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Updated: Jan 12, 2026

Thermal Limits Determination for Zooplankton Using a Heat Block
Published on: November 18, 2022
Temperature outweighs diet in shaping developmental performance in two cricket species via growth delays and
Émile Vadboncoeur1, Marie-Hélène Deschamps2, Susan M Bertram1
1Department of Biology, Carleton University, Ottawa, ON, Canada, K1S 5B6.
Abstract:
Understanding how chronic environmental stressors shape animal development is essential for predicting ecological responses and optimizing rearing systems. This perspective complements the use of short-term tolerance assays, which overlook the cumulative effects of sustained stress. Temperature and nutrition affect key life-history traits such as growth, development rate and survival. While both factors have been widely studied, their relative impacts are not clearly defined. We investigated how constant temperature (26-41°C) and dietary protein-to-carbohydrate (P:C) ratio (0.15-2.18) influence development in two cricket species, Acheta domesticus and Gryllodes sigillatus. Growth trajectories were modelled using a unified logistic equation to estimate asymptotic mass and maximum growth rate, thereby capturing the growth trajectory in a simplified and interpretable way, enabling comparisons across treatments. Asymptotic mass was combined with developmental rate and survival to calculate a composite metric of developmental performance. Developmental performance peaked at 35°C but fell at thermal extremes as a result of delayed development (in cold) or reduced mass and survival (in heat). Diet had more modest effects, as performance was stable across most P:C ratios, and only declined at extreme imbalances. Notably, the performance cost of the most unbalanced diets was comparable to a 4-5°C shift from thermal optimum. Our results demonstrate that temperature, more than diet, drives variation in developmental performance during ad libitum feeding. This integrative framework provides a robust approach to quantify environmental sensitivity, define performance limits and guide us toward the mechanisms underlying those limits and/or performance trade-offs.
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