Related Experiment Video
Updated: May 4, 2026

Isolation and Functional Characterization of Human Ventricular Cardiomyocytes from Fresh Surgical Samples
Published on: April 21, 2014
A study of early afterdepolarizations in a model for human ventricular tissue
Nele Vandersickel1, Ivan V Kazbanov1, Anita Nuitermans2
1Department of Physics and Astronomy, Ghent University, Ghent, Belgium.
Abstract:
Sudden cardiac death is often caused by cardiac arrhythmias. Recently, special attention has been given to a certain arrhythmogenic condition, the long-QT syndrome, which occurs as a result of genetic mutations or drug toxicity. The underlying mechanisms of arrhythmias, caused by the long-QT syndrome, are not fully understood. However, arrhythmias are often connected to special excitations of cardiac cells, called early afterdepolarizations (EADs), which are depolarizations during the repolarizing phase of the action potential. So far, EADs have been studied mainly in isolated cardiac cells. However, the question on how EADs at the single-cell level can result in fibrillation at the tissue level, especially in human cell models, has not been widely studied yet. In this paper, we study wave patterns that result from single-cell EAD dynamics in a mathematical model for human ventricular cardiac tissue. We induce EADs by modeling experimental conditions which have been shown to evoke EADs at a single-cell level: by an increase of L-type Ca currents and a decrease of the delayed rectifier potassium currents. We show that, at the tissue level and depending on these parameters, three types of abnormal wave patterns emerge. We classify them into two types of spiral fibrillation and one type of oscillatory dynamics. Moreover, we find that the emergent wave patterns can be driven by calcium or sodium currents and we find phase waves in the oscillatory excitation regime. From our simulations we predict that arrhythmias caused by EADs can occur during normal wave propagation and do not require tissue heterogeneities. Experimental verification of our results is possible for experiments at the cell-culture level, where EADs can be induced by an increase of the L-type calcium conductance and by the application of I[Formula: see text] blockers, and the properties of the emergent patterns can be studied by optical mapping of the voltage and calcium.
Insights
This study models how early afterdepolarizations (EADs) in human cardiac cells can cause dangerous arrhythmias like fibrillation. It reveals abnormal wave patterns emerge from EADs, predicting arrhythmias without tissue differences.
Area of Science:
- Cardiology
- Computational Biology
- Biophysics
Background:
- Sudden cardiac death is frequently caused by cardiac arrhythmias.
- Long-QT syndrome, a genetic or drug-induced condition, is a key arrhythmogenic factor.
- Early afterdepolarizations (EADs) are linked to arrhythmias but their tissue-level effects, especially in human models, are unclear.
Purpose of the Study:
- To investigate how single-cell EAD dynamics translate to tissue-level wave patterns in a human ventricular cardiac model.
- To explore the mechanisms driving arrhythmias resulting from EADs.
Main Methods:
- Mathematical modeling of human ventricular cardiac tissue.
- Simulating EADs by altering L-type calcium and delayed rectifier potassium currents.
- Analyzing emergent wave patterns, including spiral fibrillation and oscillatory dynamics.
Main Results:
- Three types of abnormal wave patterns were identified: two spiral fibrillations and one oscillatory dynamics.
- Emergent wave patterns can be influenced by calcium or sodium currents.
- Phase waves were observed in the oscillatory excitation regime.
Conclusions:
- EADs can induce arrhythmias, including fibrillation, at the tissue level without requiring tissue heterogeneities.
- Simulated results suggest arrhythmias can occur during normal wave propagation.
- Findings provide a basis for experimental verification using cell culture models and optical mapping.
Related Concept Videos
Cardiac Action Potential
The cardiac action potential process involves a series of phases characterized by the movement of ions across the cardiac cell membranes, leading to the depolarization and repolarization of the cardiac myocytes.
Ionic Basis of Cardiac Action Potentials
Electrophysiology of Normal Cardiac Rhythm

