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Diminishing Returns of Population Size in the Rate of RNA Virus Adaptation

机译:RNA病毒适应率的种群规模回报递减

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摘要

Whenever an asexual viral population evolves by adapting to new environmental conditions, beneficial mutations, the ultimate cause of adaptation, are randomly produced and then fixed in the population. The larger the population size and the higher the mutation rate, the more beneficial mutations can be produced per unit time. With the usually high mutation rate of RNA viruses and in a large enough population, several beneficial mutations could arise at the same time but in different genetic backgrounds, and if the virus is asexual, they will never be brought together through recombination. Thus, the best of these genotypes must outcompete each other on their way to fixation. This competition among beneficial mutations has the effect of slowing the overall rate of adaptation. This phenomenon is known as clonal interference. Clonal interference predicts a speed limit for adaptation as the population size increases. In the present report, by varying the size of evolving vesicular stomatitis virus populations, we found evidence clearly demonstrating this speed limit and thus indicating that clonal interference might be an important factor modulating the rate of adaptation to an in vitro cell system. Several evolutionary and epidemiological implications of the clonal interference model applied to RNA viruses are discussed.
机译:每当无性病毒种群通过适应新的环境条件而进化时,有益的突变(适应的最终原因)就会随机产生,然后固定在种群中。种群数量越大,突变率越高,每单位时间产生的有益突变越多。由于RNA病毒通常具有很高的突变率,并且种群数量足够大,因此可以同时在不同的遗传背景下同时出现多个有益的突变,而且如果该病毒是无性的,它们将永远不会通过重组结合在一起。因此,这些基因型中最好的在固定方式上必须相互竞争。有益突变之间的竞争具有减缓总适应率的作用。这种现象称为克隆干扰。克隆干扰预测随着种群规模的增加,适应的速度极限。在本报告中,通过改变不断发展的水泡性口腔炎病毒种群的大小,我们发现证据清楚地表明了这一速度极限,因此表明克隆干扰可能是调节对体外细胞系统适应率的重要因素。讨论了应用于RNA病毒的克隆干扰模型的几种进化和流行病学意义。

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