Transaminase‐Triggered Cascades for the Synthesis and Dynamic Kinetic Resolution of Chiral <i>N</i>‐Heterocycles

A Adam O'Connell (School of Chemistry University College Dublin Belfield Dublin 4 Ireland) M Marianne B. Haarr (School of Chemistry University College Dublin Belfield Dublin 4 Ireland) J James Ryan (School of Chemistry University College Dublin Belfield Dublin 4 Ireland) X Xingxing Xu A Aoife Martin (School of Chemistry University College Dublin Belfield Dublin 4 Ireland) S Simon N. Smith (School of Chemistry University College Dublin Belfield Dublin 4 Ireland) N Nadia Elghobashi‐Meinhardt (School of Chemistry University College Dublin Belfield Dublin 4 Ireland) P Patricia Fleming (School of Chemistry University College Dublin Belfield Dublin 4 Ireland) B Beatriz Maciá (Faculty of Science &amp; Engineering Division of Chemistry &amp; Environmental Science Manchester Metropolitan University Chester Street Manchester M1 5GD UK) V Vittorio Caprio (Faculty of Science &amp; Engineering Division of Chemistry &amp; Environmental Science Manchester Metropolitan University Chester Street Manchester M1 5GD UK) E Elaine O'Reilly (School of Chemistry University College Dublin Belfield Dublin 4 Ireland)

Abstract

AbstractBiocatalysis is now a well‐established branch of catalysis and the growing toolbox of natural, evolved and designer enzymes is enabling chemistry previously deemed inaccessible. However, most enzyme methodologies have been developed for functional group interconversions, such as the conversion of a ketone into an amine or alcohol, and do not result in the generation of significant 3D molecular complexity. The application of enzyme‐triggered reaction cascade methodologies has the potential to transform simple substrates into complex sp3‐rich molecules in one step. Herein, we describe a single‐step biocatalytic route to high‐value, complex indolizidine, and quinolizidine alkaloids, which relies on a transaminase‐triggered double intramolecular aza‐Michael reaction. This approach allows access to architecturally complex, natural‐product‐like N‐heterocycles and reveals intriguing examples of diastereoselectivity in these enzyme‐triggered reactions. Significantly, we demonstrate an elegant example of a biocatalytic cascade where the transaminase plays a dual role in generating complex N‐heterocycles and where a retro‐double intramolecular aza‐Michael reaction mediates a dynamic kinetic resolution and enables the isolation of sp3‐rich indolizidine diastereoisomers containing five stereocenters, as single isomers.

Article Details

Volume / Issue Vol. 64, Issue 21
Published May 19, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

A

Adam O'Connell

School of Chemistry University College Dublin Belfield Dublin 4 Ireland

M

Marianne B. Haarr

School of Chemistry University College Dublin Belfield Dublin 4 Ireland

J

James Ryan

School of Chemistry University College Dublin Belfield Dublin 4 Ireland

X

Xingxing Xu

A

Aoife Martin

School of Chemistry University College Dublin Belfield Dublin 4 Ireland

S

Simon N. Smith

School of Chemistry University College Dublin Belfield Dublin 4 Ireland

N

Nadia Elghobashi‐Meinhardt

School of Chemistry University College Dublin Belfield Dublin 4 Ireland

P

Patricia Fleming

School of Chemistry University College Dublin Belfield Dublin 4 Ireland

B

Beatriz Maciá

Faculty of Science &amp; Engineering Division of Chemistry &amp; Environmental Science Manchester Metropolitan University Chester Street Manchester M1 5GD UK

V

Vittorio Caprio

Faculty of Science &amp; Engineering Division of Chemistry &amp; Environmental Science Manchester Metropolitan University Chester Street Manchester M1 5GD UK

E

Elaine O'Reilly

School of Chemistry University College Dublin Belfield Dublin 4 Ireland