Cardiac myosin binding protein-C Ser<sup>302</sup> phosphorylation regulates cardiac β-adrenergic reserve.

Mamidi, Ranganath; Gresham, Kenneth S; Li, Jiayang; Stelzer, Julian E · Sci Adv · 2017

basic_science · Level V

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Abstract

Phosphorylation of cardiac myosin binding protein-C (MyBP-C) modulates cardiac contractile function; however, the specific roles of individual serines (Ser) within the M-domain that are targets for β-adrenergic signaling are not known. Recently, we demonstrated that significant accelerations in in vivo pressure development following β-agonist infusion can occur in transgenic (TG) mouse hearts expressing phospho-ablated Ser<sup>282</sup> (that is, TG<sup>S282A</sup>) but not in hearts expressing phospho-ablation of all three serines [that is, Ser<sup>273</sup>, Ser<sup>282</sup>, and Ser<sup>302</sup> (TG<sup>3SA</sup>)], suggesting an important modulatory role for other Ser residues. In this regard, there is evidence that Ser<sup>302</sup> phosphorylation may be a key contributor to the β-agonist-induced positive inotropic responses in the myocardium, but its precise functional role has not been established. Thus, to determine the in vivo and in vitro functional roles of Ser<sup>302</sup> phosphorylation, we generated TG mice expressing nonphosphorylatable Ser<sup>302</sup> (that is, TG<sup>S302A</sup>). Left ventricular pressure-volume measurements revealed that TG<sup>S302A</sup> mice displayed no accelerations in the rate of systolic pressure rise and an inability to maintain systolic pressure following dobutamine infusion similar to TG<sup>3SA</sup> mice, implicating Ser<sup>302</sup> phosphorylation as a critical regulator of enhanced systolic performance during β-adrenergic stress. Dynamic strain-induced cross-bridge (XB) measurements in skinned myocardium isolated from TG<sup>S302A</sup> hearts showed that the molecular basis for impaired β-adrenergic-mediated enhancements in systolic function is due to the absence of protein kinase A-mediated accelerations in the rate of cooperative XB recruitment. These results demonstrate that Ser<sup>302</sup> phosphorylation regulates cardiac contractile reserve by enhancing contractile responses during β-adrenergic stress.

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