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丙氨酸消旋酶反应机理及α-氨基酸度的量子力学与分子力学联合研究

A combined quantum mechanical and molecular mechanical study of the reaction mechanism and alpha-amino acidity in alanine racemase.

作者信息

Major Dan Thomas, Gao Jiali

机构信息

Department of Chemistry and Supercomputing Institute, Digital Technology Center, University of Minnesota, Minneapolis, Minnesota 55455, USA.

出版信息

J Am Chem Soc. 2006 Dec 20;128(50):16345-57. doi: 10.1021/ja066334r.

Abstract

Combined quantum mechanical/molecular mechanical simulations have been carried out to investigate the origin of the carbon acidity enhancement in the alanine racemization reaction catalyzed by alanine racemase (AlaR). The present study shows that the enhancement of carbon acidity of alpha-amino acids by the cofactor pyridoxal 5'-phosphate (PLP) with an unusual, unprotonated pyridine is mainly due to solvation effects, in contrast to the intrinsic electron-withdrawing stabilization by the pyridinium ion to form a quinonoid intermediate. Alanine racemase further lowers the alpha-proton acidity and provides an overall 14-17 kcal/mol transition-state stabilization. The second key finding of this study is that the mechanism of racemization of an alanine zwitterion in water is altered from an essentially concerted process to a stepwise reaction by formation of an external aldimine adduct with the PLP cofactor. Finally, we have used a centroid path integral method to determine the intrinsic kinetic isotope effects for the two proton abstraction reactions, which are somewhat greater than the experimental estimates.

摘要

已进行了量子力学/分子力学联合模拟,以研究丙氨酸消旋酶(AlaR)催化的丙氨酸消旋反应中碳酸度增强的起源。本研究表明,辅因子磷酸吡哆醛(PLP)与不寻常的未质子化吡啶一起对α-氨基酸碳酸度的增强主要归因于溶剂化效应,这与吡啶鎓离子通过形成醌型中间体的内在吸电子稳定作用形成对比。丙氨酸消旋酶进一步降低了α-质子酸度,并提供了总体14 - 17千卡/摩尔的过渡态稳定作用。本研究的第二个关键发现是,水中丙氨酸两性离子的消旋机制通过与PLP辅因子形成外部醛亚胺加合物而从基本上协同的过程转变为逐步反应。最后,我们使用质心路径积分方法确定了两个质子抽取反应的内在动力学同位素效应,其略大于实验估计值。

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