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肺炎链球菌透明质酸裂解酶的催化机制:量子力学/分子力学和密度泛函理论研究。

Catalytic mechanism of hyaluronate lyase from Streptococcus pneumonia [corrected] : quantum mechanical/molecular mechanical and density functional theory studies.

机构信息

MOE Key Laboratory of Green Chemistry and Technology, College of Chemistry, Sichuan University, Chengdu, Sichuan, 610064, PR China.

出版信息

J Phys Chem B. 2013 Sep 5;117(35):10161-72. doi: 10.1021/jp406206s. Epub 2013 Aug 27.

Abstract

Hyaluronate lyase from Spectrococcus pneumonia can degrade hyaluronic acid, which is one of the major components in the extracellular matrix. The major functions of hyaluronan are to regulate water balance and osmotic pressure and act as an ion-exchange resin. It has been suggested in our previous molecular dynamics simulation that the binding of the substrate molecule could lead to the ionization of Y408 and protonation of H399. Followed by our recent molecular dynamics simulation of the enzyme-substrate complex, a unified proton abstraction and donation mechanism for this enzyme can be established using a combined quantum mechanical and molecular mechanical approach and density functional theory method. Y408 is shown to serve as the general base in the proton abstraction, while general acid is the next proton donation step. Overall, this reaction can be classified into syn-elimination reaction mechanism. The neutralization effects of C5 carboxylate group by several polar residues such as N349 and H399 were also examined. Finally, in combination of our previous molecular dynamics simulations, a complete catalytic cycle for the degradation of hyaluronan tetrasaccharide catalyzed by the hyaluronate lyase from Spectrococcus pneumonia is proposed.

摘要

来自肺炎链球菌的透明质酸裂解酶可以降解透明质酸,透明质酸是细胞外基质的主要成分之一。透明质酸的主要功能是调节水合平衡和渗透压,并作为离子交换树脂。在我们之前的分子动力学模拟中,已经提出了底物分子的结合会导致 Y408 的离子化和 H399 的质子化。随后,我们对酶-底物复合物进行了最近的分子动力学模拟,使用量子力学和分子力学相结合的方法和密度泛函理论方法,为该酶建立了统一的质子提取和供体机制。结果表明,Y408 在质子提取中作为通用碱,而下一步的质子供体是通用酸。总的来说,该反应可以归类为同步消除反应机制。还检查了 C5 羧酸基团的中和效应,由几个极性残基如 N349 和 H399 提供。最后,结合我们之前的分子动力学模拟,提出了肺炎链球菌透明质酸裂解酶催化透明质酸四糖降解的完整催化循环。

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