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Adaptive tuning of mutation rates allows fast response to lethal stress in Escherichia coli

机译:突变率的自适应调节可以快速响应大肠杆菌中的致死性压力

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摘要

While specific mutations allow organisms to adapt to stressful environments, most changes in an organism's DNA negatively impact fitness. The mutation rate is therefore strictly regulated and often considered a slowly-evolving parameter. In contrast, we demonstrate an unexpected flexibility in cellular mutation rates as a response to changes in selective pressure. We show that hypermutation independently evolves when different Escherichia coli cultures adapt to high ethanol stress. Furthermore, hypermutator states are transitory and repeatedly alternate with decreases in mutation rate. Specifically, population mutation rates rise when cells experience higher stress and decline again once cells are adapted. Interestingly, we identified cellular mortality as the major force driving the quick evolution of mutation rates. Together, these findings show how organisms balance robustness and evolvability and help explain the prevalence of hypermutation in various settings, ranging from emergence of antibiotic resistance in microbes to cancer relapses upon chemotherapy.>DOI:
机译:尽管特定的突变使生物体能够适应压力环境,但生物体DNA的大多数变化都会对健康产生不利影响。因此,突变率受到严格调节,通常被认为是一个缓慢发展的参数。相比之下,我们证明了细胞突变率具有意想不到的灵活性,可以应对选择性压力的变化。我们显示,当不同的大肠杆菌培养物适应高乙醇胁迫时,超突变独立发生。此外,超变子状态是短暂的,并且随着突变率的降低而反复交替。具体而言,当细胞承受更高的压力时,种群突变率会上升,一旦适应细胞,种群突变率就会再次下降。有趣的是,我们确定细胞死亡率是驱动突变率快速进化的主要力量。总之,这些发现表明生物体如何平衡健壮性和可进化性,并有助于解释各种情况下超突变的普遍性,从微生物的耐药性出现到化疗后癌症复发。> DOI:

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