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Genotype by random environmental interactions gives an advantage to non-favored minor alleles

机译:通过随机环境相互作用进行的基因型为非有利的次要等位基因带来了优势

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摘要

Fixation probability, the probability that the frequency of a newly arising mutation in a population will eventually reach unity, is a fundamental quantity in evolutionary genetics. Here we use a number of models (several versions of the Moran model and the haploid Wright-Fisher model) to examine fixation probabilities for a constant size population where the fitness is a random function of both allelic state and spatial position, despite neither allele being favored on average. The concept of fitness varying with respect to both genotype and environment is important in models of cancer initiation and progression, bacterial dynamics, and drug resistance. Under our model spatial heterogeneity redefines the notion of neutrality for a newly arising mutation, as such mutations fix at a higher rate than that predicted under neutrality. The increased fixation probability appears to be due to rare alleles having an advantage. The magnitude of this effect can be large, and is an increasing function of the spatial variance and skew in fitness. The effect is largest when the fitness values of the mutants and wild types are anti-correlated across environments. We discuss results for both a spatial ring geometry of cells (such as that of a colonic crypt), a 2D lattice and a mass-action (complete graph) arrangement.
机译:固定概率是种群中新出现的突变的频率最终达到统一的概率,是进化遗传学中的基本量。在这里,我们使用许多模型(Moran模型和单倍体Wright-Fisher模型的几个版本)来检查恒定大小种群的固定概率,其中,适体性是等位基因状态和空间位置的随机函数,尽管等位基因都不平均偏爱。在基因型和环境方面变化的适应性概念在癌症的发生和发展,细菌动力学和耐药性模型中很重要。在我们的模型下,空间异质性重新定义了新出现的突变的中性概念,因为这种突变的固定率高于在中性条件下预测的突变率。固定概率增加似乎是由于稀有等位基因具有优势。这种影响的程度可能很大,并且是适应性方面的空间差异和偏斜的增加函数。当突变体和野生型的适应度值在整个环境之间是反相关的时,效果最大。我们讨论了细胞的空间环几何(例如结肠隐窝),二维晶格和质量作用(完整图)排列的结果。

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