Department of Microbiology, Hospital Universitario Ramon y Cajal (IRYCIS) and Centro de Investigacion Biomedica en Red (CIBERESP), Madrid, Spain.
Department of Zoology, University of Oxford, Oxford, United Kingdom.
Microbiol Spectr. 2017 Sep;5(5). doi: 10.1128/microbiolspec.MTBP-0016-2017.
Plasmids mediate the horizontal transmission of genetic information between bacteria, facilitating their adaptation to multiple environmental conditions. An especially important example of the ability of plasmids to catalyze bacterial adaptation and evolution is their instrumental role in the global spread of antibiotic resistance, which constitutes a major threat to public health. Plasmids provide bacteria with new adaptive tools, but they also entail a metabolic burden that, in the absence of selection for plasmid-encoded traits, reduces the competitiveness of the plasmid-carrying clone. Although this fitness reduction can be alleviated over time through compensatory evolution, the initial cost associated with plasmid carriage is the main constraint on the vertical and horizontal replication of these genetic elements. The fitness effects of plasmids therefore have a crucial influence on their ability to associate with new bacterial hosts and consequently on the evolution of plasmid-mediated antibiotic resistance. However, the molecular mechanisms underlying plasmid fitness cost remain poorly understood. Here, we analyze the literature in the field and examine the potential fitness effects produced by plasmids throughout their life cycle in the host bacterium. We also explore the various mechanisms evolved by plasmids and bacteria to minimize the cost entailed by these mobile genetic elements. Finally, we discuss potential future research directions in the field.
质粒介导遗传信息在细菌之间的水平传播,促进它们适应多种环境条件。质粒在促进细菌适应和进化方面的一个特别重要的例子是,它们在抗生素耐药性的全球传播中发挥了重要作用,这对公共健康构成了重大威胁。质粒为细菌提供了新的适应工具,但也带来了代谢负担,如果没有选择质粒编码的特征,就会降低携带质粒的克隆的竞争力。尽管这种适应性降低可以随着时间的推移通过补偿进化得到缓解,但与携带质粒相关的初始成本是这些遗传元件垂直和水平复制的主要限制因素。因此,质粒的适应性影响对它们与新的细菌宿主结合的能力以及质粒介导的抗生素耐药性的进化具有至关重要的影响。然而,质粒适应性成本的分子机制仍知之甚少。在这里,我们分析了该领域的文献,并研究了质粒在宿主细菌中的整个生命周期中产生的潜在适应性影响。我们还探讨了质粒和细菌为最小化这些移动遗传元件所带来的成本而进化出的各种机制。最后,我们讨论了该领域未来的研究方向。