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QM/MM 方法研究变形链球菌 GTF-SI 糖基化的结构和立体电子因素。

A QM/MM approach on the structural and stereoelectronic factors governing glycosylation by GTF-SI from Streptococcus mutans.

机构信息

Departamento de CienciasQuímicas, Facultad de Ciencias Exactas, Universidad Andres Bello, Sede Concepción, Autopista Concepción-Talcahuano 7100, Talcahuano, Chile.

Departamento de Química Orgánica, Facultad de Ciencias Químicas, Universidad de Concepción, Casilla 160-C, Concepción, Chile.

出版信息

Org Biomol Chem. 2018 Apr 4;16(14):2438-2447. doi: 10.1039/C8OB00284C.

Abstract

In this work, QM/MM calculations were employed to examine the catalytic mechanism of the retaining glucosyltransferase GTF-SI enzyme, which participates in the process of caries formation. Our goal was to characterize, with atomistic details, the mechanism of sucrose hydrolysis and the catalytic factors that modulate this reaction. Our results suggest a concerted mechanism for sucrose hydrolysis in which the first event corresponds to the glycosidic bond breakage assisted by Glu515, followed by the nucleophilic attack of Asp477, leading to the formation of the Covalent Glycosyl Enzyme (CGE) intermediate. A novel conformational itinerary of the glucosyl moiety along the reaction mechanism was identified: 2H3 → 2H3-E3 → 4C1, and the calculated energy barrier is 16.4 kcal mol-1, which is in good agreement with experimental evidence showing a major contribution coming from the glycosidic bond breakage. Our calculations also revealed that Arg475 and Asp588 play a critical role as TS-stabilizers by electrostatic and charge transfer mechanisms, respectively. This is the first report dealing with the specific features of the mechanism and catalytic residues involved in GTF-SI hydrolysis of sucrose, which is a matter of relevance in enzyme catalysis and could be valuable to aid the design of novel and specific inhibitors targeting GTF-SI.

摘要

在这项工作中,我们采用了量子力学/分子力学(QM/MM)计算方法来研究参与龋齿形成过程的保留型葡糖基转移酶 GTF-SI 酶的催化机制。我们的目标是用原子细节来描述蔗糖水解的机制以及调节该反应的催化因素。我们的研究结果表明,蔗糖水解遵循协同机制,第一个事件是由 Glu515 辅助的糖苷键断裂,随后是 Asp477 的亲核攻击,导致形成共价糖苷酶(CGE)中间体。我们还确定了沿反应机制的葡糖基部分的新颖构象途径:2H3→2H3-E3→4C1,计算出的能垒为 16.4 kcal mol-1,与实验证据相符,表明主要贡献来自糖苷键断裂。我们的计算还表明,Arg475 和 Asp588 通过静电和电荷转移机制分别作为 TS-稳定剂发挥关键作用。这是第一篇涉及 GTF-SI 水解蔗糖的机制和催化残基的具体特征的报告,这对于酶催化具有重要意义,并且可能有助于设计针对 GTF-SI 的新型和特异性抑制剂。

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