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The quantitative genetic basis of clinal divergence in phenotypic plasticity

机译:表型可塑性抗塑性差异的定量遗传基础

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Phenotypic plasticity is thought to be an important mechanism for adapting to environmental heterogeneity. Nonetheless, the genetic basis of plasticity is still not well understood. In Drosophila melanogaster and D. simulans, body size and thermal stress resistance show clinal patterns along the east coast of Australia, and exhibit plastic responses to different developmental temperatures. The genetic basis of thermal plasticity, and whether the genetic effects underlying clinal variation in traits and their plasticity are similar, remains unknown. Here, we use line-cross analyses between a tropical and temperate population of Drosophila melanogaster and D. simulans developed at three constant temperatures (18°C, 25°C, and 29°C) to investigate the quantitative genetic basis of clinal divergence in mean thermal response (elevation) and plasticity (slope and curvature) for thermal stress and body size traits. Generally, the genetic effects underlying divergence in mean response and plasticity differed, suggesting that different genetic models may be required to understand the evolution of trait means and plasticity. Furthermore, our results suggest that nonadditive genetic effects, in particular epistasis, may commonly underlie plastic responses, indicating that current models that ignore epistasis may be insufficient to understand and predict evolutionary responses to environmental change.
机译:表型可塑性被认为是适应环境异质性的重要机制。尽管如此,可塑性的遗传基础仍然不太了解。在果蝇黑素转渣和D. Simulans,身体尺寸和热应力抗性展示澳大利亚东海岸的薄膜图案,并表现出不同发育温度的塑料反应。热塑性的遗传基础,以及底层抗液体变异性的遗传效应和它们的可塑性是相似的,仍然未知。在这里,我们在果蝇的热带和温带之间的线交叉分析在三个恒定温度(18°C,25°C和29°C)的三种恒定温度(18°C,25°C和29°C)中进行的热带和温度分析,以研究薄藻族分歧的定量遗传基础用于热应力和体尺寸特征的平均热响应(升高)和塑性(斜率和曲率)。通常,平均反应和可塑性差异性差异不同,表明可能需要不同的遗传模型来理解特征手段和可塑性的演变。此外,我们的研究结果表明,特别是超越的非增生遗传效应可能通常是塑料反应,表明忽视超越的目前模型可能不足以理解和预测对环境变化的进化反应。

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