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解析来自根瘤菌属RC1的L-2-卤代酸脱卤酶(DehL)的催化氨基酸残基:计算机模拟分析

Deciphering the catalytic amino acid residues of l-2-haloacid dehalogenase (DehL) from Rhizobium sp. RC1: An in silico analysis.

作者信息

Adamu Aliyu, Wahab Roswanira Abdul, Shamsir Mohd Shahir, Aliyu Firdausi, Huyop Fahrul

机构信息

Department of Biotechnology and Medical Engineering, Faculty of Biosciences and Medical Engineering, Universiti Teknologi Malaysia, Johor Bahru 81310, Johor, Malaysia; Department of Microbiology, Faculty of Science, Kaduna State University, Tafawa Balewa way, Kaduna PMB 2339, Nigeria.

Department of Chemistry, Faculty of Science, Universiti Teknologi Malaysia, Johor Bahru 81310, Johor, Malaysia.

出版信息

Comput Biol Chem. 2017 Oct;70:125-132. doi: 10.1016/j.compbiolchem.2017.08.007. Epub 2017 Aug 14.

Abstract

The l-2-haloacid dehalogenases (EC 3.8.1.2) specifically cleave carbon-halogen bonds in the L-isomers of halogenated organic acids. These enzymes have potential applications for the bioremediation and synthesis of various industrial products. One such enzyme is DehL, the l-2-haloacid dehalogenase from Rhizobium sp. RC1, which converts the L-isomers of 2-halocarboxylic acids into the corresponding D-hydroxycarboxylic acids. However, its catalytic mechanism has not been delineated, and to enhance its efficiency and utility for environmental and industrial applications, knowledge of its catalytic mechanism, which includes identification of its catalytic residues, is required. Using ab initio fragment molecular orbital calculations, molecular mechanics Poisson-Boltzmann surface area calculations, and classical molecular dynamic simulation of a three-dimensional model of DehL-l-2-chloropropionic acid complex, we predicted the catalytic residues of DehL and propose its catalytic mechanism. We found that when Asp13, Thr17, Met48, Arg51, and His184 were individually replaced with an alanine in silico, a significant decrease in the free energy of binding for the DehL-l-2-chloropropionic acid model complex was seen, indicating the involvement of these residues in catalysis and/or structural integrity of the active site. Furthermore, strong inter-fragment interaction energies calculated for Asp13 and L-2-chloropropionic acid, and for a water molecule and His184, and maintenance of the distances between atoms in the aforementioned pairs during the molecular dynamics run suggest that Asp13 acts as the nucleophile and His184 activates the water involved in DehL catalysis. The results of this study should be important for the rational design of a DehL mutant with improved catalytic efficiency.

摘要

L-2-卤代酸脱卤酶(EC 3.8.1.2)特异性地裂解卤代有机酸L-异构体中的碳-卤键。这些酶在各种工业产品的生物修复和合成方面具有潜在应用。其中一种酶是DehL,它是来自根瘤菌属RC1的L-2-卤代酸脱卤酶,可将2-卤代羧酸的L-异构体转化为相应的D-羟基羧酸。然而,其催化机制尚未阐明,为了提高其在环境和工业应用中的效率和实用性,需要了解其催化机制,包括确定其催化残基。通过对DehL-L-2-氯丙酸复合物三维模型进行从头算片段分子轨道计算、分子力学泊松-玻尔兹曼表面积计算和经典分子动力学模拟,我们预测了DehL的催化残基并提出了其催化机制。我们发现,当在计算机模拟中将Asp13、Thr17、Met48、Arg51和His184分别替换为丙氨酸时,DehL-L-2-氯丙酸模型复合物的结合自由能显著降低,表明这些残基参与了催化作用和/或活性位点的结构完整性。此外,计算得到的Asp13与L-2-氯丙酸之间以及水分子与His184之间的强片段间相互作用能,以及在分子动力学运行过程中上述原子对之间距离的维持,表明Asp13作为亲核试剂,His184激活了参与DehL催化的水。这项研究的结果对于合理设计具有更高催化效率的DehL突变体应该很重要。

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