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.
Abstract

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