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Measuring the Rates of Spontaneous Mutation From Deep and Large-Scale Polymorphism Data

机译:从深度和大规模多态性数据测量自发突变率

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The rates and patterns of spontaneous mutation are fundamental parameters of molecular evolution. Current methodology either tries to measure such rates and patterns directly in mutation-accumulation experiments or tries to infer them indirectly from levels of divergence or polymorphism. While experimental approaches are constrained by the low rate at which new mutations occur, indirect approaches suffer from their underlying assumption that mutations are effectively neutral. Here I present a maximum-likelihood approach to estimate mutation rates from large-scale polymorphism data. It is demonstrated that the method is not sensitive to demography and the distribution of selection coefficients among mutations when applied to mutations at sufficiently low population frequencies. With the many large-scale sequencing projects currently underway, for instance, the 1000 genomes project in humans, plenty of the required low-frequency polymorphism data will shortly become available. My method will allow for an accurate and unbiased inference of mutation rates and patterns from such data sets at high spatial resolution. I discuss how the assessment of several long-standing problems of evolutionary biology would benefit from the availability of accurate mutation rate estimates.
机译:自发突变的速率和模式是分子进化的基本参数。当前的方法要么试图直接在突变积累实验中测量这种比率和模式,要么试图从差异或多态水平间接推断它们。尽管实验方法受到新突变发生率低的限制,但间接方法却遭受了潜在的假设,即突变实际上是中性的。在这里,我提出了一种最大似然方法,可从大规模多态性数据估算突变率。结果表明,该方法对人口统计学和选择系数在突变之间的分布不敏感,当将其应用于足够低的总体频率的突变时。随着目前正在进行的许多大规模测序项目,例如人类的1000个基因组项目,不久将提供大量所需的低频多态性数据。我的方法将允许以高空间分辨率从此类数据集中准确无偏地推断出突变率和模式。我讨论了进化生物学几个长期存在的问题的评估如何从准确的突变率估计值中受益。

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