How similar are enzyme active site geometries derived from quantum mechanical theozymes to crystal structures of enzyme-inhibitor complexes? Implications for enzyme design

被引:37
作者
Dechancie, Jason [1 ]
Clemente, Fernando R. [1 ]
Smith, Adam J. T. [1 ]
Gunaydin, Hakan [1 ]
Zhao, Yi-Lei [1 ]
Zhang, Xiyun [1 ]
Houk, N. [1 ]
机构
[1] Univ Calif Los Angeles, Dept Chem & Biochem, Los Angeles, CA 90095 USA
关键词
theozyme; active site structure; density functional theory; enzyme; biological catalysis;
D O I
10.1110/ps.072963707
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Quantum mechanical optimizations of theoretical enzymes ( theozymes), which are predicted catalytic arrays of biological functionalities stabilizing a transition state, have been carried out for a set of nine diverse enzyme active sites. For each enzyme, the theozyme for the rate-determining transition state plus the catalytic groups modeled by side-chain mimics was optimized using B3LYP/6-31G( d) or, in one case, HF/3-21G(d) quantum mechanical calculations. To determine if the theozyme can reproduce the natural evolutionary catalytic geometry, the positions of optimized catalytic atoms, i.e., covalent, partial covalent, or stabilizing interactions with transition state atoms, are compared to the positions of the atoms in the X- ray crystal structure with a bound inhibitor. These structure comparisons are contrasted to computed substrate-active site structures surrounded by the same theozyme residues. The theozyme/ transition structure is shown to predict geometries of active sites with an average RMSD of 0.64 angstrom from the crystal structure, while the RMSD for the bound intermediate complexes are significantly higher at 1.42 angstrom. The implications for computational enzyme design are discussed.
引用
收藏
页码:1851 / 1866
页数:16
相关论文
共 86 条
[21]  
Revision C.02
[22]   Probing the role of the C-terminus of Bacillus subtilis chorismate mutase by a novel random protein-termination strategy [J].
Gamper, M ;
Hilvert, D ;
Kast, P .
BIOCHEMISTRY, 2000, 39 (46) :14087-14094
[23]  
Gao J., 1998, ACS S SERIES, V712
[24]   Effects of Arg90 neutralization on the enzyme-catalyzed rearrangement of chorismate to prephenate [J].
Guimaraes, CRW ;
Udier-Blagovic, M ;
Tubert-Brohman, I ;
Jorgensen, WL .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2005, 1 (04) :617-625
[25]   Contributions of conformational compression and preferential transition state stabilization to the rate enhancement by chorismate mutase [J].
Guimaraes, CRW ;
Repasky, MP ;
Chandrasekhar, J ;
Tirado-Rives, J ;
Jorgensen, WL .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (23) :6892-6899
[26]   Substrate conformational transitions in the active site of chorismate mutase: Their role in the catalytic mechanism [J].
Guo, H ;
Cui, Q ;
Lipscomb, WN ;
Karplus, M .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2001, 98 (16) :9032-9037
[27]   Understanding nature's catalytic toolkit [J].
Gutteridge, A ;
Thornton, JM .
TRENDS IN BIOCHEMICAL SCIENCES, 2005, 30 (11) :622-629
[28]   Calculation of the electronic structure and spectra of model cytochrome P450 compound I [J].
Harris, D ;
Loew, G ;
Waskell, L .
JOURNAL OF INORGANIC BIOCHEMISTRY, 2001, 83 (04) :309-318
[29]   Observation of covalent intermediates in an enzyme mechanism at atomic resolution [J].
Heine, A ;
DeSantis, G ;
Luz, JG ;
Mitchell, M ;
Wong, CH ;
Wilson, IA .
SCIENCE, 2001, 294 (5541) :369-374
[30]   Catalytic mechanism of galactose oxidase: A theoretical study [J].
Himo, F ;
Eriksson, LA ;
Maseras, F ;
Siegbahn, PEM .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2000, 122 (33) :8031-8036