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Updated: Apr 21, 2026

Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
Tachycardia-induced silencing of subcellular Ca2+ signaling in atrial myocytes
Abstract:
Atrial fibrillation (AF) is characterized by sustained high atrial activation rates and arrhythmogenic cellular Ca2+ signaling instability; however, it is not clear how a high atrial rate and Ca2+ instability may be related. Here, we characterized subcellular Ca2+ signaling after 5 days of high atrial rates in a rabbit model. While some changes were similar to those in persistent AF, we identified a distinct pattern of stabilized subcellular Ca2+ signaling. Ca2+ sparks, arrhythmogenic Ca2+ waves, sarcoplasmic reticulum (SR) Ca2+ leak, and SR Ca2+ content were largely unaltered. Based on computational analysis, these findings were consistent with a higher Ca2+ leak due to PKA-dependent phosphorylation of SR Ca2+ channels (RyR2s), fewer RyR2s, and smaller RyR2 clusters in the SR. We determined that less Ca2+ release per [Ca2+]i transient, increased Ca2+ buffering strength, shortened action potentials, and reduced L-type Ca2+ current contribute to a stunning reduction of intracellular Na+ concentration following rapid atrial pacing. In both patients with AF and in our rabbit model, this silencing led to failed propagation of the [Ca2+]i signal to the myocyte center. We conclude that sustained high atrial rates alone silence Ca2+ signaling and do not produce Ca2+ signaling instability, consistent with an adaptive molecular and cellular response to atrial tachycardia.
Insights
Sustained high atrial rates in atrial fibrillation (AF) silence cellular calcium (Ca2+) signaling, rather than causing instability. This adaptive response prevents arrhythmogenic signaling during rapid atrial pacing.
Area of Science:
- Cardiology
- Molecular Biology
- Physiology
Background:
- Atrial fibrillation (AF) involves high atrial rates and unstable cellular Ca2+ signaling, but the link is unclear.
- Understanding this relationship is crucial for developing targeted AF therapies.
Purpose of the Study:
- To investigate the impact of sustained high atrial rates on subcellular Ca2+ signaling in a rabbit model.
- To determine if rapid atrial pacing leads to Ca2+ signaling instability or a different adaptive response.
Main Methods:
- Characterization of subcellular Ca2+ signaling in rabbit atria after 5 days of rapid pacing.
- Computational analysis of Ca2+ handling mechanisms, including RyR2 phosphorylation and clustering.
- Assessment of intracellular Na+ concentration and Ca2+ signal propagation.
Main Results:
- High atrial rates stabilized subcellular Ca2+ signaling, unlike persistent AF.
- Ca2+ sparks, waves, SR leak, and content were largely unaltered.
- Rapid pacing reduced intracellular Na+ and silenced Ca2+ signal propagation to the myocyte center.
Conclusions:
- Sustained high atrial rates induce an adaptive response by silencing Ca2+ signaling.
- This silencing prevents arrhythmogenic Ca2+ instability during atrial tachycardia.
- Findings suggest a distinct molecular and cellular mechanism in response to rapid atrial pacing.
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