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Stochastic temperatures impede rna virus adaptation

机译:随机温度阻碍RNA病毒的适应

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Constant environments are often assumed to favor the evolution of specialization whereas exposure to changing environments may favor the evolution of generalists. Here we explored the phenotypic and molecular changes associated with evolving an RNA virus in constant versus fluctuating temperature environments. We used vesicular stomatitis virus (VSV) to determine whether selection at a constant temperature entails a performance trade-off at an unselected temperature, whether virus populations evolve to be generalists when selected in deterministically changing temperature environments, and whether selection under stochastically changing temperatures prevents evolved generalization, such as by constraining the ability for viruses to adaptively improve. We observed that all VSV lineages evolved at constant temperatures showed fitness gains in their selected temperature with little evidence for trade-offs in performance in the unselected environment. Evolution in deterministically and stochastically changing temperatures led to populations with the highest and lowest overall fitness gains, respectively. Sequence analysis revealed little evidence for convergent molecular evolution among lineages within the same treatment. Across all temperature treatments, the majority of genome substitutions occurred in the G (glycoprotein) gene, suggesting that this locus for the cell-binding protein plays a key role in dictating VSV performance under changing temperature.
机译:通常假定恒定的环境有利于专业化的发展,而暴露于变化的环境可能有利于通才的发展。在这里,我们探讨了在恒定温度和波动温度环境中与RNA病毒进化相关的表型和分子变化。我们使用水泡性口炎病毒(VSV)来确定在恒定温度下进行选择是否需要在未选择温度下进行性能折衷,在确定性变化的温度环境中选择病毒种群是否会发展为多面手,以及在随机变化的温度下进行选择是否会阻止进化的概括,例如通过限制病毒的适应性改进能力。我们观察到,在恒定温度下进化的所有VSV谱系在其选定的温度下均显示出适合度的提高,几乎没有证据表明在未选定的环境下性能会有所取舍。确定性和随机性温度的演变分别导致总体适应性增益最高和最低的人群。序列分析显示,几乎没有证据表明同一治疗中血统之间会发生分子进化。在所有温度处理下,大多数基因组替换都发生在G(糖蛋白)基因中,这表明细胞结合蛋白的这一基因座在决定温度变化时VSV的性能中起着关键作用。

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