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Updated: May 20, 2026

Electrophysiological Analysis of human Pluripotent Stem Cell-derived Cardiomyocytes (hPSC-CMs) Using Multi-electrode Arrays (MEAs)
Published on: May 12, 2017
Electrophysiological effects of lysophosphatidylcholine on HL-1 cardiomyocytes assessed with a microelectrode array
Sigfus Gizurarson1, Yangzhen Shao, Azra Miljanovic
1Department of Molecular and Clinical Medicine, Sahlgrenska Academy, University of Gothenburg, Bruna stråket 16, Gothenburg, Sweden.
Insights
Lysophosphatidylcholine (LPC) causes rapid, significant changes in heart cell electrical activity, including delayed signal propagation and asynchronous beating, potentially explaining its pro-arrhythmic effects.
Area of Science:
- Cardiology
- Electrophysiology
- Molecular Biology
Background:
- Malignant ventricular arrhythmias are a leading cause of death in acute myocardial infarction.
- Understanding the mechanisms of these arrhythmias is crucial for developing new anti-arrhythmic treatments.
- Lysophosphatidylcholine (LPC) is a potent pro-arrhythmic substance found in the ischemic human heart.
Purpose of the Study:
- To establish and validate an in vitro experimental system for studying the electrophysiological effects of LPC on beating cardiomyocytes.
- To investigate the concentration-dependent effects of LPC on cardiomyocyte electrical activity.
Main Methods:
- HL-1 cardiomyocytes were cultured on multielectrode array microchips.
- Electrical activity was recorded as field potentials (FP) at baseline and after LPC addition (2–24 µM).
- Effects on beating rate, FP amplitude, FP duration, and signal propagation were analyzed.
Main Results:
- LPC induced rapid electrophysiological alterations in HL-1 cells with an EC(50) of approximately 12 µM.
- LPC decreased beating rate and FP amplitude, and prolonged FP duration in a concentration-dependent manner.
- LPC delayed signal propagation, induced asynchronous activity, and mimicked gap junction blockade.
Conclusions:
- LPC causes prompt and significant electrophysiological changes, supporting its role in pro-arrhythmic properties.
- The developed in vitro model using HL-1 cells and microelectrode arrays is a valuable tool for preclinical assessment of electrophysiological effects.
Background:
Sudden death due to malignant ventricular arrhythmias is the most important cause of death in acute myocardial infarction. Improved knowledge about the pathophysiology underlying these arrhythmias is essential in the search for new anti-arrhythmic strategies. Lysophosphatidylcholine (LPC), a hydrolysis product of (membrane) phospholipid degradation, is one of the most potent pro-arrhythmic substances that accumulate in the human heart during myocardial ischemia. The aim of this study was to set up and validate an in vitro experimental system for studies on the effects of LPC on electrophysiological parameters in beating cardiomyocytes.
Methods And Results:
Spontaneously beating HL-1 cardiomyocytes were cultured on multielectrode array microchips for three days for the recording of electrical activities in the form of field potentials (FP). FPs were recorded at baseline and after addition of 2, 4, 8, 12, 16, 20, and 24 µM of LPC to the cell medium (n=9). We found that LPC could induce rapid effects on electrical parameters in the HL-1 cells. The overall half-maximal effective concentration (EC(50)) of LPC was around 12 µM. The beating rate and peak-peak amplitude of FP thus decreased at concentrations ≥ 12 µM and were inversely proportional to increased LPC concentration. The duration of FP was significantly prolonged with LPC above 12 µM and was concentration-dependent. LPC delayed signal propagation, an effect which was mimicked by blocking gap junctions with heptanol and attenuated by pre-treatment with isoprenaline and atropine. Finally, asynchronous activity was induced by LPC at >12 µM.
Conclusions:
LPC induced prompt and pronounced electrophysiological alterations that may underlie its observed pro-arrhythmic properties. Our in vitro model with HL-1 cells and microelectrode array system may be a useful tool for preclinical studies of electrophysiological effects of various pathophysiological concepts.
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