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由蛋白质-DNA相互作用调节的AlkD构象动力学以实现有效的靶标识别

AlkD's Conformational Dynamics Regulated by Protein-DNA Interactions for Effective Target Recognition.

作者信息

Qi Yanping, Guo Jiaxin, Wang Xiaowei, Yang Chen, Gao Xin, Yao Yuan, Chen Chunlai, Zhang Lu

机构信息

State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian 350002, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

J Phys Chem Lett. 2025 Aug 21;16(33):8546-8554. doi: 10.1021/acs.jpclett.5c01460. Epub 2025 Aug 12.

Abstract

alkylpurine DNA glycosylase AlkD plays a critical role in preserving genomic integrity by selectively excising cytotoxic positively charged lesions. Unlike most DNA glycosylases, AlkD employs a unique non-base-flipping mechanism involving distinct conformational states for lesion searching and excision. However, the interplay between its conformational dynamics and lesion recognition remains unclear. This study combines microsecond-scale molecular dynamics (MD) simulations, scanning fluorescence resonance energy transfer-fluorescence correlation spectroscopy (FRET-FCS) experiments, and cellular assays to investigate the lesion recognition mechanism mediated by the AlkD-dsDNA complex. We identified two critical residues, W109 and R148, that act as molecular probes to recognize DNA lesions and mismatches. These residues alter the equilibrium between the search complex (SC) and excision complex (EC), primarily distinguished by their dsDNA conformations. W109 and R148 exhibit enhanced recognition capabilities when the lesion is positively charged, explaining AlkD's selectivity toward such lesions. Together, our study has identified the critical residues for recognizing the lesion and mismatch and regulating the enzyme's conformational dynamics, providing valuable molecular insights into the target search and lesion recognition of AlkD.

摘要

烷基嘌呤DNA糖基化酶AlkD通过选择性切除具有细胞毒性的带正电荷损伤,在维持基因组完整性方面发挥着关键作用。与大多数DNA糖基化酶不同,AlkD采用一种独特的非碱基翻转机制,该机制涉及用于损伤搜索和切除的不同构象状态。然而,其构象动力学与损伤识别之间的相互作用仍不清楚。本研究结合微秒级分子动力学(MD)模拟、扫描荧光共振能量转移-荧光相关光谱(FRET-FCS)实验和细胞分析,以研究由AlkD-dsDNA复合物介导的损伤识别机制。我们鉴定出两个关键残基W109和R148,它们作为分子探针来识别DNA损伤和错配。这些残基改变了搜索复合物(SC)和切除复合物(EC)之间的平衡,主要区别在于它们的dsDNA构象。当损伤带正电荷时,W109和R148表现出增强的识别能力,这解释了AlkD对此类损伤的选择性。总之,我们的研究确定了识别损伤和错配以及调节酶构象动力学的关键残基,为AlkD的靶标搜索和损伤识别提供了有价值的分子见解。

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