Key result
CaMKIIδC overexpression shifted the voltage dependence of Na+ channel availability by -6 mV and enhanced intermediate inactivation, predisposing to ventricular tachyarrhythmias.
Why the study?
Does CaMKIIdeltaC overexpression alter Na+ channel gating and increase the propensity for ventricular tachyarrhythmias in ventricular myocytes?
Does CaMKIIdeltaC overexpression alter Na+ channel gating and increase the propensity for ventricular tachyarrhythmias in ventricular myocytes?
Absolute Event Rate: -89.7% vs -83.5%
p-value: p=<0.05
CaMKII associates with and phosphorylates cardiac Na+ channels, altering their gating to enhance late INa and reduce availability at high heart rates, which may contribute to arrhythmogenesis in heart failure.
Altered Na+ gating by CaMKIIδC may promote ventricular tachyarrhythmias in heart failure models; leaves open whether CaMKII inhibition prevents arrhythmias in patients.
In heart failure (HF), Ca(2+)/calmodulin kinase II (CaMKII) expression is increased. Altered Na(+) channel gating is linked to and may promote ventricular tachyarrhythmias (VTs) in HF. Calmodulin regulates Na(+) channel gating, in part perhaps via CaMKII. We investigated effects of adenovirus-mediated (acute) and Tg (chronic) overexpression of cytosolic CaMKIIdelta(C) on Na(+) current (I(Na)) in rabbit and mouse ventricular myocytes, respectively (in whole-cell patch clamp). Both acute and chronic CaMKIIdelta(C) overexpression shifted voltage dependence of Na(+) channel availability by -6 mV (P < 0.05), and the shift was Ca(2+) dependent. CaMKII also enhanced intermediate inactivation and slowed recovery from inactivation (prevented by CaMKII inhibitors autocamtide 2-related inhibitory peptide [AIP] or KN93). CaMKIIdelta(C) markedly increased persistent (late) inward I(Na) and intracellular Na(+) concentration (as measured by the Na(+) indicator sodium-binding benzofuran isophthalate [SBFI]), which was prevented by CaMKII inhibition in the case of acute CaMKIIdelta(C) overexpression. CaMKII coimmunoprecipitates with and phosphorylates Na(+) channels. In vivo, transgenic CaMKIIdelta(C) overexpression prolonged QRS duration and repolarization (QT intervals), decreased effective refractory periods, and increased the propensity to develop VT. We conclude that CaMKII associates with and phosphorylates cardiac Na(+) channels. This alters I(Na) gating to reduce availability at high heart rate, while enhancing late I(Na) (which could prolong action potential duration). In mice, enhanced CaMKIIdelta(C) activity predisposed to VT. Thus, CaMKII-dependent regulation of Na(+) channel function may contribute to arrhythmogenesis in HF.
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Wagner et al. (2006) studied Heart failure and ventricular tachyarrhythmias. CaMKIIδC overexpression vs. β-gal overexpression or Wild-type was evaluated on Voltage dependence of Na+ channel availability (V1/2) (p=<0.05). CaMKIIδC overexpression shifted the voltage dependence of Na+ channel availability by -6 mV and enhanced intermediate inactivation, predisposing to ventricular tachyarrhythmias.
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