A family of native amine dehydrogenases for the asymmetric reductive amination of ketones

被引:0
作者
Ombeline Mayol
Karine Bastard
Lilian Beloti
Amina Frese
Johan P. Turkenburg
Jean-Louis Petit
Aline Mariage
Adrien Debard
Virginie Pellouin
Alain Perret
Véronique de Berardinis
Anne Zaparucha
Gideon Grogan
Carine Vergne-Vaxelaire
机构
[1] Génomique Métabolique,
[2] Genoscope,undefined
[3] Institut François Jacob,undefined
[4] CEA,undefined
[5] CNRS,undefined
[6] Univ Evry,undefined
[7] Université Paris-Saclay,undefined
[8] York Structural Biology Laboratory,undefined
[9] Department of Chemistry,undefined
[10] University of York,undefined
[11] Heslington,undefined
来源
Nature Catalysis | 2019年 / 2卷
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摘要
The asymmetric reductive amination of ketones enables the one-step synthesis of chiral amines from readily available starting materials. Here we report the discovery of a family of native NAD(P)H-dependent amine dehydrogenases (nat-AmDHs) competent for the asymmetric reductive amination of aliphatic and alicyclic ketones, adding significantly to the biocatalytic toolbox available for chiral amine synthesis. Studies of ketone and amine substrate specificity and kinetics reveal a strong preference for aliphatic ketones and aldehydes, with activities of up to 614.5 mU mg−1 for cyclohexanone with ammonia, and 851.3 mU mg−1 for isobutyraldehyde with methylamine as the amine donor. Crystal structures of three nat-AmDHs (AmDH4, MsmeAmDH and CfusAmDH) reveal the active site determinants of substrate and cofactor specificity and enable the rational engineering of AmDH4 for the generated activity towards pentan-2-one. Analysis of the three-dimensional catalytic site distribution among bacterial biodiversity revealed a superfamily of divergent proteins with representative specificities ranging from amino acid substrates to hydrophobic ketones.
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页码:324 / 333
页数:9
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