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Caveolin-3 knock-out mice develop a progressive cardiomyopathy and show hyperactivation of the p42/44 MAPK cascade
Scott E Woodman1, David S Park, Alex W Cohen
1Department of Molecular Pharmacology, Division of Hormone-Dependent Tumor Biology, Albert Einstein College of Medicine, Bronx, New York 10461, USA.
Abstract:
A growing body of evidence suggests that muscle cell caveolae may function as specialized membrane micro-domains in which the dystrophin-glycoprotein complex and cellular signaling molecules reside. Caveolin-3 (Cav-3) is the only caveolin family member expressed in striated muscle cell types (cardiac and skeletal). Interestingly, skeletal muscle fibers from Cav-3 (-/-) knock-out mice show a number of myopathic changes, consistent with a mild-to-moderate muscular dystrophy phenotype. However, it remains unknown whether a loss of Cav-3 affects the phenotypic behavior cardiac myocytes in vivo. Here, we present a detailed characterization of the hearts of Cav-3 knock-out mice. We show that these mice develop a progressive cardiomyopathic phenotype. At four months of age, Cav-3 knock-out hearts display significant hypertrophy, dilation, and reduced fractional shortening, as revealed by gated cardiac MRI and transthoracic echocardiography. Histological analysis reveals marked cardiac myocyte hypertrophy, with accompanying cellular infiltrates and progressive interstitial/peri-vascular fibrosis. Interestingly, loss of Cav-3 expression in the heart does not change the expression or the membrane association of the dystrophin-glycoprotein (DG) complex. However, a marker of the DG complex, alpha-sarcoglycan, was specifically excluded from lipid raft domains in the absence of Cav-3. Because activation of the Ras-p42/44 MAPK pathway in cardiac myocytes can drive cardiac hypertrophy, we next assessed the activation state of this pathway using a phospho-specific antibody probe. We show that p42/44 MAPK (ERK1/2) is hyperactivated in hearts derived from Cav-3 knock-out mice. These results are consistent with previous in vitro data demonstrating that caveolins may function as negative regulators of the p42/44 MAPK cascade. Taken together, our data argue that loss of Cav-3 expression is sufficient to induce a molecular program leading to cardiac myocyte hypertrophy and cardiomyopathy.
Insights
Loss of Caveolin-3 (Cav-3) in mice causes progressive cardiomyopathy, characterized by cardiac hypertrophy and impaired function. This highlights Cav-3
Area of Science:
- Cardiovascular Biology
- Muscle Cell Biology
- Molecular Cardiology
Background:
- Muscle cell caveolae are specialized membrane microdomains housing the dystroglycan complex and signaling molecules.
- Caveolin-3 (Cav-3) is the sole caveolin family member in cardiac and skeletal muscle.
- Skeletal muscle lacking Cav-3 exhibits myopathic changes, but cardiac effects in vivo are unknown.
Purpose of the Study:
- To investigate the in vivo cardiac consequences of Cav-3 deficiency.
- To characterize the development of cardiomyopathy in Cav-3 knock-out mice.
Main Methods:
- Gated cardiac MRI and transthoracic echocardiography for cardiac function assessment.
- Histological analysis of cardiac tissue.
- Western blotting and membrane association studies for protein complex analysis.
- Assessment of Ras-p42/44 MAPK pathway activation.
Main Results:
- Cav-3 knock-out mice develop progressive cardiomyopathy with significant cardiac hypertrophy, dilation, and reduced fractional shortening by four months.
- Histology shows cardiac myocyte hypertrophy, cellular infiltrates, and progressive fibrosis.
- Loss of Cav-3 does not alter dystroglycan complex expression but excludes alpha-sarcoglycan from lipid rafts.
- Hyperactivation of the Ras-p42/44 MAPK (ERK1/2) pathway is observed in Cav-3 deficient hearts.
Conclusions:
- Loss of Cav-3 expression is sufficient to induce cardiac myocyte hypertrophy and cardiomyopathy.
- Cav-3 may act as a negative regulator of the p42/44 MAPK pathway in cardiac myocytes.
- These findings link Cav-3 deficiency to a specific molecular program driving cardiac pathology.