Centre for Computational Chemistry, School of Chemistry, University of Bristol, Bristol BS8 1TS, UK.
Biochemistry. 2013 Apr 23;52(16):2708-28. doi: 10.1021/bi400215w. Epub 2013 Apr 12.
Computational enzymology is a rapidly maturing field that is increasingly integral to understanding mechanisms of enzyme-catalyzed reactions and their practical applications. Combined quantum mechanics/molecular mechanics (QM/MM) methods are important in this field. By treating the reacting species with a quantum mechanical method (i.e., a method that calculates the electronic structure of the active site) and including the enzyme environment with simpler molecular mechanical methods, enzyme reactions can be modeled. Here, we review QM/MM methods and their application to enzyme-catalyzed reactions to investigate fundamental and practical problems in enzymology. A range of QM/MM methods is available, from cheaper and more approximate methods, which can be used for molecular dynamics simulations, to highly accurate electronic structure methods. We discuss how modeling of reactions using such methods can provide detailed insight into enzyme mechanisms and illustrate this by reviewing some recent applications. We outline some practical considerations for such simulations. Further, we highlight applications that show how QM/MM methods can contribute to the practical development and application of enzymology, e.g., in the interpretation and prediction of the effects of mutagenesis and in drug and catalyst design.
计算酶学是一个快速发展的领域,对于理解酶催化反应的机制及其实际应用越来越重要。组合量子力学/分子力学(QM/MM)方法在这个领域中非常重要。通过使用量子力学方法(即计算活性位点电子结构的方法)处理反应物种,并使用更简单的分子力学方法包括酶环境,可以对酶反应进行建模。在这里,我们回顾了 QM/MM 方法及其在酶催化反应中的应用,以研究酶学中的基础和实际问题。有多种 QM/MM 方法可供选择,从更便宜、更近似的方法(可用于分子动力学模拟)到高度精确的电子结构方法。我们讨论了如何使用这些方法对反应进行建模,以提供对酶机制的详细了解,并通过回顾一些最近的应用来说明这一点。我们概述了进行此类模拟的一些实际考虑因素。此外,我们强调了 QM/MM 方法在酶学的实际发展和应用中的应用,例如在解释和预测突变的影响以及在药物和催化剂设计中的应用。