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深入了解 DNMT3A 的共价药物的抑制机制。

Insights into the Inhibitory Mechanisms of the Covalent Drugs for DNMT3A.

机构信息

Warshel Institute for Computational Biology, School of Medicine, The Chinese University of Hong Kong, Shenzhen 518172, China.

National Clinical Research Center for Infectious Diseases, Shenzhen Third People's Hospital, Shenzhen 518112, China.

出版信息

Int J Mol Sci. 2023 Aug 10;24(16):12652. doi: 10.3390/ijms241612652.

Abstract

The perturbations of DNA methyltransferase 3 alpha (DNMT3A) may cause uncontrolled gene expression, resulting in cancers and tumors. The DNMT inhibitors Azacytidine (AZA) and Zebularine (ZEB) inhibit the DNMT family with no specificities, and consequently would bring side effects during the treatment. Therefore, it is vital to understand the inhibitory mechanisms in DNMT3A to inform the new inhibitor design for DNMTs. Herein, we carried out molecular dynamics (MD) and quantum mechanics/molecular mechanics (QM/MM) simulations to investigate the inhibitory mechanisms of the AZA and ZEB. The results were compared to the methyl transfer of cytosine. We showed how the AZA might stop the methyl transfer process, whereas the ZEB might be stuck in a methyl-transferred intermediate (IM3). The IM3 state then fails the elimination due to the unique protein dynamics that result in missing the catalytic water chain. Our results brought atomic-level insights into the mechanisms of the two drugs in DNMT3A, which could benefit the new generation of drug design for the DNMTs.

摘要

DNA 甲基转移酶 3α(DNMT3A)的扰动可能导致基因表达失控,从而引发癌症和肿瘤。DNMT 抑制剂阿扎胞苷(AZA)和泽布替尼(ZEB)无特异性抑制 DNMT 家族,因此在治疗过程中会带来副作用。因此,了解 DNMT3A 的抑制机制对于为 DNMT 设计新的抑制剂至关重要。在此,我们进行了分子动力学(MD)和量子力学/分子力学(QM/MM)模拟,以研究 AZA 和 ZEB 的抑制机制。结果与胞嘧啶的甲基转移进行了比较。我们展示了 AZA 如何阻止甲基转移过程,而 ZEB 可能卡在甲基转移的中间态(IM3)。由于独特的蛋白质动力学导致缺失催化水链,IM3 态随后无法消除。我们的结果提供了关于两种药物在 DNMT3A 中作用机制的原子水平的见解,这可能有助于新一代 DNMT 药物设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f595/10454219/c557ee3605da/ijms-24-12652-g001.jpg

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