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碱基对错配识别蛋白MutS沿DNA滑动的粗粒度分子动力学模拟。

Coarse-grained molecular dynamics simulations of base-pair mismatch recognition protein MutS sliding along DNA.

作者信息

Inoue Keisuke, Takada Shoji, Terakawa Tsuyoshi

机构信息

Department of Biophysics, Graduate School of Science, Kyoto University, Kyoto 606-8502, Japan.

出版信息

Biophys Physicobiol. 2022 Apr 14;19:1-16. doi: 10.2142/biophysico.bppb-v19.0015. eCollection 2022.

Abstract

DNA mismatches are frequently generated by various intrinsic and extrinsic factors including DNA replication errors, oxygen species, ultraviolet, and ionizing radiation. These mismatches should be corrected by the mismatches repair (MMR) pathway to maintain genome integrity. In the () MMR pathway, MutS searches and recognizes a base-pair mismatch from millions of base-pairs. Once recognized, ADP bound to MutS is exchanged with ATP, which induces a conformational change in MutS. Previous single-molecule fluorescence microscopy studies have suggested that ADP-bound MutS temporarily slides along double-stranded DNA in a rotation-coupled manner to search a base-pair mismatch and so does ATP-bound MutS in a rotation-uncoupled manner. However, the detailed structural dynamics of the sliding remains unclear. In this study, we performed coarse-grained molecular dynamics simulations of the MutS bound on DNA in three different conformations: ADP-bound (MutS), ATP-bound open clamp ( ), and ATP-bound closed clamp ( ) conformations. In the simulations, we observed conformation-dependent diffusion of MutS along DNA. MutS and diffused along DNA in a rotation-coupled manner with rare and frequent groove-crossing events, respectively. In the groove-crossing events, MutS overcame an edge of a groove and temporarily diffused in a rotation-uncoupled manner. It was also indicated that mismatch searches by is inefficient in terms of mismatch checking even though it diffuses along DNA and reaches unchecked regions more rapidly than MutS.

摘要

DNA错配经常由各种内在和外在因素产生,包括DNA复制错误、氧物种、紫外线和电离辐射。这些错配应由错配修复(MMR)途径进行校正,以维持基因组完整性。在()MMR途径中,MutS从数百万个碱基对中搜索并识别碱基对错配。一旦识别出来,与MutS结合的ADP就会被ATP交换,这会诱导MutS发生构象变化。先前的单分子荧光显微镜研究表明,结合ADP的MutS以旋转耦合的方式沿着双链DNA暂时滑动以搜索碱基对错配,结合ATP的MutS则以旋转解耦的方式进行同样的操作。然而,滑动的详细结构动力学仍不清楚。在本研究中,我们对结合在DNA上的MutS在三种不同构象下进行了粗粒度分子动力学模拟:结合ADP(MutS)、结合ATP的开放钳()和结合ATP的闭合钳()构象。在模拟中,我们观察到MutS沿DNA的构象依赖性扩散。MutS和分别以旋转耦合的方式沿DNA扩散,分别具有罕见和频繁的跨沟事件。在跨沟事件中,MutS越过一个沟的边缘并以旋转解耦的方式暂时扩散。研究还表明,尽管沿DNA扩散并比MutS更快地到达未检查区域,但在错配检查方面,通过进行错配搜索效率低下。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ce44/9173861/9c2b066fa54f/19_e190015-g001.jpg

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