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Updated: May 11, 2026

Measuring Neuromuscular Junction Functionality
Published on: August 6, 2017
Late sodium current inhibition reverses electromechanical dysfunction in human hypertrophic cardiomyopathy
Raffaele Coppini1, Cecilia Ferrantini, Lina Yao
1Department of Preclinical and Clinical Pharmacology, University of Florence, V. le G. Pieraccini 6, 50139 Florence, Italy. raffaele.coppini@unifi.it
Insights
Hypertrophic cardiomyopathy (HCM) involves cellular electrical and calcium handling issues. Ranolazine partially reversed these abnormalities by inhibiting late sodium current (INaL), improving diastolic function in HCM patients.
Area of Science:
- Cardiology
- Molecular Biology
- Electrophysiology
Background:
- Hypertrophic cardiomyopathy (HCM) is the most common inherited heart disorder.
- Limited understanding of cellular mechanisms hinders disease-specific pharmacological treatment for HCM.
- Arrhythmogenicity and diastolic dysfunction are key challenges in HCM management.
Purpose of the Study:
- To investigate the electromechanical profile of cardiomyocytes in human hypertrophic cardiomyopathy (HCM).
- To identify the underlying cellular mechanisms contributing to HCM pathophysiology.
- To evaluate the therapeutic potential of targeting specific ion channel abnormalities in HCM.
Main Methods:
- Patch-clamp and intracellular Ca(2+) (Ca(2+)(i)) studies were performed on cardiomyocytes from HCM patients and controls.
- Assessed action potential duration, ion currents (INaL, ICaL), repolarizing K+ currents, and Ca(2+)(i) transients.
- Investigated the role of Ca(2+)/calmodulin kinase II (CaMKII) signaling and the effect of ranolazine.
Main Results:
- HCM cardiomyocytes exhibited prolonged action potentials due to increased late Na+ (INaL) and Ca(2+) (ICaL) currents and decreased K+ currents.
- HCM cells showed increased arrhythmias, prolonged Ca(2+)(i) transients, and elevated diastolic Ca(2+)(i), linked to enhanced CaMKII activity.
- Ranolazine partially reversed these cellular abnormalities by inhibiting INaL, reducing afterdepolarizations, and improving diastolic function.
Conclusions:
- HCM pathophysiology involves complex remodeling of CaMKII-dependent signaling, not solely direct effects of sarcomeric mutations.
- Enhanced late sodium current (INaL) significantly contributes to electrophysiological and Ca(2+)(i) dynamic abnormalities in HCM.
- Targeting INaL with ranolazine shows potential therapeutic implications for managing HCM cellular dysfunction.
Background:
Hypertrophic cardiomyopathy (HCM), the most common mendelian heart disorder, remains an orphan of disease-specific pharmacological treatment because of the limited understanding of cellular mechanisms underlying arrhythmogenicity and diastolic dysfunction.
Methods And Results:
We assessed the electromechanical profile of cardiomyocytes from 26 HCM patients undergoing myectomy compared with those from nonfailing nonhypertrophic surgical patients by performing patch-clamp and intracellular Ca(2+) (Ca(2+)(i)) studies. Compared with controls, HCM cardiomyocytes showed prolonged action potential related to increased late Na(+) (I(NaL)) and Ca(2+) (I(CaL)) currents and decreased repolarizing K(+) currents, increased occurrence of cellular arrhythmias, prolonged Ca(2+)(i) transients, and higher diastolic Ca(2+)(i). Such changes were related to enhanced Ca(2+)/calmodulin kinase II (CaMKII) activity and increased phosphorylation of its targets. Ranolazine at therapeutic concentrations partially reversed the HCM-related cellular abnormalities via I(NaL) inhibition, with negligible effects in controls. By shortening the action potential duration in HCM cardiomyocytes, ranolazine reduced the occurrence of early and delayed afterdepolarizations. Finally, as a result of the faster kinetics of Ca(2+)(i) transients and the lower diastolic Ca(2+)(i), ranolazine accelerated the contraction-relaxation cycle of HCM trabeculae, ameliorating diastolic function.
Conclusions:
We highlighted a specific set of functional changes in human HCM myocardium that stem from a complex remodeling process involving alterations of CaMKII-dependent signaling, rather than being a direct consequence of the causal sarcomeric mutations. Among the several ion channel and Ca(2+)(i) handling proteins changes identified, an enhanced I(NaL) seems to be a major contributor to the electrophysiological and Ca(2+)(i) dynamic abnormalities of ventricular myocytes and trabeculae from patients with HCM, suggesting potential therapeutic implications of I(NaL) inhibition.
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