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泛基因组指导的 5 个物种代谢网络重建揭示了广泛的代谢多样性。

A Pan-Genome Guided Metabolic Network Reconstruction of Five Species Reveals Extensive Metabolic Diversity.

机构信息

Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, Brisbane, QLD 4072, Australia.

Corteva Agriscience, Indianapolis, IN 46268, USA.

出版信息

Genes (Basel). 2020 Sep 23;11(10):1115. doi: 10.3390/genes11101115.

Abstract

Propionibacteria have been studied extensively since the early 1930s due to their relevance to industry and importance as human pathogens. Still, their unique metabolism is far from fully understood. This is partly due to their signature high GC content, which has previously hampered the acquisition of quality sequence data, the accurate annotation of the available genomes, and the functional characterization of genes. The recent completion of the genome sequences for several species has led researchers to reassess the taxonomical classification of the genus , which has been divided into several new genres. Such data also enable a comparative genomic approach to annotation and provide a new opportunity to revisit our understanding of their metabolism. Using pan-genome analysis combined with the reconstruction of the first high-quality genome-scale metabolic model and a pan-metabolic model of current and former members of the genus we demonstrate that despite sharing unique metabolic traits, these organisms have an unexpected diversity in central carbon metabolism and a hidden layer of metabolic complexity. This combined approach gave us new insights into the evolution of metabolism and led us to propose a novel, putative ferredoxin-linked energy conservation strategy. The pan-genomic approach highlighted key differences in metabolism that reflect adaptation to their environment. Results were mathematically captured in genome-scale metabolic reconstructions that can be used to further explore metabolism using metabolic modeling techniques. Overall, the data provide a platform to explore metabolism and a tool for the rational design of strains.

摘要

自从 20 世纪 30 年代以来,由于其与工业的相关性以及作为人类病原体的重要性,人们对丙酸杆菌进行了广泛的研究。尽管如此,它们独特的代谢途径仍然远未被完全理解。这部分是由于它们标志性的高 GC 含量,这以前阻碍了高质量序列数据的获取、现有基因组的准确注释以及基因的功能表征。最近完成了几个物种的基因组序列,促使研究人员重新评估该属的分类学分类,该属已分为几个新属。这些数据还可以实现注释的比较基因组方法,并为重新审视我们对其代谢的理解提供了新的机会。我们使用泛基因组分析结合首次构建的高质量基因组规模代谢模型和当前和以前属成员的泛代谢模型进行研究,结果表明,尽管这些生物体具有独特的代谢特征,但它们在中心碳代谢方面具有出人意料的多样性,并且具有隐藏的代谢复杂性。这种综合方法使我们对代谢的进化有了新的认识,并促使我们提出了一种新的、可能的与铁氧还蛋白相关的能量保存策略。泛基因组方法突出了反映其对环境适应的丙酸杆菌代谢的关键差异。结果以基因组规模代谢重建的形式进行了数学捕获,可使用代谢建模技术进一步探索代谢。总体而言,这些数据为探索丙酸杆菌代谢提供了一个平台,并为菌株的合理设计提供了一个工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/98b3/7650540/ed7596797d87/genes-11-01115-g001.jpg

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