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Updated: Jun 18, 2026

Assessment of Sarcoplasmic Reticulum Calcium Reserve and Intracellular Diastolic Calcium Removal in Isolated Ventricular Cardiomyocytes
Published on: September 18, 2017
Calcium/calmodulin-dependent protein kinase II contributes to cardiac arrhythmogenesis in heart failure
Can M Sag1, Daniel P Wadsack, Sepideh Khabbazzadeh
1Department of Cardiology and Pneumology, Heart Center, Georg-August-University, Göttingen, Germany.
Background:
Transgenic (TG) Ca/calmodulin-dependent protein kinase II (CaMKII)delta(C) mice have heart failure and isoproterenol (ISO)-inducible arrhythmias. We hypothesized that CaMKII contributes to arrhythmias and underlying cellular events and that inhibition of CaMKII reduces cardiac arrhythmogenesis in vitro and in vivo.
Methods And Results:
Under baseline conditions, isolated cardiac myocytes from TG mice showed an increased incidence of early afterdepolarizations compared with wild-type myocytes (P<0.05). CaMKII inhibition (AIP) completely abolished these afterdepolarizations in TG cells (P<0.05). Increasing intracellular Ca stores using ISO (10(-8) M) induced a larger amount of delayed afterdepolarizations and spontaneous action potentials in TG compared with wild-type cells (P<0.05). This seems to be due to an increased sarcoplasmic reticulum (SR) Ca leak because diastolic [Ca](i) rose clearly on ISO in TG but not in wild-type cells (+20+/-5% versus +3+/-4% at 10(-6) M ISO, P<0.05). In parallel, SR Ca leak assessed by spontaneous SR Ca release events showed an increased Ca spark frequency (3.9+/-0.5 versus 2.0+/-0.4 sparks per 100 microm(-1).s(-1), P<0.05). However, CaMKII inhibition (either pharmacologically using KN-93 or genetically using an isoform-specific CaMKIIdelta-knockout mouse model) significantly reduced SR Ca spark frequency, although this rather increased SR Ca content. In parallel, ISO increased the incidence of early (54% versus 4%, P<0.05) and late (86% versus 43%, P<0.05) nonstimulated events in TG versus wild-type myocytes, but CaMKII inhibition (KN-93 and KO) reduced these proarrhythmogenic events (P<0.05). In addition, CaMKII inhibition in TG mice (KN-93) clearly reduced ISO-induced arrhythmias in vivo (P<0.05).
Conclusions:
We conclude that CaMKII contributes to cardiac arrhythmogenesis in TG CaMKIIdelta(C) mice having heart failure and suggest the increased SR Ca leak as an important mechanism. Moreover, CaMKII inhibition reduces cardiac arrhythmias in vitro and in vivo and may therefore indicate a potential role for future antiarrhythmic therapies warranting further studies.
Insights
Calcium/calmodulin-dependent protein kinase II (CaMKII) contributes to heart failure arrhythmias by increasing sarcoplasmic reticulum calcium leak. Inhibiting CaMKII reduces these arrhythmias, suggesting a potential therapeutic strategy.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- Transgenic mice with Ca/calmodulin-dependent protein kinase II (CaMKII)delta(C) exhibit heart failure and isoproterenol (ISO)-inducible arrhythmias.
- CaMKII is implicated in cardiac arrhythmogenesis and associated cellular events.
Purpose of the Study:
- To investigate the role of CaMKII in cardiac arrhythmias.
- To determine if CaMKII inhibition can reduce arrhythmogenesis in vitro and in vivo.
Main Methods:
- Isolated cardiac myocytes from transgenic (TG) and wild-type mice were studied.
- CaMKII inhibition was achieved pharmacologically (KN-93) and genetically (CaMKIIdelta-knockout).
- Arrhythmias, early afterdepolarizations, delayed afterdepolarizations, and sarcoplasmic reticulum (SR) Ca leak were assessed.
Main Results:
- TG myocytes showed increased early afterdepolarizations and SR Ca leak compared to wild-type.
- CaMKII inhibition abolished afterdepolarizations and significantly reduced SR Ca spark frequency.
- CaMKII inhibition reduced ISO-induced arrhythmias in TG myocytes and in vivo.
Conclusions:
- CaMKII contributes to cardiac arrhythmogenesis in heart failure, mediated by increased SR Ca leak.
- CaMKII inhibition demonstrates potential as an antiarrhythmic therapy for heart failure patients.
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