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Conserved Responses in a War of Small Molecules between a Plant-Pathogenic Bacterium and Fungi

机译:植物致病细菌与真菌之间的小分子战争中的保守反应

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摘要

ABSTRACT Small-molecule signaling is one major mode of communication within the polymicrobial consortium of soil and rhizosphere. While microbial secondary metabolite (SM) production and responses of individual species have been studied extensively, little is known about potentially conserved roles of SM signals in multilayered symbiotic or antagonistic relationships. Here, we characterize the SM-mediated interaction between the plant-pathogenic bacterium Ralstonia solanacearum and the two plant-pathogenic fungi Fusarium fujikuroi and Botrytis cinerea . We show that cellular differentiation and SM biosynthesis in F.?fujikuroi are induced by the bacterially produced lipopeptide ralsolamycin (synonym ralstonin A). In particular, fungal bikaverin production is induced and preferentially accumulates in fungal survival spores (chlamydospores) only when exposed to supernatants of ralsolamycin-producing strains of R.?solanacearum . Although inactivation of bikaverin biosynthesis moderately increases chlamydospore invasion by R.?solanacearum , we show that other metabolites such as beauvericin are also induced by ralsolamycin and contribute to suppression of R.?solanacearum growth in vitro . Based on our findings that bikaverin antagonizes R.?solanacearum and that ralsolamycin induces bikaverin biosynthesis in F.?fujikuroi , we asked whether other bikaverin-producing fungi show similar responses to ralsolamycin. Examining a strain of B.?cinerea that horizontally acquired the bikaverin gene cluster from Fusarium , we found that ralsolamycin induced bikaverin biosynthesis in this fungus. Our results suggest that conservation of microbial SM responses across distantly related fungi may arise from horizontal transfer of protective gene clusters that are activated by conserved regulatory cues, e.g., a bacterial lipopeptide, providing consistent fitness advantages in dynamic polymicrobial networks. IMPORTANCE Bacteria and fungi are ubiquitous neighbors in many environments, including the rhizosphere. Many of these organisms are notorious as economically devastating plant pathogens, but little is known about how they communicate chemically with each other. Here, we uncover a conserved antagonistic communication between the widespread bacterial wilt pathogen Ralstonia solanacearum and plant-pathogenic fungi from disparate genera, Fusarium and Botrytis . Exposure of Fusarium fujikuroi to the bacterial lipopeptide ralsolamycin resulted in production of the antibacterial metabolite bikaverin specifically in fungal tissues invaded by Ralstonia . Remarkably, ralsolamycin induction of bikaverin was conserved in a Botrytis cinerea isolate carrying a horizontally transferred bikaverin gene cluster. These results indicate that horizontally transferred gene clusters may carry regulatory prompts that contribute to conserved fitness functions in polymicrobial environments.
机译:摘要小分子信号传导是土壤和根际的微生物联合体内部的一种主要交流方式。虽然微生物次生代谢物(SM)的产生和单个物种的反应已得到广泛研究,但对于SM信号在多层共生或拮抗关系中的潜在保守作用知之甚少。在这里,我们表征植物致病性细菌青枯雷尔氏菌和两种植物致病性真菌镰刀镰刀菌和灰葡萄孢之间的SM介导的相互作用。我们表明,F。?fujikuroi中的细胞分化和SM生物合成是由细菌产生的脂肽雷索拉霉素(同义词雷斯顿A)诱导的。特别地,仅当暴露于产生雷索菌的雷氏乳杆菌菌株的上清液中时,才诱导真菌比卡维林的产生,并优先在真菌存活孢子(衣原体孢子)中积累。尽管灭活了kakaverin的生物合成适度地增加了R.?solanacearum对衣原体的侵袭,但我们表明,其他代谢产物如beauvericin也受到雷索拉霉素的诱导,并有助于抑制R.?solanacearum在体外的生长。基于我们的发现,比卡维林拮抗了茄形假单胞菌,而雷索霉素诱导了F.?fujikuroi中比卡维林的生物合成,我们询问其他产生比卡维林的真菌是否对拉索拉霉素表现出相似的反应。检查从镰刀菌水平获得了比卡维林基因簇的灰葡萄双歧杆菌菌株,我们发现雷拉霉素在该真菌中诱导了比卡维林的生物合成。我们的结果表明,跨远缘真菌的微生物SM反应的保守性可能来自保护基因簇的水平转移,而保护基因簇被保守的调控线索激活,例如细菌脂肽,在动态微生物网络中提供了一致的适应性优势。重要信息在许多环境中,包括根际,细菌和真菌都是无处不在的邻居。这些生物中有许多以经济上毁灭性的植物病原体而臭名昭著,但是人们对它们之间如何化学交流的了解却很少。在这里,我们揭示了广泛的细菌枯萎病原体茄青枯菌和来自不同属,镰刀菌属和葡萄孢属的植物致病真菌之间的保守拮抗性交流。富士镰刀菌暴露于脂肽ralsolamycin细菌的细菌代谢产物bikaverin的产生特别是在Ralstonia侵袭的真菌组织中。值得注意的是,雷索霉素诱导的比卡维林在保存有水平转移的比卡维林基因簇的灰葡萄孢分离物中是保守的。这些结果表明,水平转移的基因簇可能带有调节提示,有助于在微生物环境中保持适合的健身功能。

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