辅因子
单加氧酶
环己酮
立体化学
化学
突变
黄蛋白
酶
结构母题
定点突变
生物化学
组合化学
突变
催化作用
细胞色素P450
突变体
基因
作者
Andy Beier,Sven Bordewick,Maika Genz,Sandy Schmidt,Tom van den Bergh,Christin Peters,Henk‐Jan Joosten,Uwe T. Bornscheuer
出处
期刊:ChemBioChem
[Wiley]
日期:2016-10-14
卷期号:17 (24): 2312-2315
被引量:52
标识
DOI:10.1002/cbic.201600484
摘要
Baeyer-Villiger monooxygenases (BVMOs) catalyze the oxidation of ketones to esters or lactones by using molecular oxygen and a cofactor. Type I BVMOs display a strong preference for NADPH. However, for industrial purposes NADH is the preferred cofactor, as it is ten times cheaper and more stable. Thus, we created a variant of the cyclohexanone monooxygenase from Acinetobacter sp. NCIMB 9871 (CHMOAcineto ); this used NADH 4200-fold better than NADPH. By combining structure analysis, sequence alignment, and literature data, 21 residues in proximity of the cofactor were identified and targeted for mutagenesis. Two combinatorial variants bearing three or four mutations showed higher conversions of cyclohexanone with NADH (79 %) compared to NADPH (58 %) as well as specificity. The structural reasons for this switch in cofactor specificity of a type I BVMO are especially a hydrogen-bond network coordinating the two hydroxy groups of NADH through direct interactions and bridging water molecules.
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