NAD+激酶
酶
电泳剂
组合化学
化学
生物催化
基质(水族馆)
突变
立体化学
双键
氧化还原
辅因子
还原酶
催化作用
生物化学
生物
有机化学
反应机理
突变
基因
生态学
作者
Sebastian Roth,Richard Niese,Michael Müller,Mélanie Hall
标识
DOI:10.1002/anie.202314740
摘要
Abstract The asymmetric reduction of double bonds using NAD(P)H‐dependent oxidoreductases has proven to be an efficient tool for the synthesis of important chiral molecules in research and on industrial scale. These enzymes are commercially available in screening kits for the reduction of C=O (ketones), C=C (activated alkenes), or C=N bonds (imines). Recent reports, however, indicate that the ability to accommodate multiple reductase activities on distinct C=X bonds occurs in different enzyme classes, either natively or after mutagenesis. This challenges the common perception of highly selective oxidoreductases for one type of electrophilic substrate. Consideration of this underexplored potential in enzyme screenings and protein engineering campaigns may contribute to the identification of complementary biocatalytic processes for the synthesis of chiral compounds. This review will contribute to a global understanding of the promiscuous behavior of NAD(P)H‐dependent oxidoreductases on C=X bond reduction and inspire future discoveries with respect to unconventional biocatalytic routes in asymmetric synthesis.
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