Restoration of cardiac contractility modulation function after lead replacement led to significant clinical improvement, including increased peak VO2 (9 to 15 mL/kg/min) and 6MWT (150 to 285 m).
Case Report (n=1)
This case demonstrates that loss of effective cardiac contractility modulation delivery due to lead failure can cause heart failure exacerbation, which is reversible upon restoring device function.
Cardiac contractility modulation (CCM) is a device-based therapy for patients with heart failure, reduced left ventricular ejection fraction (LVEF), and narrow QRS who are not candidates for cardiac resynchronization therapy. CCM delivers non-excitatory impulses during the absolute refractory period, improving myocardial contractility without increasing oxygen consumption. We report a 58-year-old man with dilated cardiomyopathy and persistent New York Heart Association (NYHA) class III symptoms despite optimal therapy who underwent CCM implantation. The patient initially showed significant clinical improvement, with increased LVEF and functional status. However, several years later, he developed clinical deterioration associated with intermittent loss of effective CCM delivery. Surgical revision revealed insulation defects in all three leads, likely due to mechanical interactions. Lead replacement restored CCM function, resulting in marked and sustained improvement in exercise capacity, LVEF, and N-terminal pro B-type natriuretic peptide over long-term follow-up. This case highlights the importance of continuous and effective CCM delivery, as well as the need for careful long-term monitoring of device integrity, particularly in patients with multiple intracardiac leads.
Kaczmarek et al. (Thu,) conducted a case report in Heart failure, dilated cardiomyopathy (n=1). Cardiac contractility modulation was evaluated on Clinical improvement (peak VO2, 6MWT, LVEF). Restoration of cardiac contractility modulation function after lead replacement led to significant clinical improvement, including increased peak VO2 (9 to 15 mL/kg/min) and 6MWT (150 to 285 m).