Identification of Thiotetronic Acid Antibiotic Biosynthetic Pathways by Target-directed Genome Mining

基因组 基因 生物 基因簇 遗传学 计算生物学 非核糖体肽 链霉菌 细菌基因组大小 DNA测序 生物合成 细菌
作者
Xiaoyu Tang,Jie Li,Natalie Millán‐Aguiñaga,Jia Jia Zhang,Ellis C. O’Neill,Juan A. Ugalde,Paul R. Jensen,Simone M. Mantovani,Bradley S. Moore
出处
期刊:ACS Chemical Biology [American Chemical Society]
卷期号:10 (12): 2841-2849 被引量:247
标识
DOI:10.1021/acschembio.5b00658
摘要

Recent genome sequencing efforts have led to the rapid accumulation of uncharacterized or “orphaned” secondary metabolic biosynthesis gene clusters (BGCs) in public databases. This increase in DNA-sequenced big data has given rise to significant challenges in the applied field of natural product genome mining, including (i) how to prioritize the characterization of orphan BGCs and (ii) how to rapidly connect genes to biosynthesized small molecules. Here, we show that by correlating putative antibiotic resistance genes that encode target-modified proteins with orphan BGCs, we predict the biological function of pathway specific small molecules before they have been revealed in a process we call target-directed genome mining. By querying the pan-genome of 86 Salinispora bacterial genomes for duplicated house-keeping genes colocalized with natural product BGCs, we prioritized an orphan polyketide synthase-nonribosomal peptide synthetase hybrid BGC (tlm) with a putative fatty acid synthase resistance gene. We employed a new synthetic double-stranded DNA-mediated cloning strategy based on transformation-associated recombination to efficiently capture tlm and the related ttm BGCs directly from genomic DNA and to heterologously express them in Streptomyces hosts. We show the production of a group of unusual thiotetronic acid natural products, including the well-known fatty acid synthase inhibitor thiolactomycin that was first described over 30 years ago, yet never at the genetic level in regards to biosynthesis and autoresistance. This finding not only validates the target-directed genome mining strategy for the discovery of antibiotic producing gene clusters without a priori knowledge of the molecule synthesized but also paves the way for the investigation of novel enzymology involved in thiotetronic acid natural product biosynthesis.
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