Related Experiment Videos
[Maturation of the electrode-endocardium interface]
1Servicio de Medicina Intensiva y Unidad Coronaria, Hospital del Sagrado Corazón (Quinta de Salud La Alianza), Barcelona.
Revista Espanola De Cardiologia
|January 1, 1990
Summary
High current density from pacemaker leads increases cardiac fibrosis, raising stimulation thresholds. This study in dogs suggests stimulating at lower voltages is more beneficial for long-term cardiac device function.
Area of Science:
- Biomedical Engineering
- Cardiac Electrophysiology
- Materials Science
Context:
- Implanted pacemaker leads can cause endocardial inflammation and fibrosis, increasing stimulation thresholds.
- Chronic threshold values correlate with electrode surface area, influenced by mechanical factors like tension and tip design.
- The electrical factor, specifically current density at the endocardial-electrode interface, remains understudied in fibrosis genesis.
Purpose:
- To investigate the correlation between current density at the endocardial-electrode interface and cardiac fibrosis.
- To evaluate the impact of different voltage settings on pacing thresholds, R wave, and impedance.
- To minimize mechanical factors and isolate the effect of electrical stimulation on fibrosis.
Summary:
- An experimental study in 12 dogs assessed fibrosis development using leads with varying current densities (0, 2.5, 5 volts).
- Measurements included pacing thresholds, R wave, and impedance at implant and explant (8 and 35 days).
- Results showed statistically significant differences between reference and active electrodes, with higher current density leading to more fibrosis, higher thresholds, lower R waves, and lower impedances.
Impact:
- Findings suggest that leads stimulating with higher current density induce greater fibrosis and negatively impact pacing parameters.
- The study highlights the importance of managing current density to mitigate fibrosis and maintain optimal pacemaker function.
- Stimulating cardiac tissue at lower voltages is recommended to reduce adverse tissue reactions and improve long-term lead performance.