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Gene expression analysis of E. coli strains provides insights into the role of gene regulation in diversification

机译:大肠杆菌菌株的基因表达分析为深入了解基因调控在多样化中的作用提供了见解

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摘要

Escherichia coli spans a genetic continuum from enteric strains to several phylogenetically distinct, atypical lineages that are rare in humans, but more common in extra-intestinal environments. To investigate the link between gene regulation, phylogeny and diversification in this species, we analyzed global gene expression profiles of four strains representing distinct evolutionary lineages, including a well-studied laboratory strain, a typical commensal (enteric) strain and two environmental strains. RNA-Seq was employed to compare the whole transcriptomes of strains grown under batch, chemostat and starvation conditions. Highly differentially expressed genes showed a significantly lower nucleotide sequence identity compared with other genes, indicating that gene regulation and coding sequence conservation are directly connected. Overall, distances between the strains based on gene expression profiles were largely dependent on the culture condition and did not reflect phylogenetic relatedness. Expression differences of commonly shared genes (all four strains) and E. coli core genes were consistently smaller between strains characterized by more similar primary habitats. For instance, environmental strains exhibited increased expression of stress defense genes under carbon-limited growth and entered a more pronounced survival-like phenotype during starvation compared with other strains, which stayed more alert for substrate scavenging and catabolism during no-growth conditions. Since those environmental strains show similar genetic distance to each other and to the other two strains, these findings cannot be simply attributed to genetic relatedness but suggest physiological adaptations. Our study provides new insights into ecologically relevant gene-expression and underscores the role of (differential) gene regulation for the diversification of the model bacterial species.
机译:大肠埃希氏菌涵盖了从肠道菌株到几个系统发育独特的非典型谱系的遗传连续体,这些谱系在人类中很少见,但在肠外环境中更常见。为了研究该物种的基因调控,系统发育和多样化之间的联系,我们分析了代表不同进化谱系的四种菌株的全局基因表达谱,包括经过充分研究的实验室菌株,典型的共生(肠型)菌株和两种环境菌株。 RNA-Seq用于比较在分批,化肥和饥饿条件下生长的菌株的整个转录组。与其他基因相比,高度差异表达的基因显示出明显更低的核苷酸序列同一性,表明基因调控和编码序列保守性直接相关。总体而言,基于基因表达谱的菌株之间的距离很大程度上取决于培养条件,并且不反映系统发育相关性。在以更相似的主要生境为特征的菌株之间,共同共有的基因(所有四个菌株)和大肠杆菌核心基因的表达差异始终较小。例如,与其他菌株相比,环境菌株与其他菌株相比,在碳限制的生长下表现出增加的胁迫防御基因表达,并且在饥饿期间进入更明显的存活样表型,在无生长条件下对底物清除和分解代谢保持更加警惕。由于这些环境菌株彼此之间以及与其他两种菌株之间的遗传距离相似,因此这些发现不能简单地归因于遗传相关性,而是暗示生理适应性。我们的研究提供了与生态相关的基因表达的新见解,并强调了(差异性)基因调控在模型细菌种类多样化中的作用。

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