00
自引率
0.00%
发文量
25
期刊介绍: The Annual Review of Biophysics, in publication since 1972, covers significant developments in the field of biophysics, including macromolecular structure, function and dynamics, theoretical and computational biophysics, molecular biophysics of the cell, physical systems biology, membrane biophysics, biotechnology, nanotechnology, and emerging techniques.
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