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协同的、高度非同步的酶催化[4+2]环加成反应在 spinosyn A 的生物合成中;计算证据。

Concerted, highly asynchronous, enzyme-catalyzed [4 + 2] cycloaddition in the biosynthesis of spinosyn A; computational evidence.

机构信息

Department of Chemistry, Vanderbilt University, Nashville, TN 37235, USA.

出版信息

Org Biomol Chem. 2012 Oct 7;10(37):7503-9. doi: 10.1039/c2ob25827g.

Abstract

A theoretical study has been carried out on model systems to study a recently reported, (Nature, 2011, 473, 109) biosynthetic, [4 + 2] cycloaddition catalyzed by a stand-alone enzyme (the cyclase SpnF). It was suggested in this paper that SpnF is the first known example of a Diels-Alderase (DA). In the present study, for a model system of the substrate a transition structure was found with density functional calculations (DFT). In addition, the intrinsic reaction coordinate calculations indicated that the transition structure is that of a concerted, but highly asynchronous, DA reaction. Based on the DFT and Møller-Plesset second order calculations the activation energy was estimated to be about 15 kcal mol(-1). The results of a natural population analysis indicated that there is significant charge transfer in the transition state, and it is proposed that possibly the enzyme plays a dual role of not only folding the substrate into the proper conformation for the DA reaction to occur, but also lowering its activation energy by stabilization of the highly polarized transition structure.

摘要

已经对模型系统进行了理论研究,以研究最近报道的由独立酶(环化酶 SpnF)催化的生物合成[4+2]环加成反应。本文提出 SpnF 是第一个已知的 Diels-Alderase(DA)的例子。在本研究中,对于底物的模型系统,通过密度泛函计算(DFT)找到了过渡态结构。此外,本征反应坐标计算表明,过渡态结构是协同的,但高度异步的 DA 反应。基于 DFT 和 Møller-Plesset 二级计算,估计活化能约为 15 kcal mol(-1)。自然布居分析的结果表明,过渡态中存在显著的电荷转移,并且提出酶可能不仅起到将底物折叠成适当构象以进行 DA 反应的作用,而且还通过稳定高度极化的过渡态来降低其活化能。

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