Intracardiac electrophysiology to characterize susceptibility to ventricular arrhythmias in murine models

Marine C Ferrand1, Gauthier Giordano1,2, Nathalie Mougenot3

  • 1Sorbonne Université, Inserm, Research Unit on Cardiovascular and Metabolic Diseases, UMRS-1166, Paris, France.

Frontiers in Physiology
|February 7, 2024
PubMed

Insights

Programmed electrical stimulation (PES) in mice effectively identifies arrhythmia susceptibility in genetic models of sudden cardiac death (SCD). This method aids in understanding arrhythmia mechanisms and developing new therapies for these conditions.

Area of Science:

  • Cardiology
  • Genetics
  • Physiology

Background:

  • Sudden cardiac death (SCD) and ventricular fibrillation are critical complications of cardiovascular diseases.
  • Genetic conditions like channelopathies and cardiomyopathies are leading causes of SCD in young individuals.
  • Effective experimental models are crucial for studying arrhythmia mechanisms and developing therapies.

Purpose of the Study:

  • To adapt and validate a programmed electrical stimulation (PES) protocol for arrhythmia induction and recording in mice.
  • To compare arrhythmia susceptibility between transgenic mouse models and control groups.
  • To provide a detailed protocol for PES in mice, including catheterization, stimulation, and ECG interpretation.

Main Methods:

  • Programmed electrical stimulation (PES) adapted from clinical practice was applied to two transgenic mouse models (Brugada syndrome, cardiolaminopathy) and controls.
  • Intracardiac catheterization via the jugular vein was used for right ventricular stimulation and electrophysiological recording.
  • Progressive stimulation protocols with a limited number of right ventricular extrastimuli were employed.

Main Results:

  • The PES protocol successfully differentiated arrhythmia phenotypes between control and diseased mice.
  • Transgenic mouse lines exhibited a higher susceptibility to triggered ventricular arrhythmias compared to controls.
  • Detailed procedural information and ECG interpretation guidelines for PES in mice were provided.

Conclusions:

  • This adapted PES technique is a valuable tool for characterizing arrhythmias in murine models.
  • The study successfully phenotyped two arrhythmogenic-disease mouse models, revealing distinct rhythmic phenotypes.
  • This method facilitates the study of arrhythmogenicity and the testing of novel antiarrhythmic treatments in genetically modified mice.