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海洋酸化对大西洋鲑鱼(Salmo salar)幼鱼盐度耐受性和海水生长的影响。

Effects of ocean acidification on salinity tolerance and seawater growth of Atlantic salmon Salmo salar smolts.

作者信息

McCormick Stephen D, Regish Amy M

机构信息

U.S. Geological Survey, Leetown Science Center, S.O. Conte Anadromous Fish Research Laboratory, Turners Falls, Massachusetts.

出版信息

J Fish Biol. 2018 Sep;93(3):560-566. doi: 10.1111/jfb.13656.

Abstract

Human activity has resulted in increasing atmospheric carbon dioxide (CO ), which will result in reduced pH and higher levels of CO in the ocean, a process known as ocean acidification. Understanding the effects of ocean acidification (OA) on fishes will be important to predicting and mitigating its consequences. Anadromous species such as salmonids may be especially at risk because of their rapid movements between fresh water and seawater, which could minimize their ability to acclimate. In the present study, we examine the effect of future OA on the salinity tolerance and early seawater growth of Atlantic salmon Salmo salar smolts. Exposure to 610 and 1010 μatm CO did not alter salinity tolerance but did result in slightly lower plasma chloride levels in smolts exposed to seawater compared with controls (390 μatm). Gill Na -K -ATPase activity, plasma cortisol, glucose and haematocrit after seawater exposure were not altered by elevated CO . Growth rate in the first 2 weeks of seawater exposure was greater at 1010 μatm CO than under control conditions. This study of the effects of OA on S. salar during the transition from fresh water to seawater indicates that elevated CO is not likely to affect osmoregulation negatively and may improve early growth in seawater.

摘要

人类活动导致大气中二氧化碳(CO₂)含量增加,这将导致海洋pH值降低、CO₂水平升高,此过程被称为海洋酸化。了解海洋酸化(OA)对鱼类的影响对于预测和减轻其后果至关重要。像鲑科鱼类这样的溯河洄游物种可能尤其面临风险,因为它们在淡水和海水之间快速移动,这可能会降低它们的适应能力。在本研究中,我们研究了未来OA对大西洋鲑(Salmo salar)幼鱼盐度耐受性和早期海水生长的影响。暴露于610和1010 μatm CO₂并未改变盐度耐受性,但与对照组(390 μatm)相比,暴露于海水的幼鱼血浆氯化物水平略低。海水暴露后的鳃Na⁺-K⁺-ATP酶活性、血浆皮质醇、葡萄糖和血细胞比容并未因CO₂升高而改变。在1010 μatm CO₂条件下,海水暴露前两周的生长速率高于对照条件。这项关于OA对从淡水过渡到海水阶段的大西洋鲑影响的研究表明,升高的CO₂不太可能对渗透调节产生负面影响,并且可能会改善在海水中的早期生长。

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