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二氯甲烷脱卤酶的分子对接和定点突变以提高酶对二氯甲烷降解的活性。

Molecular Docking and Site-Directed Mutagenesis of Dichloromethane Dehalogenase to Improve Enzyme Activity for Dichloromethane Degradation.

机构信息

College of Environment, Collaborative Innovation Center of Yangtze River Delter Region Green Pharmaceuticals, Zhejiang University of Technology, Hangzhou, 310014, China.

College of Biotechnology and Bioengineering, Zhejiang University of Technology, Hangzhou, 310014, China.

出版信息

Appl Biochem Biotechnol. 2020 Feb;190(2):487-505. doi: 10.1007/s12010-019-03106-x. Epub 2019 Aug 7.

Abstract

Dichloromethane (DCM) dehalogenase in bacterial cells can catalyze the degradation of deleterious DCM in environments. However, the utility of naturally occurring DCM dehalogenase is often limited due to low enzyme activity and content in living cells. In this study, the gene encoding DCM dehalogenase was cloned from Methylobacterium rhodesianum and overexpressed in Escherichia coli. Based on molecular docking analysis of DCM dehalogenase using DCM as the ligand, all of the target amino acid residues within substrate binding pocket and 10 conservative amino acid residues were individually mutated to Ala. After determination of activity, R120, L121, W128, and T146 were chosen for further saturation mutation. Results showed that dcmT146A, dcmT146R, and dcmT146Q have higher activities, whereas dcmL121A, dcmT146L, dcmL121Q, and dcmL121F have retained activities. Next, these seven mutants with a single mutation on amino acid residue were chosen for double mutation. It was found that the mutant of dcmL121A/T146R exhibits the highest activity increasing by 52.8% relative to wild type. Bioinformatic and experimental analyses revealed that the mutant variant dcmL121A/T146R bears the reduced steric hindrance in the active center with a decreased number of amino acid residues within binding pocket from 8 to 5 while overall hydrophilicity increased. In addition, the number of hydrophobic amino acid residues within substrate binding pocket increased while K value decreased. It was speculated that all these changes in mutant variant dcmL121A/T146R may contribute to the increase in catalytic activity. It can be concluded that our goal-orientated manipulation through homology modeling, molecular docking, and site-directed mutagenesis is effective for improvement of DCM dehalogenase activity and investigation of correlation between structure and function.

摘要

细菌细胞中的二氯甲烷 (DCM) 脱卤酶可以催化环境中有害 DCM 的降解。然而,由于活细胞中酶的活性和含量低,天然存在的 DCM 脱卤酶的实用性通常受到限制。在这项研究中,从甲基杆菌中克隆了编码 DCM 脱卤酶的基因,并在大肠杆菌中过表达。基于 DCM 作为配体对接分析 DCM 脱卤酶,对底物结合口袋内的所有靶氨基酸残基和 10 个保守氨基酸残基进行了单独突变为 Ala。在确定活性后,选择 R120、L121、W128 和 T146 进行进一步的饱和突变。结果表明,dcmT146A、dcmT146R 和 dcmT146Q 的活性更高,而 dcmL121A、dcmT146L、dcmL121Q 和 dcmL121F 的活性保留。接下来,选择这 7 个单个氨基酸残基突变的突变体进行双突变。发现 dcmL121A/T146R 突变体的活性最高,相对野生型提高了 52.8%。生物信息学和实验分析表明,突变体 dcmL121A/T146R 在活性中心的空间位阻减小,结合口袋内的氨基酸残基数从 8 减少到 5,而整体亲水性增加。此外,底物结合口袋内的疏水性氨基酸残基数量增加,而 K 值降低。推测突变体 dcmL121A/T146R 中的所有这些变化可能有助于提高催化活性。可以得出结论,我们通过同源建模、分子对接和定点突变的目标导向操作,有效地提高了 DCM 脱卤酶的活性,并研究了结构与功能之间的相关性。

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