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Published on: December 11, 2017
Rescue of cardiomyocyte dysfunction by phospholamban ablation does not prevent ventricular failure in genetic
Qiujing Song1, Albrecht G Schmidt, Harvey S Hahn
1Department of Pharmacology and Cell Biophysics, University of Cincinnati Medical Center, Cincinnati, Ohio 45267, USA.
Insights
Ablating phospholamban (PLN) normalized cardiomyocyte calcium cycling and contractility in models of cardiac hypertrophy. However, this did not improve overall heart function or reduce hypertrophy in vivo.
Area of Science:
- Cardiology
- Molecular Biology
- Physiology
Background:
- Cardiac hypertrophy is linked to cardiomyocyte contractile dysfunction due to impaired sarcoplasmic reticulum (SR) Ca(2+) cycling.
- Inhibiting phospholamban (PLN), an SR Ca(2+) inhibitor, has shown promise in treating dilated cardiomyopathy and heart failure.
Purpose of the Study:
- To investigate the efficacy of PLN ablation in correcting cardiac hypertrophy and contractile dysfunction.
- To evaluate PLN ablation's impact on genetic mouse models of cardiac hypertrophy and failure.
Main Methods:
- Utilized Galphaq overexpression and mutant myosin binding protein C (MyBP-C(MUT)) mouse models of cardiac hypertrophy.
- Assessed cardiomyocyte Ca(2+) transients, unloaded fractional shortening, and in vivo cardiac function.
- Examined SR Ca(2+) pump content and signaling pathways (JNK, calcineurin).
Main Results:
- PLN ablation normalized cardiomyocyte Ca(2+) transients and enhanced unloaded fractional shortening in both models.
- No improvement in in vivo cardiac function or reduction in cardiac hypertrophy was observed.
- Activation of Galphaq-associated JNK and calcineurin pathways remained unaffected.
Conclusions:
- PLN ablation effectively restores isolated cardiomyocyte contractility in genetic models of cardiac hypertrophy.
- PLN ablation does not rescue the in vivo cardiomyopathic phenotype associated with Galphaq activation or MyBP-C mutations.
Abstract:
Cardiac hypertrophy, either compensated or decompensated, is associated with cardiomyocyte contractile dysfunction from depressed sarcoplasmic reticulum (SR) Ca(2+) cycling. Normalization of Ca(2+) cycling by ablation or inhibition of the SR inhibitor phospholamban (PLN) has prevented cardiac failure in experimental dilated cardiomyopathy and is a promising therapeutic approach for human heart failure. However, the potential benefits of restoring SR function on primary cardiac hypertrophy, a common antecedent of human heart failure, are unknown. We therefore tested the efficacy of PLN ablation to correct hypertrophy and contractile dysfunction in two well-characterized and highly relevant genetic mouse models of hypertrophy and cardiac failure, Galphaq overexpression and human familial hypertrophic cardiomyopathy mutant myosin binding protein C (MyBP-C(MUT)) expression. In both models, PLN ablation normalized the characteristically prolonged cardiomyocyte Ca(2+) transients and enhanced unloaded fractional shortening with no change in SR Ca(2+) pump content. However, there was no parallel improvement in in vivo cardiac function or hypertrophy in either model. Likewise, the activation of JNK and calcineurin associated with Galphaq overexpression was not affected. Thus, PLN ablation normalized contractility in isolated myocytes, but failed to rescue the cardiomyopathic phenotype elicited by activation of the Galphaq pathway or MyBP-C mutations.
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