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Voltage-gated ion channel dysfunction precedes cardiomyopathy development in the dystrophic heart
Xaver Koenig1, Sandra Dysek, Stefanie Kimbacher
1Center for Physiology and Pharmacology, Department of Neurophysiology and Pharmacology, Medical University of Vienna, Vienna, Austria.
Background:
Duchenne muscular dystrophy (DMD), caused by mutations in the dystrophin gene, is associated with severe cardiac complications including cardiomyopathy and cardiac arrhythmias. Recent research suggests that impaired voltage-gated ion channels in dystrophic cardiomyocytes accompany cardiac pathology. It is, however, unknown if the ion channel defects are primary effects of dystrophic gene mutations, or secondary effects of the developing cardiac pathology.
Methodology/Principal Findings:
To address this question, we first investigated sodium channel impairments in cardiomyocytes derived from dystrophic neonatal mice prior to cardiomyopahty development, by using the whole cell patch clamp technique. Besides the most common model for DMD, the dystrophin-deficient mdx mouse, we also used mice additionally carrying an utrophin mutation. In neonatal cardiomyocytes, dystrophin-deficiency generated a 25% reduction in sodium current density. In addition, extra utrophin-deficiency significantly altered sodium channel gating parameters. Moreover, also calcium channel inactivation was considerably reduced in dystrophic neonatal cardiomyocytes, suggesting that ion channel abnormalities are universal primary effects of dystrophic gene mutations. To assess developmental changes, we also studied sodium channel impairments in cardiomyocytes derived from dystrophic adult mice, and compared them with the respective abnormalities in dystrophic neonatal cells. Here, we found a much stronger sodium current reduction in adult cardiomyocytes. The described sodium channel impairments slowed the upstroke of the action potential in adult cardiomyocytes, and only in dystrophic adult mice, the QRS interval of the electrocardiogram was prolonged.
Conclusions/Significance:
Ion channel impairments precede pathology development in the dystrophic heart, and may thus be considered potential cardiomyopathy triggers.
Insights
Ion channel defects in Duchenne muscular dystrophy (DMD) occur early, before heart problems develop. These early ion channel impairments may trigger cardiac issues in DMD patients.
Area of Science:
- Cardiovascular Research
- Molecular Biology
- Genetics
Background:
- Duchenne muscular dystrophy (DMD) causes severe cardiac complications like cardiomyopathy and arrhythmias.
- Impaired voltage-gated ion channels are observed in dystrophic cardiomyocytes.
- The primary or secondary nature of these ion channel defects remains unclear.
Purpose of the Study:
- To determine if ion channel defects are primary effects of dystrophin gene mutations in DMD.
- To investigate the developmental progression of ion channel abnormalities in dystrophic hearts.
Main Methods:
- Whole-cell patch clamp technique on cardiomyocytes from neonatal and adult dystrophin-deficient mdx mice, with and without utrophin mutations.
- Analysis of sodium and calcium channel function.
- Electrocardiogram (ECG) assessment in adult mice.
Main Results:
- Neonatal dystrophic cardiomyocytes showed a 25% reduction in sodium current density.
- Utrophin deficiency further altered sodium channel gating.
- Reduced calcium channel inactivation was observed in neonatal dystrophic cardiomyocytes.
- Adult dystrophic cardiomyocytes exhibited a more pronounced sodium current reduction.
- Sodium channel impairments slowed action potential upstroke and prolonged QRS interval in adult dystrophic mice.
Conclusions:
- Ion channel abnormalities are primary effects of dystrophin gene mutations.
- These defects precede the development of cardiac pathology in DMD.
- Ion channel impairments are potential triggers for cardiomyopathy in DMD.
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Voltage-gated Ion Channels
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
Voltage-gated Ion Channels
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
Cardiac Action Potential
The cardiac action potential process involves a series of phases characterized by the movement of ions across the cardiac cell membranes, leading to the depolarization and repolarization of the cardiac myocytes.
Ionic Basis of Cardiac Action Potentials

