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Published on: September 7, 2018
Ferroptosis: a potential therapeutic target in cardio-cerebrovascular diseases
Chenlong Jiang1,2, Yang Yan3, Tianlin Long4
1School of Life Sciences, Northwest University, Xi'an, 710069, Shaanxi, China.
Insights
Ferroptosis, a cell death process, is key in cardio-cerebrovascular diseases (CCVDs). Targeting ferroptosis and using Chinese herbal medicines (CHMs) show promise for new CCVD treatments.
Area of Science:
- Biomedical Science
- Cellular Biology
- Cardiovascular Research
Background:
- Cardio-cerebrovascular diseases (CCVDs) are a leading global cause of mortality with limited effective treatments.
- Ferroptosis, a regulated cell death pathway, is increasingly recognized as a critical factor in CCVD pathogenesis.
- Understanding ferroptosis mechanisms is crucial for developing novel therapeutic strategies.
Purpose of the Study:
- To review the core mechanisms of ferroptosis.
- To elucidate the pathological implications of ferroptosis in various CCVDs.
- To explore the therapeutic potential of targeting ferroptosis and the role of Chinese herbal medicines (CHMs) in CCVD management.
Main Methods:
- Review of existing literature on ferroptosis pathways (GPX4-GSH-System Xc-, NAD(P)H/FSP1/CoQ10 axis).
- Analysis of ferroptosis's role in atherosclerosis, myocardial infarction, ischemia-reperfusion injury, cardiomyopathy, and stroke.
- Investigation into the ferroptosis-mitigating properties of Chinese herbal medicines.
Main Results:
- Ferroptosis is regulated by key pathways involving GPX4, GSH, System Xc-, FSP1, CoQ10, lipid peroxidation, and iron metabolism.
- Inhibiting ferroptosis demonstrates therapeutic potential in preclinical models of various CCVDs.
- Certain Chinese herbal medicines exhibit properties that can mitigate ferroptosis through antioxidant and iron-chelating mechanisms.
Conclusions:
- Ferroptosis is a significant contributor to CCVD pathology, presenting a novel therapeutic target.
- Targeting ferroptosis pathways offers promising avenues for managing CCVDs.
- Chinese herbal medicines provide a natural source of compounds that can modulate ferroptosis, potentially improving outcomes for CCVD patients.
Abstract:
Cardio-cerebrovascular diseases (CCVDs) are the leading cause of global mortality, yet effective treatment options remain limited. Ferroptosis, a novel form of regulated cell death, has emerged as a critical player in various CCVDs, including atherosclerosis, myocardial infarction, ischemia-reperfusion injury, cardiomyopathy, and ischemic/hemorrhagic strokes. This review highlights the core mechanisms of ferroptosis, its pathological implications in CCVDs, and the therapeutic potential of targeting this process. Additionally, it explores the role of Chinese herbal medicines (CHMs) in mitigating ferroptosis, offering novel therapeutic strategies for CCVDs management. Ferroptosis is regulated by several key pathways. The GPX4-GSH-System Xc- axis is central to ferroptosis execution, involving GPX4 using GSH to neutralize lipid peroxides, with system Xc- being crucial for GSH synthesis. The NAD(P)H/FSP1/CoQ10 axis involves FSP1 regenerating CoQ10 via NAD(P)H, inhibiting lipid peroxidation independently of GPX4. Lipid peroxidation, driven by PUFAs and enzymes like ACSL4 and LPCAT3, and iron metabolism, regulated by proteins like TfR1 and ferritin, are also crucial for ferroptosis. Inhibiting ferroptosis shows promise in managing CCVDs. In atherosclerosis, ferroptosis inhibitors reduce iron accumulation and lipid peroxidation. In myocardial infarction, inhibitors protect cardiomyocytes by preserving GPX4 and SLC7A11 levels. In ischemia-reperfusion injury, targeting ferroptosis reduces myocardial and cerebral damage. In diabetic cardiomyopathy, Nrf2 activators alleviate oxidative stress and iron metabolism irregularities. CHMs offer natural compounds that mitigate ferroptosis. They possess antioxidant properties, chelate iron, and modulate signaling pathways like Nrf2 and AMPK. For example, Salvia miltiorrhiza and Astragalus membranaceus reduce oxidative stress, while some CHMs chelate iron, reducing its availability for ferroptosis. In conclusion, ferroptosis plays a pivotal role in CCVDs, and targeting it offers novel therapeutic avenues. CHMs show promise in reducing ferroptosis and improving patient outcomes. Future research should explore combination therapies and further elucidate the molecular interactions in ferroptosis.
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