Rad regulation of CaV1.2 channels controls cardiac fight-or-flight response

Author:

Papa ArianneORCID,Zakharov Sergey I.,Katchman Alexander N.,Kushner Jared S.ORCID,Chen Bi-xing,Yang Lin,Liu Guoxia,Jimenez Alejandro Sanchez,Eisert Robyn J.ORCID,Bradshaw Gary A.ORCID,Dun Wen,Ali Shah R.,Rodriques Aaron,Zhou Karen,Topkara Veli,Yang Mu,Morrow John P.,Tsai Emily J.ORCID,Karlin ArthurORCID,Wan Elaine,Kalocsay MarianORCID,Pitt Geoffrey S.ORCID,Colecraft Henry M.,Ben-Johny ManuORCID,Marx Steven O.ORCID

Abstract

AbstractFight-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.

Funder

U.S. Department of Health & Human Services | NIH | National Heart, Lung, and Blood Institute

Publisher

Springer Science and Business Media LLC

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