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NADPH 依赖型酮还原酶催化查尔酮霉素生物合成中的四环到五环骨架重排。

An NADPH-Dependent Ketoreductase Catalyses the Tetracyclic to Pentacyclic Skeletal Rearrangement in Chartreusin Biosynthesis.

机构信息

State Key Laboratory of Pharmaceutical Biotechnology, Institute of Functional Biomolecules, Chemistry and Biomedicine Innovation Centre, School of Life Sciences, Nanjing University, Nanjing, 210023, China.

State Key Laboratory Cultivation Base for TCM Quality and Efficacy, Nanjing University of Chinese Medicine, Nanjing, 210046, China.

出版信息

Angew Chem Int Ed Engl. 2021 Dec 6;60(50):26378-26384. doi: 10.1002/anie.202112047. Epub 2021 Nov 5.

Abstract

Redox tailoring enzymes play key roles in generating structural complexity and diversity in type II polyketides. In chartreusin biosynthesis, the early 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.

摘要

氧化还原酶在生成 II 型聚酮化合物的结构复杂性和多样性方面发挥着关键作用。在查特霉素生物合成中,早期的 C 标记实验和生物信息学分析表明,这种不寻常的糖苷配基来源于四环蒽环类聚酮化合物。在这里,我们证明了从线性蒽环类聚酮化合物到角型五环生物合成中间体的碳骨架重排需要两种氧化还原酶。黄素依赖性单加氧酶 ChaZ 催化雷莫司汀 C 的 Baeyer-Villiger 氧化反应,形成一个七元内酯。随后,酮还原酶 ChaE 通过串联反应将碳骨架重排,并以 NADPH 依赖性的方式提供含有α-吡喃酮的五环中间体,其中包括内酯羰基的还原、Aldol 型反应,然后是自发的γ-内酯环形成、氧化和芳构化。我们的工作揭示了酮还原酶的一个前所未有的功能,它有助于产生芳香聚酮化合物的结构复杂性。

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