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QM/MM计算中MM环境的重要性及QM方法的选择:在酶促反应中的应用

The Importance of the MM Environment and the Selection of the QM Method in QM/MM Calculations: Applications to Enzymatic Reactions.

作者信息

Bushnell Eric André C, Berryman Victoria Erica J, Gauld James W, Boyd Russell J

机构信息

Department of Chemistry, Dalhousie University, Halifax, Nova Scotia, Canada; Department of Chemistry, Brandon University, Brandon, Manitoba, Canada.

Department of Chemistry, Dalhousie University, Halifax, Nova Scotia, Canada.

出版信息

Adv Protein Chem Struct Biol. 2015;100:153-85. doi: 10.1016/bs.apcsb.2015.06.008. Epub 2015 Jul 17.

Abstract

In this chapter, we discuss the influence of an anisotropic protein environment on the reaction mechanisms of saccharopine reductase and uroporphyrinogen decarboxylase, respectively, via the use of a quantum mechanical and molecular mechanical (QM/MM) approach. In addition, we discuss the importance of selecting a suitable DFT functional to be used in a QM/MM study of a key intermediate in the mechanism of 8R-lipoxygenase, a nonheme iron enzyme. In the case of saccharopine reductase, while the enzyme utilizes a substrate-assisted catalytic pathway, it was found that only through treating the polarizing effect of the active site, via the use of an electronic embedding formalism, was agreement with experimental kinetic data obtained. Similarly, in the case of uroporphyrinogen decarboxylase, the effect of the protein environment on the catalytic mechanism was found to be such that the calculated rate-limiting barrier is in good agreement with related experimentally determined values for the first decarboxylation of the substrate. For 8R-lipoxygenase, it was found that the geometries and energies of the multicentered open-shell intermediate complexes formed during the mechanism are quite sensitive to the choice of the density functional theory method. Thus, while density functional theory has become the method of choice in QM/MM studies, care must be taken in the selection of a particular high-level method.

摘要

在本章中,我们分别通过使用量子力学和分子力学(QM/MM)方法,讨论了各向异性蛋白质环境对酵母氨酸还原酶和尿卟啉原脱羧酶反应机制的影响。此外,我们还讨论了在对非血红素铁酶8R-脂氧合酶机制中的关键中间体进行QM/MM研究时,选择合适的密度泛函理论(DFT)泛函的重要性。对于酵母氨酸还原酶,虽然该酶利用底物辅助催化途径,但发现只有通过使用电子嵌入形式来处理活性位点的极化效应,才能与获得的实验动力学数据相符。同样,对于尿卟啉原脱羧酶,发现蛋白质环境对催化机制的影响使得计算得到的限速能垒与底物首次脱羧的相关实验测定值高度吻合。对于8R-脂氧合酶,发现在该机制中形成的多中心开壳中间体配合物的几何结构和能量对密度泛函理论方法的选择非常敏感。因此,虽然密度泛函理论已成为QM/MM研究中的首选方法,但在选择特定的高级方法时必须谨慎。

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