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首页> 外文期刊>Heredity: An International Journal of Genetics >Conservatism and novelty in the genetic architecture of adaptation in Heliconius butterflies
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Conservatism and novelty in the genetic architecture of adaptation in Heliconius butterflies

机译:Heliconius蝴蝶适应性遗传结构的保守性和新颖性

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Understanding the genetic architecture of adaptive traits has been at the centre of modern evolutionary biology since Fisher; however, evaluating how the genetic architecture of ecologically important traits influences their diversification has been hampered by the scarcity of empirical data. Now, high-throughput genomics facilitates the detailed exploration of variation in the genome-to-phenotype map among closely related taxa. Here, we investigate the evolution of wing pattern diversity in Heliconius, a clade of neotropical butterflies that have undergone an adaptive radiation for wing-pattern mimicry and are influenced by distinct selection regimes. Using crosses between natural wing-pattern variants, we used genome-wide restriction site-associated DNA (RAD) genotyping, traditional linkage mapping and multivariate image analysis to study the evolution of the architecture of adaptive variation in two closely related species: Heliconius hecale and H. ismenius. We implemented a new morphometric procedure for the analysis of whole-wing pattern variation, which allows visualising spatial heatmaps of genotype-to-phenotype association for each quantitative trait locus separately. We used the H. melpomene reference genome to fine-map variation for each major wing-patterning region uncovered, evaluated the role of candidate genes and compared genetic architectures across the genus. Our results show that, although the loci responding to mimicry selection are highly conserved between species, their effect size and phenotypic action vary throughout the clade. Multilocus architecture is ancestral and maintained across species under directional selection, whereas the single-locus (supergene) inheritance controlling polymorphism in H. numata appears to have evolved only once. Nevertheless, the conservatism in the wing-patterning toolkit found throughout the genus does not appear to constrain phenotypic evolution towards local adaptive optima.
机译:自费舍尔以来,了解适应性状的遗传结构一直是现代进化生物学的中心。然而,缺乏经验数据阻碍了对具有生态重要性的性状的遗传结构如何影响其多样性的评估。现在,高通量基因组学促进了密切相关的类群之间基因组表型图谱变化的详细探索。在这里,我们研究了Heliconius机翼模式多样性的演变,该机是新热带蝴蝶进化枝,已经经历了适应性辐射的机翼模式模仿,并受到不同选择制度的影响。利用自然机翼模式变体之间的杂交,我们使用了全基因组限制性位点相关的DNA(RAD)基因分型,传统的连锁作图和多元图像分析,研究了两个紧密相关物种Heliconius hecale和Helicius hecale的适应性变异的结构演变。 H. ismenius。我们实施了一种新的形态计量学程序,用于分析全翼模式变化,从而可以可视化每个定量特征位点的基因型与表型关联的空间热图。我们使用H. melpomene参考基因组对未发现的每个主要机翼构图区域进行精细定位变化,评估候选基因的作用,并比较整个属的遗传结构。我们的结果表明,尽管对拟态选择作出反应的基因座在物种之间高度保守,但它们的效应大小和表型作用在整个进化枝中都不同。多基因座架构是祖先的,并在方向选择下跨物种维护,而控制单胞菌(N. numata)多态性的单基因座(超基因)遗传似乎只进化了一次。然而,在整个属中发现的机翼模式工具包中的保守性似乎并未将表型进化限制为局部适应性最优。

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