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Published on: February 10, 2013
Heart rate reduction by ivabradine reduces oxidative stress, improves endothelial function, and prevents
Florian Custodis1, Magnus Baumhäkel, Nils Schlimmer
1Klinik für Innere Medizin III, Kardiologie, Angiologie und Internistische Intensivmedizin, Universitätsklinikum des Saarlandes, 66424 Homburg/Saar, Germany.
Insights
Selective heart rate reduction using ivabradine improved endothelial function and reduced atherosclerosis in mice. This study highlights the cardiovascular benefits of targeting heart rate to combat vascular oxidative stress.
Area of Science:
- Cardiovascular Research
- Pharmacology
- Atherosclerosis Research
Background:
- Elevated heart rate is a risk factor for cardiovascular disease.
- The study investigated the impact of selective heart rate reduction on endothelial function and atherogenesis.
- Apolipoprotein E-deficient mice were used as a model system.
Purpose of the Study:
- To test the effects of the I(f) current inhibitor ivabradine on endothelial function and atherosclerosis.
- To determine if selective heart rate reduction influences atherogenesis.
- To evaluate the impact of ivabradine on vascular oxidative stress markers.
Main Methods:
- Male apolipoprotein E-deficient mice were fed a high-cholesterol diet and treated with ivabradine or vehicle for 6 weeks.
- Endothelium-dependent relaxation was assessed in aortic rings.
- Atherosclerotic plaque size, endothelial progenitor cells, and molecular markers of inflammation and oxidative stress were analyzed.
Main Results:
- Ivabradine significantly reduced heart rate by 13.4% without altering blood pressure or lipid levels.
- Endothelium-dependent relaxation improved, and atherosclerotic plaque size decreased significantly in ivabradine-treated mice.
- Ivabradine reduced vascular NADPH oxidase activity and markers of oxidative stress, but did not affect endothelial progenitor cells or specific adhesion molecules.
Conclusions:
- Selective heart rate reduction with ivabradine demonstrates beneficial effects on vascular health.
- Ivabradine improves endothelial function and reduces atherosclerotic plaque formation in a mouse model.
- Targeting heart rate may be a viable strategy for mitigating cardiovascular morbidity associated with elevated heart rate.
Background:
Elevated heart rate is associated with increased cardiovascular morbidity. We hypothesized that selective heart rate reduction may influence endothelial function and atherogenesis and tested the effects of the I(f) current inhibitor ivabradine in apolipoprotein E-deficient mice.
Methods And Results:
Male apolipoprotein E-deficient mice fed a high-cholesterol diet were treated with ivabradine (10 mg . kg(-1) . d(-1)) or vehicle for 6 weeks (n=10 per group). Ivabradine reduced heart rate by 13.4% (472+/-9 versus 545+/-11 bpm; P<0.01) but did not alter blood pressure or lipid levels. Endothelium-dependent relaxation of aortic rings was significantly improved in ivabradine-fed animals (P<0.01). Ivabradine decreased atherosclerotic plaque size in the aortic root by >40% and in the ascending aorta by >70% (P<0.05). Heart rate reduction by ivabradine had no effect on the number of endothelial progenitor cells and did not alter aortic endothelial nitric oxide synthase, phosphorylated Akt, vascular cell adhesion molecule-1, or intercellular adhesion molecule-1 expression but decreased monocyte chemotactic protein-1 mRNA and exerted potent antioxidative effects. Ivabradine reduced vascular NADPH oxidase activity to 48+/-6% and decreased markers of superoxide production and lipid peroxidation in the aortic wall (P<0.05). The in vivo effects of ivabradine were absent at a dose that did not lower heart rate, in aortic rings treated ex vivo, and in cultured vascular cells. In contrast to ivabradine, treatment with hydralazine (25 mg . kg(-1) . d(-1) for 6 weeks) reduced blood pressure (-15%) but increased heart rate (37%) and did not improve endothelial function, atherosclerosis, or oxidative stress.
Conclusions:
Selective heart rate reduction with ivabradine decreases markers of vascular oxidative stress, improves endothelial function, and reduces atherosclerotic plaque formation in apolipoprotein E-deficient mice.
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