Literature DB >> 32221971

The roles of acclimation and behaviour in buffering climate change impacts along elevational gradients.

Urtzi Enriquez-Urzelai1,2, Reid Tingley3,4, Michael R Kearney4, Martina Sacco1,2, Antonio S Palacio1,2, Miguel Tejedo5, Alfredo G Nicieza1,2.   

Abstract

The vulnerability of species to climate change is jointly influenced by geographic phenotypic variation, acclimation and behavioural thermoregulation. The importance of interactions between these factors, however, remains poorly understood. We demonstrate how advances in mechanistic niche modelling can be used to integrate and assess the influence of these sources of uncertainty in forecasts of climate change impacts. We explored geographic variation in thermal tolerance (i.e. maximum and minimum thermal limits) and its potential for acclimation in juvenile European common frogs Rana temporaria along elevational gradients. Furthermore, we employed a mechanistic niche model (NicheMapR) to assess the relative contributions of phenotypic variation, acclimation and thermoregulation in determining the impacts of climate change on thermal safety margins and activity windows. Our analyses revealed that high-elevation populations had slightly wider tolerance ranges driven by increases in heat tolerance but lower potential for acclimation. Plausibly, wider thermal fluctuations at high elevations favour more tolerant but less plastic phenotypes, thus reducing the risk of encountering stressful temperatures during unpredictable extreme events. Biophysical models of thermal exposure indicated that observed phenotypic and plastic differences provide limited protection from changing climates. Indeed, the risk of reaching body temperatures beyond the species' thermal tolerance range was similar across elevations. In contrast, the ability to seek cooler retreat sites through behavioural adjustments played an essential role in buffering populations from thermal extremes predicted under climate change. Predicted climate change also altered current activity windows, but high-elevation populations were predicted to remain more temporally constrained than lowland populations. Our results demonstrate that elevational variation in thermal tolerances and acclimation capacity might be insufficient to buffer temperate amphibians from predicted climate change; instead, behavioural thermoregulation may be the only effective mechanism to avoid thermal stress under future climates.
© 2020 British Ecological Society.

Entities:  

Keywords:  Bogert effect; NicheMapR; acclimation; activity restrictions; behavioural thermoregulation; global warming; mechanistic niche modelling; thermal-safety margins

Year:  2020        PMID: 32221971     DOI: 10.1111/1365-2656.13222

Source DB:  PubMed          Journal:  J Anim Ecol        ISSN: 0021-8790            Impact factor:   5.091


  5 in total

1.  Limited plasticity in thermally tolerant ectotherm populations: evidence for a trade-off.

Authors:  Jordanna M Barley; Brian S Cheng; Matthew Sasaki; Sarah Gignoux-Wolfsohn; Cynthia G Hays; Alysha B Putnam; Seema Sheth; Andrew R Villeneuve; Morgan Kelly
Journal:  Proc Biol Sci       Date:  2021-09-08       Impact factor: 5.530

2.  Urohidrosis as an overlooked cooling mechanism in long-legged birds.

Authors:  Julián Cabello-Vergel; Andrea Soriano-Redondo; Auxiliadora Villegas; José A Masero; Juan M Sánchez Guzmán; Jorge S Gutiérrez
Journal:  Sci Rep       Date:  2021-10-08       Impact factor: 4.379

3.  Environmental change and the rate of phenotypic plasticity.

Authors:  Tim Burton; Irja Ida Ratikainen; Sigurd Einum
Journal:  Glob Chang Biol       Date:  2022-06-21       Impact factor: 13.211

4.  Phenology and plasticity can prevent adaptive clines in thermal tolerance across temperate mountains: The importance of the elevation-time axis.

Authors:  Luis Miguel Gutiérrez-Pesquera; Miguel Tejedo; Agustín Camacho; Urtzi Enriquez-Urzelai; Marco Katzenberger; Magdalena Choda; Pol Pintanel; Alfredo G Nicieza
Journal:  Ecol Evol       Date:  2022-10-05       Impact factor: 3.167

5.  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

  5 in total

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