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Each of 3323 metabolic innovations in the evolution of E. coli arose through the horizontal transfer of a single DNA segment

机译:通过水平转移单个DNA片段在大肠杆菌进化中进行了3323种代谢创新

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摘要

Even closely related prokaryotes often show an astounding diversity in their ability to grow in different nutritional environments. It has been hypothesized that complex metabolic adaptations—those requiring the independent acquisition of multiple new genes—can evolve via selectively neutral intermediates. However, it is unclear whether this neutral exploration of phenotype space occurs in nature, or what fraction of metabolic adaptations is indeed complex. Here, we reconstruct metabolic models for the ancestors of a phylogeny of 53 Escherichia coli strains, linking genotypes to phenotypes on a genome-wide, macroevolutionary scale. Based on the ancestral and extant metabolic models, we identify 3,323 phenotypic innovations in the history of the E. coli clade that arose through changes in accessory genome content. Of these innovations, 1,998 allow growth in previously inaccessible environments, while 1,325 increase biomass yield. Strikingly, every observed innovation arose through the horizontal acquisition of a single DNA segment less than 30 kb long. Although we found no evidence for the contribution of selectively neutral processes, 10.6% of metabolic innovations were facilitated by horizontal gene transfers on earlier phylogenetic branches, consistent with a stepwise adaptation to successive environments. Ninety-eight percent of metabolic phenotypes accessible to the combined E. coli pangenome can be bestowed on any individual strain by transferring a single DNA segment from one of the extant strains. These results demonstrate an amazing ability of the E. coli lineage to adapt to novel environments through single horizontal gene transfers (followed by regulatory adaptations), an ability likely mirrored in other clades of generalist bacteria.
机译:即使是密切相关的原核生物,在不同营养环境中的生长能力也常常表现出惊人的多样性。据推测,复杂的代谢适应-需要独立获取多个新基因的-可以通过选择性中性的中间体进化。但是,尚不清楚这种对表型空间的中性探索是否自然发生,或者代谢适应的哪一部分确实是复杂的。在这里,我们为53个大肠杆菌菌株的系统进化树的祖先重建代谢模型,将基因型与表型联系起来,并在全基因组范围内进行宏观进化。基于祖先和现存的代谢模型,我们在大肠杆菌进化枝的历史中确定了3,323个表型创新,这些创新是通过辅助基因组含量的变化而产生的。在这些创新中,有1,998个允许在以前无法访问的环境中增长,而1,325个可以提高生物量产量。令人惊讶的是,每一项观察到的创新都是通过水平捕获长度小于30 kb的单个DNA片段而产生的。尽管我们没有发现选择性中性过程的贡献的证据,但是通过在较早的系统发生分支上进行水平基因转移可以促进10.6%的代谢创新,这与逐步适应连续环境是一致的。可以通过从一个现存菌株中转移单个DNA片段,赋予任何单独的菌株98%的组合大肠杆菌全基因组可及的代谢表型。这些结果证明了大肠杆菌谱系通过单水平基因转移(随后是调节适应)适应新环境的惊人能力,这一能力很可能反映在其他通才细菌种群中。

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