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缺氧与高温作为相互作用的应激源:可塑性会促进鱼类在变化的世界中的恢复力吗?

Hypoxia and High Temperature as Interacting Stressors: Will Plasticity Promote Resilience of Fishes in a Changing World?

作者信息

Earhart Madison L, Blanchard Tessa S, Harman Adam A, Schulte Patricia M

出版信息

Biol Bull. 2022 Oct;243(2):149-170. doi: 10.1086/722115. Epub 2022 Oct 26.

DOI:10.1086/722115
PMID:36548973
Abstract

AbstractDetermining the resilience of a species or population to climate change stressors is an important but difficult task because resilience can be affected both by genetically based variation and by various types of phenotypic plasticity. In addition, most of what is known about organismal responses is for single stressors in isolation, but environmental change involves multiple environmental factors acting in combination. Here, our goal is to summarize what is known about phenotypic plasticity in fishes in response to high temperature and low oxygen (hypoxia) in combination across multiple timescales, to ask how much resilience plasticity may provide in the face of climate change. There are relatively few studies investigating plasticity in response to these environmental stressors in combination; but the available data suggest that although fish have some capacity to adjust their phenotype and compensate for the negative effects of acute exposure to high temperature and hypoxia through acclimation or developmental plasticity, compensation is generally only partial. There is very little known about intergenerational and transgenerational effects, although studies on each stressor in isolation suggest that both positive and negative impacts may occur. Overall, the capacity for phenotypic plasticity in response to these two stressors is highly variable among species and extremely dependent on the specific context of the experiment, including the extent and timing of stressor exposure. This variability in the nature and extent of plasticity suggests that existing phenotypic plasticity is unlikely to adequately buffer fishes against the combined stressors of high temperature and hypoxia as our climate warms.

摘要

摘要

确定一个物种或种群对气候变化压力源的恢复力是一项重要但困难的任务,因为恢复力可能受到基于基因的变异以及各种表型可塑性的影响。此外,目前已知的关于生物体反应的大多数情况是针对单一压力源的,而环境变化涉及多种环境因素的共同作用。在这里,我们的目标是总结在多个时间尺度上鱼类对高温和低氧(缺氧)组合的表型可塑性的已知情况,探讨在气候变化面前可塑性可能提供多大的恢复力。相对较少有研究调查鱼类对这些环境压力源组合的可塑性;但现有数据表明,尽管鱼类有一定能力通过适应或发育可塑性来调整其表型并补偿急性暴露于高温和缺氧的负面影响,但补偿通常只是部分的。关于代际和跨代效应知之甚少,尽管对每个压力源单独进行的研究表明可能会产生正面和负面的影响。总体而言,鱼类对这两种压力源的表型可塑性能力在物种间差异很大,并且极大地依赖于实验的具体背景,包括压力源暴露的程度和时间。可塑性在性质和程度上的这种变异性表明,随着气候变暖,现有的表型可塑性不太可能充分缓冲鱼类免受高温和缺氧的联合压力。

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