Cytochrome P450 Mediated Cyclohexane Ring Formation in Forazoline Biosynthesis

X Xinru Chen Y Yujie Zhang (College of Energy Materials and Chemistry) S Shiqi Li (Department of Chemistry, Institute of Innovative Material, Guangdong Provincial Key Laboratory of Sustainable Biomimetic Materials and Green Energy) W Weiting Liao (Department of Pulmonary and Critical Care Medicine Zhongnan Hospital of Wuhan University TaiKang Center for Life and Medical Sciences School of Pharmaceutical Sciences Key Laboratory of Combinatorial Biosynthesis and Drug Discovery (Ministry of Education) Wuhan University Wuhan P. R. China) W Weixin Tao (Department of Pulmonary and Critical Care Medicine Zhongnan Hospital of Wuhan University TaiKang Center for Life and Medical Sciences School of Pharmaceutical Sciences Key Laboratory of Combinatorial Biosynthesis and Drug Discovery (Ministry of Education) Wuhan University Wuhan P. R. China) Z Zixin Deng T Tim S Bugni (Pharmaceutical Sciences Division University of Wisconsin–Madison Madison WI 53705 USA) H Hao Su F Fan Zhang

Abstract

Abstract Forazoline A, produced by the marine actinomycete Actinomadura sp. WMMB‐499, is a unique PK/NRP hybrid macrolactone with promising antifungal in vivo efficacy through a previously unreported mechanism. Although a PKS/NRPS gene cluster was identified as a candidate for forazoline production, the precise biosynthetic pathway and the functions of the tailoring enzymes remain unclear. In this work, the functions of three cytochrome P450 mono‐oxygenases (FrazP1P2P3) were characterized. Notably, FrazP2 was found to mediate cyclohexane ring formation from an 1,3,6‐triene precursor during forazoline A biosynthesis, as confirmed by genetic and biochemical analysis. To gain structural and mechanistic insight into the activity of FrazP2, the crystal structure of a FrazP2‐substrate complex has been solved at 2.3 Å resolution. The molecular dynamics simulations and DFT calculations revealed an unprecedented enzyme‐catalyzed oxidative cyclization reaction by FrazP2. These findings expand our understanding of the catalytic diversity of cytochrome P450s, contributing to the diversification of natural products and enabling the creation of unnatural derivatives with increased antifungal potency.

Article Details

Volume / Issue Vol. 64, Issue 28
Published July 07, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

X

Xinru Chen

Y

Yujie Zhang

College of Energy Materials and Chemistry

S

Shiqi Li

Department of Chemistry, Institute of Innovative Material, Guangdong Provincial Key Laboratory of Sustainable Biomimetic Materials and Green Energy

W

Weiting Liao

Department of Pulmonary and Critical Care Medicine Zhongnan Hospital of Wuhan University TaiKang Center for Life and Medical Sciences School of Pharmaceutical Sciences Key Laboratory of Combinatorial Biosynthesis and Drug Discovery (Ministry of Education) Wuhan University Wuhan P. R. China

W

Weixin Tao

Department of Pulmonary and Critical Care Medicine Zhongnan Hospital of Wuhan University TaiKang Center for Life and Medical Sciences School of Pharmaceutical Sciences Key Laboratory of Combinatorial Biosynthesis and Drug Discovery (Ministry of Education) Wuhan University Wuhan P. R. China

Z

Zixin Deng

T

Tim S Bugni

Pharmaceutical Sciences Division University of Wisconsin–Madison Madison WI 53705 USA

H

Hao Su

F

Fan Zhang