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Signatures of Microevolutionary Processes in Phylogenetic Patterns

机译:系统发育模式中的微型过程的签名

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Phylogenetic trees are representations of evolutionary relationships among species and contain signatures of the processes responsible for the speciation events they display. Inferring processes from tree properties, however, is challenging. To address this problem, we analyzed a spatially-explicit model of speciation where genome size and mating range can be controlled. We simulated parapatric and sympatric (narrow and wide mating range, respectively) radiations and constructed their phylogenetic trees, computing structural properties such as tree balance and speed of diversification. We showed that parapatric and sympatric speciation are well separated by these structural tree properties. Balanced trees with constant rates of diversification only originate in sympatry and genome size affected both the balance and the speed of diversification of the simulated trees. Comparison with empirical data showed that most of the evolutionary radiations considered to have developed in parapatry or sympatry are in good agreement with model predictions. Even though additional forces other than spatial restriction of gene flow, genome size, and genetic incompatibilities, do play a role in the evolution of species formation, the microevolutionary processes modeled here capture signatures of the diversification pattern of evolutionary radiations, regarding the symmetry and speed of diversification of lineages.
机译:系统发育树是物种之间的进化关系的表示,并包含负责他们显示的物种事件的过程的签名。然而,从树质属性推断出挑战性。为了解决这个问题,我们分析了可以控制基因组大小和配合范围的样本的空间显式模型。我们模拟了菌和SympaTric(分别窄宽的交配范围)辐射并构建了它们的系统发育树,计算结构性质,如树平衡和多样化的速度。我们表明,帕拉奇和对称的物质通过这些结构树属性很好地分开。具有恒定多样化率的平衡树仅源于Sympatry和基因组大小影响了模拟树木的平衡和多样化的速度。与经验数据的比较表明,考虑在ParaPatry或Sympatry中开发的大多数进化辐射与模型预测有关。尽管除了基因流动的空间限制之外的额外力,基因组大小和遗传不相容性,但在物种形成的演变中发挥作用,这里的微观方式在这里建模的微观方法捕获了对称性和速度的进化辐射的多样化模式的签名谱系的多样化。

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