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Published on: May 22, 2018
The biological effects of ivabradine in cardiovascular disease
Lorenza Speranza1, Sara Franceschelli, Graziano Riccioni
1Department of Medicine and Science of Aging, University G. d'Annunzio, 66123 Chieti, Italy. l.speranza@unich.it
Insights
Ivabradine, a heart rate (HR) lowering drug, offers cardiovascular benefits by reducing cardiac workload. This review explores its direct biological effects on the myocardium and systemic levels, including endothelial and immune functions, relevant to coronary artery disease (CAD).
Area of Science:
- Pharmacology
- Cardiology
- Molecular Biology
Background:
- Elevated heart rate (HR) is a significant cardiovascular risk factor in various patient populations.
- Lowering HR reduces cardiac workload and myocardial oxygen demand, offering prognostic benefits.
- Ivabradine selectively inhibits the If current in the sino-atrial node, reducing HR without other direct cardiovascular effects.
Purpose of the Study:
- To review the biological effects of ivabradine beyond its HR-lowering action.
- To investigate ivabradine's impact on myocardial, endothelial, and immune functions.
- To highlight ivabradine's potential therapeutic effects in coronary artery disease (CAD).
Main Methods:
- Review of experimental studies in animals and in vitro investigations.
- Analysis of ivabradine's mechanism as an 'open-channel' blocker of hHCN4 and 'closed-channel' blocker of HCN1.
- Examination of ivabradine's effects on endothelial function (monocyte chemotactic protein-1, NADPH oxidase) and immune cell migration.
Main Results:
- Ivabradine demonstrates dose-dependent channel blocking activity.
- At the endothelial level, ivabradine reduces pro-inflammatory markers and oxidative stress.
- Ivabradine inhibits chemokine-induced migration of CD4-positive lymphocytes, suggesting immunomodulatory effects.
Conclusions:
- Ivabradine possesses biological effects extending beyond HR reduction.
- These effects include improved endothelial function and immunomodulation, potentially benefiting patients with CAD.
- Further research into these mechanisms may reveal novel therapeutic applications for ivabradine.
Abstract:
A large number of studies in healthy and asymptomatic subjects, as well as patients with already established cardiovascular disease (CAD) have demonstrated that heart rate (HR) is a very important and major independent cardiovascular risk factor for prognosis. Lowering heart rate reduces cardiac work, thereby diminishing myocardial oxygen demand. Several experimental studies in animals, including dogs and pigs, have clarified the beneficial effects of ivabradine associated with HR lowering. Ivabradine is a selective inhibitor of the hyperpolarisation activated cyclic-nucleotide-gated funny current (If) involved in pacemaker generation and responsiveness of the sino-atrial node (SAN), which result in HR reduction with no other apparent direct cardiovascular effects. Several studies show that ivabradine substantially and significantly reduces major risks associated with heart failure when added to guideline-based and evidence-based treatment. However the biological effect of ivabradine have yet to be studied. This effects can appear directly on myocardium or on a systemic level improving endothelial function and modulating immune cell migration. Indeed ivabradine is an 'open-channel' blocker of human hyperpolarization-activated cyclic nucleotide gated channels of type-4 (hHCN4), and a 'closed-channel' blocker of mouse HCN1 channels in a dose-dependent manner. At endothelial level ivabradine decreased monocyte chemotactin protein-1 mRNA expression and exerted a potent anti-oxidative effect through reduction of vascular NADPH oxidase activity. Finally, on an immune level, ivabradine inhibits the chemokine-induced migration of CD4-positive lymphocytes. In this review, we discuss the biological effects of ivabradine and highlight its effects on CAD.
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