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解析环境和系统发育约束对原核生物种内多样性的影响。

Disentangling the impact of environmental and phylogenetic constraints on prokaryotic within-species diversity.

机构信息

European Molecular Biology Laboratory, Structural and Computational Biology Unit, 69117, Heidelberg, Germany.

Laboratory of Applied Evolutionary Biology, Department of Medical Microbiology, Academic Medical Centre, University of Amsterdam, Amsterdam, 1105 AZ, The Netherlands.

出版信息

ISME J. 2020 May;14(5):1247-1259. doi: 10.1038/s41396-020-0600-z. Epub 2020 Feb 11.

Abstract

Microbial organisms inhabit virtually all environments and encompass a vast biological diversity. The pangenome concept aims to facilitate an understanding of diversity within defined phylogenetic groups. Hence, pangenomes are increasingly used to characterize the strain diversity of prokaryotic species. To understand the interdependence of pangenome features (such as the number of core and accessory genes) and to study the impact of environmental and phylogenetic constraints on the evolution of conspecific strains, we computed pangenomes for 155 phylogenetically diverse species (from ten phyla) using 7,000 high-quality genomes to each of which the respective habitats were assigned. Species habitat ubiquity was associated with several pangenome features. In particular, core-genome size was more important for ubiquity than accessory genome size. In general, environmental preferences had a stronger impact on pangenome evolution than phylogenetic inertia. Environmental preferences explained up to 49% of the variance for pangenome features, compared with 18% by phylogenetic inertia. This observation was robust when the dataset was extended to 10,100 species (59 phyla). The importance of environmental preferences was further accentuated by convergent evolution of pangenome features in a given habitat type across different phylogenetic clades. For example, the soil environment promotes expansion of pangenome size, while host-associated habitats lead to its reduction. Taken together, we explored the global principles of pangenome evolution, quantified the influence of habitat, and phylogenetic inertia on the evolution of pangenomes and identified criteria governing species ubiquity and habitat specificity.

摘要

微生物几乎栖息于所有环境中,并具有广泛的生物多样性。泛基因组概念旨在帮助理解特定系统发育群体内的多样性。因此,泛基因组越来越多地用于描述原核物种的菌株多样性。为了理解泛基因组特征(如核心和辅助基因的数量)之间的相互依赖性,并研究环境和系统发育约束对同物种菌株进化的影响,我们使用 7000 个高质量基因组计算了 155 个系统发育多样化的物种(来自十个门)的泛基因组,每个基因组都分配了相应的栖息地。物种栖息地普遍性与多个泛基因组特征相关。特别是,核心基因组大小比辅助基因组大小对普遍性更重要。一般来说,环境偏好对泛基因组进化的影响大于系统发育惯性。环境偏好解释了泛基因组特征变化的 49%,而系统发育惯性仅解释了 18%。当数据集扩展到 10100 个物种(59 个门)时,这种观察结果是稳健的。在给定的栖息地类型中,不同系统发育枝之间的泛基因组特征的趋同进化进一步突出了环境偏好的重要性。例如,土壤环境促进了泛基因组大小的扩张,而宿主相关的栖息地则导致其减少。总之,我们探索了泛基因组进化的全球原则,量化了栖息地和系统发育惯性对泛基因组进化的影响,并确定了控制物种普遍性和栖息地特异性的标准。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/488c/7174425/a9d9f3068800/41396_2020_600_Fig1_HTML.jpg

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