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细菌模拟植物四氢吡啶生物碱在根际模型系统中介导微生物相互作用。

Bacterial Analogs of Plant Tetrahydropyridine Alkaloids Mediate Microbial Interactions in a Rhizosphere Model System.

机构信息

Wisconsin Institute for Discovery and Department of Plant Pathology, University of Wisconsin-Madison, Madison, Wisconsin, USA.

Department of Molecular, Cellular and Developmental Biology, Yale University, New Haven, Connecticut, USA.

出版信息

Appl Environ Microbiol. 2019 May 2;85(10). doi: 10.1128/AEM.03058-18. Print 2019 May 15.

Abstract

Plants expend significant resources to select and maintain rhizosphere communities that benefit their growth and protect them from pathogens. A better understanding of assembly and function of rhizosphere microbial communities will provide new avenues for improving crop production. Secretion of antibiotics is one means by which bacteria interact with neighboring microbes and sometimes change community composition. In our analysis of a taxonomically diverse consortium from the soybean rhizosphere, we found that selectively inhibits growth of and other members of the grown in soybean root exudate. A genetic screen in identified a previously uncharacterized biosynthetic gene cluster responsible for the inhibitory activity. Metabolites were isolated based on biological activity and were characterized using tandem mass spectrometry, multidimensional nuclear magnetic resonance, and Mosher ester analysis, leading to the discovery of a new family of bacterial tetrahydropyridine alkaloids, koreenceine A to D (metabolites 1 to 4). Three of these metabolites are analogs of the plant alkaloid γ-coniceine. Comparative analysis of the koreenceine cluster with the γ-coniceine pathway revealed distinct polyketide synthase routes to the defining tetrahydropyridine scaffold, suggesting convergent evolution. Koreenceine-type pathways are widely distributed among species, and koreenceine C was detected in another species from a distantly related cluster. This work suggests that and plants convergently evolved the ability to produce similar alkaloid metabolites that can mediate interbacterial competition in the rhizosphere. The microbiomes of plants are critical to host physiology and development. Microbes are attracted to the rhizosphere due to massive secretion of plant photosynthates from roots. Microorganisms that successfully join the rhizosphere community from bulk soil have access to more abundant and diverse molecules, producing a highly competitive and selective environment. In the rhizosphere, as in other microbiomes, little is known about the genetic basis for individual species' behaviors within the community. In this study, we characterized competition between and , two common rhizosphere inhabitants. We identified a widespread gene cluster in several spp. that is necessary for the production of a novel family of tetrahydropyridine alkaloids that are structural analogs of plant alkaloids. We expand the known repertoire of antibiotics produced by in the rhizosphere and demonstrate the role of the metabolites in interactions with other rhizosphere bacteria.

摘要

植物会投入大量资源来选择和维持有利于其生长并保护其免受病原体侵害的根际群落。更好地了解根际微生物群落的组装和功能将为提高作物产量提供新途径。抗生素的分泌是细菌与邻近微生物相互作用的一种方式,有时会改变群落组成。在对来自大豆根际的分类多样的联合体进行分析时,我们发现它选择性地抑制了在大豆根分泌物中生长的 和其他 的生长。在 中的遗传筛选确定了一个以前未被表征的生物合成基因簇,该基因簇负责抑制活性。基于生物活性分离代谢物,并使用串联质谱、多维核磁共振和 Mosher 酯分析进行表征,从而发现了一种新的细菌四氢吡啶生物碱家族,即 koreenceine A 至 D(代谢物 1 至 4)。这三种代谢物是植物生物碱γ-coniine 的类似物。将 koreenceine 簇与 γ-coniine 途径进行比较分析表明,它们具有不同的聚酮合酶途径来定义四氢吡啶支架,表明趋同进化。koreenceine 型途径在 物种中广泛分布,在另一个来自远缘群的 物种中检测到 koreenceine C。这项工作表明, 和植物趋同进化出产生类似生物碱代谢物的能力,这些代谢物可以在根际中介导细菌间的竞争。植物的微生物组对宿主的生理和发育至关重要。由于根系大量分泌植物光合产物,微生物被吸引到根际。成功从土壤中加入根际群落的微生物可以获得更丰富和多样的分子,从而产生一个高度竞争和选择性的环境。在根际中,与其他微生物组一样,人们对单个物种在群落中的行为的遗传基础知之甚少。在这项研究中,我们描述了 和 之间的竞争,这两种都是常见的根际生物。我们在几种 spp. 中鉴定出一个广泛存在的基因簇,该基因簇对于产生一种新的四氢吡啶生物碱家族是必要的,这些生物碱是植物生物碱的结构类似物。我们扩展了 在根际中产生的抗生素的已知 repertoire,并证明了代谢物在与其他根际细菌相互作用中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e178/6498172/80a4b3ea830c/AEM.03058-18-f0001.jpg

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