Pathophysiology of narrow complex dilated cardiomyopathy insight derived from the velocity equation: velocity =

Philip D Houck1, Billy Jones1, Rikin Patel1

  • 1Department of Medicine Division of Cardiology, Baylor Scott & White Health, Temple, Texas, USA.

BMJ Case Reports
|August 8, 2019
PubMed

Insights

Understanding narrow complex cardiomyopathy, a heart condition with limited treatments, involves abnormal electrical conduction. Novel pacing strategies show promise in improving heart function and contractility in affected patients.

Area of Science:

  • Cardiology
  • Biomedical Engineering
  • Electrophysiology

Background:

  • The pathophysiology of narrow complex dilated cardiomyopathy remains undefined, limiting therapeutic interventions.
  • Existing theories suggest abnormal conduction propagation velocities and myocardial capture failure due to insulating fibers or reduced axon branching.

Observation:

  • A patient with narrow complex cardiomyopathy underwent pacing with gradually increased amplitude and pulse width.
  • Peak systolic strain mapping revealed enhanced apical contractility correlating with increased pacing parameters.

Findings:

  • Pacing intervention improved ejection fraction from 17% to 31% in the patient.
  • The study demonstrates that optimized pacing can overcome native conduction deficits.

Implications:

  • Understanding the pathophysiology provides a basis for developing new therapies for narrow complex cardiomyopathy.
  • Multi-lead pacing at high amplitude and pulse width is a potential therapeutic strategy to improve myocardial capture.

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