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Published on: September 5, 2016
The role of hepcidin and iron homeostasis in atherosclerosis
Florian Wunderer1, Lisa Traeger2, Haakon H Sigurslid3
1Department of Anesthesiology, Intensive Care Medicine and Pain Therapy, University Hospital Frankfurt, Goethe University, Frankfurt, Germany.
Insights
Iron overload may not directly cause atherosclerosis. New research highlights intracellular macrophage iron and the BMP-hepcidin-ferroportin axis as key factors in cardiovascular disease development and potential therapeutic targets.
Area of Science:
- Cardiovascular Science
- Iron Metabolism
- Molecular Biology
Background:
- Atherosclerotic cardiovascular disease is a leading global cause of mortality.
- The initial 'Iron Hypothesis' proposed stored iron promotes cardiovascular disease, but clinical data showed inconsistencies.
- The 'paradox' of iron overload not increasing atherosclerosis risk led to a focus on intracellular macrophage iron.
Purpose of the Study:
- To review the current understanding of iron homeostasis and hepcidin in atherosclerosis development.
- To explore the Bone morphogenetic protein (BMP)-hepcidin-ferroportin axis as a therapeutic target.
- To clarify the complex role of iron in cardiovascular disease pathophysiology.
Main Methods:
- Review of preclinical and clinical studies on iron metabolism and atherosclerosis.
- Analysis of in vitro and animal studies on iron regulatory signaling pathways.
- Examination of the role of hepcidin and BMP signaling in iron homeostasis and inflammation.
Main Results:
- Contradictory results exist regarding systemic iron levels and atherosclerosis risk.
- Intracellular macrophage iron and the BMP-hepcidin-ferroportin axis are crucial in regulating iron homeostasis.
- Strong links are established between iron homeostasis, BMP signaling, inflammation, and atherosclerosis.
Conclusions:
- The BMP-hepcidin-ferroportin axis represents a novel therapeutic target for cardiovascular disease.
- Understanding iron dysregulation is critical for managing atherosclerosis.
- Further research into iron's complex role in cardiovascular health is warranted.
Abstract:
Atherosclerotic cardiovascular disease is a major burden on global health and a leading cause of death worldwide. The pathophysiology of this chronic disease is complex, involving inflammation, lipoprotein oxidation and accumulation, plaque formation, and calcification. In 1981, Dr. Jerome Sullivan formulated the 'Iron Hypothesis', suggesting that higher levels of stored iron promote cardiovascular diseases, whereas iron deficiency may have an atheroprotective effect. This hypothesis has stimulated research focused on clarifying the role of iron in the development of atherosclerosis. However, preclinical and clinical studies have produced contradictory results and the observation that patients with hemochromatosis do not appear to have an increased risk of atherosclerosis seemed incongruous with Sullivan's initial hypothesis. The 'paradox' of systemic iron overload not being accompanied by an increased risk for atherosclerosis led to a refinement of the iron hypothesis focusing on intracellular macrophage iron. More recent in vitro and animal studies have elucidated the complex signaling pathways regulating iron, with a particular focus on hepcidin, the master regulator of body iron homeostasis. Bone morphogenetic protein (BMP) signaling is the major pathway that is required for induction of hepcidin expression in response to increasing levels of iron. Strong links between iron homeostasis, BMP signaling, inflammation and atherosclerosis have been established in both mechanistic and human studies. This review summarizes the current understanding of the role of iron homeostasis and hepcidin in the development of atherosclerosis and discusses the BMP-hepcidin-ferroportin axis as a novel therapeutic target for the treatment of cardiovascular disease.
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