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利用硝基苯双加氧酶的蛋白质工程实现手性亚砜的对映选择性合成。

Protein engineering of nirobenzene dioxygenase for enantioselective synthesis of chiral sulfoxides.

机构信息

Department of Biotechnology and Food Engineering, Technion-Israel Institute of Technology, Haifa 32000, Israel.

出版信息

Protein Eng Des Sel. 2013 May;26(5):335-45. doi: 10.1093/protein/gzt005. Epub 2013 Feb 26.

DOI:10.1093/protein/gzt005
PMID:23442445
Abstract

Nitrobenzene dioxygenase (NBDO) from Comamonas sp. is shown here to perform enantioselective oxidation of aromatic sulfides. Several para-substituted alkyl aryl sulfides were examined and it was found that the activity of the enzyme is dependent on the size of the substrate. Saturation mutagenesis was performed on different residues in the active site in order to improve activity and selectivity. Mutagenesis at position 258 in the α-hydroxylase subunit of NBDO improved both activity and enantioselectivity. Substitutions in position 293 improved the activity on all substrates and had diverse influence on enantioselectivity. Mutagenesis in position 207 provided two interesting variants, V207I and V207A, with opposite enantioselectivities. Furthermore, combining two favorable mutations, N258A and F293H, provided an improved variant with both higher activity (5.20 ± 0.01, 2.12 ± 0.21, 2.64 ± 0.14 and 4.01 ± 0.34 nmol min(-1) mg protein(-1) on thioanisole, ptolyl, Cl-thioanisole and Br-thioanisole, respectively, which is 1.7, 4.6, 7.1 and 26.7-fold compared with wild type) and improved enantioselectivity (e.g. 67% enantiomeric excess for Cl-thioanisole vs. 5% for wild type). Molecular docking and active site volume calculations were used to correlate between the structure of the substrates and the function of the enzymes. The results from this work suggest that the location of pro-chiral sulfides in the active site is coordinated by hydrophobic interactions and by steric considerations, which in turn influences the activity and enantioselectivity of NBDO.

摘要

来自贪噬菌属(Comamonas sp.)的硝基苯双加氧酶(NBDO)被证明能够对芳香族硫醚进行对映选择性氧化。研究了几种对位取代的烷基芳基硫醚,发现该酶的活性取决于底物的大小。为了提高活性和选择性,在活性位点的不同残基上进行了饱和突变。在 NBDO 的α-羟化酶亚基 258 位置的突变提高了酶的活性和对映选择性。在 293 位的取代提高了所有底物的活性,并对对映选择性有不同的影响。在 207 位的突变提供了两种有趣的变体,V207I 和 V207A,它们具有相反的对映选择性。此外,将两种有利的突变 N258A 和 F293H 结合在一起,提供了一种具有更高活性(分别为 5.20±0.01、2.12±0.21、2.64±0.14 和 4.01±0.34 nmol min(-1) mg protein(-1) 对于硫代茴香醚、对甲苯、Cl-硫代茴香醚和 Br-硫代茴香醚,与野生型相比分别提高了 1.7、4.6、7.1 和 26.7 倍)和改善的对映选择性(例如,Cl-硫代茴香醚的对映体过量为 67%,而野生型为 5%)的改良变体。分子对接和活性位点体积计算用于将底物结构与酶的功能联系起来。这项工作的结果表明,前手性硫醚在活性位点中的位置受到疏水性相互作用和空间位阻的协调,这反过来又影响了 NBDO 的活性和对映选择性。

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