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The beak of the other finch: coevolution of genetic covariance structure and developmental modularity during adaptive evolution

机译:另一只雀科的喙:适应性进化过程中遗传协方差结构和发展模块性的共同进化

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摘要

The link between adaptation and evolutionary change remains the most central and least understood evolutionary problem. Rapid evolution and diversification of avian beaks is a textbook example of such a link, yet the mechanisms that enable beak's precise adaptation and extensive adaptability are poorly understood. Often observed rapid evolutionary change in beaks is particularly puzzling in light of the neo-Darwinian model that necessitates coordinated changes in developmentally distinct precursors and correspondence between functional and genetic modularity, which should preclude evolutionary diversification. I show that during first 19 generations after colonization of a novel environment, house finches (Carpodacus mexicanus) express an array of distinct, but adaptively equivalent beak morphologies—a result of compensatory developmental interactions between beak length and width in accommodating microevolutionary change in beak depth. Directional selection was largely confined to the elimination of extremes formed by these developmental interactions, while long-term stabilizing selection along a single axis—beak depth—was mirrored in the structure of beak's additive genetic covariance. These results emphasize three principal points. First, additive genetic covariance structure may represent a historical record of the most recurrent developmental and functional interactions. Second, adaptive equivalence of beak configurations shields genetic and developmental variation in individual components from depletion by natural selection. Third, compensatory developmental interactions among beak components can generate rapid reorganization of beak morphology under novel conditions and thus greatly facilitate both the evolution of precise adaptation and extensive diversification, thereby linking adaptation and adaptability in this classic example of Darwinian evolution.
机译:适应与进化变化之间的联系仍然是最核心,最鲜为人知的进化问题。鸟类喙的快速进化和多样化是这种联系的一个教科书实例,但是使喙精确适应和广泛适应的机制却鲜为人知。经常观察到的喙的快速进化变化尤其令人费解,因为新达尔文模型要求在发育上不同的前体中进行协调的变化,以及功能和遗传模块之间的对应关系,这应避免进化的多样化。我表明,在新环境定殖后的前19代中,雀科(Carpodacus mexicanus)表现出一系列不同但适应性相同的喙形态,这是喙长度和宽度之间补偿性发育相互作用的结果,以适应喙深度的微进化变化。 。定向选择主要限于消除这些发育相互作用形成的极端,而沿单个轴(喙深度)的长期稳定选择反映在喙的累加遗传协方差结构中。这些结果强调了三个要点。首先,加性遗传协方差结构可能代表了最经常发生的发育和功能相互作用的历史记录。第二,喙的适应性等价保护了单个成分的遗传和发育变异,使其不会因自然选择而枯竭。第三,在新的条件下,喙组件之间的补偿性发展相互作用可以引起喙形态的快速重组,从而极大地促进了精确适应和广泛多样化的发展,从而在达尔文进化论的经典例子中将适应性和适应性联系在一起。

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