Roles of K151 and D180 in L-2-Haloacid Dehalogenase from Pseudomonas sp YL: Analysis by Molecular Dynamics and Ab Initio Fragment Molecular Orbital Calculations

被引:23
作者
Nakamura, Takashi [1 ]
Yamaguchi, Azusa [1 ]
Kondo, Hirotaka [2 ]
Watanabe, Hirofumi [2 ]
Kurihara, Tatsuo [3 ]
Esaki, Nobuyoshi [3 ]
Hirono, Shuichi [4 ]
Tanaka, Shigenori [2 ]
机构
[1] Nagahama Inst Biosci & Technol, Lab Mol Biochem, Shiga 5260829, Japan
[2] Kobe Univ, Grad Sch Human Dev & Environm, Nada Ku, Kobe, Hyogo 6578501, Japan
[3] Kyoto Univ, Inst Chem Res, Kyoto 6110011, Japan
[4] Kitasato Univ, Lab Phys Chem Drug Design, Sch Pharmaceut Sci, Minato Ku, Tokyo 1088641, Japan
关键词
L-2-haloacid dehalogenase; molecular dynamics calculation; ab initio fragment molecular orbital calculation; interfragment interaction energy; analysis of enzymatic reaction; APPROXIMATE COMPUTATIONAL METHOD; XANTHOBACTER-AUTOTROPHICUS GJ10; SITE-DIRECTED MUTAGENESIS; RETINOID-X-RECEPTOR; AMINO-ACID-RESIDUES; HALOALKANE DEHALOGENASE; CRYSTAL-STRUCTURES; PHOSPHOSERINE PHOSPHATASE; CONFORMATIONAL ENERGIES; HALOACID DEHALOGENASE;
D O I
10.1002/jcc.21273
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
L-2-haloacid dehalogenase (L-DEX) catalyzes the hydrolytic dehalogenation of L-2-haloalkanoic acids to produce the corresponding D-2-hydroxyalkanoic acids. This enzyme is expected to be applicable to the bioremediation of environments contaminated with halogenated organic compounds. We analyzed the reaction mechanism of L-DEX from Pseudomonas sp. YL (L-DEX YL) by using molecular modeling. The complexes of wild-type L-DEX YL and its K151A and D180A mutants with its typical substrate, L-2-chloropropionate, were constructed by docking simulation. Subsequently, molecular dynamics (MD) and ab initio fragment molecular orbital (FMO) calculations of the complexes were performed. The ab initio FMO method was applied at the MP2/6-31G level to estimate inter-fragment interaction energies. K151 and D180, which are experimentally shown to be important for enzyme activity, interact particularly strongly with L-2-chloropropionate, catalytic water, nucleophile (1310), and with each other. Our calculations Suggest that K151 stabilizes substrate orientation and balances the charge around the active site, while 13180 stabilizes the rotation Of the nucleophile D10, fixes catalytic water around 1310, and prevents K151 from approaching D10. Further, D180 may activate catalytic water on its own or with K151, S175, and N177. These roles are consistent with the previous results. Thus, MD and ab initio FMO calculations are powerful tools for the elucidation of the mechanism of enzymatic reaction at the molecular level and can be applied to other catalytically important residues. The results obtained here will play an important role in elucidating the reaction mechanism and rational design of L-DEX YL with improved enzymatic activity or Substrate specificity. (C) 2009 Wiley Periodicals, Inc. J Comput Chem 30: 2625-2634, 2009
引用
收藏
页码:2625 / 2634
页数:10
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