Literature DB >> 33216368

Intraspecific variation in tolerance of warming in fishes.

David J McKenzie1, Yangfan Zhang2, Erika J Eliason3, Patricia M Schulte2, Guy Claireaux4, Felipe R Blasco5,6, Julie J H Nati1, Anthony P Farrell2,7.   

Abstract

Intraspecific variation in key traits such as tolerance of warming can have profound effects on ecological and evolutionary processes, notably responses to climate change. The empirical evidence for three primary elements of intraspecific variation in tolerance of warming in fishes is reviewed. The first is purely mechanistic that tolerance varies across life stages and as fishes become mature. The limited evidence indicates strongly that this is the case, possibly because of universal physiological principles. The second is intraspecific variation that is because of phenotypic plasticity, also a mechanistic phenomenon that buffers individuals' sensitivity to negative impacts of global warming in their lifetime, or to some extent through epigenetic effects over successive generations. Although the evidence for plasticity in tolerance to warming is extensive, more work is required to understand underlying mechanisms and to reveal whether there are general patterns. The third element is intraspecific variation based on heritable genetic differences in tolerance, which underlies local adaptation and may define long-term adaptability of a species in the face of ongoing global change. There is clear evidence of local adaptation and some evidence of heritability of tolerance to warming, but the knowledge base is limited with detailed information for only a few model or emblematic species. There is also strong evidence of structured variation in tolerance of warming within species, which may have ecological and evolutionary significance irrespective of whether it reflects plasticity or adaptation. Although the overwhelming consensus is that having broader intraspecific variation in tolerance should reduce species vulnerability to impacts of global warming, there are no sufficient data on fishes to provide insights into particular mechanisms by which this may occur.
© 2020 Fisheries Society of the British Isles.

Keywords:  adaptation; critical thermal maximum; phenotypic plasticity; size effects; thermal performance curve; vulnerability

Year:  2020        PMID: 33216368     DOI: 10.1111/jfb.14620

Source DB:  PubMed          Journal:  J Fish Biol        ISSN: 0022-1112            Impact factor:   2.051


  10 in total

1.  Acute measures of upper thermal and hypoxia tolerance are not reliable predictors of mortality following environmental challenges in rainbow trout (Oncorhynchus mykiss).

Authors:  Nicholas Strowbridge; Sara L Northrup; Madison L Earhart; Tessa S Blanchard; Patricia M Schulte
Journal:  Conserv Physiol       Date:  2021-12-23       Impact factor: 3.079

2.  Genetic variation for upper thermal tolerance diminishes within and between populations with increasing acclimation temperature in Atlantic salmon.

Authors:  Paul V Debes; Monica F Solberg; Ivar H Matre; Lise Dyrhovden; Kevin A Glover
Journal:  Heredity (Edinb)       Date:  2021-08-26       Impact factor: 3.821

3.  Intraspecific variability in thermal tolerance: a case study with coastal cutthroat trout.

Authors:  Kara Anlauf-Dunn; Krista Kraskura; Erika J Eliason
Journal:  Conserv Physiol       Date:  2022-05-12       Impact factor: 3.252

4.  An unusually high upper thermal acclimation potential for rainbow trout.

Authors:  Olivia A Adams; Yangfan Zhang; Matthew H Gilbert; Craig S Lawrence; Michael Snow; Anthony P Farrell
Journal:  Conserv Physiol       Date:  2022-01-15       Impact factor: 3.252

5.  Intraspecific variation in thermal tolerance differs between tropical and temperate fishes.

Authors:  J J H Nati; M B S Svendsen; S Marras; S S Killen; J F Steffensen; D J McKenzie; P Domenici
Journal:  Sci Rep       Date:  2021-10-28       Impact factor: 4.379

6.  Antarctic teleosts with and without hemoglobin behaviorally mitigate deleterious effects of acute environmental warming.

Authors:  Iskander I Ismailov; Jordan B Scharping; Iraida E Andreeva; Michael J Friedlander
Journal:  PLoS One       Date:  2021-11-24       Impact factor: 3.240

7.  The interactive effects of exercise training and functional feeds on the cardiovascular performance of rainbow trout (Oncorhynchus mykiss) at high temperatures.

Authors:  Anna Papadopoulou; Luca Pettinau; Eila Seppänen; Asko Sikanen; Katja Anttila
Journal:  Curr Res Physiol       Date:  2022-02-21

8.  A comprehensive database of amphibian heat tolerance.

Authors:  Hsien-Yung Lin; Rachel R Y Oh; Pietro Pollo; A Nayelli Rivera-Villanueva; José O Valdebenito; Yefeng Yang; Patrice Pottier; Tatsuya Amano; Samantha Burke; Szymon M Drobniak; Shinichi Nakagawa
Journal:  Sci Data       Date:  2022-10-04       Impact factor: 8.501

9.  Diminished warming tolerance and plasticity in low-latitude populations of a marine gastropod.

Authors:  Andrew R Villeneuve; Lisa M Komoroske; Brian S Cheng
Journal:  Conserv Physiol       Date:  2021-06-11       Impact factor: 3.079

Review 10.  Hypoxia Performance Curve: Assess a Whole-Organism Metabolic Shift from a Maximum Aerobic Capacity towards a Glycolytic Capacity in Fish.

Authors:  Yangfan Zhang; Bog E So; Anthony P Farrell
Journal:  Metabolites       Date:  2021-07-08
  10 in total

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