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-Orotate 脱羧酶的脱羧机制再探。

Decarboxylation Mechanism of -Orotate Decarboxylase Revisited.

机构信息

School of Pharmacy, Chengdu Medical College, Chengdu, Sichuan 610500, P. R. China.

MOE Key Laboratory of Green Chemistry & Technology, College of Chemistry, Sichuan University, Chengdu, Sichuan 610064, P. R. China.

出版信息

J Chem Theory Comput. 2024 May 28;20(10):4218-4228. doi: 10.1021/acs.jctc.4c00077. Epub 2024 May 8.

Abstract

-Orotate decarboxylase (IDCase), which is involved in the thymidine salvage pathway, has attracted considerable interest owing to its chemical similarity to a hypothetical DNA decarboxylase in mammals. Although valuable insights into the active DNA demethylation of 5-methyl-cytosine can be obtained from the decarboxylation mechanism of 5-carboxyl-uracil (5caU) catalyzed by IDCase, this mechanism remains under debate. In this study, the catalytic mechanism of 5caU decarboxylation by IDCase was studied using hybrid quantum mechanics/molecular mechanics (QM/MM) methodologies and density functional theory (DFT) calculations with a truncated model. The calculations supported a mechanism involving three sequential stages: activation of the 5caU substrate via proton transfer from an arginine (R262') to the carboxyl group of 5caU, formation of a tetrahedral intermediate, and decarboxylation of the tetrahedral intermediate to generate uracil as the product. The reaction pathways and structures obtained using the QM/MM and DFT methods coincided with each other. These simulations provided detailed insights into the unique mechanism of IDCase, clarifying various unresolved issues, such as the critical role of R262'. In addition, aspartate D323 was found to act as a general base in the tetrahedral intermediate formation step and a general acid in the later C-C bond cleavage step.

摘要

乳清酸脱羧酶(IDCase)参与胸苷补救途径,由于其与哺乳动物中假设的 DNA 脱羧酶具有化学相似性,因此引起了相当大的关注。尽管可以从 IDCase 催化的 5-羧基尿嘧啶(5caU)脱羧机制中获得关于 5-甲基胞嘧啶的有效 DNA 去甲基化的见解,但该机制仍存在争议。在这项研究中,使用混合量子力学/分子力学(QM/MM)方法和带有截断模型的密度泛函理论(DFT)计算研究了 IDCase 催化 5caU 脱羧的催化机制。计算支持了一个涉及三个连续阶段的机制:通过精氨酸(R262')向 5caU 的羧基转移质子来激活 5caU 底物,形成四面体型中间体,以及四面体中间体的脱羧生成尿嘧啶作为产物。使用 QM/MM 和 DFT 方法获得的反应途径和结构彼此一致。这些模拟提供了对 IDCase 独特机制的详细了解,阐明了各种未解决的问题,例如 R262'的关键作用。此外,发现天冬氨酸 D323 在四面体中间体形成步骤中充当通用碱,在随后的 C-C 键断裂步骤中充当通用酸。

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