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Evolutionary potential cross-stress behavior and the genetic basis of acquired stress resistance in Escherichia coli

机译:大肠杆菌的进化潜力交叉胁迫行为和获得性抗逆性的遗传基础

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摘要

Bacterial populations have a remarkable capacity to cope with extreme environmental fluctuations in their natural environments. In certain cases, adaptation to one stressful environment provides a fitness advantage when cells are exposed to a second stressor, a phenomenon that has been coined as cross-stress protection. A tantalizing question in bacterial physiology is how the cross-stress behavior emerges during evolutionary adaptation and what the genetic basis of acquired stress resistance is. To address these questions, we evolved Escherichia coli cells over 500 generations in five environments that include four abiotic stressors. Through growth profiling and competition assays, we identified several cases of positive and negative cross-stress behavior that span all strain–stress combinations. Resequencing the genomes of the evolved strains resulted in the identification of several mutations and gene amplifications, whose fitness effect was further assessed by mutation reversal and competition assays. Transcriptional profiling of all strains under a specific stress, NaCl-induced osmotic stress, and integration with resequencing data further elucidated the regulatory responses and genes that are involved in this phenomenon. Our results suggest that cross-stress dependencies are ubiquitous, highly interconnected, and can emerge within short timeframes. The high adaptive potential that we observed argues that bacterial populations occupy a genotypic space that enables a high phenotypic plasticity during adaptation in fluctuating environments.
机译:细菌种群具有应付自然环境中极端环境波动的出色能力。在某些情况下,当细胞暴露于第二种应激源时,对一种应激环境的适应提供了健身优势,这种现象被称为交叉应激保护。细菌生理学中一个诱人的问题是,在进化适应过程中交叉应力行为是如何出现的以及获得性抗逆性的遗传基础是什么。为了解决这些问题,我们在包括四个非生物应激源的五个环境中进化了500多个世代的大肠杆菌细胞。通过生长曲线分析和竞争分析,我们确定了跨越所有应变-应力组合的几种正负交叉应力行为。对进化菌株的基因组进行重新测序可鉴定出若干突变和基因扩增,其适应性效果可通过突变逆转和竞争分析进一步评估。在特定压力,NaCl诱导的渗透压下,所有菌株的转录谱分析以及与重测序数据的整合进一步阐明了该现象所涉及的调控反应和基因。我们的结果表明,交叉压力依赖性是普遍存在的,高度相互联系的,并且可以在较短的时间内出现。我们观察到的高适应潜力表明,细菌种群占据了一个基因型空间,该基因型空间在波动环境中的适应过程中具有很高的表型可塑性。

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