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Evolution through genetically controlled allometry space

机译:通过基因控制的异构空间进化

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摘要

Understanding evolutionary change requires phenotypic differences between organisms to be placed in a genetic context. However, there are few cases where it has been possible to define an appropriate genotypic space for a range of species. Here we address this problem by defining a genetically controlled space that captures variation in shape and size between closely related species of Antirrhinum. The axes of the space are based on an allometric model of leaves from an F_2 of an interspecific cross between Antirrhinum majus and Antirrhinum charidemi. Three principal components were found to capture most of the genetic variation in shape and size, allowing a three-dimensional allometric space to be defined. The contribution of individual genetic loci was determined from QTL analysis, allowing each locus to be represented as a vector in the allometric space. Leaf shapes and sizes of 18 different Antirrhinum taxa, encompassing a broad range of leaf morphologies, could be accurately represented as clouds within the space. Most taxa overlapped with, or were near to, at least one other species in the space, so that together they defined a largely interconnected domain of viable forms. It is likely that the pattern of evolution within this domain reflects a combination of directional selection and evolutionary tradeoffs within a high dimensional space.
机译:了解进化变化需要将生物之间的表型差异置于遗传背景下。但是,很少有可能为一系列物种定义适当的基因型空间。在这里,我们通过定义一个遗传控制的空间来解决这个问题,该空间捕获了紧密相关的金鱼草之间形状和大小的变化。该空间的轴基于抗大花青霉和抗大花香之间的种间杂交的F_2的叶片异形模型。发现三个主要成分捕获了形状和大小的大多数遗传变异,从而可以定义三维立体空间。通过QTL分析确定单个遗传基因座的贡献,从而将每个基因座都表示为异空间中的载体。 18种不同的Antirrhinum分类单元的叶子形状和大小涵盖了广泛的叶子形态,可以准确地表示为空间中的云。大多数分类单元与该空间中的至少一个其他物种重叠或接近,因此它们共同定义了一个相互连接的可行形式域。该域内的演化模式可能反映了高维空间内方向选择和进化权衡的组合。

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