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Published on: August 18, 2016
Secondary coronary artery vasospasm promotes cardiomyopathy progression
Matthew T Wheeler1, Claudia E Korcarz, Keith A Collins
1Department of Molecular Genetics and Cell Biology, Section of Cardiology, University of Chicago, Chicago, Illinois, USA.
Insights
Genetic defects causing cardiomyopathy in gamma-sarcoglycan mutant mice are linked to coronary artery vasospasm. Treating these mice with verapamil reduced vasospasm and improved cardiac function, suggesting a therapeutic target.
Area of Science:
- Cardiovascular Research
- Genetics
- Pharmacology
Background:
- Genetic defects in the sarcoglycan complex cause cardiomyopathy with focal degeneration.
- An infarct-like pattern suggests coronary artery vasospasm as a potential underlying mechanism.
Purpose of the Study:
- To investigate the role of coronary artery vasospasm in gamma-sarcoglycan-deficient cardiomyopathy.
- To evaluate the therapeutic potential of verapamil in mitigating this condition.
Main Methods:
- Evaluation of coronary vasculature in gamma-sarcoglycan mutant mice.
- Treatment of mutant mice with the calcium channel antagonist verapamil.
- Assessment of cardiac function using echocardiography.
Main Results:
- Microvascular filling defects consistent with vasospasm were observed in mutant mice.
- Verapamil treatment eliminated vasospasm and improved histological and functional measures of cardiomyopathy.
- Significant improvements were noted in left ventricular fractional shortening, aortic outflow velocity, and cardiac index in treated mice.
Conclusions:
- Coronary artery vasospasm, an extrinsic process, contributes to cardiomyopathy progression in gamma-sarcoglycan deficiency.
- Verapamil effectively targets secondary vasospasm, offering a therapeutic strategy to limit disease advancement.
Abstract:
Genetic defects in the plasma membrane-associated sarcoglycan complex produce cardiomyopathy characterized by focal degeneration. The infarct-like pattern of cardiac degeneration has led to the hypothesis that coronary artery vasospasm underlies cardiomyopathy in this disorder. We evaluated the coronary vasculature of gamma-sarcoglycan mutant mice and found microvascular filling defects consistent with arterial vasospasm. However, the vascular smooth muscle sarcoglycan complex was intact in the coronary arteries of gamma-sarcoglycan hearts with perturbation of the sarcoglycan complex only within the adjacent myocytes. Thus, in this model, coronary artery vasospasm derives from a vascular smooth muscle-cell extrinsic process. To reduce this secondary vasospasm, we treated gamma-sarcoglycan-deficient mice with the calcium channel antagonist verapamil. Verapamil treatment eliminated evidence of vasospasm and ameliorated histological and functional evidence of cardiomyopathic progression. Echocardiography of verapamil-treated, gamma-sarcoglycan-null mice showed an improvement in left ventricular fractional shortening (44.3 +/- 13.3% treated versus 37.4 +/- 15.3% untreated), maximal velocity at the aortic outflow tract (114.9 +/- 27.9 cm/second versus 92.8 +/- 22.7 cm/second), and cardiac index (1.06 +/- 0.30 ml/minute/g versus 0.67 +/- 0.16 ml/minute/g, P < 0.05). These data indicate that secondary vasospasm contributes to the development of cardiomyopathy and is an important therapeutic target to limit cardiomyopathy progression.
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