Effects of Ocean Acidification over successive generations decrease larval resilience to Ocean Acidification & Warming but juvenile European sea bass could benefit from higher temperatures in the NE Atlantic.

S. Howald, M. Moyano, A. Crespel, Luis L Kuchenmüller, Louise Cominassi, G. Claireaux, M. Peck, F. Mark
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引用次数: 1

Abstract

European sea bass (Dicentrarchus labrax) is a large, economically important fish species with a long generation time whose long-term resilience to ocean acidification (OA) and warming (OW) is not clear. We incubated sea bass from Brittany (France) for two generations (>5 years in total) under ambient and predicted OA conditions (PCO2: 650 and 1700 µatm) crossed with ambient and predicted ocean OW conditions in F1 (temperature: 15-18°C and 20-23°C) to investigate the effects of climate change on larval and juvenile growth and metabolic rate. We found that in F1, OA as single stressor at ambient temperature did not affect larval or juvenile growth and OW increased developmental time and growth rates, but OAW decreased larval size at metamorphosis. Larval routine and juvenile standard metabolic rates were significantly lower in cold compared to warm conditioned fish and also lower in F0 compared to F1 fish. We did not find any effect of OA as a single stressor on metabolic rates. Juvenile PO2crit was not affected by OA or OAW in both generations. We discuss the potential underlying mechanisms resulting in the resilience of F0 and F1 larvae and juveniles to OA and in the beneficial effects of OW on F1 larval growth and metabolic rate, but on the other hand in the vulnerability of F1, but not F0 larvae to OAW. With regard to the ecological perspective, we conclude that recruitment of larvae and early juveniles to nursery areas might decrease under OAW conditions but individuals reaching juvenile phase might benefit from increased performance at higher temperatures.
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连续几代海洋酸化的影响降低了幼鱼对海洋酸化和变暖的适应能力,但欧洲黑鲈幼鱼可以从东北大西洋较高的温度中受益。
欧洲黑鲈(Dicentrarchus labrax)是一种世代长、具有重要经济价值的大型鱼类,其对海洋酸化和变暖的长期适应能力尚不清楚。我们将来自法国布列塔尼(Brittany)的海鲈鱼在环境和预测的OA条件(PCO2: 650和1700µatm)与F1环境和预测的海洋OW条件(温度:15-18°C和20-23°C)下孵育两代(总共>5年),以研究气候变化对幼鱼和幼鱼生长和代谢率的影响。我们发现,在F1中,环境温度下,OA作为单一胁迫源不影响幼虫或幼鱼的生长,OW增加了发育时间和生长速度,但OAW降低了幼虫的变态尺寸。低温条件下的幼鱼常规代谢率和幼鱼标准代谢率显著低于温热条件下的幼鱼,F0条件下的幼鱼标准代谢率也显著低于F1条件下的幼鱼。我们没有发现OA作为单一应激源对代谢率有任何影响。两代幼崽po2暴击不受OA或OAW的影响。我们讨论了导致F0和F1幼虫和幼虫对OA恢复力的潜在潜在机制,以及OW对F1幼虫生长和代谢率的有益影响,但另一方面F1的脆弱性,而不是F0幼虫对OA的脆弱性。从生态学的角度来看,我们得出结论,在高温条件下,幼虫和早期幼鱼到苗圃的招募可能会减少,但达到幼鱼期的个体可能会受益于高温条件下的性能提高。
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