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Genome-wide analysis of the role of the antibiotic biosynthesis regulator AbsA2 in Streptomyces coelicolor A3(2)

机译:全基因组分析抗生素生物合成调节剂AbsA2在天蓝色链霉菌A3中的作用(2)

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The AbsA1-AbsA2 two component signalling system of Streptomyces coelicolor has long been known to exert a powerful negative influence on the production of the antibiotics actinorhodin, undecylprodiginine and the Calcium-Dependent Antibiotic (CDA). Here we report the analysis of a ΔabsA2 deletion strain, which exhibits the classic precocious antibiotic hyper-production phenotype, and its complementation by an N-terminal triple-FLAG-tagged version of AbsA2. The complemented and non-complemented ΔabsA2 mutant strains were used in large-scale microarray-based time-course experiments to investigate the effect of deleting absA2 on gene expression and to identify the in vivo AbsA2 DNA-binding target sites using ChIP-on chip. We show that in addition to binding to the promoter regions of redZ and actII-orfIV AbsA2 binds to several previously unidentified sites within the cda biosynthetic gene cluster within and/or upstream of SCO3215—SCO3216, SCO3217, SCO3229—SCO3230, and SCO3226, and we relate the pattern of AbsA2 binding to the results of the transcriptomic study and antibiotic phenotypic assays. Interestingly, dual ‘biphasic’ ChIP peaks were observed with AbsA2 binding across the regulatory genes actII-orfIV and redZ and the absA2 gene itself, while more conventional single promoter-proximal peaks were seen at the CDA biosynthetic genes suggesting a different mechanism of regulation of the former loci. Taken together the results shed light on the complex mechanism of regulation of antibiotic biosynthesis in Streptomyces coelicolor and the important role of AbsA2 in controlling the expression of three antibiotic biosynthetic gene clusters.
机译:长期以来,已知天蓝色链霉菌的AbsA1-AbsA2两组分信号传导系统会对抗生素放线菌丝蛋白,十一烷基谷丙素和钙依赖性抗生素(CDA)的产生产生强大的负面影响。在这里,我们报告对ΔabsA2缺失菌株的分析,该菌株表现出经典的早熟抗生素超量生产表型,并通过N末端三重FLAG标签的AbsA2版本对其进行补充。互补和非互补的ΔabsA2突变株用于大规模基于微阵列的时程实验中,以研究删除absA2对基因表达的影响,并使用ChIP-on芯片鉴定体内AbsA2 DNA结合靶位点。我们显示,除了与redZ和actII-orfIV AbsA2的启动子区域结合以外,SCO3215-SCO3216,SCO3217,SCO3229-SCO3230和SCO3226和/或上​​游的cda生物合成基因簇内还结合了多个先前未鉴定的位点,以及我们将AbsA2结合的模式与转录组研究和抗生素表型测定的结果联系起来。有趣的是,观察到双“双相” ChIP峰,AbsA2跨调节基因actII-orfIV和redZ与absA2基因本身结合,而在CDA生物合成基因上观察到更常规的单启动子近端峰,提示对APS的调节机制不同。前位点。总之,结果揭示了调控天蓝色链霉菌中抗生素生物合成的复杂机制,以及AbsA2在控制三个抗生素生物合成基因簇表达中的重要作用。

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