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March 18, 2026Medicine & Science in Sports & Exercise0 citations

Heat Acclimation Training Attenuates Oxidative Stress and Improves Mitochondrial Function to Protect the Heart from Exertional Heat Stroke in Mice

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PHPeng HuangZRZhijian RaoSLShijie Liu

Key Points

  • The study aims to explore the protective effects of heat acclimation training on cardiac injury induced by exertional heat stroke in mice, focusing on underlying mechanisms.
  • Used a C57BL/6N mouse model to assess myocardial injury from exertional heat stroke.
  • Cardiac injury assessed using plasma biomarkers, echocardiography, and histopathology.
  • Mitochondrial function evaluated through transmission electron microscopy and O2K respirometry.
  • Transcriptomic analysis performed to link injury with oxidative stress and mitochondrial dysfunction.
  • EHS caused significant myocardial structural damage and elevated cardiac troponin I levels.
  • Mitochondrial dysfunction and oxidative stress were associated with cardiac damage.
  • Heat acclimation training significantly reduced myocardial damage and restored mitochondrial function.
  • Training improved thermoregulatory capacity and enhanced aerobic endurance under heat stress.

Abstract

Introduction: Exertional heat stroke (EHS) leads to cardiac structural damage and functional impairment. Heat acclimation training may serve as an effective strategy to prevent and mitigate such damage, yet the underlying molecular and cellular alterations remain unclear. Methods: A C57BL/6N mouse model was used to study EHS-induced myocardial injury and evaluate the cardioprotective effects and mechanisms of heat acclimation training. Cardiac injury was assessed via plasma biomarkers, echocardiography, and histopathology, and transcriptomic analysis revealed links among injury, oxidative stress, and mitochondrial alterations. Transmission electron microscopy, O2K respirometry, and redox measurements further elucidated the mechanisms underlying mitochondrial structural and functional changes. Results: EHS was associated with structural damage to myocardial tissue, including myocardial fibrosis, pathological echocardiographic changes and a substantial elevation of the myocardial injury biomarker (cardiac troponin I). Mitochondrial structural disruption, impaired respiratory capacity, decreased adenosine triphosphate production and disrupted redox balance were identified as potential contributors to these pathological changes. HA training was associated with attenuated EHS-induced myocardial damage, as evidenced by the amelioration of cardiac dysfunction and histopathological alterations, mitigation of mitochondrial structural damage, restoration of mitochondrial function and increase in antioxidant capacity. Furthermore, HA training enhanced the thermoregulatory capacity and aerobic endurance of mice under high-temperature conditions. Transcriptomic analysis revealed that biological processes and signalling pathways enriched in differentially expressed genes with mitochondrial dysfunction and oxidative stress. Conclusion: This work identifies transcriptional alterations and signaling pathways associated with EHS-induced myocardial injury, suggesting pivotal roles for mitochondrial dysfunction and oxidative stress. Additionally, this research provides a theoretical basis and potential intervention targets for the prevention and mitigation of heat stress-induced cardiovascular damage through HA training.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69ba428e4e9516ffd37a2e15https://doi.org/10.1249/mss.0000000000003971
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