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Published on: April 21, 2014
Abnormal conduction and repolarization in late-activated myocardium of dyssynchronously contracting hearts
David D Spragg1, Fadi G Akar, Robert H Helm
1Division of Cardiology, Department of Medicine, Halsted 500, Johns Hopkins Hospital, 600 N. Wolfe St., Baltimore, MD 21287, USA.
Insights
Cardiac dyssynchrony causes significant changes in heart electrical properties, even without heart failure. This study reveals how conduction delays lead to specific electrical remodeling in the heart.
Area of Science:
- Cardiology
- Electrophysiology
- Cardiac Remodeling
Background:
- Cardiac dyssynchrony from intraventricular conduction delay causes heterogeneous wall stress and increases arrhythmia risk in failing hearts.
- This study investigates if chronic dyssynchrony itself induces heterogeneous electrophysiological remodeling.
Purpose of the Study:
- To determine if chronic cardiac dyssynchrony, independent of left ventricular dysfunction, induces regionally specific electrophysiological changes.
- To elucidate the mechanisms linking mechanical dyssynchrony to persistent electrical remodeling.
Main Methods:
- Induction of left bundle branch block in adult dogs via radiofrequency ablation, with controls.
- Assessment of conduction velocity, action potential duration, and refractory period using optical and extracellular mapping.
- Analysis of protein expression (connexin43, calcium cycling proteins, stress-response kinases) and connexin43 localization.
Main Results:
- Dyssynchronous hearts showed reduced conduction velocity, action potential duration, and refractory period in late-activated regions.
- Connexin43 redistributed from intercalated discs to lateral myocyte membranes in dyssynchronous tissue.
- No significant regional differences in calcium cycling proteins or phospho-ERK were observed.
Conclusions:
- Cardiac dyssynchrony induces region-specific alterations in cardiac conduction and repolarization, even without left ventricular dysfunction.
- These findings suggest a new mechanism where mechanical dyssynchrony drives persistent electrophysiological remodeling and heterogeneity.
Background:
Cardiac dyssynchrony due to intraventricular conduction delay produces heterogeneous regional wall stress and worsens arrhythmia susceptibility in failing hearts. We examined whether chronic dyssynchrony per se induces regionally heterogeneous electrophysiological remodeling.
Methods And Results:
Adult dogs (n=9) underwent left bundle branch radiofrequency ablation (QRS duration increased from 50+/-7 to 104+/-7 ms); 6 untreated dogs served as controls. A subset of ablated (n=3) and control (n=4) dogs underwent tagged MR imaging to confirm ablation-induced left ventricular (LV) dyssynchrony. Four weeks later, hearts were excised and early (anterior)- and late (lateral)-activated myocardial segments were isolated. Conduction velocity (CV), action potential duration (APD), and refractory period (RP) of paced, arterially perfused myocardial wedges were studied by extracellular and optical mapping, and arrhythmia susceptibility was assessed by programmed stimulation. Regional stress-response kinase, calcium cycling, and gap junction protein expression were assayed by Western blotting, and the subcellular distribution of connexin43 was analyzed by immunofluorescence microscopy. CV, APD, and RP were significantly reduced in the late-activated, lateral wall of dyssynchronous hearts compared to the anterior wall. Normal differences in CV (endocardial>epicardial) were reversed in the dyssynchronous lateral LV. While the total expression of connexin43 was unaltered in dyssynchronous models, its subcellular location was redistributed in late-activated myocardium from intercalated discs to lateral myocyte membranes. Arrhythmias were rare in tissue from normal and dyssynchronous models. Total expression of calcium-cycling proteins (sarcoplasmic reticulum Ca2+-ATPase and phospholamban) and the stress-response kinase phospho-ERK did not vary regionally in either model.
Conclusions:
Dyssynchrony even in the absence of LV dysfunction induces regionally specific changes in conduction and repolarization. These changes support a novel mechanism linking mechanical dyssynchrony to persistent electrophysiological remodeling and heterogeneity.
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