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Heterologous biosynthesis of elsinochrome A sheds light on the formation of the photosensitive perylenequinone system

机译:异氰酸酯A的异源生物合成揭示了光敏per醌体系的形成

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摘要

Perylenequinones are a class of aromatic polyketides characterised by a highly conjugated pentacyclic core, which confers them with potent light-induced bioactivities and unique photophysical properties. Despite the biosynthetic gene clusters for the perylenequinones elsinochrome A (>1), cercosporin (>4) and hypocrellin A (>6) being recently identified, key biosynthetic aspects remain elusive. Here, we first expressed the intact elc gene cluster encoding >1 from the wheat pathogen Parastagonospora nodorum heterologously in Aspergillus nidulans on a yeast-fungal artificial chromosome (YFAC). This led to the identification of a novel flavin-dependent monooxygenase, ElcH, responsible for oxidative enolate coupling of a perylenequinone intermediate to the hexacyclic dihydrobenzo(ghi)perylenequinone in >1. In the absence of ElcH, the perylenequione intermediate formed a hexacyclic cyclohepta(ghi)perylenequinone system via an intramolecular aldol reaction resulting in >6 and a novel hypocrellin >12 with opposite helicity to >1. Theoretical calculations supported that >6 and >12 resulted from atropisomerisation upon formation of the 7-membered ring. Using a bottom-up pathway reconstruction approach on a tripartite YFAC system developed in this study, we uncovered that both a berberine bridge enzyme-like oxidase ElcE and a laccase-like multicopper oxidase ElcG are involved in the double coupling of two naphthol intermediates to form the perylenequinone core. Gene swapping with the homologs from the biosynthetic pathway of >4 showed that cognate pairing of the two classes of oxidases is required for the formation of the perylenequinone core, suggesting the involvement of protein–protein interactions.
机译:ylene醌是一类芳香族聚酮化合物,其特征是高度共轭的五环核,使其具有强光诱导的生物活性和独特的光物理性质。尽管最近发现了per醌类的有机合成基因簇elsinochrome A(> 1 ),头孢菌素(> 4 )和hypercrellin A(> 6 ),关键生物合成方面仍然难以捉摸。在这里,我们首先在酵母真菌人工染色体(YFAC)上的构巢曲霉中异源表达了小麦病原体Nostum的> 1 编码的完整elc基因簇。这导致鉴定出一种新颖的黄素依赖性单加氧酶ElcH,该酶负责将strong醌中间体与> 1 中的六环二氢苯并(ghi)per醌进行氧化烯醇偶联。在没有ElcH的情况下,per醌中间体通过分子内羟醛反应形成六环环庚(ghi)per醌体系,导致> 6 和新颖的降乳素> 12 ,其螺旋度与< strong> 1 。理论计算支持> 6 和> 12 是由7元环形成时的阻转异构化产生的。在本研究中开发的三方YFAC系统上使用自下而上的途径重建方法,我们发现黄连素桥酶样氧化酶ElcE和漆酶样多铜氧化酶ElcG都参与了两个萘酚中间体的双重偶联形成ylene醌核心。基因与来自> 4 的生物合成途径的同源物的交换表明,per氧化物醌核心的形成需要两类氧化酶的同源配对,这暗示了蛋白质-蛋白质相互作用的参与。

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