Cohen Shimrit, Kozuch Sebastian, Hazan Carina, Shaik Sason
Department of Chemistry and the Lise Meitner-Minerva Center for Computational Quantum Chemistry, The Hebrew University of Jerusalem, 91904 Jerusalem, Israel.
J Am Chem Soc. 2006 Aug 30;128(34):11028-9. doi: 10.1021/ja063269c.
DFT and QM/MM computations of allylic C-H hydroxylation versus C=C epoxidation in cyclohexene and propene by Compound I of P450cam demonstrate that the relative barriers for the oxidative processes themselves are not good predictors of the observed selectivity. However, a kinetic expression previously developed (Kozuch, S.; Shaik, S. J. Am. Chem. Soc. 2006, 128, 3355) for catalytic cycles under steady-state conditions, predicts, in accord with experiment, that propene will undergo exclusive C=C epoxidation, while cyclohexene will undergo both reactions with a small preference for epoxidation. The model expression for the effective barrier of the cycle forms a general basis for understanding and predicting the selectivity of P450 isozymes.
细胞色素P450cam的化合物I对环己烯和丙烯中烯丙基C-H羟基化与C=C环氧化的密度泛函理论(DFT)和量子力学/分子力学(QM/MM)计算表明,氧化过程本身的相对势垒并不能很好地预测所观察到的选择性。然而,先前针对稳态条件下的催化循环所建立的动力学表达式(科祖赫,S.;沙伊克,S.《美国化学会志》2006年,128卷,3355页)与实验结果一致,预测丙烯将发生唯一的C=C环氧化,而环己烯将同时发生这两种反应,且对环氧化略有偏好。该循环有效势垒的模型表达式为理解和预测P450同工酶的选择性奠定了一般基础。