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自我保护的备用方案:棒曲霉素生物合成中间产物在橄榄链霉菌中的 S-甲基化。

A backup plan for self-protection: S-methylation of holomycin biosynthetic intermediates in Streptomyces clavuligerus.

机构信息

Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, MA 02115, USA.

出版信息

Chembiochem. 2012 Nov 26;13(17):2521-6. doi: 10.1002/cbic.201200536. Epub 2012 Oct 24.

Abstract

Biosynthesis of the dithiolopyrrolone antibiotic holomycin in Streptomyces clavuligerus involves the closure of a pair of enethiols to a cyclic disulfide. We have shown that the dithiol oxidase HlmI is responsible for the disulfide formation and this enzyme also plays a role in self-protection. In the present study, we examine how S. clavuligerus deals with the proposed toxic dithiol intermediates when hlmI is deleted. We used differential NMR spectroscopy and mass spectrometry to profile the metabolomes of hlmI deletion mutants along with the wild-type strain and a holomycin-overproducing strain. A number of metabolites unique to ΔhlmI strains were identified. In these metabolites the enethiols have been incapacitated by a combination of mono- and di-S-methylation. We also observed an intriguing dimeric thioether adduct in low quantities in the wild-type strain and at much higher levels in the ΔhlmI strains. The structures of these novel metabolites highlight the reactivity of the dihydrodithiolopyrrolone scaffold. Furthermore, bioassays suggest that modification of the enethiol warhead by S-alkylation provides a host strategy for detoxification, one that is shared amongst multiple species producing such bioactive disulfide natural products.

摘要

棒曲霉素是链霉菌属产生的二硫杂吡咯酮类抗生素,其生物合成涉及一对烯硫醇环化成环二硫键。我们已经证明二硫醇氧化酶 HlmI 负责二硫键的形成,该酶在自我保护中也发挥作用。在本研究中,当 hlmI 缺失时,我们研究了链霉菌属如何处理所提出的有毒二硫醇中间体。我们使用差示 NMR 光谱和质谱技术对 hlmI 缺失突变体以及野生型菌株和高产棒曲霉素菌株的代谢组进行了分析。鉴定出了许多仅存在于ΔhlmI 菌株中的独特代谢物。在这些代谢物中,烯硫醇通过单-和双-S-甲基化组合而失活。我们还观察到在野生型菌株中以低浓度存在,而在ΔhlmI 菌株中以更高浓度存在的有趣的二聚硫醚加合物。这些新型代谢物的结构突出了二氢二硫杂吡咯酮支架的反应性。此外,生物测定表明,烯硫醇弹头的 S-烷基化修饰为解毒提供了一种宿主策略,这是多种产生此类生物活性二硫键天然产物的物种所共有的策略。

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