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首页> 外文期刊>PLoS Biology >Transient Hypermutagenesis Accelerates the Evolution of Legume Endosymbionts following Horizontal Gene Transfer
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Transient Hypermutagenesis Accelerates the Evolution of Legume Endosymbionts following Horizontal Gene Transfer

机译:瞬时超诱变促进水平基因转移后豆类内生菌的进化。

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Horizontal gene transfer (HGT) is an important mode of adaptation and diversification of prokaryotes and eukaryotes and a major event underlying the emergence of bacterial pathogens and mutualists. Yet it remains unclear how complex phenotypic traits such as the ability to fix nitrogen with legumes have successfully spread over large phylogenetic distances. Here we show, using experimental evolution coupled with whole genome sequencing, that co-transfer of imuABC error-prone DNA polymerase genes with key symbiotic genes accelerates the evolution of a soil bacterium into a legume symbiont. Following introduction of the symbiotic plasmid of Cupriavidus taiwanensis, the Mimosa symbiont, into pathogenic Ralstonia solanacearum we challenged transconjugants to become Mimosa symbionts through serial plant-bacteria co-cultures. We demonstrate that a mutagenesis imuABC cassette encoded on the C. taiwanensis symbiotic plasmid triggered a transient hypermutability stage in R. solanacearum transconjugants that occurred before the cells entered the plant. The generated burst in genetic diversity accelerated symbiotic adaptation of the recipient genome under plant selection pressure, presumably by improving the exploration of the fitness landscape. Finally, we show that plasmid imuABC cassettes are over-represented in rhizobial lineages harboring symbiotic plasmids. Our findings shed light on a mechanism that may have facilitated the dissemination of symbiotic competency among α- and β-proteobacteria in natura and provide evidence for the positive role of environment-induced mutagenesis in the acquisition of a complex lifestyle trait. We speculate that co-transfer of complex phenotypic traits with mutagenesis determinants might frequently enhance the ecological success of HGT.
机译:水平基因转移(HGT)是原核生物和真核生物适应和多样化的重要模式,也是细菌病原体和互助生物出现的重要事件。然而,目前尚不清楚复杂的表型性状,例如用豆类植物固氮的能力,如何在较大的系统发育距离上成功分布。在这里,我们表明,通过实验进化与全基因组测序相结合,imuABC容易出错的DNA聚合酶基因与关键共生基因的共转移加速了土壤细菌向豆类共生体的进化。在将铜杯含羞草共生质粒(含羞草共生体)引入致病性青枯雷尔氏菌后,我们通过连续的植物-细菌共培养挑战了转导结合体成为含羞草共生体。我们证明了诱变imuABC盒编码在C. taiwanensis共生质粒上触发了在R. solanacearum转导结合体中发生的瞬时超突变阶段,该阶段发生在细胞进入植物之前。遗传多样性的爆发加速了受体选择基因在植物选择压力下的共生适应性,大概是通过改善对健身景观的探索。最后,我们显示质粒imuABC盒带在共生质粒的根瘤菌谱系中过度代表。我们的发现揭示了一种机制,该机制可能促进了自然界中α-和β-变形杆菌之间共生能力的传播,并为环境诱变在获得复杂的生活方式特质中的积极作用提供了证据。我们推测,复杂表型性状与诱变决定因素的共转移可能会经常增强HGT的生态成功。

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