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      Atrioventricular block, due to reduced ventricular excitability, causes the depression of fish heart rate in fish at critically high temperatures

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      Journal of Experimental Biology
      The Company of Biologists

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          Abstract

          At critically high temperature, cardiac output in fish collapses due to depression of heart rate (bradycardia). However, the cause of bradycardia remains unresolved. To this end rainbow trout (Oncorhynchus mykiss; acclimated at +12°C) were exposed to acute warming, while electrocardiograms were recorded. From +12℃ to +25.3℃, electrical excitation between different parts of the heart was coordinated but above +25.3℃ atrial and ventricular beating rates became partly dissociated due to 2:1 atrioventricular (AV) block. With further warming atrial rate increased to the peak value of 188±22 bpm at +27℃, while the rate of the ventricle reached the peak value of 124±10 bpm at +25.3 ℃ and thereafter dropped to 111±15 bpm at +27℃. In single ventricular myocytes, warming from +12°C to +25°C attenuated electrical excitability as evidenced by increases in rheobase current and critical depolarization required to trigger action potential. The depression of excitability was caused by temperature induced decrease in input resistance (sarcolemmal K+ leak via the outward IK1 current) of resting myocytes and decrease in inward charge transfer by the Na+ current (INa) of active myocytes. Collectively these findings show that at critically high temperatures AV block causes ventricular bradycardia which is an outcome from the increased excitation threshold of the ventricle due to changes in passive (resting ion leak) and active (inward charge movement) electrical properties of ventricular myocytes. The sequence of events from the level of ion channels to the cardiac function in vivo provides a mechanistic explanation for the depression of cardiac output in fish at critically high temperature.

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          Most cited references52

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          Climate change and temperature-dependent biogeography: oxygen limitation of thermal tolerance in animals

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

            Measurements of aerobic scope [the difference between minimum and maximum oxygen consumption rate ( and , 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 , 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.
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              Is Open Access

              Physiological constraints to climate warming in fish follow principles of plastic floors and concrete ceilings

              Understanding the resilience of aquatic ectothermic animals to climate warming has been hindered by the absence of experimental systems experiencing warming across relevant timescales (for example, decades). Here, we examine European perch (Perca fluviatilis, L.) from the Biotest enclosure, a unique coastal ecosystem that maintains natural thermal fluctuations but has been warmed by 5–10 °C by a nuclear power plant for over three decades. We show that Biotest perch grow faster and display thermally compensated resting cardiorespiratory functions compared with reference perch living at natural temperatures in adjacent waters. However, maximum cardiorespiratory capacities and heat tolerance limits exhibit limited or no thermal compensation when compared with acutely heated reference perch. We propose that while basal energy requirements and resting cardiorespiratory functions (floors) are thermally plastic, maximum capacities and upper critical heat limits (ceilings) are much less flexible and thus will limit the adaptive capacity of fishes in a warming climate.
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                Author and article information

                Contributors
                (View ORCID Profile)
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                Journal
                Journal of Experimental Biology
                The Company of Biologists
                1477-9145
                0022-0949
                January 01 2020
                Affiliations
                [1 ]University of Eastern Finland, Department of Environmental and Biological Sciences
                Article
                10.1242/jeb.225227
                32434803
                a28a609d-2878-4b88-8878-fe27ccf6d265
                © 2020

                http://www.biologists.com/user-licence-1-1/

                History

                Quantitative & Systems biology,Biophysics
                Quantitative & Systems biology, Biophysics

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