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原子分辨率下胸腺嘧啶 DNA 糖基化酶沿 DNA 小沟的短程滑动动力学研究及其在损伤识别中的作用。

Atomic resolution of short-range sliding dynamics of thymine DNA glycosylase along DNA minor-groove for lesion recognition.

机构信息

Key Laboratory of Systems Biomedicine (Ministry of Education), Shanghai Center for Systems Biomedicine, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China.

出版信息

Nucleic Acids Res. 2021 Feb 22;49(3):1278-1293. doi: 10.1093/nar/gkaa1252.

Abstract

Thymine DNA glycosylase (TDG), as a repair enzyme, plays essential roles in maintaining the genome integrity by correcting several mismatched/damaged nucleobases. TDG acquires an efficient strategy to search for the lesions among a vast number of cognate base pairs. Currently, atomic-level details of how TDG translocates along DNA as it approaches the lesion site and the molecular mechanisms of the interplay between TDG and DNA are still elusive. Here, by constructing the Markov state model based on hundreds of molecular dynamics simulations with an integrated simulation time of ∼25 μs, we reveal the rotation-coupled sliding dynamics of TDG along a 9 bp DNA segment containing one G·T mispair. We find that TDG translocates along DNA at a relatively faster rate when distant from the lesion site, but slows down as it approaches the target, accompanied by deeply penetrating into the minor-groove, opening up the mismatched base pair and significantly sculpturing the DNA shape. Moreover, the electrostatic interactions between TDG and DNA are found to be critical for mediating the TDG translocation. Notably, several uncharacterized TDG residues are identified to take part in regulating the conformational switches of TDG occurred in the site-transfer process, which warrants further experimental validations.

摘要

胸腺嘧啶 DNA 糖基化酶 (TDG) 作为一种修复酶,通过纠正几种错配/受损的碱基,在维持基因组完整性方面发挥着重要作用。TDG 采用了一种有效的策略来在大量同源碱基对中寻找病变。目前,TDG 如何在接近病变部位时沿着 DNA 迁移以及 TDG 与 DNA 之间相互作用的分子机制的原子级细节仍然难以捉摸。在这里,通过构建基于数百个分子动力学模拟的马尔可夫状态模型,我们揭示了含有一个 G·T 错配的 9 个碱基对 DNA 片段中 TDG 沿 DNA 的旋转偶联滑动动力学。我们发现,TDG 在远离病变部位时沿 DNA 以相对较快的速度迁移,但当它接近目标时会减慢速度,同时深入小沟,打开错配碱基对,并显著塑造 DNA 形状。此外,还发现 TDG 与 DNA 之间的静电相互作用对于介导 TDG 易位至关重要。值得注意的是,鉴定出几个未表征的 TDG 残基参与调节在位点转移过程中发生的 TDG 构象转换,这需要进一步的实验验证。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8365/7897493/bbc95f58e513/gkaa1252fig1.jpg

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