Enantioselective substrate binding in a monooxygenase protein model by molecular dynamics and docking

被引:20
作者
Feenstra, K. Anton
Hofstetter, Karin
Bosch, Rolien
Schmid, Andreas
Commandeur, Jan N. M.
Vermeulen, Nico P. E.
机构
[1] Vrije Univ Amsterdam, LACDR, Div Mol Toxicol, Dept Pharmacochem, NL-1081 HV Amsterdam, Netherlands
[2] Inst Analyt Sci, Dortmund, Germany
[3] Univ Dortmund, Dept Chem & Biochem Engn, Dortmund, Germany
关键词
D O I
10.1529/biophysj.106.088633
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The two-component flavoenzyme styrene monooxygenase (SMO) is an efficient alternative to several epoxidation catalysts on a preparative scale. A first homology model of the catalytic domain (StyA) of SMO was (Protein Data Bank ID 2HD8) based on the structure of para-hydroxybenzoate hydroxylase. The StyA protein structure optimized by restrained molecular dynamics to reproduce specific pre-S binding orientations of styrene. Effects of all 10 mutations examined were explained by the distance of the site to the styrene and FAD binding sites. Thirteen of 20 could be accommodated in a catalytically active binding orientation, and predicted affinities correlated well with turnover and inhibition. The binding cavity is almost completely hydrophobic except for a hydrogen-bonded network formed three water molecules, the backbone of residues 300-302, and the flavin ribityl, similar to P293, and three crystal waters para-hydroxybenzoate hydroxylase suggest that P302, T47, and the waters in StyA are a vital component of the mechanism. The current optimized and validated StyA model provides a good starting point for elucidation of the basis of StyA ligand binding and catalysis. Novel insights in the binding of ligands to SMO/StyA, provided by the current model, will aid the rational design of mutants with specific, altered enantioselective properties.
引用
收藏
页码:3206 / 3216
页数:11
相关论文
共 47 条
[21]   Stereospecific biocatalytic epoxidation: The first example of direct regeneration of a FAD-dependent monooxygenase for catalysis [J].
Hollmann, F ;
Lin, PC ;
Witholt, B ;
Schmid, A .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (27) :8209-8217
[22]   FLUCTUATION AND CROSS-CORRELATION ANALYSIS OF PROTEIN MOTIONS OBSERVED IN NANOSECOND MOLECULAR-DYNAMICS SIMULATIONS [J].
HUNENBERGER, PH ;
MARK, AE ;
VANGUNSTEREN, WF .
JOURNAL OF MOLECULAR BIOLOGY, 1995, 252 (04) :492-503
[23]   Development and validation of a genetic algorithm for flexible docking [J].
Jones, G ;
Willett, P ;
Glen, RC ;
Leach, AR ;
Taylor, R .
JOURNAL OF MOLECULAR BIOLOGY, 1997, 267 (03) :727-748
[24]   Mechanism of flavin transfer and oxygen activation by the two-component flavoenzyme styrene monooxygenase [J].
Kantz, A ;
Chin, F ;
Nallamothu, N ;
Nguyen, T ;
Gassner, GT .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2005, 442 (01) :102-116
[25]   GXXXG and GXXXA motifs stabilize FAD and NAD(P)-binding Rossmann folds through Cα-H•••O hydrogen bonds and van der Waals interactions [J].
Kleiger, G ;
Eisenberg, D .
JOURNAL OF MOLECULAR BIOLOGY, 2002, 323 (01) :69-76
[26]   PROCHECK - A PROGRAM TO CHECK THE STEREOCHEMICAL QUALITY OF PROTEIN STRUCTURES [J].
LASKOWSKI, RA ;
MACARTHUR, MW ;
MOSS, DS ;
THORNTON, JM .
JOURNAL OF APPLIED CRYSTALLOGRAPHY, 1993, 26 :283-291
[27]   GROMACS 3.0: a package for molecular simulation and trajectory analysis [J].
Lindahl, E ;
Hess, B ;
van der Spoel, D .
JOURNAL OF MOLECULAR MODELING, 2001, 7 (08) :306-317
[28]   Linear programming optimization and a double statistical filter for protein threading protocols [J].
Meller, J ;
Elber, R .
PROTEINS-STRUCTURE FUNCTION AND GENETICS, 2001, 45 (03) :241-261
[29]   Analysis of interaction between the Arthrobacter sarcosine oxidase and the coenzyme flavin adenine dinucleotide by site-directed mutagenesis [J].
Nishiya, Y ;
Imanaka, T .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1996, 62 (07) :2405-2410
[30]   Oxygen reactions in p-hydroxybenzoate hydroxylase utilize the H-bond network during catalysis [J].
Ortiz-Maldonado, M ;
Entsch, B ;
Ballou, DP .
BIOCHEMISTRY, 2004, 43 (48) :15246-15257