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基于代谢模型对细菌通过广泛基因丢失产生交叉喂养现象的分析。

Metabolic model-based analysis of the emergence of bacterial cross-feeding via extensive gene loss.

作者信息

McNally Colin P, Borenstein Elhanan

机构信息

Department of Genome Sciences, University of Washington, Seattle, WA, USA.

Department of Computer Science and Engineering, University of Washington, Seattle, WA, USA.

出版信息

BMC Syst Biol. 2018 Jun 15;12(1):69. doi: 10.1186/s12918-018-0588-4.

Abstract

BACKGROUND

Metabolic dependencies between microbial species have a significant impact on the assembly and activity of microbial communities. However, the evolutionary origins of such dependencies and the impact of metabolic and genomic architecture on their emergence are not clear.

RESULTS

To address these questions, we developed a novel framework, coupling a reductive evolution model with a multi-species genome-scale metabolic model to simulate the evolution of two-species microbial communities. Simulating thousands of independent evolutionary trajectories, we surprisingly found that under certain environmental and evolutionary settings metabolic dependencies emerged frequently even though our model does not include explicit selection for cooperation. Evolved dependencies involved cross-feeding of a diverse set of metabolites, reflecting constraints imposed by metabolic network architecture. We additionally found metabolic 'missed opportunities', wherein species failed to capitalize on metabolites made available by their partners. Examining the genes deleted in each evolutionary trajectory and the deletion timing further revealed both genome-wide properties and specific metabolic mechanisms associated with species interaction.

CONCLUSION

Our findings provide insight into the evolution of cooperative interaction among microbial species and a unique view into the way such relationships emerge.

摘要

背景

微生物物种之间的代谢依赖性对微生物群落的组装和活性有重大影响。然而,这种依赖性的进化起源以及代谢和基因组结构对其出现的影响尚不清楚。

结果

为了解决这些问题,我们开发了一个新颖的框架,将简约进化模型与多物种基因组规模代谢模型相结合,以模拟双物种微生物群落的进化。通过模拟数千条独立的进化轨迹,我们惊人地发现,在某些环境和进化条件下,即使我们的模型没有明确选择合作,代谢依赖性也经常出现。进化出的依赖性涉及多种代谢物的交叉喂养,反映了代谢网络结构所施加的限制。我们还发现了代谢“错失的机会”,即物种未能利用其伙伴提供的代谢物。检查每个进化轨迹中删除的基因以及删除时间,进一步揭示了与物种相互作用相关的全基因组特性和特定代谢机制。

结论

我们的研究结果为微生物物种间合作相互作用的进化提供了见解,并对这种关系的出现方式提供了独特的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/07d7/6003207/b9132bb26984/12918_2018_588_Fig1_HTML.jpg

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