一种多尺度方法显示了淡水鱼在急性热应激期间的短暂代谢不匹配。

IF 2.8 2区 生物学 Q2 BIOLOGY
Julia Watson, Chloé Souques, François-Xavier Dechaume-Moncharmont, Damien Roussel, Julie Leguyader, Rémy Lassus, Ludovic Guillard, Angeline Clair, Laëtitia Averty, Candice Bastianini, Lilian Redon, Anne Morales-Montaron, Yann Voituron, Martin Daufresne, Elisa Thoral, Loïc Teulier
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引用次数: 0

摘要

在未来,热应激事件将更加频繁和激烈。这些事件将挑战生物体表现出足够的代谢灵活性以适应这些变化的能力。为了更好地理解适应急性变暖的过程,我们采用综合方法在精确的时间轴上检测了Rhône streber在热应激期间和之后的体内代谢率和心脏线粒体呼吸。温度从13°C升高到18°C(每小时+ 1°C),在18°C下保持5天,然后以相同的速度恢复到13°C。我们在热应激期间和活动结束后5天反复测量同一个体的体内代谢率和不同个体的心脏线粒体呼吸。在有机体水平上,氧气消耗随着变暖而增加,随后在热应激结束后又恢复到适应前的水平。相反,心肌线粒体呼吸在热应激期间减少,特别是在24小时内,并在事件结束时恢复。我们的研究结果表明,热应激是导致strebers代谢不匹配的原因。事实上,我们观察到(i)在没有任何驯化过程的情况下产生了强烈的热力学效应,这表明所选择的温度范围对鱼来说没有压力;(ii)建立了一个短暂的节能过程。我们的结果强调需要更多的综合研究来了解生物如何适应气候变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A multi-scaling approach showing a transient metabolic mismatch in a freshwater fish (Zingel asper) during an acute heat stress.

Heat stress events will be more frequent and intense in the future. These events will challenge the capacity of organisms to exhibit sufficient metabolic flexibility to adapt to such variations. To better understand the acclimation processes implemented in response to acute warming, with an integrative approach we examined in vivo metabolic rate and cardiac mitochondrial respiration in the Rhône streber, during and after a heat stress on a precise timeline. The temperature was raised from 13°C to 18°C (+ 1°C per hour) and maintained at 18°C for 5 days, before returning to 13°C at the same rate. We repeatedly measured, during the heat stress and 5 days after the end of the event, in vivo metabolic rate in the same individuals and cardiac mitochondrial respiration from different individuals. At the organismal level, oxygen consumption increased in line with warming, and was subsequently followed by a return to pre-acclimated levels just after the end of the heat stress. At the opposite, cardiac mitochondrial respiration decreased during the heat stress, especially 24 hours in, and was recovered at the end of the event. Our results suggest that the heat stress was responsible for a metabolic mismatch in the strebers. Indeed, we observed (i) a strong thermodynamic effect without any acclimation process, suggesting that the range of temperatures chosen was not stressful for the fish, and (ii) the establishment of a transitory energy saving process. Our results underline the need for more integrative studies to understand how organisms will adapt to climate change.

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来源期刊
CiteScore
5.50
自引率
10.70%
发文量
494
审稿时长
1 months
期刊介绍: Journal of Experimental Biology is the leading primary research journal in comparative physiology and publishes papers on the form and function of living organisms at all levels of biological organisation, from the molecular and subcellular to the integrated whole animal.
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