ArticleFrontiers in pharmacology2025
Pharmacological targeting of ferroptosis in hypoxia-induced pulmonary edema: therapeutic potential of ginsenoside Rg3 through activation of the PI3K/AKT pathway.
Article in Frontiers in pharmacology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- Nrf2 as a therapeutic target of ginseng: A comprehensive review from preclinical evidence to clinical applications.Journal of ginseng research · 2026Review
- Ginsenosides: potential therapeutic implications in neurodegenerative diseases by inhibiting ferroptosis.Molecular biology reports · 2026Review
- Review
- Integrated SNP and SV Analyses Reveal Genetic Mechanisms Underlying High-Altitude Adaptation in Goats.Animals : an open access journal from MDPI · 2026Article
- Potential Relationship Between Ferroptosis and Pyroptosis in Myocardial Ischemia/Reperfusion Injury: Molecular Mechanisms and Therapeutic Targets.Reviews in cardiovascular medicine · 2026Review
- Ginsenoside-Mediated Ferroptosis Regulation: Bidirectional Effects and Therapeutic Potential in Diseases.International journal of molecular sciences · 2026Review
- Research progress on high-altitude hypoxia pulmonary injury: pathogenesis and Chinese herbal medicine for prevention and treatment.Frontiers in pharmacology · 2026Review
- HYAL3 as a therapeutic target for pulmonary arterial Hypertension-Cardiomyopathy comorbidity: an integrative analysis combined with machine learning and SHAP value interpretation.Frontiers in pharmacology · 2026Article
- 7-Hydroxyethyl Chrysin Alleviates High Altitude Pulmonary Edema via Activation of the PI3K/AKT Signaling Pathway.Drug design, development and therapy · 2025Article
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Abstract
Background: High-altitude pulmonary edema (HAPE), a severe manifestation of hypoxia-induced pulmonary hypertension, continues to present a major health concern in high-altitude environments due to the absence of efficient preventive measures. This investigation explores the protective influence of ginsenoside Rg3 (G-Rg3), an active substance derived from the botanical drug Methods: A mouse model mimicking exposure to 6000-m altitude (n = 63 C57BL/6 mice) was employed to evaluate the impact of G-Rg3 (15/30 mg/kg) using histopathological, biochemical, and multi-dimensional molecular assessments. Western blotting, network pharmacology and computational simulations were utilized to identify molecular targets of G-Rg3. The role of the PI3K/AKT signaling pathway was further validated through experiments using the PI3K/AKT inhibitor LY294002. Results: Pre-treatment with G-Rg3 effectively alleviated HAPE, maintained the stability of lung ultrastructure, and inhibited inflammatory mediators and oxidative stress indicators. Mechanistically, G-Rg3 prevented ferroptosis by stimulating the PI3K/AKT signaling pathway, as evidenced by the upregulation of protective proteins (GPX4, Nrf2, HO-1, SLC7A11, FTH1, FLC) and the downregulation of iron metabolism regulatory factors (TFRC, COX2). Network pharmacology and molecular docking analysis confirmed that PI3K/AKT is the core target of G-Rg3, and the protective effect disappeared when this pathway was inhibited. G-Rg3 uniquely regulated oxidative stress and inflammation by inhibiting ferroptosis, demonstrating adaptability to high-altitude environments. Conclusion: This research examined the pharmacological impacts and molecular pathways of ginseng active monomers on HAPE, suggesting the potential of G-Rg3 as a promising treatment option for this condition.
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