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Published on: June 14, 2016
Dystrophic cardiomyopathy: amplification of cellular damage by Ca2+ signalling and reactive oxygen species-generating
Carole Jung1, Adriano S Martins, Ernst Niggli
1Department of Physiology, University of Bern, Bern, Switzerland.
Aims:
Cardiac myopathies are the second leading cause of death in patients with Duchenne and Becker muscular dystrophy, the two most common and severe forms of a disabling striated muscle disease. Although the genetic defect has been identified as mutations of the dystrophin gene, very little is known about the molecular and cellular events leading to progressive cardiac muscle damage. Dystrophin is a protein linking the cytoskeleton to a complex of transmembrane proteins that interact with the extracellular matrix. The fragility of the cell membrane resulting from the lack of dystrophin is thought to cause an excessive susceptibility to mechanical stress. Here, we examined cellular mechanisms linking the initial membrane damage to the dysfunction of dystrophic heart.
Methods And Results:
Cardiac ventricular myocytes were enzymatically isolated from 5- to 9-month-old dystrophic mdx and wild-type (WT) mice. Cells were exposed to mechanical stress, applied as osmotic shock. Stress-induced cytosolic and mitochondrial Ca(2+) signals, production of reactive oxygen species (ROS), and mitochondrial membrane potential were monitored with confocal microscopy and fluorescent indicators. Pharmacological tools were used to scavenge ROS and to identify their possible sources. Osmotic shock triggered excessive cytosolic Ca(2+) signals, often lasting for several minutes, in 82% of mdx cells. In contrast, only 47% of the WT cardiomyocytes responded with transient and moderate intracellular Ca(2+) signals. On average, the reaction was 6-fold larger in mdx cells. Removal of extracellular Ca(2+) abolished these responses, implicating Ca(2+) influx as a trigger for abnormal Ca(2+) signalling. Our further experiments revealed that osmotic stress in mdx cells produced an increase in ROS production and mitochondrial Ca(2+) overload. The latter was followed by collapse of the mitochondrial membrane potential, an early sign of cell death.
Conclusion:
Overall, our findings reveal that excessive intracellular Ca(2+) signals and ROS generation link the initial sarcolemmal injury to mitochondrial dysfunctions. The latter possibly contribute to the loss of functional cardiac myocytes and heart failure in dystrophy. Understanding the sequence of events of dystrophic cell damage and the deleterious amplification systems involved, including several positive feed-back loops, may allow for a rational development of novel therapeutic strategies.
Insights
Duchenne muscular dystrophy causes heart damage through excessive calcium and reactive oxygen species (ROS) after cell injury. These factors lead to mitochondrial dysfunction and heart failure in dystrophic hearts.
Area of Science:
- Cardiovascular Biology
- Cellular Physiology
- Muscle Diseases
Background:
- Cardiac myopathies are a major cause of death in Duchenne and Becker muscular dystrophy.
- Dystrophin deficiency leads to muscle cell fragility and susceptibility to mechanical stress.
- The molecular mechanisms of cardiac damage in muscular dystrophy are not well understood.
Purpose of the Study:
- To investigate the cellular mechanisms linking initial membrane damage to cardiac dysfunction in muscular dystrophy.
- To identify the role of calcium signaling and reactive oxygen species (ROS) in dystrophic heart damage.
Main Methods:
- Enzymatic isolation of cardiac ventricular myocytes from dystrophic (mdx) and wild-type (WT) mice.
- Application of mechanical stress via osmotic shock to isolated myocytes.
- Monitoring of cytosolic and mitochondrial Ca(2+) signals, ROS production, and mitochondrial membrane potential using confocal microscopy and fluorescent indicators.
Main Results:
- Osmotic shock induced significantly larger and prolonged cytosolic Ca(2+) signals in mdx myocytes compared to WT cells (82% vs. 47%).
- Abnormal Ca(2+) signaling in mdx cells was triggered by extracellular Ca(2+) influx.
- Osmotic stress led to increased ROS production and mitochondrial Ca(2+) overload in mdx cells, followed by mitochondrial membrane potential collapse.
Conclusions:
- Excessive intracellular Ca(2+) signals and ROS generation are key events linking sarcolemmal injury to mitochondrial dysfunction in muscular dystrophy.
- Mitochondrial dysfunction contributes to the loss of functional cardiac myocytes and heart failure in dystrophy.
- Understanding these damaging pathways may enable the development of new therapeutic strategies for dystrophic cardiomyopathy.
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