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Conjugation Mediates Large-Scale Chromosomal Transfer in Streptomyces Driving Diversification of Antibiotic Biosynthetic Gene Clusters

机译:偶联介导链霉菌中的大规模染色体转移推动抗生素生物合成基因簇的多样化

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摘要

Streptomyces are ubiquitous soil-dwelling bacteria with large, linear genomes that are of special importance as a source of metabolites used in human and veterinary medicine, agronomy, and industry. Conjugative elements (actinomycetes integrative and conjugative elements, AICEs) are the main drivers of Streptomyces Horizontal Gene Transfer. AICE transfer has long been known to be accompanied by mobilization of chromosomal DNA. However, the magnitude of DNA transfer, or the localization of acquired DNA across their linear chromosome, has remained undetermined. We here show that conjugative crossings in sympatric strains of Streptomyces result in the large-scale, genome-wide distributed replacement of up to one-third of the recipient chromosome, a phenomenon for which we propose the name “Streptomyces Chromosomal Transfer” (SCT). Such chromosome blending results in the acquisition, loss, and hybridization of Specialized Metabolite Biosynthetic Gene Clusters, leading to a novel metabolic arsenal in exconjugant offspring. Harnessing conjugation-mediated specialized metabolite biosynthesis gene cluster diversification holds great promise in the discovery of new bioactive compounds including antibiotics.
机译:链霉菌是普遍存在的土壤细菌,具有大型线性基因组,作为人类和兽医学、农学和工业中使用的代谢物来源,具有特别重要的意义。结合元件(放线菌整合元件和结合元件,AICEs)是链霉菌水平基因转移的主要驱动因素。长期以来,人们都知道 AICE 转移伴随着染色体 DNA 的动员。然而,DNA 转移的幅度或获得性 DNA 在其线性染色体上的定位仍未确定。我们在这里表明,链霉菌同源菌株中的共轭杂交导致多达三分之一的受体染色体的大规模、全基因组分布替换,我们为此提出了“链霉菌染色体转移”(SCT) 的名称。这种染色体混合导致特殊代谢物生物合成基因簇的获得、丢失和杂交,从而在共轭后代中产生一种新的代谢库。利用偶联介导的特化代谢物生物合成,基因簇多样化在发现包括抗生素在内的新生物活性化合物方面具有很大的前景。

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