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Updated: May 3, 2026

Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
Suppression of spontaneous ca elevations prevents atrial fibrillation in calsequestrin 2-null hearts
Michela Faggioni1, Eleonora Savio-Galimberti, Raghav Venkataraman
1Division of Clinical Pharmacology, Department of Medicine, Division of Cardiology, Department of Medicine, Department of Biomedical Engineering and Physics, and Division of Cardiology, Department of Pediatrics, Vanderbilt University, Nashville, TN; and Department of Cardiovascular Diseases, University of Pisa, Pisa, Italy.
Background:
Atrial fibrillation (AF) risk has been associated with leaky ryanodine receptor 2 (RyR2) Ca release channels. Patients with mutations in RyR2 or in the sarcoplasmic reticulum Ca-binding protein calsequestrin 2 (Casq2) display an increased risk for AF. Here, we examine the underlying mechanisms of AF associated with loss of Casq2 and test mechanism-based drug therapy.
Methods And Results:
Compared with wild-type Casq2+/+ mice, atrial burst pacing consistently induced atrial flutter or AF in Casq2-/- mice and in isolated Casq2-/- hearts. Atrial optical voltage maps obtained from isolated hearts revealed multiple independent activation sites arising predominantly from the pulmonary vein region. Ca and voltage mapping demonstrated diastolic subthreshold spontaneous Ca elevations (SCaEs) and delayed afterdepolarizations whenever the pacing train failed to induce AF. The dual RyR2 and Na channel inhibitor R-propafenone (3 μmol/L) significantly reduced frequency and amplitude of SCaEs and delayed afterdepolarizations in atrial myocytes and intact atria and prevented induction of AF. In contrast, the S-enantiomer of propafenone, an equipotent Na channel blocker but much weaker RyR2 inhibitor, did not reduce SCaEs and delayed afterdepolarizations and failed to prevent AF.
Conclusions:
Loss of Casq2 increases risk of AF by promoting regional SCaEs and delayed afterdepolarizations in atrial tissue, which can be prevented by RyR2 inhibition with R-propafenone. Targeting AF caused by leaky RyR2 Ca channels with R-propafenone may be a more mechanism-based approach to treating this common arrhythmia.
Insights
Loss of calsequestrin 2 (Casq2) increases atrial fibrillation (AF) risk by causing spontaneous calcium elevations. RyR2 inhibition with R-propafenone prevents AF by targeting these calcium issues.
Area of Science:
- Cardiology
- Molecular Biology
- Pharmacology
Background:
- Atrial fibrillation (AF) is linked to dysfunctional ryanodine receptor 2 (RyR2) calcium channels.
- Mutations in RyR2 or calsequestrin 2 (Casq2) elevate AF risk.
- Understanding Casq2 deficiency mechanisms is crucial for AF treatment.
Purpose of the Study:
- Investigate AF mechanisms in Casq2-deficient mice.
- Identify therapeutic targets for AF related to Casq2 loss.
- Evaluate R-propafenone as a potential AF treatment.
Main Methods:
- Utilized Casq2-/- mice and isolated heart models.
- Performed atrial burst pacing and optical voltage mapping.
- Conducted calcium and voltage mapping in atrial myocytes and intact atria.
Main Results:
- Casq2-/- mice exhibited increased susceptibility to AF induction.
- Spontaneous calcium elevations (SCaEs) and delayed afterdepolarizations were observed.
- R-propafenone significantly reduced SCaEs and prevented AF, unlike its S-enantiomer.
Conclusions:
- Casq2 deficiency promotes AF through regional SCaEs and delayed afterdepolarizations.
- RyR2 inhibition with R-propafenone is a promising mechanism-based therapy for AF.
- Targeting leaky RyR2 channels offers a novel approach to managing AF.
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