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Ecological Adaptation in Bacteria: Speciation Driven by Codon Selection

机译:细菌的生态适应:密码子选择驱动的物种形成

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摘要

In bacteria, physiological change may be effected by a single gene acquisition, producing ecological differentiation without genetic isolation. Natural selection acting on such differences can reduce the frequency of genotypes that arise from recombination at these loci. However, gene acquisition can only account for recombination interference in the fraction of the genome that is tightly linked to the integration site. To identify additional loci that contribute to adaptive differences, we examined orthologous genes in species of Enterobacteriaceae to identify significant differences in the degree of codon selection. Significance was assessed using the Adaptive Codon Enrichment metric, which accounts for the variation in codon usage bias that is expected to arise from mutation and drift; large differences in codon usage bias were identified in more genes than would be expected to arise from stochastic processes alone. Genes in the same operon showed parallel differences in codon usage bias, suggesting that changes in the overall levels of gene expression led to changes in the degree of adaptive codon usage. Most significant differences between orthologous operons were found among those involved with specific environmental adaptations, whereas "housekeeping" genes rarely showed significant changes. When considered together, the loci experiencing significant changes in codon selection outnumber potentially adaptive gene acquisition events. The identity of genes under strong codon selection seems to be influenced by the habitat from which the bacteria were isolated. We propose a two-stage model for how adaptation to different selective regimes can drive bacterial speciation. Initially, gene acquisitions catalyze rapid ecological differentiation, which modifies the utilization of genes, thereby changing the strength of codon selection on them. Alleles develop fitness variation by substitution, producing recombination interference at these loci in addition to those flanking acquired genes, allowing sequences to diverge across the entire genome and establishing genetic isolation (i.e., protection from frequent homologous recombination).
机译:在细菌中,生理变化可能受单个基因采集的影响,从而在没有遗传隔离的情况下产生了生态分化。作用于这些差异的自然选择可以减少在这些基因座处重组产生的基因型的频率。但是,基因获取只能解决与整合位点紧密相连的基因组部分中的重组干扰。为了确定有助于适应性差异的其他基因座,我们检查了肠杆菌科物种中的直系同源基因,以识别密码子选择程度的显着差异。使用自适应密码子富集度量标准评估了重要性,该度量标准说明了预期由突变和漂移引起的密码子使用偏倚的变化;在更多的基因中发现了密码子使用偏倚的巨大差异,这比仅由随机过程产生的差异要大。同一操纵子中的基因在密码子使用偏倚方面显示出平行差异,这表明基因表达总体水平的变化导致适应性密码子使用程度的变化。在与特定环境适应有关的那些中,直系同源操纵子之间发现最显着差异,而“管家”基因很少显示出显着变化。当一起考虑时,经历密码子选择的显着变化的基因座超过潜在的适应性基因获取事件。在强密码子选择下的基因的身份似乎受细菌分离的生境的影响。我们提出了一个两阶段模型,以说明如何适应不同的选择机制可以驱动细菌形成。最初,基因获取促进了快速的生态分化,从而改变了基因的利用,从而改变了基因选择密码子的强度。等位基因通过取代而产生适应性变异,除了侧翼获得的基因外,还在这些基因座处产生重组干扰,从而允许序列在整个基因组中发散并建立遗传隔离(即防止频繁的同源重组)。

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