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Aquatic acidification: a mechanism underpinning maintained oxygen transport and performance in fish experiencing elevated carbon dioxide conditions

机译:水生酸化:一种机制,支撑在经历升高二氧化碳条件下的鱼类中的氧气运输和性能

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摘要

Aquatic acidification, caused by elevating levels of atmospheric carbon dioxide (CO2), is increasing in both freshwater and marine ecosystems worldwide. However, few studies have examined how acidification will affect oxygen (O-2) transport and, therefore, performance in fishes. Although data are generally lacking, the majority of fishes investigated in this meta-analysis exhibited no effect of elevated CO2 at the level of O-2 uptake, suggesting that they are able to maintain metabolic performance during a period of acidosis. Notably, the mechanisms that fish employ to maintain performance and O-2 uptake have yet to be verified. Here, we summarize current data related to one recently proposed mechanism underpinning the maintenance of O-2 uptake during exposure to aquatic acidification, and reveal knowledge gaps that could be targeted for future research. Most studies have examined O-2 uptake rates while fishes were resting and did not calculate aerobic scope, even though aerobic scope can aid in predicting changes to whole-animal metabolic performance. Furthermore, research is lacking on different age classes, freshwater species and elasmobranchs, all of which might be impacted by future acidification conditions. Finally, this Review further seeks to emphasize the importance of developing collaborative efforts between molecular, physiological and ecological approaches in order to provide more comprehensive predictions as to how future fish populations will be affected by climate change.
机译:通过升高大气二氧化碳(CO2)引起的水生酸化在全球淡水和海洋生态系统中增加。然而,很少有研究已经检查了酸化会影响氧气(O-2)的运输,因此是鱼类的性能。尽管通常缺乏数据,但在该荟萃分析中研究的大多数鱼类在O-2摄取水平上没有升高的CO2效果,表明它们能够在酸中毒时期维持代谢性能。值得注意的是,捕捞性能维持性能和O-2摄取的机制尚未得到验证。在这里,我们总结了与最近提出的机制相关的当前数据,支撑在暴露于水生酸化过程中O-2摄取的维持,并揭示了可以针对未来研究的知识差距。大多数研究已经检查了O-2的摄取率,而鱼类正在休息并且没有计算有氧范围,即使有氧范围可以有助于预测全动物代谢性能的变化。此外,缺乏不同年龄阶级,淡水种类和elasmobranchs的研究,所有这些都可能受到未来的酸化条件的影响。最后,审查进一步寻求强调在分子,生理和生态方法之间制定合作努力的重要性,以便为未来的鱼类人群受到气候变化影响更全面的预测。

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