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Rad regulation of Ca(V)1.2 channels controls cardiac fight-or-flight response

Fight-or-flight responses involve β-adrenergic-induced increases in heart rate and contractile force. In the present study, we uncover the primary mechanism underlying the heart’s innate contractile reserve. We show that four protein kinase A (PKA)-phosphorylated residues in Rad, a calcium channel i...

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Detalles Bibliográficos
Autores principales: Papa, Arianne, Zakharov, Sergey I., Katchman, Alexander N., Kushner, Jared S., Chen, Bi-xing, Yang, Lin, Liu, Guoxia, Jimenez, Alejandro Sanchez, Eisert, Robyn J., Bradshaw, Gary A., Dun, Wen, Ali, Shah R., Rodriques, Aaron, Zhou, Karen, Topkara, Veli, Yang, Mu, Morrow, John P., Tsai, Emily J., Karlin, Arthur, Wan, Elaine, Kalocsay, Marian, Pitt, Geoffrey S., Colecraft, Henry M., Ben-Johny, Manu, Marx, Steven O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9681059/
https://www.ncbi.nlm.nih.gov/pubmed/36424916
http://dx.doi.org/10.1038/s44161-022-00157-y
Descripción
Sumario:Fight-or-flight responses involve β-adrenergic-induced increases in heart rate and contractile force. In the present study, we uncover the primary mechanism underlying the heart’s innate contractile reserve. We show that four protein kinase A (PKA)-phosphorylated residues in Rad, a calcium channel inhibitor, are crucial for controlling basal calcium current and essential for β-adrenergic augmentation of calcium influx in cardiomyocytes. Even with intact PKA signaling to other proteins modulating calcium handling, preventing adrenergic activation of calcium channels in Rad-phosphosite-mutant mice (4SA-Rad) has profound physiological effects: reduced heart rate with increased pauses, reduced basal contractility, near-complete attenuation of β-adrenergic contractile response and diminished exercise capacity. Conversely, expression of mutant calcium-channel β-subunits that cannot bind 4SA-Rad is sufficient to enhance basal calcium influx and contractility to adrenergically augmented levels of wild-type mice, rescuing the failing heart phenotype of 4SA-Rad mice. Hence, disruption of interactions between Rad and calcium channels constitutes the foundation toward next-generation therapeutics specifically enhancing cardiac contractility.