Unlocking a Nitrosuccinate Lyase for Decarboxylative Enzymatic Hydronitration

M Matteo Aleotti H Hannah Dreisbach (Institute of Chemistry University of Graz Graz Austria) R Rémi Corlay (Institute of Chemistry University of Graz Graz Austria) C Clara Weber (Institute of Chemistry University of Graz Graz Austria) T Tamara Reiter (Institute of Chemistry, University of Graz, BioTechMed Graz, Heinrichstrasse 28, A-8010 Graz, Austria) W Wael Elaily B Bastian Daniel (Institute of Molecular Biosciences University of Graz Graz Austria) K Klaus Zangger (Institute of Chemistry University of Graz Graz Austria) P Pedro A. Sánchez‐Murcia (BioTechMed‐Graz Graz Austria) M Mélanie Hall

Abstract

ABSTRACT Nitro compounds are central to synthetic chemistry, yet mild and selective biocatalytic routes to these motifs remain elusive. We report an enzymatic strategy for the unique decarboxylative hydronitration of fumarate, achieved by repurposing the nitrosuccinate lyase CreD from the aspartase/fumarase superfamily for the synthetic direction. CreD from Streptomyces cremeus and three related bacterial homologues catalyze hydronitration using sodium nitrite salt with remarkable efficiency (turnover numbers up to 102,000) and high atom economy. With an already exceptionally broad functional group tolerance across the superfamily, this feature underscores a conserved yet adaptable activity landscape. Guided by comprehensive mutagenesis and computational analysis across all functionally distinct superfamily members, we uncovered key molecular determinants that govern nucleophile selectivity and preserve the structural integrity required for active tetramer assembly. We also define a diagnostic fingerprint for predicting hydronitration activity and propose a reaction mechanism supported by extensive QM/MM simulations. These molecular insights provide a foundation for expanding biocatalytic Michael‐type additions under environmentally benign aqueous conditions.

Article Details

Volume / Issue Vol. 65, Issue 31
Published July 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

M

Matteo Aleotti

H

Hannah Dreisbach

Institute of Chemistry University of Graz Graz Austria

R

Rémi Corlay

Institute of Chemistry University of Graz Graz Austria

C

Clara Weber

Institute of Chemistry University of Graz Graz Austria

T

Tamara Reiter

Institute of Chemistry, University of Graz, BioTechMed Graz, Heinrichstrasse 28, A-8010 Graz, Austria

W

Wael Elaily

B

Bastian Daniel

Institute of Molecular Biosciences University of Graz Graz Austria

K

Klaus Zangger

Institute of Chemistry University of Graz Graz Austria

P

Pedro A. Sánchez‐Murcia

BioTechMed‐Graz Graz Austria

M

Mélanie Hall