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Deletion of the signalling molecule synthase ScbA has pleiotropic effects on secondary metabolite biosynthesis, morphological differentiation and primary metabolism in Streptomyces coelicolor A3(2)

机译:缺失信号分子合成酶scba对天蓝色链霉菌a3的次级代谢产物生物合成,形态分化和初级代谢具有多效性(2)

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摘要

Streptomycetes have high biotechnological relevance as producers of diverse metabolites widely used in medical and agricultural applications. The biosynthesis of these metabolites is controlled by signalling molecules, γ-butyrolactones, that act as bacterial hormones. In Streptomyces coelicolor, a group of signalling molecules called SCBs (S. coelicolorbutanolides) regulates production of the pigmented antibiotics coelicolor polyketide (CPK), actinorhodin and undecylprodigiosin. The γ-butyrolactone synthase ScbA is responsible for the biosynthesis of SCBs. Here we show the results of a genome-wide transcriptome analysis of a scbA deletion mutant prior to and during the transition to antibiotic production. We report a strong perturbation in the expression of three pigmented antibiotic clusters in the mutant throughout the growth curve, thus providing a molecular explanation for the antibiotic phenotype observed previously. Our study also revealed, for the first time, that the secondary metabolite cluster responsible for synthesis of the siderophore desferrioxamine is under the control of SCB signalling. Moreover, expression of the genes encoding enzymes for primary metabolism pathways, which supply antibiotic precursors and genes for morphological differentiation, was found shifted earlier in time in the mutant. In conclusion, our time series analysis demonstrates new details of the regulatory effects of the γ-butyrolactone system in Streptomyces. © 2010 The Authors. Journal compilation © 2010 Society for Applied Microbiology and Blackwell Publishing Ltd.
机译:作为广泛用于医学和农业应用的多种代谢产物的生产者,链霉菌具有高度的生物技术相关性。这些代谢物的生物合成受作为细菌激素的信号分子γ-丁内酯的控制。在coelicolor链霉菌中,一组信号分子称为SCB(S. coelicolorbutanolides)调节有色抗生素coelicolor聚酮化合物(CPK),放线菌素和十一烷基prodigiosin的产生。 γ-丁内酯合酶ScbA负责SCB的生物合成。在这里,我们显示了在向抗生素生产过渡之前和期间,scbA缺失突变体的全基因组转录组分析结果。我们报告在整个生长曲线中的突变体中的三个色素抗生素簇的表达强烈扰动,从而提供了以前观察到的抗生素表型的分子解释。我们的研究还首次揭示了负责合成铁载体去铁草胺的次生代谢物簇处于SCB信号的控制之下。此外,发现该突变体中编码主要代谢途径的酶的基因的表达在时间上早些改变,所述主要代谢途径的酶提供了抗生素前体和用于形态学分化的基因。总之,我们的时间序列分析显示了链霉菌中γ-丁内酯系统调节作用的新细节。 ©2010作者。期刊编辑©2010应用微生物学会和Blackwell PublishingLtd。

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