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Aerobic scope measurements of fishes in an era of climate change: respirometry, relevance and recommendations

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TLDR
It is the intention of this paper to encourage transparency and accuracy in future studies that measure the aerobic metabolism of fishes, and to highlight the fundamental issues with assuming broad relevance of the OCLTT hypothesis.
Abstract
Measurements of aerobic scope [the difference between minimum and maximum oxygen consumption rate (![Graphic][1] and ![Graphic][2] , respectively)] are increasing in prevalence as a tool to address questions relating to fish ecology and the effects of climate change. However, there are underlying issues regarding the array of methods used to measure aerobic scope across studies and species. In an attempt to enhance quality control before the diversity of issues becomes too great to remedy, this paper outlines common techniques and pitfalls associated with measurements of ![Graphic][3] , ![Graphic][4] and aerobic scope across species and under different experimental conditions. Additionally, we provide a brief critique of the oxygen- and capacity-limited thermal tolerance (OCLTT) hypothesis, a concept that is intricately dependent on aerobic scope measurements and is spreading wildly throughout the literature despite little evidence for its general applicability. It is the intention of this paper to encourage transparency and accuracy in future studies that measure the aerobic metabolism of fishes, and to highlight the fundamental issues with assuming broad relevance of the OCLTT hypothesis. [1]: /embed/inline-graphic-1.gif [2]: /embed/inline-graphic-2.gif [3]: /embed/inline-graphic-3.gif [4]: /embed/inline-graphic-4.gif

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Selection for upper thermal tolerance in rainbow trout (Oncorhynchus mykiss Walbaum)

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Differential plasticity of metabolic rate phenotypes in a tropical fish facing environmental change

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Is oxygen limitation in warming waters a valid mechanism to explain decreased body sizes in aquatic ectotherms

TL;DR: The negative correlation between temperature and body size of ectothermic animals (broadly known as the temperature-size rule or TSR) is a widely observed pattern, especially in aquatic organisms as mentioned in this paper.
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Eyeless Mexican Cavefish Save Energy by Eliminating the Circadian Rhythm in Metabolism

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Flexibility in metabolic rate confers a growth advantage under changing food availability.

TL;DR: Flexibility in energy metabolism is a key mechanism to maximize growth rates under the challenges imposed by variability in food availability and is likely to be an important determinant of species' resilience in the face of global change.
References
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Toward a metabolic theory of ecology

TL;DR: This work has developed a quantitative theory for how metabolic rate varies with body size and temperature, and predicts how metabolic theory predicts how this rate controls ecological processes at all levels of organization from individuals to the biosphere.
Book

Animal Physiology: Adaptation and Environment

TL;DR: In this article, the authors present an overview of the physiological properties of the human body, including Oxygen, Respiration, Food and Energy, Water and osmotic regulation, control and integration, and Hormone control.
Journal ArticleDOI

Physiology and Climate Change

TL;DR: Studies of physiological mechanisms are needed to predict climate effects on ecosystems at species and community levels and to help scientists understand the drivers of climate change.
Journal ArticleDOI

The Respiratory Metabolism and Swimming Performance of Young Sockeye Salmon

TL;DR: Rate of replacement of oxygen debt following fatigue was determined by tracing the return to a resting state of metabolism, and confirmed by re-tests at fatigue velocities, and in most instances the rate declined logarithmically with time.
Journal ArticleDOI

Climate change affects marine fishes through the oxygen limitation of thermal tolerance.

TL;DR: It is shown in the eelpout, Zoarces viviparus, a bioindicator fish species for environmental monitoring from North and Baltic Seas, that thermally limited oxygen delivery closely matches environmental temperatures beyond which growth performance and abundance decrease, which will be the first process to cause extinction or relocation to cooler waters.
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