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首页> 外文期刊>PLoS Genetics >Reciprocal Sign Epistasis between Frequently Experimentally Evolved Adaptive Mutations Causes a Rugged Fitness Landscape
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Reciprocal Sign Epistasis between Frequently Experimentally Evolved Adaptive Mutations Causes a Rugged Fitness Landscape

机译:经常实验演变的自适应突变之间的相互符号上位性导致坚固的健身景观

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The fitness landscape captures the relationship between genotype and evolutionary fitness and is a pervasive metaphor used to describe the possible evolutionary trajectories of adaptation. However, little is known about the actual shape of fitness landscapes, including whether valleys of low fitness create local fitness optima, acting as barriers to adaptive change. Here we provide evidence of a rugged molecular fitness landscape arising during an evolution experiment in an asexual population of Saccharomyces cerevisiae . We identify the mutations that arose during the evolution using whole-genome sequencing and use competitive fitness assays to describe the mutations individually responsible for adaptation. In addition, we find that a fitness valley between two adaptive mutations in the genes MTH1 and HXT6/HXT7 is caused by reciprocal sign epistasis, where the fitness cost of the double mutant prohibits the two mutations from being selected in the same genetic background. The constraint enforced by reciprocal sign epistasis causes the mutations to remain mutually exclusive during the experiment, even though adaptive mutations in these two genes occur several times in independent lineages during the experiment. Our results show that epistasis plays a key role during adaptation and that inter-genic interactions can act as barriers between adaptive solutions. These results also provide a new interpretation on the classic Dobzhansky-Muller model of reproductive isolation and display some surprising parallels with mutations in genes often associated with tumors. Author Summary How organisms adapt to their environment is of central importance in biology, but the molecular underpinnings of adaptation are difficult to discover. Fitness landscapes illustrate possible steps adaptive evolution can take to increase the evolutionary fitness of individuals within a population, and the shape of the fitness landscape determines the accessibility of the fittest point on the landscape. On a rugged landscape, negative interactions between mutations cause fitness valleys separating fitness peaks, which can constrain adaptation and act as an adaptive barrier. Here, we comprehensively characterized the fitness of mutations that arose in clones during a yeast experimental evolution and found that mutations in two loci, MTH1 and HXT6/HXT7 , arose multiple times independently and are individually adaptive. However, when forced to co-occur, the double mutant has a lower fitness than either single mutant and even the wild-type strain. This negative interaction forces these two mutations to remain mutually exclusive during the experimental evolution and results in a rugged fitness landscape, where genetic constraint prevents lineages carrying the MTH1 mutation from reaching the higher fitness peak of HXT6/HXT7 . These results show that genetic interactions are central in shaping a very active portion of this fitness landscape.
机译:适应度景观捕获了基因型和进化适应度之间的关系,是一种普遍的隐喻,用于描述适应的可能进化轨迹。但是,人们对健身景观的实际形状知之甚少,其中包括低健身谷是否会形成局部健身最佳状态,从而成为适应性变化的障碍。在这里,我们提供了在酿酒酵母无性种群的进化实验中产生的崎molecular的分子适应景观的证据。我们使用全基因组测序确定了进化过程中产生的突变,并使用竞争适应性分析来描述单独负责适应的突变。此外,我们发现基因MTH1和HXT6 / HXT7中两个适应性突变之间的适应谷是由相互的符号上位引起的,其中双重突变体的适应性成本阻止了在同一遗传背景中选择两个突变。尽管在实验过程中这两个基因的适应性突变在独立谱系中发生了几次,但由相互的符号上位所施加的约束导致突变在实验过程中保持相互排斥。我们的结果表明,上位性在适应过程中起着关键作用,而基因间的相互作用可以充当适应性解决方案之间的障碍。这些结果也为经典的Dobzhansky-Muller生殖分离模型提供了新的解释,并显示了与经常与肿瘤相关的基因突变的某些令人惊讶的相似之处。作者摘要生物如何适应环境在生物学中至关重要,但是很难发现适应的分子基础。适应度景观说明了适应性进化可以采取的可能步骤,以提高人群中个体的进化适应度,而适应度景观的形状决定了景观上最适身点的可及性。在崎landscape不平的景观上,突变之间的负向相互作用会导致将适应度峰分开的适应度谷,这会限制适应性并充当适应性障碍。在这里,我们全面地描述了在酵母实验进化过程中在克隆中产生的突变的适用性,并发现两个位点(MTH1和HXT6 / HXT7)中的突变独立出现多次,并且各自具有适应性。但是,当被迫同时发生时,双重突变体的适应性要比单一突变体甚至野生型菌株低。这种负性相互作用迫使这两个突变在实验进化过程中保持相互排斥,并导致崎fitness不平的适应环境,其中遗传约束阻止携带MTH1突变的谱系到达HXT6 / HXT7的较高适应性峰。这些结果表明,遗传相互作用是塑造此健身景观非常活跃部分的关键。

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