| Literature DB >> 34590769 |
Fang Wen Jiao1, Yi Shuang Wang1,2, Xue Ting You1, Wanqing Wei3, Yu Chen3, Cheng Long Yang1, Zhi Kai Guo4, Bo Zhang1, Yong Liang3, Ren Xiang Tan1,2, Rui Hua Jiao1, Hui Ming Ge1.
Abstract
Redox tailoring enzymes play key roles in generating structural complexity and diversity in type II polyketides. In chartreusin biosynthesis, the early 13 C-labeling experiments and bioinformatic analysis suggest the unusual aglycone is originated from a tetracyclic anthracyclic polyketide. Here, we demonstrated that the carbon skeleton rearrangement from a linear anthracyclic polyketide to an angular pentacyclic biosynthetic intermediate requires two redox enzymes. The flavin-dependent monooxygenase ChaZ catalyses a Baeyer-Villiger oxidation on resomycin C to form a seven-membered lactone. Subsequently, a ketoreductase ChaE rearranges the carbon skeleton and affords the α-pyrone containing pentacyclic intermediate in an NADPH-dependent manner via tandem reactions including the reduction of the lactone carbonyl group, Aldol-type reaction, followed by a spontaneous γ-lactone ring formation, oxidation and aromatization. Our work reveals an unprecedented function of a ketoreductase that contributes to generate structural complexity of aromatic polyketide.Entities:
Keywords: Baeyer-Villiger monooxidase; biosynthesis; chartreusin; ketoreductase; skeletal rearrangement
Year: 2021 PMID: 34590769 DOI: 10.1002/anie.202112047
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336