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Environmental structure drives resistance to phages and antibiotics during phage therapy and to invading lysogens during colonisation

机译:在噬菌体疗法期间,环境结构在噬菌体疗法期间驱动对噬菌体和抗生素的抵抗力,并在殖民化期间侵入溶血性

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Microbial communities are shaped by bacteriophages through predation and lysogeny. A better understanding of the interactions between these processes across different types of environments is key to elucidate how phages mediate microbial competition and to design efficient phage therapies. We introduce an individual-based model (eVIVALDI) to investigate the role of environmental structure in the elimination of a population with a combined treatment of antibiotics and virulent phages, and in the invasion of a population of phage-sensitive bacteria by lysogens. We show that structured environments facilitate the emergence of double resistance, to antibiotics and phages, due to limited diffusion of phage particles and increased nutrient availability from dead cells. They also hinder phage amplification, thus decreasing the generation of phage genetic diversity and increasing the unpredictability of phage-bacteria arms-races. We used a machine learning approach to determine the variables most important for the invasion of sensitive populations by lysogens. They revealed that phage-associated traits and environmental structure are the key drivers of the process. Structured environments hinder invasions, and accounting for their existence improves the fit of the model to published in vivo experimental data. Our results underline environmental structure as key to understand in vivo phage-bacteria interactions.
机译:通过捕食和溶血性通过噬菌体塑造微生物群落。更好地理解不同类型环境的这些过程之间的相互作用是阐明幂介导微生物竞争和设计有效噬菌体疗法的关键。我们介绍了一个基于个别的模型(Evivaldi),探讨了环境结构在消除抗生素和毒力噬菌体的群体中消除人口中的作用,以及溶血剂患者侵袭血糖敏感的细菌群体。我们表明,由于噬菌体颗粒的有限扩散和来自死细胞的营养可用性增加,所结构化环境促进了双阻力,抗生素和噬菌体。它们还妨碍噬菌体扩增,从而降低了噬菌体遗传多样性的产生并提高了噬菌体 - 细菌的不可预测性。我们使用了机器学习方法来确定最重要的是溶滤膜侵袭敏感种群的变量。他们透露,噬菌体相关的性状和环境结构是该过程的关键驱动因素。结构化环境阻碍了入侵,并且其存在的会计改善了模型在体内实验数据中发布的拟合。我们的结果强调了环境结构作为理解体内噬菌体细菌相互作用的关键。

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