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计算比较 UvsX 重组酶与 RecA 的动态结构特征和结合特征的深入分析

Computational Insights into the Dynamic Structural Features and Binding Characteristics of Recombinase UvsX Compared with RecA.

机构信息

Key Laboratory for Molecular Enzymology and Engineering of the Ministry of Education, School of Life Science, Jilin University, 2699 Qianjin Street, Changchun 130012, China.

Bioarchaeology Laboratory, Jilin University, 2699 Qianjin Street, Changchun 130012, China.

出版信息

Molecules. 2023 Apr 11;28(8):3363. doi: 10.3390/molecules28083363.

Abstract

RecA family recombinases are the core enzymes in the process of homologous recombination, and their normal operation ensures the stability of the genome and the healthy development of organisms. The UvsX protein from bacteriophage T4 is a member of the RecA family recombinases and plays a central role in T4 phage DNA repair and replication, which provides an important model for the biochemistry and genetics of DNA metabolism. UvsX shares a high degree of structural similarity and function with RecA, which is the most deeply studied member of the RecA family. However, the detailed molecular mechanism of UvsX has not been resolved. In this study, a comprehensive all-atom molecular dynamics simulation of the UvsX protein dimer complex was carried out in order to investigate the conformational and binding properties of UvsX in combination with ATP and DNA, and the simulation of RecA was synchronized with the property comparison learning for UvsX. This study confirmed the highly conserved molecular structure characteristics and catalytic centers of RecA and UvsX, and also discovered differences in regional conformation, volatility and the ability to bind DNA between the two proteins at different temperatures, which would be helpful for the subsequent understanding and application of related recombinases.

摘要

RecA 家族重组酶是同源重组过程中的核心酶,其正常运作确保了基因组的稳定性和生物的健康发育。T4 噬菌体的 UvsX 蛋白是 RecA 家族重组酶的成员,在 T4 噬菌体 DNA 修复和复制中发挥着核心作用,为 DNA 代谢的生物化学和遗传学提供了一个重要的模型。UvsX 与 RecA 具有高度的结构相似性和功能,RecA 是 RecA 家族中研究最深入的成员。然而,UvsX 的详细分子机制尚未解决。在这项研究中,我们对 UvsX 蛋白二聚体复合物进行了全面的全原子分子动力学模拟,以研究 UvsX 与 ATP 和 DNA 结合的构象和结合特性,并与 RecA 的模拟同步进行 UvsX 的特性比较学习。这项研究证实了 RecA 和 UvsX 高度保守的分子结构特征和催化中心,同时还发现了两种蛋白质在不同温度下的区域构象、波动性和与 DNA 结合能力的差异,这将有助于后续对相关重组酶的理解和应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8da5/10144138/ce15a98e6a39/molecules-28-03363-g001.jpg

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