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Updated: Mar 28, 2026

Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
Calcium-activated chloride current determines action potential morphology during calcium alternans in atrial myocytes
Giedrius Kanaporis1, Lothar A Blatter1
1Department of Molecular Biophysics and Physiology, Rush University Medical Center, Chicago, IL, 60612, USA.
Insights
Cardiac alternans, a risk for sudden death, involves beat-to-beat changes in calcium transients (CaT) and action potentials (AP). This study reveals CaT alternans drive AP alternans, with Ca(2+)-activated Cl(-) channels (CaCCs) sustaining AP changes.
Area of Science:
- Cardiology
- Electrophysiology
- Molecular Cardiology
Background:
- Cardiac alternans, characterized by beat-to-beat variations in contraction, action potential (AP) morphology, or cytosolic calcium transient (CaT) amplitude, is a significant risk factor for cardiac arrhythmias and sudden cardiac death.
- The precise causal relationship between intracellular calcium ([Ca(2+)]i) alternations and AP morphology alternations in initiating pro-arrhythmic events remains incompletely understood.
Purpose of the Study:
- To elucidate the primary drivers of cardiac alternans in atrial myocytes.
- To investigate the role of Ca(2+)-activated Cl(-) channels (CaCCs) in the development of AP alternans secondary to CaT alternans.
Main Methods:
- Utilized patch clamp techniques to record membrane currents and APs simultaneously with CaTs in single rabbit atrial myocytes.
- Employed AP-clamp protocols during pacing-induced CaT alternans to analyze Ca(2+)-dependent currents.
- Investigated the contribution of Ca(2+)-activated Cl(-) currents (ICaCC) by using Cl(-) ion substitution and specific channel blockers (DIDS).
Main Results:
- A strong quantitative correlation was observed between beat-to-beat alternations in AP morphology and CaT amplitude.
- A significant Ca(2+)-dependent outward current, identified as ICaCC, was found to coincide with early AP phases and was largely blocked by Cl(-) channel inhibition.
- Inhibition of ICaCC abolished AP alternans but did not affect CaT alternans, indicating CaT alternans are primary and ICaCC modulates AP morphology.
Conclusions:
- In atrial myocytes, AP alternans are a consequence of preceding CaT alternans.
- Ca(2+)-activated Cl(-) channels (CaCCs) play a crucial role in sustaining the observed alternations in AP morphology.
- Targeting CaCCs offers a potential novel strategy for preventing atrial alternans and associated arrhythmias.
Key Points:
Cardiac alternans--periodic beat-to-beat alternations in contraction, action potential (AP) morphology or cytosolic calcium transient (CaT) amplitude--is a high risk indicator for cardiac arrhythmias and sudden cardiac death. However, it remains an unresolved issue whether beat-to-beat alternations in intracellular Ca(2+) ([Ca(2+)]i ) or AP morphology are the primary cause of pro-arrhythmic alternans. Here we show that in atria AP alternans occurs secondary to CaT alternans. CaT alternans leads to complex beat-to-beat changes in Ca(2+)-regulated ion currents that determine alternans of AP morphology. We report the novel finding that alternans of AP morphology is largely sustained by the activity of Ca(2+)-activated Cl(-) channels (CaCCs). Suppression of the CaCCs significantly reduces AP alternans, while CaT alternans remains unaffected. The demonstration of a major role of CaCCs in the development of AP alternans opens new possibilities for atrial alternans and arrhythmia prevention. Cardiac alternans, described as periodic beat-to-beat alternations in contraction, action potential (AP) morphology or cytosolic Ca transient (CaT) amplitude, is a high risk indicator for cardiac arrhythmias and sudden cardiac death. We investigated mechanisms of cardiac alternans in single rabbit atrial myocytes. CaTs were monitored simultaneously with membrane currents or APs recorded with the patch clamp technique. Beat-to-beat alternations of AP morphology and CaT amplitude revealed a strong quantitative correlation. Application of voltage clamp protocols in the form of pre-recorded APs (AP-clamp) during pacing-induced CaT alternans revealed a Ca(2+)-dependent current consisting of a large outward component (4.78 ± 0.58 pA pF(-1) in amplitude) coinciding with AP phases 1 and 2 that was followed by an inward current (-0.42 ± 0.03 pA pF(-1); n = 21) during AP repolarization. Approximately 90% of the initial outward current was blocked by substitution of Cl(-) ions or application of the Cl(-) channel blocker DIDS identifying it as a Ca(2+)-activated Cl(-) current (ICaCC). The prominent AP prolongation at action potential duration at 30% repolarization level during the small alternans CaT was due to reduced ICaCC. Inhibition of Cl(-) currents abolished AP alternans, but failed to affect CaT alternans, indicating that disturbances in Ca(2+) signalling were the primary event leading to alternans, and ICaCC played a decisive role in shaping the beat-to-beat alternations in AP morphology observed during alternans.
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