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Analysis of epistatic interactions and fitness landscapes using a new geometric approach

机译:使用新的几何方法分析上位相互作用和健身景观

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Background Understanding interactions between mutations and how they affect fitness is a central problem in evolutionary biology that bears on such fundamental issues as the structure of fitness landscapes and the evolution of sex. To date, analyses of fitness landscapes have focused either on the overall directional curvature of the fitness landscape or on the distribution of pairwise interactions. In this paper, we propose and employ a new mathematical approach that allows a more complete description of multi-way interactions and provides new insights into the structure of fitness landscapes. Results We apply the mathematical theory of gene interactions developed by Beerenwinkel et al. to a fitness landscape for Escherichia coli obtained by Elena and Lenski. The genotypes were constructed by introducing nine mutations into a wild-type strain and constructing a restricted set of 27 double mutants. Despite the absence of mutants higher than second order, our analysis of this genotypic space points to previously unappreciated gene interactions, in addition to the standard pairwise epistasis. Our analysis confirms Elena and Lenski's inference that the fitness landscape is complex, so that an overall measure of curvature obscures a diversity of interaction types. We also demonstrate that some mutations contribute disproportionately to this complexity. In particular, some mutations are systematically better than others at mixing with other mutations. We also find a strong correlation between epistasis and the average fitness loss caused by deleterious mutations. In particular, the epistatic deviations from multiplicative expectations tend toward more positive values in the context of more deleterious mutations, emphasizing that pairwise epistasis is a local property of the fitness landscape. Finally, we determine the geometry of the fitness landscape, which reflects many of these biologically interesting features. Conclusion A full description of complex fitness landscapes requires more information than the average curvature or the distribution of independent pairwise interactions. We have proposed a mathematical approach that, in principle, allows a complete description and, in practice, can suggest new insights into the structure of real fitness landscapes. Our analysis emphasizes the value of non-independent genotypes for these inferences.
机译:背景技术了解突变之间的相互作用及其如何影响适应性是进化生物学中的一个中心问题,它涉及诸如适应性景观的结构和性别进化之类的基本问题。迄今为止,对健身景观的分析要么集中在健身景观的整体方向曲率上,要么集中在成对相互作用的分布上。在本文中,我们提出并采用了一种新的数学方法,该方法可以更完整地描述多向交互作用,并提供有关健身景观结构的新见解。结果我们应用了Beerenwinkel等人开发的基因相互作用的数学理论。由Elena和Lenski获得的大肠杆菌健身景观。通过将9个突变引入野生型菌株并构建27个双重突变的限制性集来构建基因型。尽管不存在高于二阶的突变体,但我们对这种基因型空间的分析指出,除了标准的成对上位性之外,以前没有认识到的基因相互作用。我们的分析证实了埃琳娜(Elena)和伦斯基(Lenski)的推论,即健身景观非常复杂,因此总体的曲率量度掩盖了相互作用类型的多样性。我们还证明了某些突变对这种复杂性的贡献不成比例。特别地,在与其他突变混合时,某些突变在系统上优于其他突变。我们还发现上位性与有害突变导致的平均适应性丧失之间存在很强的相关性。特别是,在更多有害突变的情况下,与乘法期望值的上位偏差趋向于更正值,强调成对上位是健身环境的局部特性。最后,我们确定健身景观的几何形状,它反映了许多生物学上有趣的特征。结论完整的复杂健身景观描述需要比平均曲率或独立的成对相互作用的分布更多的信息。我们提出了一种数学方法,该方法原则上可以进行完整的描述,并且在实践中可以提出对真实健身景观结构的新见解。我们的分析强调了非独立基因型对于这些推论的价值。

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