| Literature DB >> 35322515 |
Jun Zhang1,2, Daohong Liao3, Rongchang Chen4, Fangfang Zhu5, Yaqing Ma1, Lei Gao6, Ge Qu2, Chengsen Cui2, Zhoutong Sun2, Xiaoguang Lei6, Shu-Shan Gao1,2.
Abstract
Although imine reductases (IREDs) are emerging as attractive reductive aminases (RedAms), their substrate scope is still narrow, and rational engineering is rare. Focusing on hydrogen bond reorganization and cavity expansion, a concise strategy combining rational cavity design, combinatorial active-site saturation test (CAST), and thermostability engineering was designed, that transformed the weakly active IR-G36 into a variant M5 with superior performance for the synthesis of (R)-3-benzylamino-1-Boc-piperidine, with a 4193-fold improvement in catalytic efficiency, a 16.2 °C improvement in Tm , and a significant increase in the e.e. value from 78 % (R) to >99 % (R). M5 exhibits broad substrate scope for the synthesis of diverse azacycloalkylamines, and the reaction was demonstrated on a hectogram-scale under industrially relevant conditions. Our study provides a compelling example of the preparation of versatile and efficient IREDs, with exciting opportunities in medicinal and process chemistry as well as synthetic biology.Entities:
Keywords: Biocatalysis; Chiral Amines; Imine Reductase; Protein Engineering; Reductive Amination
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Year: 2022 PMID: 35322515 DOI: 10.1002/anie.202201908
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336