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Updated: Jan 10, 2026

A Preclinical Model of Exertional Heat Stroke in Mice
Published on: July 1, 2021
Targeting c-Jun orchestrates heat stroke-induced myocardial injury and reveals its biomarker potential
Yunfei Xiang1,2,3, Rui Huang2, Xuemei Jiang4
1Department of Traumatology, Chongqing Emergency Medical Center, Chongqing University Central Hospital, School of Medicine, Chongqing University, Chongqing, China.
Insights
Heat stroke (HS) causes early myocardial injury, increasing mortality. This study identifies c-Jun as a key biomarker for diagnosing and predicting HS-induced heart damage, and ZG-10 as a potential therapeutic drug.
Area of Science:
- Cardiovascular Research
- Molecular Biology
- Toxicology
Background:
- Heat stroke (HS) is associated with early myocardial injury and increased mortality.
- Understanding the molecular mechanisms of HS-induced myocardial injury is crucial for developing effective treatments.
Purpose of the Study:
- To identify key genes and pathways involved in heat stroke-induced myocardial injury.
- To discover novel biomarkers for early diagnosis and prognosis of HS-induced myocardial injury.
- To screen for potential therapeutic drugs for HS-induced myocardial injury.
Main Methods:
- Weighted Gene Co-expression Network Analysis (WGCNA) and transcriptome sequencing were used to identify differentially expressed genes (DEGs) in HS myocardial tissues.
- Immune infiltration, functional enrichment, and protein-protein interaction (PPI) network analyses were performed.
- Clinical validation involved ELISA and nomogram construction. Drug screening was conducted using the L1000FWD platform.
- HS mouse and cellular models were used to validate therapeutic efficacy.
Main Results:
- Thirteen candidate DEGs were identified, correlating with macrophages, NK cells, and dendritic cells.
- The MAPK signaling pathway was significantly enriched. JUN was identified as a key hub gene.
- Elevated c-Jun levels in patients with HS myocardial injury showed diagnostic accuracy (AUC=0.781). A prognostic nomogram achieved AUC=0.906.
- ZG-10 was identified as a potential drug, improving cardiac function and reducing inflammation and apoptosis in HS models by inhibiting the JNK/p38 MAPK pathway.
Conclusions:
- c-Jun plays a central role in HS-induced myocardial injury, serving as a valuable biomarker for diagnosis and prognosis.
- ZG-10 represents a novel therapeutic strategy for HS-induced myocardial injury, demonstrating efficacy in preclinical models.
Background:
Patients affected by heat stroke (HS) develop myocardial injury at an early stage and exhibit a significantly higher risk of death than those without myocardial injury.
Methods:
We used WGCNA and myocardial tissue transcriptome sequencing to identify candidate DEGs associated with HS-induced myocardial injury. Immune infiltration and functional enrichment analyses were performed to investigate the correlation between candidate DEGs and immune cell populations and their biological functions. Protein-protein interaction (PPI) network analysis was used to identify hub genes. Clinical validation was performed through ELISA of blood samples from patients with HS, followed by construction of a hub gene-based prognostic nomogram. Additionally, the L1000FWD platform was used to screen potential small-molecule therapeutic drugs. Finally, we established HS mice models and cellular models to validate the therapeutic efficacy and underlying mechanisms of the selected compounds.
Results:
Thirteen candidate DEGs were identified in the HS myocardial tissues. Immune infiltration analysis showed significant positive correlations between these DEGs and macrophages, NK cells, and dendritic cells. Functional enrichment analysis indicated that the candidate DEGs were predominantly enriched in the MAPK signaling pathway. PPI network analysis identified JUN as a key hub gene in HS-induced myocardial injury. Clinical validation showed that c-Jun levels were significantly elevated in patients with than in those without HS myocardial injury (p < 0.001) with an area under the curve (AUC) of 0.781 that indicated diagnostic accuracy. A prognostic nomogram based on c-Jun achieved an AUC of 0.906 for predicting patient outcomes. Furthermore, the L1000FWD platform identified ZG-10 as a potential therapeutic drug. In vivo and in vitro experiments showed that ZG-10 improved cardiac function in HS mouse models, alleviated c-Jun-mediated inflammatory responses and apoptosis in myocardial tissues, and inhibited the JNK/p38 MAPK pathway to downregulate c-Jun expression.
Conclusions:
This study has systematically elucidated the central role of c-Jun in HS-induced myocardial injury. We have provided a novel biomarker for early diagnosis and prognostic evaluation of HS-induced myocardial injury. Additionally, we have identified ZG-10 as a potential therapeutic drug for HS-induced myocardial injury, which is a new treatment strategy for this condition.
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