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Assay conditions in laboratory experiments: is the use of constant rather than fluctuating temperatures justified when investigating temperature-induced plasticity?

机译:实验室实验中的测定条件:在研究温度引起的可塑性时,采用恒定温度而不是波动温度是否合理?

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摘要

Temperature is an important selective agent in nature. Consequently, temperature-induced plasticity which may help buffering detrimental effects of temperature variation has received considerable attention over recent decades. Laboratory studies have almost exclusively used constant temperatures, while in nature, temperature typically shows pronounced daily fluctuations. Using a factorial design with constant versus fluctuating temperatures and a higher versus a lower mean temperature, we here investigate in the butterfly Lycaena tityrus whether the use of constant temperatures is justified. Fluctuating compared to constant temperatures caused shorter development times, increased heat but decreased cold stress resistance, decreased heat-shock protein expression, and increased immunocompetence. Thus, overall, fluctuating temperatures were more beneficial to the butterflies compared to constant ones. However, despite substantial variation across temperature regimes, the ranking of trait values among treatments remained largely unaffected (e.g. lower constant as well as fluctuating temperatures caused increased pupal mass). Thus, we tentatively conclude that there is no general reason for concern about using constant temperatures in studies investigating phenotypic plasticity, which seem to comprise a fair proxy. However, substantial differences in mean values as well as interactive effects suggest that one needs to be cautious. We further demonstrate negative effects of high temperatures on butterfly immune function, which seem to result from a trade-off between the latter and the heat shock response.
机译:温度是自然界中重要的选择剂。因此,近几十年来,温度诱导的可塑性可能有助于缓冲温度变化的不利影响,引起了人们的极大关注。实验室研究几乎只使用恒定温度,而在自然界中,温度通常显示出明显的每日波动。使用具有恒定温度和波动温度以及较高平均温度和较低平均温度的析因设计,我们在这里研究蝴蝶蝶草(Lycaena tityrus)是否合理使用恒定温度。与恒定温度相比,波动会缩短显影时间,增加热量,但降低抗寒胁迫能力,降低热激蛋白表达,并提高免疫能力。因此,总的来说,波动的温度比恒定的温度更有利于蝴蝶。但是,尽管温度范围存在很大差异,但治疗之间的性状值排名仍然基本不受影响(例如,较低的常数以及温度波动导致caused质量增加)。因此,我们初步得出结论,在研究表型可塑性的研究中,没有必要担心使用恒定温度,这似乎是一个合理的替代。但是,平均值和交互作用之间的实质差异表明,需要谨慎。我们进一步证明了高温对蝴蝶免疫功能的负面影响,这似乎是由于后者与热休克反应之间的权衡所致。

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  • 来源
    《Oecologia》 |2011年第1期|p.23-33|共11页
  • 作者单位

    Zoological Institute and Museum, University of Greifswald, Johann-Sebastian-Bach-Str. 11/12, 17489, Greifswald, Germany;

    Zoological Institute and Museum, University of Greifswald, Johann-Sebastian-Bach-Str. 11/12, 17489, Greifswald, Germany;

    Zoological Institute and Museum, University of Greifswald, Johann-Sebastian-Bach-Str. 11/12, 17489, Greifswald, Germany;

    Zoological Institute and Museum, University of Greifswald, Johann-Sebastian-Bach-Str. 11/12, 17489, Greifswald, Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hsp expression; Immune function; Life-history plasticity; Phenoloxidase activity; Thermoperiod;

    机译:热休克蛋白表达;免疫功能;生活史可塑性;酚氧化酶活性;热循环;

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