Will P450cam Hydroxylate or Desaturate Alkanes? QM and QM/MM Studies

被引:19
|
作者
Lai, Wenzhen
Chen, Hui
Cohen, Shimrit
Shaik, Sason [1 ]
机构
[1] Hebrew Univ Jerusalem, Inst Chem, IL-91904 Jerusalem, Israel
来源
基金
以色列科学基金会;
关键词
ELECTRONIC-STRUCTURE CALCULATIONS; COMPOUND I; OXIDATION; HEME; SELECTIVITY; METABOLISM; REACTIVITY; COMPLEXES; MECHANISM; DYNAMICS;
D O I
10.1021/jz2007534
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The hydroxylation versus desaturation for the enzyme P450(cam) is addressed by comparing the reactivity of the active species Por(center dot+)(IV)=O (Cpd I) toward cyclohexane (CH), camphor (CAM), and cyclohexene (CHE). The quantum mechanics (QM)-only calculations, which reveal protein-free trends, show mixed and nonselective hydroxylation/desaturation activities, branching from the PorFe(IV)OH/R center dot intermediates. By contrast, the quantum mechanics/molecular mechanics (QM/MM) results with CAM and CHE show exclusive alcohol formation. Two distinct modes by which the protein controls the hydroxylation/desaturation selectivity were identified: (a) with the native substrate CAM, the tight binding site of the P450(cam) protein prevents the second hydrogen abstraction and leads to exclusive C-5-H hydroxylation, and (b) with the freely tumbling CHE, the protein stabilizes the polarizable electromers, Por(center dot+)Te(III)OH/R center dot, which possess intrinsic hydroxylase preference. The latter mechanism is common for substrates that are not tightly bound. It is a unique mechanism to P450 Cpd I, which possesses the Por(center dot+)-Fe(III)OH electromers that dominate the in-protein reactivity. This is contrasted with nonheme enzymes, which lack such electromers.
引用
收藏
页码:2229 / 2235
页数:7
相关论文
共 50 条
  • [21] QM and QM/MM studies of selectivity in organic and bioorganic chemistry
    Harvey, Jeremy N.
    Aggarwal, Varinder K.
    Bathelt, Christine M.
    Carreon-Macedo, Jose-Luis
    Gallagher, Timothy
    Holzmann, Nicole
    Mulholland, Adrian J.
    Robiette, Raphael
    JOURNAL OF PHYSICAL ORGANIC CHEMISTRY, 2006, 19 (8-9) : 608 - 615
  • [22] QM/MM studies of enzymes
    Senn, Hans Martin
    Thiel, Walter
    CURRENT OPINION IN CHEMICAL BIOLOGY, 2007, 11 (02) : 182 - 187
  • [23] An Application of QM/MM Simulation: The Second Protonation of Cytochrome P450
    Lian, Peng
    Wei, Dongqing
    ADVANCE IN STRUCTURAL BIOINFORMATICS, 2015, 827 : 311 - 324
  • [24] QM/MM studies of acetylcholinesterase.
    Hurley, MM
    Wright, JB
    Lushington, GH
    White, WE
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2001, 222 : U389 - U389
  • [25] Enabling Efficient and Accurate Computational Studies of MOF Reactivity via QM/MM and QM/QM Methods
    Cui, Kai
    Schmidt, J. R.
    JOURNAL OF PHYSICAL CHEMISTRY C, 2020, 124 (19): : 10550 - 10560
  • [26] QM/MM studies of enzymatic systems
    Rivail, JL
    JOURNAL OF MOLECULAR GRAPHICS & MODELLING, 1998, 16 (4-6): : 272 - 272
  • [27] Crystallographic studies of nicotine binding to cytochrome P450cam
    Strickler, MD
    Jones, JP
    Goldstein, BM
    FASEB JOURNAL, 1997, 11 (09): : A793 - A793
  • [28] NMR studies of recombinant cytochrome P450cam mutants
    Wakasugi, K
    Ishimori, K
    Morishima, I
    BIOCHIMIE, 1996, 78 (8-9) : 763 - 770
  • [29] Importance of MM Polarization in QM/MM Studies of Enzymatic Reactions: Assessment of the QM/MM Drude Oscillator Model
    Ganguly, Abir
    Boulanger, Eliot
    Thiel, Walter
    JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2017, 13 (06) : 2954 - 2961
  • [30] Photoaffinity labeling of P450Cam
    Trnka, MJ
    Trager, WF
    DRUG METABOLISM REVIEWS, 2004, 36 : 222 - 222