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August 15, 2025Methods in Ecology and Evolution25 citationsOpen Access

Measuring critical thermal maximum in aquatic ectotherms: A practical guide

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GRGraham D. RabyRMRachael MorganAAAnna H. Andreassen

Key Points

  • Critical thermal maximum (ct max) is essential for understanding how aquatic ectotherms respond to climate warming, revealing important insights about their survival.
  • The guide emphasizes best practices for conducting experiments and includes detailed recommendations across 12 topic areas to improve standardization.
  • Experiments are encouraged to transparently report warming rates and physiological factors affecting thermal tolerance, improving the comparability of results.
  • A reporting checklist and design diagrams are provided to aid researchers in measuring critical thermal limits, emphasizing methodological clarity.

Abstract

Abstract Critical thermal limits, commonly quantified as CT max (maximum) or CT min (minimum), are core metrics in the thermal biology of aquatic ectotherms. CT max , in particular, has recently surged in popularity due to its various applications, including understanding and predicting the responses of animals to climate warming. Despite its growing popularity, there is a limited literature aimed at establishing best practices for designing, running and reporting CT max experiments. This lack of standardisation and insufficiently detailed reporting in the literature creates challenges when designing CT max studies or comparing results across studies. Here, we provide a comprehensive, practical guide for designing and conducting experiments to measure critical thermal limits, with an emphasis on CT max . Our recommendations cover 12 topic areas including apparatus design, masking (blinding), warming rates, end points, replication and reporting. We include diagrams and photos for designing and building critical thermal limit arenas for field or lab applications. We also provide a reporting checklist as a reference for researchers when carrying out experiments and preparing manuscripts. Future studies incorporating critical thermal limits would benefit from transparent reporting of warming/cooling rates (raw data, supplementary graphs) and photo/video evidence showing arena designs and critical thermal limit end points. We also provide directions for empirical research that will help further inform the measurement of critical thermal limits, including biotic factors like stress and digestion, warming/cooling rates, the effects of body mass on heat transfer and the physiological mechanisms underlying thermal tolerance.

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Cite This Study

Raby et al. (2025) studied this question.

synapsesocial.com/papers/68af50a1ad7bf08b1ead8a88https://doi.org/10.1111/2041-210x.70103
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