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Parallel trait adaptation across opposing thermal environments in experimental Drosophila melanogaster populations

机译:在果蝇实验种群的相对热环境中的平行性状适应。

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摘要

Thermal stress is a pervasive selective agent in natural populations that impacts organismal growth, survival, and reproduction. Drosophila melanogaster exhibits a variety of putatively adaptive phenotypic responses to thermal stress in natural and experimental settings; however, accompanying assessments of fitness are typically lacking. Here, we quantify changes in fitness and known thermal tolerance traits in replicated experimental D. melanogaster populations following more than 40 generations of evolution to either cyclic cold or hot temperatures. By evaluating fitness for both evolved populations alongside a reconstituted starting population, we show that the evolved populations were the best adapted within their respective thermal environments. More strikingly, the evolved populations exhibited increased fitness in both environments and improved resistance to both acute heat and cold stress. This unexpected parallel response appeared to be an adaptation to the rapid temperature changes that drove the cycling thermal regimes, as parallel fitness changes were not observed when tested in a constant thermal environment. Our results add to a small, but growing group of studies that demonstrate the importance of fluctuating temperature changes for thermal adaptation and highlight the need for additional work in this area.
机译:热应激是自然种群中普遍的选择剂,会影响生物体的生长,存活和繁殖。果蝇(Drosophila melanogaster)在自然和实验环境下均表现出多种对热应激的适应性表型反应。然而,通常缺乏伴随的健康评估。在这里,我们量化了经过40多个世代演变成循环的冷热温度后,重复的实验D. melanogaster种群的适应性和已知的热耐受性状的变化。通过评估两个进化种群与重组初始种群的适应性,我们表明,进化种群在各自的热环境中适应性最佳。更惊人的是,进化后的种群在两种环境中均表现出更高的适应性,并且对急性高温和低温胁迫的抵抗力均得到改善。这种出乎意料的并行响应似乎是对快速变化的温度的适应,该温度变化推动了自行车的热状态,因为在恒定的热环境中进行测试时未观察到并行适应性变化。我们的研究结果增加了一个小组,但仍在不断增长,这些研究证明了温度变化的波动对热适应的重要性,并强调了在该领域需要进行更多工作的必要性。

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