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.

The Journal of Physiology
|December 15, 2015
PubMed

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.
Abstract

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