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Rings Reconcile Genotypic and Phenotypic Evolution within the Proteobacteria

机译:环协调蛋白细菌内的基因型和表型进化。

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摘要

Although prokaryotes are usually classified using molecular phylogenies instead of phenotypes after the advent of gene sequencing, neither of these methods is satisfactory because the phenotypes cannot explain the molecular trees and the trees do not fit the phenotypes. This scientific crisis still exists and the profound disconnection between these two pillars of evolutionary biology—genotypes and phenotypes—grows larger. We use rings and a genomic form of goods thinking to resolve this conundrum (McInerney JO, Cummins C, Haggerty L. 2011. Goods thinking vs. tree thinking. Mobile Genet Elements. 1:304–308; Nelson-Sathi S, et al. 2015. Origins of major archaeal clades correspond to gene acquisitions from bacteria. Nature 517:77–80). The Proteobacteria is the most speciose prokaryotic phylum known. It is an ideal phylogenetic model for reconstructing Earth’s evolutionary history. It contains diverse free living, pathogenic, photosynthetic, sulfur metabolizing, and symbiotic species. Due to its large number of species (Whitman WB, Coleman DC, Wiebe WJ. 1998. Prokaryotes: the unseen majority. Proc Nat Acad Sci U S A. 95:6578–6583) it was initially expected to provide strong phylogenetic support for a proteobacterial tree of life. But despite its many species, sequence-based tree analyses are unable to resolve its topology. Here we develop new rooted ring analyses and study proteobacterial evolution. Using protein family data and new genome-based outgroup rooting procedures, we reconstruct the complex evolutionary history of the proteobacterial rings (combinations of tree-like divergences and endosymbiotic-like convergences). We identify and map the origins of major gene flows within the rooted proteobacterial rings (P < 3.6 × 10−6) and find that the evolution of the “Alpha-,” “Beta-,” and “Gammaproteobacteria” is represented by a unique set of rings. Using new techniques presented here we also root these rings using outgroups. We also map the independent flows of genes involved in DNA-, RNA-, ATP-, and membrane- related processes within the Proteobacteria and thereby demonstrate that these large gene flows are consistent with endosymbioses (P < 3.6 × 10−9). Our analyses illustrate what it means to find that a gene is present, or absent, within a gene flow, and thereby clarify the origin of the apparent conflicts between genotypes and phenotypes. Here we identify the gene flows that introduced photosynthesis into the Alpha-, Beta-, and Gammaproteobacteria from the common ancestor of the Actinobacteria and the Firmicutes. Our results also explain why rooted rings, unlike trees, are consistent with the observed genotypic and phenotypic relationships observed among the various proteobacterial classes. We find that ring phylogenies can explain the genotypes and the phenotypes of biological processes within large and complex groups like the Proteobacteria.
机译:尽管原核生物通常在基因测序后使用分子系统发育分类而不是表型进行分类,但是由于表型不能解释分子树并且树不适合表型,因此这些方法都不令人满意。这种科学危机仍然存在,并且进化生物学的两个支柱(基因型和表型)之间的深刻脱节越来越大。我们使用环和商品思维的基因组形式来解决这个难题(McInerney JO,Cummins C,Haggerty L.2011。商品思维与树思维。MobileGenet Elements。1:304–308; Nelson-Sathi S等。2015.主要古细菌进化枝的起源与细菌的基因获取相对应(《自然》 517:77–80)。变形杆菌是已知的最特殊的原核门。它是重建地球进化史的理想系统发育模型。它包含多种自由生活,致病性,光合作用,硫代谢和共生物种。由于其种类众多(Whitman WB,Coleman DC,Wiebe WJ。1998。原核生物:看不见的大多数。ProcNat Acad Sci US A. 95:6578–6583),最初被期望为蛋白菌提供强有力的系统发育支持。生命之树。但是,尽管其种类很多,基于序列的树分析仍无法解析其拓扑。在这里,我们开发新的生根环分析并研究蛋白细菌的进化。使用蛋白质家族数据和新的基于基因组的外群生根程序,我们重建了proteobacterial环的复杂进化历史(树状发散和endosymbiotic状收敛的组合)。我们鉴定并绘制了根生细菌链中主要基因流的起源(P <3.6×10 -6 ),发现“ Alpha-”,“ Beta-”和“丙种细菌”由一组独特的环代表。使用此处介绍的新技术,我们还使用外组将这些环生根。我们还绘制了在变形杆菌中涉及DNA,RNA,ATP和膜相关过程的基因的独立流,从而证明这些大基因流与共生酶是一致的(P <3.6×10 )。我们的分析说明了发现基因流中存在或不存在基因的含义,从而阐明了基因型和表型之间明显冲突的起源。在这里,我们确定了从放线菌和硬毛菌的共同祖先将光合作用引入到Alpha,Beta和Gammaproteobacteria中的基因流。我们的结果还解释了为什么与树木不同,生根环与观察到的各种蛋白细菌类别中的基因型和表型关系一致。我们发现,环状系统发育可以解释大而复杂的群体(如变形杆菌)中生物过程的基因型和表型。

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