Iron and Copper Homeostasis in Cardiometabolic Disease: Therapeutic Potential of Chelators
Joanna Izabela Lachowicz1, Paweł Gać1
1Department of Environmental Health, Occupational Medicine and Epidemiology, Wroclaw Medical University, Mikulicza-Radeckiego 7, 50-368 Wroclaw, Poland.
Insights
Iron and copper dysregulation drive cardiometabolic diseases via ferroptosis and cuproptosis. Targeting the iron-copper axis offers new therapeutic strategies for conditions like heart disease and diabetes.
Area of Science:
- Biochemistry
- Cell Biology
- Cardiovascular Medicine
Background:
- Cardiometabolic diseases represent a significant global health challenge.
- Iron and copper homeostasis dysregulation is increasingly linked to disease pathogenesis.
- Ferroptosis and cuproptosis, metal-dependent cell death forms, are key mechanisms involved.
Purpose of the Study:
- To review the mechanistic understanding of iron- and copper-mediated cell death.
- To explore the convergence of ferroptosis and cuproptosis at shared metabolic vulnerabilities.
- To highlight novel biomarkers and therapeutic targets in cardiometabolic diseases.
Main Methods:
- Integration of single-cell transcriptomics, lipidomics, and metallomics data.
- Application of machine-learning-derived gene signatures.
- Synthesis of current mechanistic knowledge on iron and copper metabolism in cell death.
Main Results:
- Identified shared metabolic vulnerabilities including glutathione depletion and TCA cycle dependence.
- Highlighted potential biomarkers and therapeutic nodes for coronary artery disease, heart failure, and diabetes.
- Discussed therapeutic strategies involving metal chelators, antioxidants, and targeted delivery systems.
Conclusions:
- The iron-copper axis is a unified and targetable mechanism in cardiometabolic diseases.
- Metal-targeting therapies, including chelators and novel complexes, show promise for disease management.
- Further clinical trials are needed to overcome limitations in biomarker variability and systemic safety.
Abstract:
Cardiometabolic diseases remain a leading global health burden, and growing evidence indicates that dysregulation of iron and copper homeostasis plays a central role in their pathogenesis. Two metal-dependent forms of regulated cell death-ferroptosis and cuproptosis-have recently emerged as key mechanisms linking redox imbalance, mitochondrial dysfunction, vascular injury, and metabolic deterioration. This review synthesizes current mechanistic knowledge on iron- and copper-mediated cell death, with emphasis on their convergence at shared metabolic vulnerabilities, including glutathione depletion, instability of iron-sulfur clusters, and tricarboxylic acid cycle dependence. We integrate insights from single-cell transcriptomics, lipidomics, and metallomics with machine-learning-derived gene signatures to highlight novel biomarkers and vulnerability nodes relevant to coronary artery disease, myocardial infarction, heart failure, atherosclerosis, and diabetic complications. Special focus is placed on the therapeutic potential of metal chelators and metal-targeting pharmacological strategies, including mitochondria-directed copper depletion, iron chelation, radical-trapping antioxidants, copper ionophores, and dual-action approaches capable of rebalancing both metals simultaneously. Innovative delivery systems, such as targeted nanocarriers and copper-modulating microbubbles, are discussed in the context of precision redox medicine. Despite rapid progress, translation remains limited by biomarker variability, systemic safety concerns, and the lack of large, prospective clinical trials. Overall, the review positions the iron-copper axis as a mechanistically unified and therapeutically tractable target, offering new perspectives for the development of chelators and metal complexes in cardiometabolic disease management.
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