Ca 2+ /Calmodulin-Dependent Protein Kinase II Phosphorylation of Ryanodine Receptor Does Affect Calcium Sparks in Mouse Ventricular Myocytes

Author:

Guo Tao1,Zhang Tong1,Mestril Ruben1,Bers Donald M.1

Affiliation:

1. From the Department of Physiology and Cardiovascular Institute (T.G., R.M., D.M.B.), Loyola University Chicago, Stritch School of Medicine, Maywood, IL; and the Department of Pharmacology (T.Z.), University of California–San Diego.

Abstract

Previous studies in transgenic mice and with isolated ryanodine receptors (RyR) have indicated that Ca 2+ -calmodulin-dependent protein kinase II (CaMKII) can phosphorylate RyR and activate local diastolic sarcoplasmic reticulum (SR) Ca 2+ release events (Ca 2+ sparks) and RyR channel opening. Here we use relatively controlled physiological conditions in saponin-permeabilized wild type (WT) and phospholamban knockout (PLB-KO) mouse ventricular myocytes to test whether exogenous preactivated CaMKII or endogenous CaMKII can enhance resting Ca 2+ sparks. PLB-KO mice were used to preclude ancillary effects of CaMKII mediated by phospholamban phosphorylation. In both WT and PLB-KO myocytes, Ca 2+ spark frequency was increased by both preactivated exogenous CaMKII and endogenous CaMKII. This effect was abolished by CaMKII inhibitor peptides. In contrast, protein kinase A catalytic subunit also enhanced Ca 2+ spark frequency in WT, but had no effect in PLB-KO. Both endogenous and exogenous CaMKII increased SR Ca 2+ content in WT (presumably via PLB phosphorylation), but not in PLB-KO. Exogenous calmodulin decreased Ca 2+ spark frequency in both WT and PLB-KO (K 0.5 ≈100 nmol/L). Endogenous CaMKII (at 500 nmol/L [Ca 2+ ]) phosphorylated RyR as completely in <4 minutes as the maximum achieved by preactivated exogenous CaMKII. After CaMKII activation Ca 2+ sparks were longer in duration, and more frequent propagating SR Ca 2+ release events were observed. We conclude that CaMKII-dependent phosphorylation of RyR by endogenous associated CaMKII (but not PKA-dependent phosphorylation) increases resting SR Ca 2+ release or leak. Moreover, this may explain the enhanced SR diastolic Ca 2+ leak and certain triggered arrhythmias seen in heart failure.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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