Cardiomyopathy Induced by Artificial Cardiac Pacing: To Whom, When, Why, and How? Insights on Heart Failure

Andres Di Leoni Ferrari1, Eduardo Bartholomay Oliveira2, Ana Paula Tagliari3

  • 1Cardiac Stimulation Unit, Hospital São Lucas, Pontifícia Universidade Católica do Rio Grande do Sul (PUCRS), Porto Alegre, Rio Grande do Sul, Brazil.

Insights

Artificial cardiac pacing can cause heart problems, leading to pacing-induced cardiomyopathy (PiCM). Understanding these effects is crucial for patient care and detecting this condition.

Area of Science:

  • Cardiology
  • Electrophysiology
  • Biomedical Engineering

Background:

  • Synchronous ventricular activation is vital for optimal left ventricular systolic function.
  • Abnormal intraventricular conduction, like that from artificial cardiac pacing, causes electromechanical dyssynchrony.
  • This dyssynchrony can lead to detrimental structural and clinical consequences, including pacing-induced cardiomyopathy (PiCM).

Purpose of the Study:

  • To review and enhance the understanding of mechanisms underlying artificially induced ventricular dyssynchrony by cardiac pacing.
  • To explore the pathophysiology of pacing-induced cardiomyopathy (PiCM).
  • To highlight the adverse effects of right ventricular pacing and its impact on left ventricular systolic function.

Main Methods:

  • Review of existing evidence on pacing-induced cardiovascular disease.
  • Analysis of the pathophysiology of PiCM.
  • Examination of the effects of right ventricular pacing burden on ventricular contraction.

Main Results:

  • Chronic abnormal conduction and ectopic activation from pacing may affect myocardial metabolism and perfusion.
  • This can lead to regional differences in activation/contraction, causing electrical and structural remodeling (damage, inflammation, fibrosis).
  • Right ventricular pacing burden significantly impacts left ventricular systolic function.

Conclusions:

  • PiCM, a consequence of artificial cardiac pacing, results from complex electromechanical dyssynchrony.
  • The pathophysiology involves metabolic, perfusion, and remodeling changes, particularly with high right ventricular pacing burden.
  • Recognizing PiCM is important as it is not traditionally classified with other cardiomyopathies, potentially hindering diagnosis.

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