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Loss of ecologically important genetic variation in late generation hybrids reveals links between adaptation and speciation

机译:晚生杂种的生态重要遗传变异的丧失揭示了适应与形态之间的联系

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摘要

Adaptation to contrasting environments occurs when advantageous alleles accumulate in each population, but it remains largely unknown whether these same advantageous alleles create genetic incompatibilities that can cause intrinsic reproductive isolation leading to speciation. Identifying alleles that underlie both adaptation and reproductive isolation is further complicated by factors such as dominance and genetic interactions among loci, which can affect both processes differently and obscure potential links between adaptation and speciation. Here, we use a combination of field and glasshouse experiments to explore the connection between adaptation and speciation while accounting for dominance and genetic interactions. We created a hybrid population with equal contributions from four contrasting ecotypes of (Asteraceae), which produced hybrid genomes both before (F1 hybrid generation) and after (F4 hybrid generation) recombination among the parental ecotypes. In the glasshouse, plants in the second generation (F2 hybrid generation) showed reduced fitness as a loss of fertility. However, fertility was recovered in subsequent generations, suggesting that genetic variation underlying the fitness reduction was lost in subsequent generations. To quantify the effects of losing genetic variation at the F2 generation on the fitness of later generation hybrids, we used a reciprocal transplant to test for fitness differences between parental ecotypes, and F1 and F4 hybrids in all four parental habitats. Compared to the parental ecotypes and F1 hybrids, variance in F4 hybrid fitness was lower, and lowest in habitats that showed stronger native‐ecotype advantage, suggesting that stronger natural selection for the native ecotype reduced fitness variation in the F4 hybrids. Fitness trade‐offs that were present in the parental ecotypes and F1 hybrids were absent in the F4 hybrid. Together, these results suggest that the genetic variation lost after the F2 generation was likely associated with both adaptation and intrinsic reproductive isolation among ecotypes from contrasting habitats.
机译:当有利的等位基因在每种群体中积累的有利等位基因时,发生适应对比环境,但它仍然很大程度上未知这些相同的有利等位基因是否会产生可能导致导致物种的内在生殖隔离的遗传不相容性。识别适应和生殖隔离的等位基因在基因座之间的主导和遗传相互作用等因素进一步复杂化,这可能会影响两种过程和改编和形态之间的潜在联系。在这里,我们使用领域和玻璃池实验的组合来探索适应与形态之间的连接,同时考虑主导和遗传相互作用。我们创建了一种杂交种群,具有来自(Asteraceae)的四种对比的生态型(Asteraceae)的综合贡献,其中在父母生态学中的(F1杂交生成)和之后(F4混合生成)重组之前产生了杂种基因组。在玻璃保护室中,第二代(F2杂交生成)的植物表现出减少适合度作为生育率的丧失。然而,随后的几代人中恢复了生育能力,这表明在随后的几代内损失了健身减少的遗传变异。为了量化遗传遗传变异在F2在后代发生杂种的适应性上的遗传变异,我们使用往复移植在所有四个父母栖息地中进行治疗生态型和F1和F4杂种之间的健身差异。与父母生态型和F1杂种相比,F4杂种健身的差异较低,栖息地最低,患有更强的天然生态型优势,表明本地生态型的自然选择更强,对F4杂种的健身变化降低了健康变化。在F4杂种中缺乏适用于家长生态型和F1杂种的健身权衡。这些结果表明,在F2代可能与从对比栖息地的生态型之间的适应和内在生殖隔离均相关的遗传变异丧失。

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