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PTRF/Cavin-1 Deficiency Causes Cardiac Dysfunction Accompanied by Cardiomyocyte Hypertrophy and Cardiac Fibrosis
Takuya Taniguchi1, Naoki Maruyama1, Takehiro Ogata1
1Department of Cardiovascular Medicine, Graduate School of Medical Science, Kyoto Prefectural University of Medicine, Kyoto 602-8566, Japan.
Insights
Loss of PTRF/Cavin-1 causes cardiac problems, including cardiomyocyte hypertrophy and cardiomyopathy, partly due to reduced caveolin-3 expression in the heart.
Area of Science:
- Cardiovascular Biology
- Molecular Genetics
- Cell Biology
Background:
- Mutations in the PTRF/Cavin-1 gene lead to congenital generalized lipodystrophy type 4 (CGL4), a condition linked to myopathy and cardiac issues like long-QT syndrome.
- PTRF/Cavin-1 deficiency reduces caveolae and caveolin-3 (Cav3) in skeletal muscle, and Cav3 deficiency in the heart causes cardiac hypertrophy.
- The specific impact of PTRF/Cavin-1 loss on cardiac morphology and function remained unclear.
Purpose of the Study:
- To investigate the cardiac effects of PTRF/Cavin-1 deficiency.
- To characterize the heart phenotype in PTRF/Cavin-1-null (PTRF-/-) mice.
Main Methods:
- Electron microscopy to assess caveolae.
- Echocardiography to evaluate cardiac function.
- Electrocardiography to analyze heart rhythm.
- Histological analysis for structural changes.
- Western blotting and quantitative RT-PCR for protein and gene expression analysis.
Main Results:
- PTRF-/- mice exhibited reduced caveolae in cardiomyocytes.
- Progressive left ventricular wall thickening and reduced fractional shortening were observed.
- Electrocardiography showed low voltages and wide QRS complexes.
- Histology revealed cardiomyocyte hypertrophy and fibrosis.
- Cav3 expression was suppressed, and ERK1/2 was activated in PTRF-/- hearts.
Conclusions:
- Loss of PTRF/Cavin-1 induces cardiomyocyte hypertrophy and cardiomyopathy.
- This cardiac dysfunction is partly mediated by Cav3 reduction.
- PTRF/Cavin-1 deficiency triggers a molecular program leading to heart disease.
Abstract:
Mutations in the PTRF/Cavin-1 gene cause congenital generalized lipodystrophy type 4 (CGL4) associated with myopathy. Additionally, long-QT syndrome and fatal cardiac arrhythmia are observed in patients with CGL4 who have homozygous PTRF/Cavin-1 mutations. PTRF/Cavin-1 deficiency shows reductions of caveolae and caveolin-3 (Cav3) protein expression in skeletal muscle, and Cav3 deficiency in the heart causes cardiac hypertrophy with loss of caveolae. However, it remains unknown how loss of PTRF/Cavin-1 affects cardiac morphology and function. Here, we present a characterization of the hearts of PTRF/Cavin-1-null (PTRF-/-) mice. Electron microscopy revealed the reduction of caveolae in cardiomyocytes of PTRF-/- mice. PTRF-/- mice at 16 weeks of age developed a progressive cardiomyopathic phenotype with wall thickening of left ventricles and reduced fractional shortening evaluated by echocardiography. Electrocardiography revealed that PTRF-/- mice at 24 weeks of age had low voltages and wide QRS complexes in limb leads. Histological analysis showed cardiomyocyte hypertrophy accompanied by progressive interstitial/perivascular fibrosis. Hypertrophy-related fetal gene expression was also induced in PTRF-/- hearts. Western blotting analysis and quantitative RT-PCR revealed that Cav3 expression was suppressed in PTRF-/- hearts compared with that in wild-type (WT) ones. ERK1/2 was activated in PTRF-/- hearts compared with that in WT ones. These results suggest that loss of PTRF/Cavin-1 protein expression is sufficient to induce a molecular program leading to cardiomyocyte hypertrophy and cardiomyopathy, which is partly attributable to Cav3 reduction in the heart.
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