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一个集成模块在抗生素莫匹罗星生物合成中进行选择性“在线”环氧化。

An Integrated Module Performs Selective 'Online' Epoxidation in the Biosynthesis of the Antibiotic Mupirocin.

机构信息

School of Chemistry, University of Bristol, BS8 1TS, Bristol, UK.

Department of Engineering and Sciences, School of Liberal Arts and Sciences, Taylor's University, 47500, Subang Jaya, Selangor, Malaysia.

出版信息

Angew Chem Int Ed Engl. 2024 Dec 2;63(49):e202410502. doi: 10.1002/anie.202410502. Epub 2024 Oct 16.

Abstract

The delineation of the complex biosynthesis of the potent antibiotic mupirocin, which consists of a mixture of pseudomonic acids (PAs) isolated from Pseudomonas fluorescens NCIMB 10586, presents significant challenges, and the timing and mechanisms of several key transformations remain elusive. Particularly intriguing are the steps that process the linear backbone from the initial polyketide assembly phase to generate the first cyclic intermediate PA-B. These include epoxidation as well as incorporation of the tetrahydropyran (THP) ring and fatty acid side chain required for biological activity. Herein, we show that the mini-module MmpE performs a rare online (ACP-substrate) epoxidation and is integrated ('in-cis') into the polyketide synthase via a docking domain. A linear polyketide fragment with six asymmetric centres was synthesised using a convergent approach and used to demonstrate substrate flux via an atypical KS and a previously unannotated ACP (MmpE_ACP). MmpE_ACP-bound synthetic substrates were critical in demonstrating successful epoxidation in vitro by the purified MmpE oxidoreductase domain. Alongside feeding studies, these results confirm the timing as well as chain length dependence of this selective epoxidation. These mechanistic studies pinpoint the location and nature of the polyketide substrate prior to the key formation of the THP ring and esterification that generate PA-B.

摘要

强效抗生素莫匹罗星的复杂生物合成的描绘,由从荧光假单胞菌 NCIMB 10586 中分离出的假单胞酸 (PA) 混合物组成,这提出了重大的挑战,并且几个关键转化的时间和机制仍然难以捉摸。特别有趣的是从初始聚酮组装阶段处理线性骨架以生成第一个环状中间 PA-B 的步骤。这些步骤包括环氧化以及需要生物活性的四氢吡喃 (THP) 环和脂肪酸侧链的掺入。在此,我们表明小型模块 MmpE 进行了罕见的在线 (ACP-底物) 环氧化,并通过对接结构域整合(“顺式”)到聚酮合酶中。使用收敛方法合成了具有六个不对称中心的线性聚酮片段,并使用该方法通过一个非典型的 KS 和以前未注释的 ACP(MmpE_ACP)来证明底物通量。MmpE_ACP 结合的合成底物对于通过纯化的 MmpE 氧化还原酶结构域在体外成功进行环氧化至关重要。除了喂养研究外,这些结果还证实了这种选择性环氧化的时间以及链长依赖性。这些机制研究确定了在形成 THP 环和酯化生成 PA-B 之前聚酮底物的位置和性质。

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