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Published on: December 2, 2016
Effects of fenofibrate on cardiac remodeling in aldosterone-induced hypertension
Nathan K Lebrasseur1, Toni-Ann S Duhaney, Deepa S De Silva
1Muscle and Aging Research Unit, Boston University School of Medicine, MA 02118, USA.
Insights
Fenofibrate treatment improved cardiac remodeling in a mouse model of aldosterone-induced hypertension. This drug reduced left ventricular (LV) hypertrophy and fibrosis without affecting blood pressure, suggesting a novel therapeutic approach for heart failure.
Area of Science:
- Cardiovascular Research
- Pharmacology
- Molecular Biology
Background:
- Hypertension and cardiac remodeling are linked to myocardial fibrosis, left ventricular (LV) hypertrophy, and diastolic heart failure.
- Fenofibrate is known to suppress aldosterone-mediated increases in myocyte matrix metalloproteinase activity and extracellular signal-regulated kinase phosphorylation.
Purpose of the Study:
- To investigate whether fenofibrate, a peroxisome proliferator-activated receptor-alpha agonist, can improve cardiac remodeling in a model of aldosterone-induced hypertension and LV hypertrophy.
Main Methods:
- Twelve-week-old uninephrectomized FVB mice received 1% NaCl drinking water, with mini-osmotic pumps delivering saline or aldosterone for 4 weeks.
- Mice were either untreated or treated with fenofibrate (100 mg/kg/day) for 1 week before and 4 weeks after surgery.
- Evaluated systolic blood pressure, LV dimensions, LV hypertrophy, fractional shortening, matrix metalloproteinase-2/tissue inhibitors of metalloproteinase-2 ratio, fibrosis, and protein expression of transforming growth factor-beta, collagen types I and III, and related metabolic markers.
Main Results:
- Aldosterone increased systolic blood pressure, but fenofibrate did not affect this. However, fenofibrate significantly attenuated aldosterone-induced increases in LV dimensions and LV hypertrophy.
- Fenofibrate improved percent LV fractional shortening and ameliorated increased matrix metalloproteinase-2/tissue inhibitors of metalloproteinase-2 ratio and fibrosis.
- Fenofibrate decreased transforming growth factor-beta, collagen type III, and collagen type I protein expression, while altering expression of PPAR-alpha, PGC-1alpha, ACC, UCP-3, and MCAD, suggesting independence from fatty acid oxidation.
Conclusions:
- Fenofibrate effectively improved aldosterone-induced LV hypertrophy and cardiac remodeling, characterized by decreased fibrosis and altered extracellular matrix composition.
- The beneficial effects of fenofibrate on myocardial remodeling were independent of its impact on blood pressure.
- These findings suggest that fenofibrate may represent a potential therapeutic strategy for managing cardiac remodeling and heart failure associated with hypertension.
Abstract:
Hypertension and cardiac remodeling are associated with myocardial fibrosis, left ventricular (LV) hypertrophy, and diastolic heart failure. Fenofibrate suppresses aldosterone-mediated increases in myocyte matrix metalloproteinase activity and extracellular signal-regulated kinase phosphorylation. It is unknown whether the peroxisome proliferator-activated receptor-alpha agonist, fenofibrate, improves cardiac remodeling in a model of aldosterone-induced hypertension and LV hypertrophy. Twelve-week-old uninephrectomized FVB mice received 1% NaCl drinking water. Miniosmotic pumps delivered saline or aldosterone for 4 weeks. Mice were either untreated (n=14) or treated with fenofibrate 100 mg/kg per day (n=12) for 1 week before and 4 weeks after surgery. Aldosterone increased systolic blood pressure in untreated mice versus saline-untreated mice (134+/-3 versus 91+/-3 mm Hg; P<0.01). This was unaffected by fenofibrate (131+/-3 mm Hg). Aldosterone increased LV end-diastolic and end-systolic dimensions, which were significantly attenuated by fenofibrate (3.8+/-0.1 versus 3.5+/-0.1 mm, and 1.5+/-0.1 versus 1.15+/-0.1 mm, respectively). Fenofibrate also decreased aldosterone-induced LV hypertrophy (LV weight/body weight, 4.1+/-0.2 versus 4.6+/-0.1 mg/g) and improved percent LV fractional shortening (67+/-7% versus 60+/-2%). Additionally, fenofibrate ameliorated the increased matrix metalloproteinase-2/tissue inhibitors of metalloproteinase-2 ratio and fibrosis seen in aldosterone-untreated hearts (P<0.05 for both). Furthermore, in aldosterone-untreated hearts, fenofibrate decreased transforming growth factor-beta, collagen type III (P<0.05 for both), and collagen type I (P<0.01) protein expression. Conversely fenofibrate increased peroxisome proliferator-activated receptor-alpha, peroxisome proliferator-activated receptor-gamma coactivator-1alpha expression, and acetyl coenzyme A carboxylase phosphorylation (P<0.05 for all) in aldosterone-infused hearts; uncoupling protein-3 and medium-chain acyl coenzyme A dehydrogenase protein expression decreased with fenofibrate (P<0.05 and P<0.01, respectively, versus aldosterone-infused), suggesting that improved myocardial remodeling is independent of fatty acid oxidation. Thus, fenofibrate improved aldosterone-induced LV hypertrophy independently of an effect on blood pressure with decreased fibrosis and altered extracellular matrix.
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