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比较基因组学揭示了与宿主相关和自由生活的 Aquimarina(拟杆菌门,黄杆菌科)物种中复杂的天然产物生物合成能力和碳代谢。

Comparative genomics reveals complex natural product biosynthesis capacities and carbon metabolism across host-associated and free-living Aquimarina (Bacteroidetes, Flavobacteriaceae) species.

机构信息

Institute for Bioengineering and Biosciences (iBB), Instituto Superior Técnico (IST), Universidade de Lisboa, Lisbon, Portugal.

Bioinformatics and Systems Biology, Justus-Liebig-University Giessen, 35392, Giessen, Germany.

出版信息

Environ Microbiol. 2019 Nov;21(11):4002-4019. doi: 10.1111/1462-2920.14747. Epub 2019 Aug 5.

DOI:10.1111/1462-2920.14747
PMID:31314938
Abstract

This study determines the natural product biosynthesis and full coding potential within the bacterial genus Aquimarina. Using comprehensive phylogenomics and functional genomics, we reveal that phylogeny instead of isolation source [host-associated (HA) vs. free-living (FL) habitats] primarily shape the inferred metabolism of Aquimarina species. These can be coherently organized into three major functional clusters, each presenting distinct natural product biosynthesis profiles suggesting that evolutionary trajectories strongly underpin their secondary metabolite repertoire and presumed bioactivities. Aquimarina spp. are highly versatile bacteria equipped to colonize HA and FL microniches, eventually displaying opportunistic behaviour, owing to their shared ability to produce multiple glycoside hydrolases from diverse families. We furthermore uncover previously underestimated, and highly complex secondary metabolism for the genus by detecting 928 biosynthetic gene clusters (BGCs) across all genomes, grouped in 439 BGC families, with polyketide synthases (PKSs), terpene synthases and non-ribosomal peptide synthetases (NRPSs) ranking as the most frequent BGCs encoding drug-like candidates. We demonstrate that the recently described cuniculene (trans-AT PKS) BGC is conserved among, and specific to, the here delineated A. megaterium-macrocephali-atlantica phylogenomic clade. Our findings provide a timely and in-depth perspective of an under-explored yet emerging keystone taxon in the cycling of organic matter and secondary metabolite production in marine ecosystems.

摘要

本研究旨在确定细菌属 Aquimarina 中的天然产物生物合成和完整编码潜力。通过综合系统发生基因组学和功能基因组学,我们揭示了系统发生而非分离源(宿主相关 [HA] 与自由生活 [FL] 生境)主要决定了 Aquimarina 物种的推断代谢。这些可以被协调地组织成三个主要的功能群,每个功能群都呈现出不同的天然产物生物合成特征,表明进化轨迹强烈影响它们的次生代谢物库和假定的生物活性。Aquimarina 属是高度多功能的细菌,能够在 HA 和 FL 小生境中定植,最终由于它们能够从多个家族中产生多种糖苷水解酶,表现出机会性行为。我们还通过在所有基因组中检测到 928 个生物合成基因簇 (BGC),并将其分为 439 个 BGC 家族,揭示了该属以前被低估的、高度复杂的次生代谢,其中聚酮合酶 (PKSs)、萜烯合酶和非核糖体肽合酶 (NRPSs) 是最常见的 BGC,编码类似药物的候选物。我们证明,最近描述的环丙烯(跨 AT PKS) BGC 在新定义的 A. megaterium-macrocephali-atlantica 系统发育枝系中是保守的,并且是特定的。我们的研究结果为海洋生态系统中有机物循环和次生代谢产物生产中一个尚未充分探索但正在出现的关键分类群提供了及时而深入的视角。

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