未来气候和水电生产情景下寄生虫暴露和变热胁迫对褐鳟的负面影响

Roser Casas-Mulet , Emily Matthews , Juergen Geist , Isabelle Durance , Jo Cable
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引用次数: 3

摘要

未来水温的变化可能会对鱼与寄生虫的相互作用产生深远的影响。然而,虽然温度对鱼类,特别是鲑鱼的影响是众所周知的,但它与寄生接触的综合影响却不是。本研究采用多阶段实验方法,探讨了持续气候变化引起的变暖和水力发电产生的极端热波动对褐鳟寄生前和寄生期间褐鳟鱼苗和鱼苗的影响。暴露于寄主的两个生命阶段对寄主的生存均有最强且最显著的影响。暴露于寄生虫、热预处理和持续的热状态对alevin死亡率有微弱但显著的影响。当温度持续升高与间歇性温度升高相结合时,暴露于寄生虫的alevin和fry的死亡率都增加了。这一实验方法的结果为未来的研究提供了基础,这些研究扩大了关键鱼类在野外可能面临的温度和寄生虫暴露的潜在影响。他们还强调了人为变化对褐鳟种群的影响,因为在未来的气候情景中,随着水电开发和热活动的增加,特别是在病原体存在的情况下,水生生物的压力可能会加剧。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Negative effects of parasite exposure and variable thermal stress on brown trout (Salmo trutta) under future climatic and hydropower production scenarios

Negative effects of parasite exposure and variable thermal stress on brown trout (Salmo trutta) under future climatic and hydropower production scenarios

Future water temperature changes may have a profound impact on fish-parasite interactions. However, while the effect of temperature on fish, and particularly salmonids, is well-understood, its combined effects with parasitic exposure are not. Here, we use a multi-stage experimental approach to explore the impact of increased water temperatures consistent with persistent climate change-induced warming and extreme thermal fluctuations from hydropower (thermopeaking) on brown trout alevins and fry before and during exposure to Saprolegnia parasitica. Parasite exposure had the strongest and most significant effect on survival of both host life stages. The combination of parasite exposure, thermal pre-conditioning and the ongoing thermal regime had a weak but significant influence on alevin mortality. Both parasite-exposed alevin and fry experienced increased mortality when a constant increase in temperature was combined with intermittent thermal increases. The outcomes of this experimental approach provide the basis for future studies scaling up the potential impacts of temperatures and parasite exposure that key fish species may face in the wild. They also highlight the effects of anthropogenic changes on brown trout populations, as pressures on aquatic organisms are likely to intensify in future climate scenarios with increased hydropower development and thermopeaking, particularly in the presence of pathogens.

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