Pervasive sublethal impacts of heat exposure revealed by telomere dynamics

Abstract Predicting species responses to anthropogenic environmental change remains one of the most pressing and complex challenges in contemporary biology. While mass mortality events and localized extinctions have been linked to global warming, the more elusive and probably common, effects of sublethal heat are less well understood. In a cooperatively breeding bird from the Australian tropical savannah, we identified that hotter conditions accelerated telomere attrition through two critical life-history stages: juveniles transitioning to nutritional independence and adults transitioning into a reproductive phase. In both stages, there was no capacity for environmental or social conditions to mitigate heat-related telomere attrition, except in adults inhabiting high-density vegetation. These findings demonstrate that sublethal heat effects can have pervasive cryptic consequences for individual somatic state, thereby reducing fitness. More generally, our findings, although probably widespread and concerning for population persistence, also highlight the importance of preserving climate refugia in conservation strategies amid rising sublethal temperatures.

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Publication Details

Journal
Proceedings of the Royal Society B Biological Sciences
Published
2026-09-16
DOI
https://doi.org/10.1098/rspb.2025.2877
Primary Topic
Telomeres, Telomerase, and Senescence
Type
article
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article

Pervasive sublethal impacts of heat exposure revealed by telomere dynamics

Simon Verhulst, Justin R. Eastwood, Anne Peters, Nataly Hidalgo Aranzamendi et al.
Proceedings of the Royal Society B Biological Sciences
Telomeres, Telomerase, and Senescence
article

Pervasive sublethal impacts of heat exposure revealed by telomere dynamics

Simon Verhulst, Justin R. Eastwood, Anne Peters, Nataly Hidalgo Aranzamendi, Michael J. Roast, Niki Teunissen, Ian Hoppe, Sjouke A. Kingma, Michelle Hall, Ariana L. Porte
article en

Abstract

Abstract Predicting species responses to anthropogenic environmental change remains one of the most pressing and complex challenges in contemporary biology. While mass mortality events and localized extinctions have been linked to global warming, the more elusive and probably common, effects of sublethal heat are less well understood. In a cooperatively breeding bird from the Australian tropical savannah, we identified that hotter conditions accelerated telomere attrition through two critical life-history stages: juveniles transitioning to nutritional independence and adults transitioning into a reproductive phase. In both stages, there was no capacity for environmental or social conditions to mitigate heat-related telomere attrition, except in adults inhabiting high-density vegetation. These findings demonstrate that sublethal heat effects can have pervasive cryptic consequences for individual somatic state, thereby reducing fitness. More generally, our findings, although probably widespread and concerning for population persistence, also highlight the importance of preserving climate refugia in conservation strategies amid rising sublethal temperatures.

Proceedings of the Royal Society B Biological SciencesVol. 293(2079)
Bush Heritage Australia (AU), Konrad Lorenz Institute for Evolution and Cognition Research (AT), University of Groningen (NL), The University of Western Australia (AU), Max Planck Institute for Ornithology (DE), Monash University (AU), Wageningen University & Research (NL)
Climate action
Openalex Percentile: Top 11%
Telomeres, Telomerase, and Senescence
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