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Dynamics of genetic variation in transcription factors and its implications for the evolution of regulatory networks in Bacteria

机译:转录因子遗传变异的动态及其对细菌中监管网络演变的影响

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The evolution of regulatory networks in Bacteria has largely been explained at macroevolutionary scales through lateral gene transfer and gene duplication. Transcription factors (TF) have been found to be less conserved across species than their target genes (TG). This would be expected if TFs accumulate mutations faster than TGs. This hypothesis is supported by several lab evolution studies which found TFs, especially global regulators, to be frequently mutated. Despite these studies, the contribution of point mutations in TFs to the evolution of regulatory network is poorly understood. We tested if TFs show greater genetic variation than their TGs using whole-genome sequencing data from a large collection of Escherichia coli isolates. TFs were less diverse than their TGs across natural isolates, with TFs of large regulons being more conserved. In contrast, TFs showed higher mutation frequency in adaptive laboratory evolution experiments. However, over long-term laboratory evolution spanning 60 000 generations, mutation frequency in TFs gradually declined after a rapid initial burst. Extrapolating the dynamics of genetic variation from long-term laboratory evolution to natural populations, we propose that point mutations, conferring large-scale gene expression changes, may drive the early stages of adaptation but gene regulation is subjected to stronger purifying selection post adaptation.
机译:通过横向基因转移和基因重复,在显像性尺度下,细菌中调节网络的演变在很大程度上。已发现转录因子(TF)跨物种少保守,而不是其靶基因(TG)。如果TFS累积突变比TGS速度累积突变,那将是预期的。该假设得到了几种实验室演化研究,发现TFS,特别是全球监管机构经常变异。尽管有这些研究,但TFS在监管网络演变中的点突变的贡献很差。我们测试了TFS,如果使用来自大型大肠杆菌分离株的全基因组测序数据,TFS显示出比其TG的更大的遗传变异。 TFS比天然分离株的TGS不那么多样化,TFS的大型调节器更加保守。相反,TFS在自适应实验室演化实验中显示出更高的突变频率。然而,在快速初始爆发后,在长期实验室演化中,TFS中的突变频率逐渐下降。从长期实验室演化到天然群体的遗传变异动态,我们提出赋予大规模基因表达变化的点突变可以推动适应的早期阶段,但基因调节较强的净化选择后适应性。

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