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蛋白质动力学中的长程相关性:结构数据和模态分析的证实。

Long-range correlation in protein dynamics: Confirmation by structural data and normal mode analysis.

机构信息

Center for Complex Systems Biology, Universal Biology Institute, University of Tokyo, Tokyo, Japan.

出版信息

PLoS Comput Biol. 2020 Feb 13;16(2):e1007670. doi: 10.1371/journal.pcbi.1007670. eCollection 2020 Feb.

Abstract

Proteins in cellular environments are highly susceptible. Local perturbations to any residue can be sensed by other spatially distal residues in the protein molecule, showing long-range correlations in the native dynamics of proteins. The long-range correlations of proteins contribute to many biological processes such as allostery, catalysis, and transportation. Revealing the structural origin of such long-range correlations is of great significance in understanding the design principle of biologically functional proteins. In this work, based on a large set of globular proteins determined by X-ray crystallography, by conducting normal mode analysis with the elastic network models, we demonstrate that such long-range correlations are encoded in the native topology of the proteins. To understand how native topology defines the structure and the dynamics of the proteins, we conduct scaling analysis on the size dependence of the slowest vibration mode, average path length, and modularity. Our results quantitatively describe how native proteins balance between order and disorder, showing both dense packing and fractal topology. It is suggested that the balance between stability and flexibility acts as an evolutionary constraint for proteins at different sizes. Overall, our result not only gives a new perspective bridging the protein structure and its dynamics but also reveals a universal principle in the evolution of proteins at all different sizes.

摘要

在细胞环境中,蛋白质高度易变。蛋白质分子中任何残基的局部扰动都可以被分子中空间上相隔较远的其他残基感知到,从而表现出蛋白质天然动力学中的长程相关性。蛋白质的长程相关性有助于许多生物过程,如变构、催化和运输。揭示这种长程相关性的结构起源对于理解具有生物学功能的蛋白质的设计原理具有重要意义。在这项工作中,我们基于一组通过 X 射线晶体学确定的大量球状蛋白质,通过使用弹性网络模型进行正则模态分析,证明了这种长程相关性被编码在蛋白质的天然拓扑结构中。为了理解天然拓扑结构如何定义蛋白质的结构和动力学,我们对最慢振动模式、平均路径长度和模块性的大小依赖性进行了标度分析。我们的结果定量地描述了天然蛋白质如何在有序和无序之间取得平衡,表现出密集堆积和分形拓扑。研究结果表明,稳定性和柔韧性之间的平衡是不同大小蛋白质的进化约束。总的来说,我们的研究结果不仅为连接蛋白质结构和动力学提供了新的视角,还揭示了所有不同大小蛋白质进化中的普遍原理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d0ed/7043781/133d4841059b/pcbi.1007670.g001.jpg

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