化学
对映选择合成
动力学分辨率
催化作用
香茅醇
有机化学
醇脱氢酶
酒
组合化学
对映体
氢化物
生物催化
有机催化
立体化学
连接器
立体异构
Sharpless不对称环氧化反应
立体选择性
分辨率(逻辑)
氧化酶试验
酶
产量(工程)
蛋白质工程
萜烯
醛
苯乙酮
基质(水族馆)
反应中间体
芳香
发酵
作者
Peng-Cen Han,Die Lu,Xiao-Mei Wu,Yi Xu,Xu‐Dong Kong,Bao-Di Ma
标识
DOI:10.1021/acs.jafc.6c04626
摘要
Abstract (R)-citronellal is an important intermediate for aroma compounds and pharmaceuticals. Herein, we engineered the choline oxidase, AcCO6, from Arthrobacter chlorophenolicus, to enhance enantioselective oxidation of citronellol. Through site-directed and combinatorial mutagenesis, a quadruple mutant, AcCO6_M4a (W332V/A89S/W331F/N463E) was obtained, exhibiting 336% of the wild-type activity and a 10.2-fold improvement in enantioselectivity (E = 24.2). Structural analysis and MD simulations revealed that the mutations expanded the binding pocket, promoting favorable interactions with (R)-citronellol and enhancing hydride transfer, while disfavoring the (S)-enantiomer. Consequently, the catalytic efficiency (kcat/KM) for (R)-citronellol was 12.5-fold higher than that for (S)-citronellol. Kinetic resolution of racemic citronellol using AcCO6_M4a achieved approximately 50% conversion, yielding (R)-citronellal (86.7% ee) and (S)-citronellol (97.9% ee) with 39.1% and 42.0% yield, respectively. This work demonstrates the potential of engineered AcCO6 for enantioselective biocatalysis, offering an efficient route to synthesize chiral alcohols and aldehydes as intermediates for fragrances and pharmaceuticals.
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