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Inference on population history and model checking using DNA sequence and microsatellite data with the software DIYABC (v1.0)

机译:使用DNA序列和微卫星数据通过DIYABC(v1.0)软件推断种群历史并进行模型检查

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Background Approximate Bayesian computation (ABC) is a recent flexible class of Monte-Carlo algorithms increasingly used to make model-based inference on complex evolutionary scenarios that have acted on natural populations. The software DIYABC offers a user-friendly interface allowing non-expert users to consider population histories involving any combination of population divergences, admixtures and population size changes. We here describe and illustrate new developments of this software that mainly include (i) inference from DNA sequence data in addition or separately to microsatellite data, (ii) the possibility to analyze five categories of loci considering balanced or non balanced sex ratios: autosomal diploid, autosomal haploid, X-linked, Y-linked and mitochondrial, and (iii) the possibility to perform model checking computation to assess the "goodness-of-fit" of a model, a feature of ABC analysis that has been so far neglected. Results We used controlled simulated data sets generated under evolutionary scenarios involving various divergence and admixture events to evaluate the effect of mixing autosomal microsatellite, mtDNA and/or nuclear autosomal DNA sequence data on inferences. This evaluation included the comparison of competing scenarios and the quantification of their relative support, and the estimation of parameter posterior distributions under a given scenario. We also considered a set of scenarios often compared when making ABC inferences on the routes of introduction of invasive species to illustrate the interest of the new model checking option of DIYABC to assess model misfit. Conclusions Our new developments of the integrated software DIYABC should be particularly useful to make inference on complex evolutionary scenarios involving both recent and ancient historical events and using various types of molecular markers in diploid or haploid organisms. They offer a handy way for non-expert users to achieve model checking computation within an ABC framework, hence filling up a gap of ABC analysis. The software DIYABC V1.0 is freely available at http://www1.montpellier.inra.fr/CBGP/diyabc .
机译:背景技术近似贝叶斯计算(ABC)是蒙特卡洛算法的一种最新的灵活类,越来越多地用于对作用于自然种群的复杂进化场景进行基于模型的推断。 DIYABC软件提供了一个用户友好的界面,允许非专家用户考虑涉及人口差异,混合因素和人口规模变化的任何组合的人口历史。我们在此描述和说明此软件的新开发,主要包括(i)从DNA序列数据推断或从微卫星数据中分别推断出(ii)考虑平衡或非平衡性别比来分析五类基因座的可能性:常染色体二倍体,常染色体单倍体,X链,Y链和线粒体,以及(iii)进行模型检查计算以评估模型的“拟合优度”的可能性,这是迄今为止被ABC分析忽略的功能。结果我们使用了在涉及各种趋异和混合事件的进化场景下生成的受控模拟数据集,以评估混合常染色体微卫星,mtDNA和/或核常染色体DNA序列数据对推论的影响。该评估包括对竞争方案的比较及其相对支持的量化,以及给定方案下参数后验分布的估计。我们还考虑了一组情景,这些情景在对入侵物种的引入途径进行ABC推断时经常进行比较,以说明DIYABC的新模型检查选项对模型失配进行评估的兴趣。结论我们的集成软件DIYABC的新开发对于推断涉及近代和古代历史事件并在二倍体或单倍体生物体中使用各种类型的分子标记的复杂进化场景特别有用。它们为非专业用户提供了一种便捷的方法,可以在ABC框架内实现模型检查计算,从而填补了ABC分析的空白。可从http://www1.montpellier.inra.fr/CBGP/diyabc免费获得DIYABC V1.0软件。

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