Juan Mangas-Sanchez
Asymmetric synthesis of primary amines catalyzed by thermotolerant fungal reductive aminases
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.
Authors
Mahima Sharma
Sebastian Cosgrove s.cosgrove@keele.ac.uk
Jeremy I. Ramsden
James R. Marshall
Thomas W. Thorpe
Ryan B. Palmer
Gideon Grogan
Nicholas J. Turner
Abstract
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 Neosartorya spp. (NfRedAm and NfisRedAm) 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 (R)-2-aminohexane in space time yields up to 8.1 g L−1 h−1. The remarkable features of NfRedAm and NfisRedAm highlight their potential for wider synthetic application as well as expanding the biocatalytic toolbox available for chiral amine synthesis.
Citation
Mangas-Sanchez, J., Sharma, M., Cosgrove, S. C., Ramsden, J. I., Marshall, J. R., Thorpe, T. W., …Turner, N. J. (in press). Asymmetric synthesis of primary amines catalyzed by thermotolerant fungal reductive aminases. Chemical Science, 11(19), 5052-5057. https://doi.org/10.1039/d0sc02253e
Journal Article Type | Article |
---|---|
Acceptance Date | May 30, 2020 |
Deposit Date | May 30, 2023 |
Journal | Chemical Science |
Print ISSN | 2041-6520 |
Electronic ISSN | 2041-6539 |
Publisher | Royal Society of Chemistry |
Peer Reviewed | Peer Reviewed |
Volume | 11 |
Issue | 19 |
Pages | 5052-5057 |
DOI | https://doi.org/10.1039/d0sc02253e |
Keywords | General Chemistry |
Additional Information | : This document is Similarity Check deposited; : Supplementary Information; : Juan Mangas-Sanchez (ORCID); : Mahima Sharma (ORCID); : Sebastian C. Cosgrove (ORCID); : Nicholas J. Turner (ORCID); : Single-blind; : Received 21 April 2020; Accepted 30 April 2020; Advance Article published 5 May 2020; Version of Record published 20 May 2020 |
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