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Coordinate Regulation of Antimycin and Candicidin Biosynthesis

机译:抗霉素和大黄素生物合成的协调调控

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Streptomyces species produce an incredible array of high-value specialty chemicals and medicinal therapeutics. A single species typically harbors ~30 biosynthetic pathways, but only a few them are expressed in the laboratory; thus, poor understanding of how natural-product biosynthesis is regulated is a major bottleneck in drug discovery. Antimycins are a large family of anticancer compounds widely produced by Streptomyces species, and their regulation is atypical compared to that of most other natural products. Here we demonstrate that antimycin production by Streptomyces albus S4 is regulated by FscRI, a PAS-LuxR family cluster-situated regulator of the polyene antifungal agent candicidin. We report that heterologous production of antimycins by Streptomyces coelicolor is dependent on FscRI and show that FscRI activates the transcription of key biosynthetic genes. We also demonstrate through chromatin immunoprecipitation sequencing that FscRI regulation is direct, and we provide evidence that this regulation strategy is conserved and unique to short-form antimycin gene clusters. Our study provides direct in vivo evidence of the cross-regulation of disparate biosynthetic gene clusters specifying unrelated natural products and expands the paradigmatic understanding of the regulation of secondary metabolism. IMPORTANCE Natural products produced by members of the phylum Actinobacteria underpin many industrially and medically important compounds; however, the majority of the ~30 biosynthetic pathways harbored by an average species are not expressed in the laboratory. Understanding the diversity of regulatory strategies controlling the expression of these pathways is therefore critical if their biosynthetic potential is to be explored for new drug leads. Our findings reveal that the candicidin cluster-situated regulator FscRI coordinately controls the biosynthesis of both candicidin and antimycin, which is the first observation of cross-regulation of disparate biosynthetic gene clusters specifying unrelated natural products. We anticipate that this will emerge as a major strategy by which members of the phylum Actinobacteria coordinately produce natural products, which will advance our understanding of how the expression of secondary metabolism is controlled and will aid the pursuit of “silent” biosynthetic pathway activation.
机译:链霉菌种产生了令人难以置信的一系列高价值的特种化学品和药物疗法。一个物种通常具有约30条生物合成途径,但在实验室中只有少数表达。因此,对天然产物生物合成的调控方式了解不足是药物开发的主要瓶颈。抗霉素是链霉菌广泛产生的一大类抗癌化合物,与大多数其他天然产物相比,其调节作用非典型。在这里,我们证明了链霉菌S4产生的抗霉素是由FscRI调节的,FscRI是PAS-LuxR家族簇定位的多烯抗真菌剂candicidin的调节剂。我们报告说,链霉素链霉菌的抗霉素异源生产依赖于FscRI,并显示FscRI激活了关键生物合成基因的转录。我们还通过染色质免疫沉淀测序证明FscRI调控是直接的,并且我们提供的证据表明这种调控策略是保守的,并且是短型抗霉素基因簇所独有的。我们的研究提供了直接的体内证据,说明了不相关的生物合成基因簇的交叉调控,这些基因簇指定了无关的天然产物,并扩大了对次级代谢调控的范式理解。重要放线菌门的成员生产的天然产物是许多工业和医学上重要的化合物的基础。然而,一个普通物种所具有的约30种生物合成途径中的大多数在实验室中并未表达。因此,如果要探索新途径的生物合成潜力,那么了解控制这些途径表达的调控策略的多样性就至关重要。我们的研究结果表明,candicidin簇定位的调节剂FscRI协调控制candicidin和抗霉素的生物合成,这是对互不相关的生物合成基因簇进行交叉调控的第一个观察结果,这些簇均指定了无关的天然产物。我们预计,这将成为主要的策略,使放线菌门的成员协调产生天然产物,这将增进我们对次级代谢表达的控制方式的理解,并有助于追求“沉默的”生物合成途径的激活。

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