Unexpected Activities of CYP152 Peroxygenases Toward Non‐carboxylic Substrates Reveal Novel Substrate Recognition Mechanism and Catalytic Versatility

Y Yuanyuan Jiang P Piqian Gong Z Zijia Li Z Zhong Li (State Key Laboratory of Clean and Efficient Coal Utilization, College of Chemistry and Chemical Engineering) Y Yuxuan Li (Hefei National Research Center for Physical Sciences at the Microscale) B Binju Wang (State Key Laboratory of Physical Chemistry of Solid Surfaces and Fujian Provincial Key Laboratory of Theoretical and Computational Chemistry, College of Chemistry and Chemical Engineering) H He Huang W Wei Peng (Andlinger Center for Energy and the Environment, Princeton University) X Xiang Gao S Shengying Li

Abstract

Abstract Exploring and exploiting the catalytic promiscuity of enzymes is a central topic and captivating challenge in enzymology. CYP152 peroxygenases are attractive biocatalysts for diverse reactions under mild conditions using H 2 O 2 as cofactor. However, their substrate scope is limited by a carboxyl group required for substrate assisted acid‐base catalysis, following the well‐accepted principle that heme‐dependent H 2 O 2 ‐utilizing enzymes employ a carboxyl group within their active sites to facilitate H 2 O 2 activation. Herein, we reveal for the first time that several CYP152 family members can directly degrade various aromatic pollutants without any carboxyl group, exhibiting novel aromatic hydroxylation and dehalogenation activities. Through crystal structure analysis, isotope tracing experiments, and QM/MM calculations, we elucidate that the phenolic hydroxyl group activated by electron‐withdrawing substituent(s) functionally replaces the carboxyl group, forming hydrogen bonds with the conserved arginine leading to Compound I formation. The oxygen atom of the newly formed hydroxyl group originates from water, bypassing the conventional oxygen rebound step. These findings provide first insights into the mechanisms of P450 peroxygenases toward non‐carboxylic substrates, expanding our knowledge of biological C─H activation and C‐halogen bond cleavage beyond canonical P450 reactions. This discovery holds immense potential for harnessing these enzymes in innovative strategies for industrial biocatalysis and environmental remediation.

Article Details

Volume / Issue Vol. 64, Issue 31
Published July 28, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

Y

Yuanyuan Jiang

P

Piqian Gong

Z

Zijia Li

Z

Zhong Li

State Key Laboratory of Clean and Efficient Coal Utilization, College of Chemistry and Chemical Engineering

Y

Yuxuan Li

Hefei National Research Center for Physical Sciences at the Microscale

B

Binju Wang

State Key Laboratory of Physical Chemistry of Solid Surfaces and Fujian Provincial Key Laboratory of Theoretical and Computational Chemistry, College of Chemistry and Chemical Engineering

H

He Huang

W

Wei Peng

Andlinger Center for Energy and the Environment, Princeton University

X

Xiang Gao

S

Shengying Li