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通过与叶际细菌群共培养诱导抗生素特化代谢。

Induction of antibiotic specialized metabolism by co-culturing in a collection of phyllosphere bacteria.

机构信息

Laboratory of Microbiology, Department of Biochemistry and Microbiology, Faculty of Sciences, Ghent University, Ghent, Belgium.

Institute for Pharmaceutical Biology, University of Bonn, Nussallee 6, Bonn, 53115, Germany.

出版信息

Environ Microbiol. 2021 Apr;23(4):2132-2151. doi: 10.1111/1462-2920.15382. Epub 2021 Jan 12.

Abstract

A diverse set of bacteria live on the above-ground parts of plants, composing the phyllosphere, and play important roles for plant health. Phyllosphere microbial communities assemble in a predictable manner and diverge from communities colonizing other plant organs or the soil. However, how these communities differ functionally remains obscure. We assembled a collection of 258 bacterial isolates representative of the most abundant taxa of the phyllosphere of Arabidopsis and a shared soil inoculum. We screened the collection for the production of metabolites that inhibit the growth of Gram-positive and Gram-negative bacteria either in isolation or in co-culture. We found that isolates capable of constitutive antibiotic production in monoculture were significantly enriched in the soil fraction. In contrast, the proportion of binary cultures resulting in the production of growth inhibitory compounds differed only marginally between the phyllosphere and soil fractions. This shows that the phyllosphere may be a rich resource for potentially novel molecules with antibiotic activity, but that production or activity is dependent upon induction by external signals or cues. Finally, we describe the isolation of antimicrobial acyloin metabolites from a binary culture of Arabidopsis phyllosphere isolates, which inhibit the growth of clinically relevant Acinetobacter baumannii.

摘要

地上植物部分生活着各种各样的细菌,构成了叶际微生物群,对植物健康起着重要作用。叶际微生物群落以可预测的方式聚集,并与定植于其他植物器官或土壤的群落相分离。然而,这些群落的功能差异仍然不清楚。我们收集了 258 株细菌分离株,代表了拟南芥叶际最丰富的分类群和共同的土壤接种物。我们筛选了这些分离株,以检测它们在单独培养或共培养时产生抑制革兰氏阳性和革兰氏阴性细菌生长的代谢产物的能力。我们发现,在单独培养时能够持续产生抗生素的分离株在土壤部分中明显富集。相比之下,在叶际和土壤部分之间,导致产生生长抑制化合物的二元培养物的比例差异仅略有不同。这表明叶际可能是具有抗生素活性的潜在新型分子的丰富资源,但生产或活性取决于外部信号或线索的诱导。最后,我们描述了从拟南芥叶际分离株的二元培养物中分离出抗菌酰基醇代谢物,该代谢物能抑制临床相关鲍曼不动杆菌的生长。

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