AMPKγ2 Regulates Cardiac Hypertrophy and Arrhythmias via Interacting With Myosin.
basic_science · Level V
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- Record sourced from PubMed, PMID 42422944.
- Also identified by DOI 10.1161/CIRCRESAHA.126.328910.
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Abstract
Variants in <i>PRKAG2</i> cause hypertrophic cardiomyopathy and conduction disturbances. Although prior studies associated <i>PRKAG2</i>-related hypertrophy with increased glycogen storage, many hypertrophic cardiomyopathy phenotypes remain unexplained. We aimed to uncover how <i>PRKAG2</i> variants induce myocyte hypertrophy and electrical changes during early cardiac development. We generated transgenic zebrafish expressing wild-type or pathogenic variant <i>Prkag2</i> cDNA (Tg<sup>R299Q</sup>) under a myocardium-specific promoter, and examined cardiac electrophysiology, contractile function, and cytoarchitecture during cardiogenesis and in adult hearts. Tg<sup>R299Q</sup> fish showed hypertrophic cardiomyocytes and progressive contractile abnormalities, recapitulating human hypertrophic cardiomyopathy phenotypes. Cardiomyocyte glycogen was elevated in adult but not embryonic hearts. Despite the absence of glycogen accumulation at 6 days postfertilization, Tg<sup>R299Q</sup> hearts showed electrical abnormalities, including reduced conduction velocity and prolonged action potential and Ca<sup>2+</sup> transient durations. We observed decreased AMPK (AMP-activated protein kinase) phosphorylation in the Tg<sup>R299Q</sup> hearts. However, AMPK activation did not rescue the electrophysiological abnormalities in Tg<sup>R299Q</sup>. Proximity ligation assays and coimmunoprecipitation identified a physical interaction between AMPKγ2 and myosin, enhanced by the R299Q variant and accompanied by increased AMPKγ2 localization to the myofilament. NCX (Na<sup>+</sup>/Ca<sup>2+</sup> exchanger) inhibition increased Ca<sup>2+</sup> duration and diastolic Ca<sup>2+</sup> in transgenic zebrafish expressing wild-type <i>Prkag2</i> cDNA but not Tg<sup>R299Q</sup> hearts, indicating reduced free cytosolic Ca<sup>2+</sup> for NCX-mediated extrusion in Tg<sup>R299Q</sup>. These findings suggest that enhanced AMPKγ2-myosin interaction may promote myofilament Ca<sup>2</sup><sup>+</sup> retention, thereby prolonging Ca<sup>2</sup><sup>+</sup> transient duration and action potential duration in the mutant. Notably, the myosin inhibitor mavacamten reduced AMPKγ2-myosin interaction in Tg<sup>R299Q</sup> hearts, and both mavacamten and <i>vmhcl</i> knockdown rescued the early electrophysiological abnormalities. The <i>PRKAG2</i> variant altered cardiac excitability, contractility, and Ca<sup>2+</sup> handling during cardiogenesis, independent of glycogen accumulation. Enhanced interactions between AMPKγ2 and myosin contributed to these early changes. Our study revealed a novel link between cellular energy sensing and contractile machinery, with therapeutic potential for modulating contractile function in cardiomyopathies.