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Why to account for finite sites in population genetic studies and how to do this with Jaatha 2.0

机译:为什么要在群体遗传研究中说明有限的位点,以及如何在Jaatha 2.0中做到这一点

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AbstractWith the advent of next-generation sequencing technologies, large data sets of several thousand loci from multiple conspecific individuals are available. Such data sets should make it possible to obtain accurate estimates of population genetic parameters, even for complex models of population history. In the analyses of large data sets, it is difficult to consider finite-sites mutation models (FSMs). Here, we use extensive simulations to demonstrate that the inclusion of FSMs is necessary to avoid severe biases in the estimation of the population mutation rate θ, population divergence times, and migration rates. We present a new version of Jaatha, an efficient composite-likelihood method for estimating demographic parameters from population genetic data and evaluate the usefulness of Jaatha in two biological examples. For the first application, we infer the speciation process of two wild tomato species, Solanum chilense and Solanum peruvianum. In our second application example, we demonstrate that Jaatha is readily applicable to NGS data by analyzing genome-wide data from two southern European populations of Arabidopsis thaliana. Jaatha is now freely available as an R package from the Comprehensive R Archive Network (CRAN).
机译:摘要随着下一代测序技术的到来,来自多个同种个体的数千个基因座的大数据集变得可用。这样的数据集应该使获得人口遗传参数的准确估计成为可能,即使对于复杂的人口历史模型也是如此。在分析大型数据集时,很难考虑有限位点突变模型(FSM)。在这里,我们使用广泛的模拟来证明,必须包含FSM,以避免在估计人口突变率θ,人口分歧时间和迁移率时出现严重偏差。我们提出了Jaatha的新版本,这是一种有效的复合似然方法,可用于根据种群遗传数据估算人口统计参数,并在两个生物学示例中评估Jaatha的有用性。对于第一个应用程序,我们推断了两个野生番茄物种(茄属茄和茄属秘鲁茄)的形成过程。在我们的第二个应用示例中,我们通过分析来自两个南欧拟南芥种群的全基因组数据,证明Jaatha易于应用于NGS数据。 Jaatha现在可以从综合R存档网络(CRAN)作为R包免费获得。

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