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秀丽隐杆线虫自然突变株的适应性恢复和补偿性进化。

Fitness recovery and compensatory evolution in natural mutant lines of C. elegans.

机构信息

Department of Biology, Portland State University, Portland, Oregon 97201, USA.

出版信息

Evolution. 2011 Aug;65(8):2335-44. doi: 10.1111/j.1558-5646.2011.01276.x. Epub 2011 Apr 11.

DOI:10.1111/j.1558-5646.2011.01276.x
PMID:21790579
Abstract

Deleterious mutation accumulation plays a central role in evolutionary genetics, conservation biology, human health, and evolutionary medicine (e.g., methods of viral attenuation for live vaccines). It is therefore important to understand whether and how quickly populations with accumulated deleterious mutational loads can recover fitness through adaptive evolution. We used laboratory experimental evolution with four long-term mutation-accumulation (MA) lines of Caenorhabditis elegans nematodes to study the dynamics of such fitness evolution. We previously showed that when homozygous mutant populations are evolved in large population sizes, they can rapidly achieve wild-type fitness through the accumulation of new beneficial or compensatory epistatic mutations. Here, we expand this approach to demonstrate that when replicate lineages are initiated from the same mutant genotype, phenotypic evolution is only sometimes repeatable. MA genotypes that recovered ancestral fitness in the previous experiment did not always do so here. Further, the pattern of adaptive evolution in independently evolved replicates was contingent upon the MA genotype and varied among fitness-related traits. Our findings suggest that new beneficial mutations can drive rapid fitness evolution, but that the adaptive process is rendered somewhat unpredictable by its susceptibility to chance events and sensitivity to the evolutionary history of the starting population.

摘要

有害突变积累在进化遗传学、保护生物学、人类健康和进化医学(例如,活疫苗的病毒减毒方法)中起着核心作用。因此,了解具有积累有害突变负荷的种群是否以及如何通过适应性进化快速恢复适应性是很重要的。我们使用了四个 Caenorhabditis elegans 线虫的长期突变积累(MA)系进行实验室实验进化,以研究这种适应性进化的动态。我们之前曾表明,当纯合突变群体在较大的种群规模中进化时,它们可以通过积累新的有利或补偿性上位突变迅速达到野生型适应性。在这里,我们扩展了这种方法,以证明当从相同的突变基因型开始重复谱系时,表型进化并不总是可重复的。在前一个实验中恢复祖先适应性的 MA 基因型在这里并不总是如此。此外,独立进化的重复适应性进化模式取决于 MA 基因型,并因与适应性相关的特征而异。我们的研究结果表明,新的有利突变可以驱动快速的适应性进化,但适应性过程易受偶然事件的影响,并且对起始种群的进化历史敏感,从而使其具有一定的不可预测性。

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