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计算方法在自缠结蛋白研究中的应用:批判性评价。

Computational methods in the study of self-entangled proteins: a critical appraisal.

机构信息

Max Panck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany.

出版信息

J Phys Condens Matter. 2019 Nov 6;31(44):443001. doi: 10.1088/1361-648X/ab2f19. Epub 2019 Jul 3.

Abstract

The existence of self-entangled proteins, the native structure of which features a complex topology, unveils puzzling, and thus fascinating, aspects of protein biology and evolution. The discovery that a polypeptide chain can encode the capability to self-entangle in an efficient and reproducible way during folding, has raised many questions, regarding the possible function of these knots, their conservation along evolution, and their role in the folding paradigm. Understanding the function and origin of these entanglements would lead to deep implications in protein science, and this has stimulated the scientific community to investigate self-entangled proteins for decades by now. In this endeavour, advanced experimental techniques are more and more supported by computational approaches, that can provide theoretical guidelines for the interpretation of experimental results, and for the effective design of new experiments. In this review we provide an introduction to the computational study of self-entangled proteins, focusing in particular on the methodological developments related to this research field. A comprehensive collection of techniques is gathered, ranging from knot theory algorithms, that allow detection and classification of protein topology, to Monte Carlo or molecular dynamics strategies, that constitute crucial instruments for investigating thermodynamics and kinetics of this class of proteins.

摘要

自缠蛋白的存在揭示了蛋白质生物学和进化中令人费解但又引人入胜的方面,其天然结构具有复杂的拓扑结构。人们发现,在折叠过程中,一条多肽链可以以有效且可重复的方式编码自缠的能力,这引发了许多问题,涉及这些结的可能功能、它们在进化过程中的保守性以及它们在折叠范例中的作用。了解这些缠结的功能和起源将对蛋白质科学产生深远的影响,这促使科学界几十年来一直在研究自缠蛋白。在这项努力中,先进的实验技术越来越多地得到计算方法的支持,这些方法可以为解释实验结果和有效设计新实验提供理论指导。在这篇综述中,我们对自缠蛋白的计算研究进行了介绍,特别关注与该研究领域相关的方法学发展。我们收集了一系列技术,包括能够检测和分类蛋白质拓扑结构的纽结理论算法,以及用于研究这类蛋白质热力学和动力学的蒙特卡罗或分子动力学策略。

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