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Host Range and Genetic Plasticity Explain the Coexistence of Integrative and Extrachromosomal Mobile Genetic Elements

机译:宿主范围和遗传可塑性解释了整合和染色体外移动遗传元件的共存

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摘要

Self-transmissible mobile genetic elements drive horizontal gene transfer between prokaryotes. Some of these elements integrate in the chromosome, whereas others replicate autonomously as plasmids. Recent works showed the existence of few differences, and occasional interconversion, between the two types of elements. Here, we enquired on why evolutionary processes have maintained the two types of mobile genetic elements by comparing integrative and conjugative elements (ICE) with extrachromosomal ones (conjugative plasmids) of the highly abundant MPFT conjugative type. We observed that plasmids encode more replicases, partition systems, and antibiotic resistance genes, whereas ICEs encode more integrases and metabolism-associated genes. ICEs and plasmids have similar average sizes, but plasmids are much more variable, have more DNA repeats, and exchange genes more frequently. On the other hand, we found that ICEs are more frequently transferred between distant taxa. We propose a model where the different genetic plasticity and amplitude of host range between elements explain the co-occurrence of integrative and extrachromosomal elements in microbial populations. In particular, the conversion from ICE to plasmid allows ICE to be more plastic, while the conversion from plasmid to ICE allows the expansion of the element's host range.
机译:自我传播的移动遗传元件驱动原核生物之间的水平基因转移。其中一些元件整合在染色体中,而另一些则以质粒的形式自主复制。最近的工作表明,这两种类型的元素之间存在着很少的差异,并且偶尔会相互转换。在这里,我们通过比较整合和共轭元件 (ICE) 与高丰度 MPFT 共轭类型的染色体外元件(共轭质粒)来探究为什么进化过程会维持这两种类型的移动遗传元件。我们观察到质粒编码更多的复制、分配系统和抗生素抗性基因,而 ICE 编码更多的整合酶和代谢相关基因。ICE和质粒的平均大小相似,但质粒的变异性更大,DNA重复次数更多,基因交换频率更高。另一方面,我们发现ICEs更频繁地在遥远的分类群之间转移。我们提出了一个模型,其中不同元素之间的遗传可塑性和宿主范围的幅度解释了微生物种群中整合和染色体外元素的共同出现。特别是,从ICE到质粒的转化使ICE更具可塑性,而从质粒到ICE的转化允许扩大元件的宿主范围。

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