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.

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