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Genome mining identifies cepacin as a plant-protective metabolite of the biopesticidal bacterium Burkholderia ambifaria

机译:基因组采矿鉴定出cepacin是生物农药Bambiholderia ambifaria的一种植物保护性代谢产物。

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摘要

Beneficial microorganisms are widely used in agriculture for control of plant pathogens but a lack of efficacy and safety information has limited the exploitation of multiple promising biopesticides. We applied phylogeny-led genome mining, metabolite analyses and biological control assays to define the efficacy of Burkholderia ambifaria, a naturally beneficial bacterium with proven biocontrol properties, but potential pathogenic risk. A panel of 64 B. ambifaria strains demonstrated significant antimicrobial activity against priority plant pathogens. Genome sequencing, specialized metabolite biosynthetic gene cluster mining and metabolite analysis revealed an armoury of known and unknown pathways within B. ambifaria. The biosynthetic gene cluster responsible for the production of the metabolite, cepacin, was identified and directly shown to mediate protection of germinating crops against Pythium damping-off disease. B. ambifaria maintained biopesticidal protection and overall fitness in soil after deletion of its third replicon, a non-essential plasmid associated with virulence in B. cepacia complex bacteria. Removal of the third replicon reduced B. ambifaria persistence in a murine respiratory infection model. Here we show that by using interdisciplinary phylogenomic, metabolomic and functional approaches, the mode of action of natural biological control agents related to pathogens can be systematically established to facilitate their future exploitation.
机译:有益微生物在农业中广泛用于控制植物病原体,但是缺乏功效和安全性信息限制了多种有前途的生物农药的开发。我们应用了以系统发育为主导的基因组挖掘,代谢物分析和生物控制分析方法,来确定Burkholderia ambifaria的功效,Burkholderia ambifaria是一种天然有益细菌,具有经证实的生物控制特性,但具有潜在的致病风险。一组64种双歧双歧杆菌菌株显示出对优先植物病原体的显着抗微生物活性。基因组测序,专门的代谢物生物合成基因簇挖掘和代谢物分析揭示了双歧双歧杆菌内已知和未知途径的库房。鉴定了负责代谢产物cepacin的生物合成基因簇,并直接显示了其对发芽作物抵御腐霉病的介导作用。 B. ambifaria在删除其第三个复制子(一种与洋葱伯克霍尔德菌复合体细菌的毒力相关的非必需质粒)后,在土壤中保持了生物杀虫保护和整体适应性。在鼠呼吸道感染模型中,去除第三个复制子减少了双歧杆菌的持久性。在这里,我们表明,通过使用跨学科的植物学,代谢组学和功能方法,可以系统地建立与病原体相关的天然生物控制剂的作用方式,以促进其未来的开发。

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