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Activin-A, transforming growth factor-beta, and myostatin signaling pathway in experimental dilated cardiomyopathy
Maryam Mahmoudabady1, Myrielle Mathieu, Laurence Dewachter
1Laboratory of Physiology, Université Libre de Bruxelles, Brussels, Belgium.
Background:
The pathogenic mechanisms of dilated cardiomyopathy are still uncertain. A number of cytokines and growth factors participate in the remodeling process of the disease.
Methods:
We investigated the cardiac myostatin, transforming growth factor (TGF)beta, and activin-A/Smad growth inhibitory signaling pathway in experimental dilated cardiomyopathy. Transvenous endomyocardial biopsies of the interventricular septum were taken weekly in 15 beagle dogs during the development of heart failure (HF) induced by rapid pacing over a period of 7 weeks. Genes involved in the myostatin-TGFbeta-activin-A/Smad signaling pathway and the cardiac hypertrophic process were quantified by real-time quantitative polymerase chain reaction. Left ventricular volume, function, and mass were evaluated by echocardiography.
Results:
Overpacing was associated with increased left ventricular volumes and decreased ejection fraction, whereas the left ventricular mass remained unchanged. TGFbeta was increased in moderate HF. Activin-A mRNA expression was 4-fold higher in overt congestive HF than at baseline. A 2-fold decrease of activin type II receptors and activin receptor interacting protein 2 gene expressions were observed, as well as a transient decrease of follistatin. Activin type I receptors, activin receptor interacting protein 1, follistatin-related gene, and myostatin remained unchanged. The inhibitory Smad 7, a negative feedback loop regulator of the Smad pathway, was overexpressed in severe HF. Gene expression of the cyclin-dependent kinase inhibitor p21, a direct target gene of the Smad pathway, was 8-fold up-regulated in HF, whereas cyclin D1 was down-regulated.
Conclusion:
We conclude that tachycardia-induced dilated cardiomyopathy is characterized by gene overexpression of the TGFbeta-activin-A/Smad signaling pathway and their target gene p21 and by the absence of ventricular hypertrophy.
Insights
Tachycardia-induced dilated cardiomyopathy involves the TGFbeta-activin-A/Smad pathway, with increased p21 gene expression and no ventricular hypertrophy. This clarifies mechanisms in heart failure development.
Area of Science:
- Cardiology
- Molecular Biology
- Pathophysiology
Background:
- Dilated cardiomyopathy (DCM) pathogenesis remains unclear, with cytokines and growth factors implicated in cardiac remodeling.
- Understanding these molecular pathways is crucial for identifying therapeutic targets.
Purpose of the Study:
- To investigate the cardiac myostatin, transforming growth factor-beta (TGFβ), and activin-A/Smad signaling pathway in experimental DCM.
- To correlate gene expression changes with cardiac function and structure during heart failure development.
Main Methods:
- Experimental model of DCM induced by rapid pacing in beagle dogs over 7 weeks.
- Analysis of endomyocardial biopsies for gene expression of key signaling pathway components using real-time quantitative PCR.
- Echocardiographic assessment of left ventricular volume, function, and mass.
Main Results:
- Rapid pacing led to increased left ventricular volumes and reduced ejection fraction, without significant changes in ventricular mass.
- Transforming growth factor-beta (TGFβ) and activin-A mRNA expression were elevated in heart failure.
- Overexpression of Smad 7 and its target gene p21 was observed in severe heart failure, while cyclin D1 was downregulated.
Conclusions:
- Tachycardia-induced DCM is characterized by the gene overexpression of the TGFβ-activin-A/Smad signaling pathway and its target gene p21.
- The absence of ventricular hypertrophy despite heart failure suggests a distinct remodeling process.
- These findings elucidate specific molecular mechanisms contributing to tachycardia-induced heart failure.
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