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Reconstruction of phyletic trees by global alignment of multiple metabolic networks

机译:通过多个代谢网络的全局对齐重建物种树

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Background: In the last decade, a considerable amount of research has been devoted to investigating the phylogenetic properties of organisms from a systems-level perspective. Most studies have focused on the classification of organisms based on structural comparison and local alignment of metabolic pathways. In contrast, global alignment of multiple metabolic networks complements sequence-based phylogenetic analyses and provides more comprehensive information.Results: We explored the phylogenetic relationships between microorganisms through global alignment of multiple metabolic networks. The proposed approach integrates sequence homology data with topological information of metabolic networks. In general, compared to recent studies, the resulting trees reflect the living style of organisms as well as classical taxa. Moreover, for phylogenetically closely related organisms, the classification results are consistent with specific metabolic characteristics, such as the light-harvesting systems, fermentation types, and sources of electrons in photosynthesis.Conclusions: We demonstrate the usefulness of global alignment of multiple metabolic networks to infer phylogenetic relationships between species. In addition, our exhaustive analysis of microbial metabolic pathways reveals differences in metabolic features between phylogenetically closely related organisms. With the ongoing increase in the number of genomic sequences and metabolic annotations, the proposed approach will help identify phenotypic variations that may not be apparent based solely on sequence-based classification.
机译:背景:在过去的十年中,大量的研究致力于从系统层面研究生物体的系统发育特性。大多数研究都集中在基于结构比较和代谢途径局部对齐的生物体分类上。相比之下,多重代谢网络的全球比对补充了基于序列的系统发育分析,并提供了更全面的信息。结果:我们通过多重代谢网络的全球比对,探索了微生物之间的系统发育关系。该方法将序列同源性数据与代谢网络的拓扑信息相结合。总的来说,与最近的研究相比,由此产生的树木反映了生物体以及经典分类群的生活方式。此外,对于系统发育密切相关的生物,分类结果与特定的代谢特征一致,例如采光系统、发酵类型和光合作用中的电子源。结论:我们证明了多个代谢网络的全球比对在推断物种间系统发育关系方面的有用性。此外,我们对微生物代谢途径的详尽分析揭示了系统发育密切相关生物之间代谢特征的差异。随着基因组序列和代谢注释数量的不断增加,拟议的方法将有助于识别仅基于序列分类可能不明显的表型变异。

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