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Bayesian species delimitation combining multiple genes and traits in a unified framework

机译:在统一框架中结合多个基因和性状的贝叶斯物种定界

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Delimitation of species based exclusively on genetic data has been advocated despite a critical knowledge gap: how might such approaches fail because they rely on genetic data alone, and would their accuracy be improved by using multiple data types. We provide here the requisite framework for addressing these key questions. Because both phenotypic and molecular data can be analyzed in a common Bayesian framework with our program iBPP, we can compare the accuracy of delimited taxa based on genetic data alone versus when integrated with phenotypic data. We can also evaluate how the integration of phenotypic data might improve species delimitation when divergence occurs with gene flow and/or is selectively driven. These two realities of the speciation process are ignored by currently available genetic approaches. Our model accommodates phenotypic characters that exhibit different degrees of divergence, allowing for both neutral traits and traits under selection. We found a greater accuracy of estimated species boundaries with the integration of phenotypic and genetic data, with a strong beneficial influence of phenotypic data from traits under selection when the speciation process involves gene flow. Our results highlight the benefits of multiple data types, but also draws into question the rationale of species delimitation based exclusively on genetic data.
机译:尽管存在严重的知识鸿沟,但仍提倡仅基于遗传数据进行物种划分:这种方法可能会失败,因为它们仅依赖于遗传数据,并且通过使用多种数据类型可以提高其准确性。我们在这里提供了解决这些关键问题的必要框架。由于可以使用我们的程序iBPP在通用的贝叶斯框架中分析表型和分子数据,因此我们可以比较仅基于遗传数据的定界分类单元的准确性,以及与表型数据整合时的准确性。我们还可以评估当基因流出现分歧和/或被选择性驱动时,表型数据的整合如何改善物种定界。物种形成过程的这两个现实被当前可用的遗传方法所忽略。我们的模型容纳表现出不同程度差异的表型字符,允许中性性状和选择性状。我们发现,通过整合表型和遗传数据,估计物种边界的准确性更高,当物种形成过程涉及基因流时,来自选择性状的表型数据具有强大的有益影响。我们的结果突出了多种数据类型的好处,但也使人们仅根据遗传数据对物种划界的理由提出了质疑。

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