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垂直遗传促进生物合成基因簇和特化代谢物的种间多样化。

Vertical Inheritance Facilitates Interspecies Diversification in Biosynthetic Gene Clusters and Specialized Metabolites.

机构信息

Center for Marine Biotechnology and Biomedicine, Scripps Institution of Oceanography, University of California San Diego, La Jolla, California, USA.

Center for Microbiome Innovation, University of California San Diego, La Jolla, California, USA.

出版信息

mBio. 2021 Dec 21;12(6):e0270021. doi: 10.1128/mBio.02700-21. Epub 2021 Nov 23.

Abstract

While specialized metabolites are thought to mediate ecological interactions, the evolutionary processes driving chemical diversification, particularly among closely related lineages, remain poorly understood. Here, we examine the evolutionary dynamics governing the distribution of natural product biosynthetic gene clusters (BGCs) among 118 strains representing all nine currently named species of the marine actinobacterial genus . While much attention has been given to the role of horizontal gene transfer (HGT) in structuring BGC distributions, we find that vertical descent facilitates interspecies BGC diversification over evolutionary timescales. Moreover, we identified a distinct phylogenetic signal among species at both the BGC and metabolite level, indicating that specialized metabolism represents a conserved phylogenetic trait. Using a combination of genomic analyses and liquid chromatography-high-resolution tandem mass spectrometry (LC-MS/MS) targeting nine experimentally characterized BGCs and their small molecule products, we identified gene gain/loss events, constrained interspecies recombination, and other evolutionary processes associated with vertical inheritance as major contributors to BGC diversification. These evolutionary dynamics had direct consequences for the compounds produced, as exemplified by species-level differences in salinosporamide production. Together, our results support the concept that specialized metabolites, and their cognate BGCs, can represent phylogenetically conserved functional traits with chemical diversification proceeding in species-specific patterns over evolutionary time frames. Microbial natural products are traditionally exploited for their pharmaceutical potential, yet our understanding of the evolutionary processes driving BGC evolution and compound diversification remain poorly developed. While HGT is recognized as an integral driver of BGC distributions, we find that the effects of vertical inheritance on BGC diversification had direct implications for species-level specialized metabolite production. As such, understanding the degree of genetic variation that corresponds to species delineations can enhance natural product discovery efforts. Resolving the evolutionary relationships between closely related strains and specialized metabolism can also facilitate our understanding of the ecological roles of small molecules in structuring the environmental distribution of microbes.

摘要

虽然人们认为特殊代谢产物可以介导生态相互作用,但驱动化学多样化的进化过程,特别是在密切相关的谱系中,仍然知之甚少。在这里,我们研究了控制天然产物生物合成基因簇 (BGC) 在代表海洋放线菌属的 118 个菌株中的分布的进化动态。虽然人们对水平基因转移 (HGT) 在构建 BGC 分布中的作用给予了很多关注,但我们发现,垂直进化有助于 BGC 在进化时间尺度上的物种间多样化。此外,我们在 BGC 和代谢物水平上都发现了物种之间的明显系统发育信号,表明特殊代谢产物代表了一个保守的系统发育特征。通过基因组分析和针对九个经过实验表征的 BGC 及其小分子产物的液相色谱-高分辨率串联质谱 (LC-MS/MS) 的组合使用,我们确定了基因增益/损耗事件、限制种间重组和其他与垂直遗传相关的进化过程是 BGC 多样化的主要原因。这些进化动态对产生的化合物有直接影响,例如在 Salinosporamide 产生方面存在种间差异。总之,我们的研究结果支持这样一种观点,即特殊代谢产物及其同源 BGC 可以代表系统发育上保守的功能特征,其化学多样化在进化时间范围内以物种特异性模式进行。微生物天然产物传统上因其药物潜力而被利用,但我们对驱动 BGC 进化和化合物多样化的进化过程的理解仍很不完善。虽然 HGT 被认为是 BGC 分布的一个组成部分,但我们发现垂直进化对 BGC 多样化的影响直接影响到物种水平特殊代谢产物的产生。因此,了解与物种划分相对应的遗传变异程度可以增强天然产物发现工作。解决密切相关菌株和特殊代谢产物之间的进化关系也有助于我们理解小分子在构建微生物环境分布中的生态作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf0b/8609351/75a3c6f016ee/mbio.02700-21-f001.jpg

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