Mangas-Sanchez Juan, Sharma Mahima, Cosgrove Sebastian C, Ramsden Jeremy I, Marshall James R, Thorpe Thomas W, Palmer Ryan B, Grogan Gideon, Turner Nicholas J
School of Chemistry, University of Manchester, Manchester Institute of Biotechnology 131 Princess Street Manchester M1 7DN UK
York Structural Biology Laboratory, Department of Chemistry, University of York YO10 5DD York UK.
Chem Sci. 2020 May 5;11(19):5052-5057. doi: 10.1039/d0sc02253e.
Chiral primary amines are important intermediates in the synthesis of pharmaceutical compounds. Fungal reductive aminases (RedAms) are NADPH-dependent dehydrogenases that catalyse reductive amination of a range of ketones with short-chain primary amines supplied in an equimolar ratio to give corresponding secondary amines. Herein we describe structural and biochemical characterisation as well as synthetic applications of two RedAms from spp. (RedAm and RedAm) that display a distinctive activity amongst fungal RedAms, namely a superior ability to use ammonia as the amine partner. Using these enzymes, we demonstrate the synthesis of a broad range of primary amines, with conversions up to >97% and excellent enantiomeric excess. Temperature dependent studies showed that these homologues also possess greater thermal stability compared to other enzymes within this family. Their synthetic applicability is further demonstrated by the production of several primary and secondary amines with turnover numbers (TN) up to 14 000 as well as continous flow reactions, obtaining chiral amines such as ()-2-aminohexane in space time yields up to 8.1 g L h. The remarkable features of RedAm RedAm highlight their potential for wider synthetic application as well as expanding the biocatalytic toolbox available for chiral amine synthesis.
手性伯胺是药物化合物合成中的重要中间体。真菌还原胺酶(RedAms)是依赖NADPH的脱氢酶,可催化一系列酮与等摩尔比供应的短链伯胺进行还原胺化反应,生成相应的仲胺。在此,我们描述了来自 spp.的两种RedAms(RedAm和RedAm)的结构和生化特性以及合成应用,这两种酶在真菌RedAms中表现出独特的活性,即具有使用氨作为胺伴侣的卓越能力。使用这些酶,我们展示了多种伯胺的合成,转化率高达>97%,对映体过量优异。温度依赖性研究表明,与该家族中的其他酶相比,这些同源物还具有更高的热稳定性。通过生产几种周转率(TN)高达14000的伯胺和仲胺以及连续流动反应,进一步证明了它们的合成适用性,时空产率高达8.1 g L h,可获得手性胺,如()-2-氨基己烷。RedAm RedAm的显著特性突出了它们在更广泛的合成应用中的潜力,以及扩展可用于手性胺合成的生物催化工具箱。