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种间相互作用降低了大肠杆菌对抗生素耐药性的选择。

Interspecies interaction reduces selection for antibiotic resistance in Escherichia coli.

机构信息

Department of Medical Biochemistry and Microbiology, Uppsala University, Uppsala, SE-75123, Sweden.

出版信息

Commun Biol. 2023 Mar 27;6(1):331. doi: 10.1038/s42003-023-04716-2.

Abstract

Evolution of microbial traits depends on the interaction of a species with its environment as well as with other coinhabiting species. However, our understanding of the evolution of specific microbial traits, such as antibiotic resistance in complex environments is limited. Here, we determine the role of interspecies interactions on the dynamics of nitrofurantoin (NIT) resistance selection among Escherichia coli. We created a synthetic two-species community comprised of two variants of E. coli (NIT susceptible and resistant) and Bacillus subtilis in minimal media with glucose as the sole carbon source. We show that the presence of B. subtilis significantly slows down the selection for the resistant E. coli mutant when NIT is present and that this slowdown is not due to competition for resources. Instead, the dampening of NIT resistance enrichment is largely mediated by extracellular compounds produced by B. subtilis with the peptide YydF playing a significant role. Our results not only demonstrate the impact of interspecies interactions on the evolution of microbial traits but also show the importance of using synthetic microbial systems in unravelling relevant interactions and mechanisms affecting the evolution of antibiotic resistance. This finding implies that interspecies interactions should be considered to better understand and predict resistance evolution in the clinic as well as in nature.

摘要

微生物特征的进化取决于物种与其环境以及与其共同栖息的其他物种的相互作用。然而,我们对特定微生物特征(如复杂环境中的抗生素耐药性)的进化的理解是有限的。在这里,我们确定了种间相互作用在大肠杆菌中硝基呋喃妥因(NIT)耐药性选择动态中的作用。我们在含有葡萄糖作为唯一碳源的最小培养基中创建了一个由两种大肠杆菌(NIT 敏感和耐药)和枯草芽孢杆菌组成的合成双物种群落。我们表明,当存在 NIT 时,枯草芽孢杆菌的存在会显著减缓对耐药大肠杆菌突变体的选择,而这种减缓不是由于对资源的竞争。相反,NIT 抗性富集的抑制在很大程度上是由枯草芽孢杆菌产生的细胞外化合物介导的,其中肽 YydF 起着重要作用。我们的研究结果不仅表明了种间相互作用对微生物特征进化的影响,而且还表明了使用合成微生物系统来揭示影响抗生素耐药性进化的相关相互作用和机制的重要性。这一发现意味着,应该考虑种间相互作用,以更好地理解和预测临床和自然界中耐药性的进化。

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