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The Polymorphism Frequency Spectrum of Finitely Many Sites Under Selection

机译:选择下有限个站点的多态频谱

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摘要

The distribution of genetic polymorphisms in a population contains information about evolutionary processes. The Poisson random field (PRF) model uses the polymorphism frequency spectrum to infer the mutation rate and the strength of directional selection. The PRF model relies on an infinite-sites approximation that is reasonable for most eukaryotic populations, but that becomes problematic when θ is large (θ ≳ 0.05). Here, we show that at large mutation rates characteristic of microbes and viruses the infinite-sites approximation of the PRF model induces systematic biases that lead it to underestimate negative selection pressures and mutation rates and erroneously infer positive selection. We introduce two new methods that extend our ability to infer selection pressures and mutation rates at large θ: a finite-site modification of the PRF model and a new technique based on diffusion theory. Our methods can be used to infer not only a “weighted average” of selection pressures acting on a gene sequence, but also the distribution of selection pressures across sites. We evaluate the accuracy of our methods, as well that of the original PRF approach, by comparison with Wright–Fisher simulations.
机译:种群中遗传多态性的分布包含有关进化过程的信息。泊松随机场(PRF)模型使用多态性频谱来推断突变率和方向选择的强度。 PRF模型依赖于对大多数真核生物种群都合理的无限位点近似,但当θ大(θ≳0.05)时,这将成为问题。在这里,我们表明,在微生物和病毒具有较大突变率的情况下,PRF模型的无限位点逼近会引起系统性偏见,导致其低估负选择压力和突变率,并错误地推断出正选择。我们介绍了两种新方法,这些方法扩展了我们推断大θ时选择压力和突变率的能力:PRF模型的有限位置修改和基于扩散理论的新技术。我们的方法不仅可以用来推断作用于基因序列的选择压力的“加权平均值”,而且可以推断出选择压力在位点之间的分布。通过与Wright–Fisher仿真进行比较,我们评估了我们方法的准确性以及原始PRF方法的准确性。

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