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检测宏观进化差异中的镶嵌模式。

Detecting Mosaic Patterns in Macroevolutionary Disparity.

出版信息

Am Nat. 2020 Feb;195(2):129-144. doi: 10.1086/706903. Epub 2019 Dec 19.

Abstract

Evolutionary biologists have long sought to understand the full complexity in pattern and process that shapes organismal diversity. Although phylogenetic comparative methods are often used to reconstruct complex evolutionary dynamics, they are typically limited to a single phenotypic trait. Extensions that accommodate multiple traits lack the ability to partition multidimensional data sets into a set of mosaic suites of evolutionarily linked characters. I introduce a comparative framework that identifies heterogeneity in evolutionary patterns across large data sets of continuous traits. Using a model of continuous trait evolution based on the differential accumulation of disparity across lineages in a phylogeny, the approach algorithmically partitions traits into a set of character suites that best explains the data, where each suite displays a distinct pattern in phylogenetic morphological disparity. When applied to empirical data, the approach revealed a mosaic pattern predicted by developmental biology. The evolutionary distinctiveness of individual suites can be investigated in more detail either by fitting conventional comparative models or by directly studying the phylogenetic patterns in disparity recovered during the analysis. This framework can supplement existing comparative approaches by inferring the complex, integrated patterns that shape evolution across the body plan from disparate developmental, morphometric, and environmental sources of phenotypic data.

摘要

进化生物学家长期以来一直试图理解塑造生物多样性的形态和过程的全部复杂性。尽管系统发育比较方法通常用于重建复杂的进化动态,但它们通常仅限于单个表型特征。缺乏将多维数据集划分为一组进化相关字符的镶嵌套件的扩展。我介绍了一种比较框架,该框架可识别连续特征大数据集中的进化模式异质性。使用基于谱系中谱系差异的差异累积的连续特征进化模型,该方法算法将特征划分为一组最佳解释数据的字符套件,其中每个套件在系统发育形态差异中显示出独特的模式。当应用于经验数据时,该方法揭示了发育生物学预测的镶嵌模式。可以通过拟合常规比较模型或通过直接研究分析过程中恢复的形态差异中的系统发育模式,更详细地研究各个套件的进化独特性。该框架可以通过从不同的发育,形态计量和环境表型数据来源推断出贯穿身体计划的复杂,综合的进化模式,从而补充现有的比较方法。

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