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多生产者微生物组在海洋海绵中产生化学多样性。

A multiproducer microbiome generates chemical diversity in the marine sponge .

机构信息

Institute of Microbiology, ETH Zurich, 8093 Zurich, Switzerland.

Department of Biochemistry, Molecular Biology, and Biophysics, University of Minnesota Twin Cities, St. Paul, MN 55108.

出版信息

Proc Natl Acad Sci U S A. 2020 Apr 28;117(17):9508-9518. doi: 10.1073/pnas.1919245117. Epub 2020 Apr 14.

Abstract

Bacterial specialized metabolites are increasingly recognized as important factors in animal-microbiome interactions: for example, by providing the host with chemical defenses. Even in chemically rich animals, such compounds have been found to originate from individual members of more diverse microbiomes. Here, we identified a remarkable case of a moderately complex microbiome in the sponge host in which multiple symbionts jointly generate chemical diversity. In addition to bacterial pathways for three distinct polyketide families comprising microtubule-inhibiting peloruside drug candidates, mycalamide-type contact poisons, and the eukaryotic translation-inhibiting pateamines, we identified extensive biosynthetic potential distributed among a broad phylogenetic range of bacteria. Biochemical data on one of the orphan pathways suggest a previously unknown member of the rare polytheonamide-type cytotoxin family as its product. Other than supporting a scenario of cooperative symbiosis based on bacterial metabolites, the data provide a rationale for the chemical variability of and could pave the way toward biotechnological peloruside production. Most bacterial lineages in the compositionally unusual sponge microbiome were not known to synthesize bioactive metabolites, supporting the concept that microbial dark matter harbors diverse producer taxa with as yet unrecognized drug discovery potential.

摘要

细菌特殊代谢物越来越被认为是动物微生物组相互作用的重要因素

例如,为宿主提供化学防御。即使在化学成分丰富的动物中,也发现这些化合物源自更具多样性的微生物组的个别成员。在这里,我们在海绵宿主中鉴定了一个适度复杂的微生物组的显著案例,其中多个共生体共同产生化学多样性。除了包含微管抑制药物候选物 peloruside 的三种不同聚酮家族的细菌途径、mycalamide 型接触毒物和抑制真核翻译的 pateamines 外,我们还鉴定了广泛分布于广泛的细菌系统发育范围内的丰富生物合成潜力。关于一条孤儿途径的生化数据表明,其产物是一种以前未知的罕见 polytheonamide 型细胞毒素家族的成员。除了支持基于细菌代谢物的合作共生情景外,这些数据还为 的化学变异性提供了依据,并为 peloruside 的生物技术生产铺平了道路。在组成上不寻常的海绵微生物组中,大多数细菌谱系都不知道合成生物活性代谢物,这支持了微生物暗物质蕴藏着具有尚未被发现的药物发现潜力的多样化生产者类群的概念。

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