Enhanced Sampling in Molecular Dynamics Simulations: How Many MD Snapshots can be Needed to Reproduce the Biological Behavior?

IF 3.3 3区 医学 Q2 CHEMISTRY, MEDICINAL
Camila A Tavares, Taináh M R Santos, Mateus A Gonçalves, Elaine F F da Cunha, Teodorico C Ramalho
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引用次数: 0

Abstract

Since its early days in the 19th century, medicinal chemistry has concentrated its efforts on the treatment of diseases, using tools from areas such as chemistry, pharmacology, and molecular biology. The understanding of biological mechanisms and signaling pathways is crucial information for the development of potential agents for the treatment of diseases mainly because they are such complex processes. Given the limitations that the experimental approach presents, computational chemistry is a valuable alternative for the study of these systems and their behavior. Thus, classical molecular dynamics, based on Newton's laws, is considered a technique of great accuracy, when appropriated force fields are used, and provides satisfactory contributions to the scientific community. However, as many configurations are generated in a large MD simulation, methods such as Statistical Inefficiency and Optimal Wavelet Signal Compression Algorithm are great tools that can reduce the number of subsequent QM calculations. Accordingly, this review aims to briefly discuss the importance and relevance of medicinal chemistry allied to computational chemistry as well as to present a case study where, through a molecular dynamics simulation of AMPK protein (50 ns) and explicit solvent (TIP3P model), a minimum number of snapshots necessary to describe the oscillation profile of the protein behavior was proposed. For this purpose, the RMSD calculation, together with the sophisticated OWSCA method was used to propose the minimum number of snapshots.

分子动力学模拟中的增强采样:需要多少 MD 快照才能重现生物行为?
自 19 世纪诞生以来,药物化学一直致力于利用化学、药理学和分子生物学等领域的工具治疗疾病。了解生物机制和信号通路是开发潜在药物治疗疾病的关键信息,这主要是因为它们是如此复杂的过程。鉴于实验方法的局限性,计算化学是研究这些系统及其行为的重要替代方法。因此,以牛顿定律为基础的经典分子动力学被认为是一种非常精确的技术,只要使用适当的力场,就能为科学界做出令人满意的贡献。然而,由于在大型 MD 模拟中会产生许多构型,统计低效率和优化小波信号压缩算法等方法是可以减少后续 QM 计算数量的好工具。因此,本综述旨在简要讨论与计算化学相关的药物化学的重要性和相关性,并介绍一个案例研究:通过对 AMPK 蛋白质(50 毫微秒)和显式溶剂(TIP3P 模型)进行分子动力学模拟,提出了描述蛋白质行为振荡曲线所需的最少快照数。为此,我们利用 RMSD 计算和复杂的 OWSCA 方法提出了最小快照数。
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
CiteScore
7.80
自引率
0.00%
发文量
231
审稿时长
6 months
期刊介绍: The aim of Mini-Reviews in Medicinal Chemistry is to publish short reviews on the important recent developments in medicinal chemistry and allied disciplines. Mini-Reviews in Medicinal Chemistry covers all areas of medicinal chemistry including developments in rational drug design, synthetic chemistry, bioorganic chemistry, high-throughput screening, combinatorial chemistry, drug targets, and natural product research and structure-activity relationship studies. Mini-Reviews in Medicinal Chemistry is an essential journal for every medicinal and pharmaceutical chemist who wishes to be kept informed and up-to-date with the latest and most important developments.
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