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Published on: December 11, 2017
Increased heart rate and atherosclerosis: potential implications of ivabradine therapy
Alberto Dominguez-Rodriguez1, Gabriela Blanco-Palacios, Pedro Abreu-Gonzalez
1Alberto Dominguez-Rodriguez, Gabriela Blanco-Palacios, Department of Cardiology, Hospital Universitario de Canarias, Tenerife, E-38320, La Laguna, Spain. adrvdg@hotmail.com
Insights
Reducing elevated heart rate (HR) may offer new cardiovascular disease treatments. Ivabradine, a heart rate-lowering drug, has shown potential in reducing atherosclerotic plaque formation in animal studies.
Area of Science:
- Cardiology and cardiovascular disease research.
- Pharmacological interventions for cardiovascular health.
Background:
- Cardiovascular diseases, particularly coronary artery disease, are leading global causes of mortality.
- Elevated resting heart rate (HR) is linked to increased atherosclerosis progression and plaque rupture risk.
- Endothelial dysfunction and vascular inflammation are associated with higher HR and atherosclerosis pathogenesis.
Discussion:
- Ivabradine, a selective heart rate-lowering agent, inhibits the sinoatrial node's I(f) current.
- Pharmacological HR reduction with ivabradine demonstrated a decrease in atherosclerotic plaque formation in animal models.
- The editorial reviews the potential therapeutic role of ivabradine in managing atherosclerosis.
Key Insights:
- Elevated HR is a risk factor for cardiovascular disease progression and complications.
- Ivabradine's mechanism involves selective heart rate reduction.
- Evidence suggests ivabradine may mitigate atherosclerotic plaque development.
Outlook:
- Further research is warranted to explore ivabradine's efficacy and safety in human atherosclerosis.
- HR reduction could represent a novel therapeutic strategy for cardiovascular disease management.
- Investigating the link between HR, endothelial function, and inflammation may reveal new therapeutic targets.
Abstract:
Despite all the therapeutic advances in the field of cardiology, cardiovascular diseases, and in particular coronary artery disease, remain the leading cause of death and disability worldwide, thereby underlining the importance of acquiring new therapeutic options in this field. A reduction in elevated resting heart rate (HR) has long been postulated as a therapeutic approach in the management of cardiovascular disease. An increased HR has been shown to be associated with increased progression of coronary atherosclerosis in animal models and patients. A high HR has also been associated with a greatly increased risk of plaque rupture in patients with coronary atherosclerosis. Endothelial function may be an important link between HR and atherosclerosis. An increased HR has been shown experimentally to cause endothelial dysfunction. Inflammation plays a significant role in the pathogenesis and progression of atherosclerosis. In the literature, there is data that shows an association between HR and circulating markers of vascular inflammation. In addition, HR reduction by pharmacological intervention with ivabradine (a selective HR-lowering agent that acts by inhibiting the pacemaker ionic current I(f) in sinoatrial node cells) reduces the formation of atherosclerotic plaques in animal models of lipid-induced atherosclerosis. The aim of this editorial is to review the possible role of ivabradine on atherosclerosis.
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