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首页> 外文期刊>The Journal of Experimental Biology >Life stages differ in plasticity to temperature fluctuations and uniquely contribute to adult phenotype in Onthophagus taurus dung beetles
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Life stages differ in plasticity to temperature fluctuations and uniquely contribute to adult phenotype in Onthophagus taurus dung beetles

机译:生命阶段的可塑性与温度波动的可塑性不同,并且在牛肝菌粪甲虫中唯一有助于成人表型

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摘要

Adaptive thermal plasticity allows organisms to adjust their physiology to cope with fluctuating environments. However, thermal plasticity is rarely studied in response to thermal variability and is often measured in a single life stage. Plasticity in response to thermal variability likely differs from responses to constant temperature or acute stress. In addition, life stages likely differ in their plasticity, and responses in one stage may be affected by the experiences in a previous stage. Increasing the resolution with which we understand thermal plasticity in response to thermal variation across ontogeny is crucial to understanding how organisms cope with the thermal variation in their environment and to estimating the capacity of plasticity to mitigate costs of rapid environmental change. We wanted to know whether life stages differ in their capacity for thermal plasticity under temperature fluctuations. We reared Onthophagus taurus dung beetles in either low or high temperature fluctuation treatments and quantified thermal plasticity of metabolism of pupae and adults. We found that adults were thermally plastic and pupae were not. Next, we tested whether the plasticity observed in the adult life stage was affected by the thermal conditions during development. We again used low and high temperature fluctuation treatments and reared individuals in one condition through all egg to pupal stages. At eclosion, we switched half of the individuals in each treatment to the opposite fluctuation condition and, later, measured thermal plasticity of metabolism in adults. We found that temperature conditions experienced during the adult stage, but not egg to pupal stages, affect adult thermal plasticity. However, temperature fluctuations during development affect adult body size, suggesting that some aspects of the adult phenotype are decoupled from previous life stages and others are not. Our data demonstrate that life stages mount different responses to temperature variability and uniquely contribute to the adult phenotype. These findings emphasize the need to broadly integrate the life cycle into studies of phenotypic plasticity and physiology; doing so should enhance our ability to predict organismal responses to rapid global change and inform conservation efforts.
机译:自适应热塑性允许生物来调整其生理学以应对波动的环境。然而,响应于热变异性很少研究热塑性,并且通常在单一的寿命中测量。响应热变形的可塑性可能与恒温或急性应激的反应不同。此外,生命阶段可能的可塑性差异,并且在一个阶段的反应可能受到前一期的经验的影响。增加了我们响应于Ontogeny的热变异的热塑性的分辨率对于了解生物体如何应对其环境的热变化以及估算快速环境变化成本的可塑性能力来了解热塑性至关重要。我们想知道生活阶段是否在温度波动下的热塑性的能力差异。我们在低温或高温波动治疗中饲养了牛氏曲粪粪甲虫,并定量了蛹和成人代谢的热塑性。我们发现成年人是热塑性的,蛹不是。接下来,我们测试了在成人寿期观察到的可塑性是否受到发育中热条件的影响。我们再次使用低温和高温波动处理,并通过所有鸡蛋到蛹阶段在一个条件下饲养个体。在Eclosion时,我们将每种治疗中的一半都切换到相反的波动条件,后来,在成人中测量了代谢的热塑性。我们发现在成人阶段经历的温度条件,而不是蛹阶段,影响成人热塑性。然而,发展过程中的温度波动会影响成人体型,表明成人表型的一些方面与以前的生命阶段分离,其他方面也不是。我们的数据表明,生命阶段将不同的反应与温度变异性搭配,并且唯一有助于成人表型。这些调查结果强调需要将生命周期大致整合到表型可塑性和生理学的研究中;这样做应该加强我们预测对快速全球变革的机能反应,并告知节约努力。

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