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Highly parallel lab evolution reveals that epistasis can curb the evolution of antibiotic resistance

机译:高度平行的实验室演变表明,Epissis可以抑制抗生素抗性的演变

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Genetic perturbations that affect bacterial resistance to antibiotics have been characterized genome-wide, but how do such perturbations interact with subsequent evolutionary adaptation to the drug? Here, we show that strong epistasis between resistance mutations and systematically identified genes can be exploited to control spontaneous resistance evolution. We evolved hundreds of Escherichia coli K-12 mutant populations in parallel, using a robotic platform that tightly controls population size and selection pressure. We find a global diminishing-returns epistasis pattern: strains that are initially more sensitive generally undergo larger resistance gains. However, some gene deletion strains deviate from this general trend and curtail the evolvability of resistance, including deletions of genes for membrane transport, LPS biosynthesis, and chaperones. Deletions of efflux pump genes force evolution on inferior mutational paths, not explored in the wild type, and some of these essentially block resistance evolution. This effect is due to strong negative epistasis with resistance mutations. The identified genes and cellular functions provide potential targets for development of adjuvants that may block spontaneous resistance evolution when combined with antibiotics.
机译:影响细菌抗性对抗生素的遗传扰动已经表征着基因组,但这种扰动是如何与随后对药物的进化适应相互作用?在这里,我们表明,可以利用抗性突变和系统鉴定的基因之间的强外观来控制自发性抗性进化。我们使用紧紧控制人口尺寸和选择压力的机器人平台并行地发展了数百个大肠杆菌K-12突变群体。我们发现全球减少返回Epistasis模式:最初敏感的菌株通常经历更大的抗性收益。然而,一些基因缺失菌株偏离这一总趋势并缩短抗性的不溶解性,包括膜转运,LPS生物合成和伴侣的基因缺失。缺失的流出泵基因在较差的突变路径上的力量进化,在野生型中没有探索,其中一些基本上堵塞抗性进化。这种效果是由于具有抗性突变的强阴性超声。所鉴定的基因和细胞功能提供了在与抗生素结合时阻断自发抗性进化的佐剂的潜在靶标。

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