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Updated: Mar 9, 2026

Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
Ferroptosis in cardiovascular diseases: molecular mechanisms and a novel therapeutic target
Suli Yu1, Zhen Pang2, Hong Fang3
1Limb Function Reconstruction Center, Jing'an District Centre Hospital of Shanghai, Fudan University, Shanghai, China. yusuli.ysl@foxmail.com.
Insights
Ferroptosis, a cell death process involving iron and lipid peroxidation, drives cardiovascular diseases. Targeting ferroptosis offers a promising avenue for new diagnostics and therapies to combat heart conditions.
Area of Science:
- Biochemistry
- Cardiovascular Medicine
- Cell Biology
Background:
- Ferroptosis, a regulated cell death pathway, is implicated in cardiovascular diseases (CVDs), the leading cause of mortality.
- Preclinical studies show ferroptosis modulation can reduce cardiovascular injury, but clinical application is hindered by knowledge gaps and lack of targeted treatments.
Purpose of the Study:
- To systematically review the molecular mechanisms of ferroptosis.
- To explore ferroptosis's role in various cardiovascular diseases.
- To evaluate emerging therapeutic strategies and biomarkers for clinical translation.
Main Methods:
- Systematic review of ferroptosis molecular architecture, including iron homeostasis and lipid peroxidation.
- Survey of ferroptosis's pathological roles in atherosclerosis, ischemia-reperfusion injury, heart failure, cardiomyopathies, and hypertensive remodeling.
- Evaluation of therapeutic approaches (iron chelation, antioxidants, GPX4 modulators, nanomedicine) and biomarkers (lipids, iron indices, ncRNAs, imaging).
Main Results:
- Ferroptosis involves a core machinery of iron and lipid peroxidation, counteracted by antioxidant systems.
- Ferroptosis contributes to atherosclerotic plaque instability, myocardial ischemia-reperfusion injury, heart failure, cardiomyopathies, and hypertensive cardiac remodeling.
- Emerging therapies and biomarkers show potential for clinical translation in managing ferroptosis-related CVDs.
Conclusions:
- Ferroptosis is a fundamental driver of cardiovascular pathology.
- Targeting ferroptosis presents a promising frontier for developing precision diagnostics and therapies for cardiovascular diseases.
- Further research is needed to bridge the gap between preclinical findings and clinical application for ferroptosis-based interventions.
Abstract:
Ferroptosis, a regulated cell death modality driven by iron accumulation and lipid peroxidation, has emerged as a pivotal pathophysiological mechanism across a broad spectrum of cardiovascular diseases (CVDs), which remain the leading cause of global mortality. Although robust preclinical evidence indicates that modulation of ferroptosis attenuates myocardial and vascular injury, clinical translation is constrained by incomplete understanding of context-specific roles, the paucity of validated biomarkers, and the absence of targeted therapeutics with acceptable safety profiles. In this Review, we systematically characterizes the molecular architecture underlying ferroptosis, focusing on its core machinery governing iron homeostasis and lipid peroxidation, as well as the principal antioxidant defense systems that counteract this process. We subsequently survey the pathological contributions of ferroptosis across CVDs, detailing its involvement in atherosclerotic plaque instability, myocardial ischemia-reperfusion injury, heart failure progression, cardiomyopathies, and hypertensive cardiac remodeling. Furthermore, we evaluate emerging therapeutic strategies-ranging from iron chelation and radical-trapping antioxidants to GPX4-modulating agents and advanced nanomedicine-based delivery platforms-and critically appraise the landscape of candidate biomarkers indispensable for clinical translation, encompassing circulating lipid peroxidation products, iron metabolism indices, regulatory non-coding RNAs, and advanced imaging surrogates.By integrating mechanistic insights with translational perspectives, this Review positions ferroptosis as both a fundamental driver of cardiovascular pathology and a promising frontier for the development of precision diagnostics and targeted therapies aimed at mitigating the global burden of CVD.
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