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高纬度鱼类在高 CO2 世界中:高温和二氧化碳对南极鳕鱼类代谢率的协同作用。

High latitude fish in a high CO2 world: Synergistic effects of elevated temperature and carbon dioxide on the metabolic rates of Antarctic notothenioids.

机构信息

University of South Carolina, Department of Biological Sciences, Columbia, SC 29208, USA.

出版信息

Comp Biochem Physiol A Mol Integr Physiol. 2013 Jan;164(1):154-61. doi: 10.1016/j.cbpa.2012.07.016. Epub 2012 Aug 3.

Abstract

Although the physiological response of teleost fishes to increased temperature has been well documented, there is only a small body of literature that examines the effects of ocean acidification on fish under ecologically relevant scenarios. Furthermore, little data exists which examines the possible synergistic effects of increased sea surface temperatures and pCO(2) levels, although it is well established that both will co-committedly change in the coming centuries. In this study we examined the effects of increased temperature, increased pCO(2), and a combination of these treatments on the resting metabolic rate (RMR) of four species of notothenioid fish, Trematomus bernacchii, T. hansoni, T. newnesi, and Pagothenia borchgrevinki, acclimated to treatment conditions for 7, 14 or 28days. While most species appear capable of rapidly acclimating to increased pCO(2), temperature continues to impact RMRs for up to 28days. One species in particular, T. newnesi, displayed no acclimatory response to any of the treatments regardless of acclimation time and may have a reduced capacity to respond to environmental change. Furthermore, we present evidence that temperature and pCO(2) act synergistically to further elevate the RMR and slow acclimation when compared to temperature or pCO(2) increases alone.

摘要

尽管已经有大量文献记录了硬骨鱼类对温度升高的生理反应,但只有少量文献研究了海洋酸化对鱼类在生态相关场景下的影响。此外,几乎没有数据研究了海平面温度和 pCO2 水平升高的协同效应,尽管已经确定这两者在未来几个世纪将共同发生变化。在这项研究中,我们研究了升温、增加 pCO2 以及这些处理的组合对四种南极鳕鱼( Trematomus bernacchii、T. hansoni、T. newnesi 和 Pagothenia borchgrevinki)静息代谢率(RMR)的影响,这些鱼适应处理条件的时间为 7、14 或 28 天。虽然大多数物种似乎能够快速适应增加的 pCO2,但温度对 RMR 的影响仍持续长达 28 天。特别是一种名为 T. newnesi 的物种,无论适应时间如何,对任何处理都没有适应反应,可能对环境变化的适应能力降低。此外,我们还提供了证据表明,与单独增加温度或 pCO2 相比,温度和 pCO2 协同作用会进一步升高 RMR 并减缓适应速度。

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