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Vascular endothelial growth factor prevents apoptosis and preserves contractile function in hypertrophied infant
Ingeborg Friehs1, Rodrigo Barillas, Nikolay V Vasilyev
1Department of Cardiac Surgery, Perioperative & Pain Medicine, Children's Hospital Boston, Harvard Medical School, 300 Longwood Ave, Bader 279, Boston, Massachusetts 02115, USA.
Insights
Vascular endothelial growth factor (VEGF) treatment reduces heart muscle cell death in cardiac hypertrophy. This preserves heart function and improves survival in pressure-loaded infant hearts.
Area of Science:
- Cardiovascular Research
- Molecular Biology
- Regenerative Medicine
Background:
- Cardiac hypertrophy, an adaptive response to increased workload, can lead to heart failure.
- Cardiomyocyte apoptosis (programmed cell death) contributes to the progression of heart failure.
- Vascular endothelial growth factor (VEGF) enhances capillary density and myocardial perfusion.
Purpose of the Study:
- To investigate the hypothesis that VEGF treatment reduces cardiomyocyte apoptosis in cardiac hypertrophy.
- To determine if VEGF treatment preserves myocardial contractile function in a model of pressure-induced cardiac hypertrophy.
Main Methods:
- Newborn rabbits underwent aortic banding to induce cardiac hypertrophy.
- Hypertrophied animals received intrapericardial administration of recombinant VEGF protein.
- Cardiomyocyte apoptosis was assessed using TUNEL staining and PARP cleavage; cardiac function was evaluated by echocardiography.
Main Results:
- VEGF treatment significantly reduced cardiomyocyte apoptosis compared to untreated hypertrophied hearts.
- VEGF-treated animals showed reduced mortality rates (2/29) versus untreated (14/43).
- VEGF preserved left ventricular mass, prevented dilation, and maintained contractility indices.
Conclusions:
- Impaired capillary growth in hypertrophying myocardium hinders perfusion and substrate delivery.
- VEGF treatment mitigates myocardial apoptosis, enhances survival, and preserves cardiac function.
- Promoting capillary growth via VEGF delays heart failure onset in pressure-loaded infant hearts.
Background:
Cardiac hypertrophy is an adaptive response to increased workload that, if unrelieved, leads to heart failure. It has been reported that cardiomyocyte apoptosis contributes to failure, and that vascular endothelial growth factor (VEGF) treatment of hypertrophied myocardium increases capillary density and improves myocardial perfusion. In this study we hypothesized that VEGF treatment reduces cardiomyocyte apoptosis and thereby preserves myocardial contractile function.
Methods And Results:
Newborn rabbits underwent aortic banding. At 4 and 6 weeks of age, hypertrophied animals were treated with intrapericardial administration of recombinant VEGF protein. Three groups of animals were investigated: age-matched controls (C), untreated hypertrophied (H), and VEGF-treated hypertrophied hearts (T). Cardiomyocyte apoptosis was determined by TUNEL staining and PARP cleavage (immunoblotting of nuclear extracts) and cardiac function by transthoracic echocardiography. Death attributable to severe heart failure occurred in 14 of 43 untreated and 2 of 29 VEGF-treated animals (P<0.01). TUNEL-positive cardiomyocyte nuclei (n/1000 nuclei) were significantly increased in untreated hearts at 5 weeks (H: 10+/-1.8 versus T: 3+/-0.7) and at 7 weeks (H: 13+/-3.6 versus T: 5+/-1.5; P<0.05). Increased apoptosis in untreated hypertrophy was also confirmed by the presence of PARP cleavage (H: 74+/-7 versus T: 41+/-4 arbitrary densitometry units; P<0.05). VEGF treatment preserved left ventricular mass, prevented dilation (T: 1.01+/-0.06 versus H: 0.77+/-0.07; P<0.05), and preserved contractility indices compared with untreated hearts.
Conclusions:
Lack of adaptive capillary growth impairs myocardial perfusion and substrate delivery in hypertrophying myocardium. VEGF treatment reduces myocardial apoptosis and prolongs survival in a model of severe progressive left ventricular hypertrophy. Promoting capillary growth with VEGF reduces apoptosis, preserves myocardial contractile function, and delays the onset of failure in pressure-loaded infant myocardium.
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