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Cardiomyocyte Hypocontractility and Reduced Myofibril Density in End-Stage Pediatric Cardiomyopathy
Ilse A E Bollen1, Marijke van der Meulen2, Kyra de Goede1
1Department of Physiology, Amsterdam Cardiovascular Sciences, VU University Medical Center, Amsterdam, Netherlands.
Insights
Pediatric cardiomyopathy involves reduced myofibril density in heart cells, leading to lower contractility. This cellular mechanism, unlike in adults, may explain early disease onset and severity in children.
Area of Science:
- Cardiology
- Molecular Biology
- Pediatrics
Background:
- Pediatric cardiomyopathy (CM) has high morbidity and mortality.
- Pathophysiology and cellular mechanisms are poorly understood.
- Treatment relies on adult heart failure therapies.
Purpose of the Study:
- Investigate cellular pathomechanisms in pediatric CM.
- Assess cardiomyocyte contractility and protein expression.
- Define underlying causes of pediatric CM severity.
Main Methods:
- Studied explanted heart tissue from pediatric CM patients and controls.
- Measured contractility in single membrane-permeabilized cardiomyocytes.
- Analyzed protein expression using gel electrophoresis and western blot.
Main Results:
- Observed increased myofilament Ca2+ sensitivity due to cardiac troponin I hypophosphorylation.
- Found reduced maximal force and passive force in pediatric CM cardiomyocytes.
- Reduced myofibril density was identified as the cause of hypocontractility, normalizing forces when corrected.
- Did not find increased compliant titin isoform expression, unlike in adult DCM.
Conclusions:
- Reduced myofibril density is the primary cause of hypocontractility in pediatric CM.
- Hypophosphorylation of cardiac troponin I is a shared feature with adult DCM.
- Impaired myofibril density maintenance may contribute to early onset and severity of pediatric CM.
Abstract:
Dilated cardiomyopathy amongst children (pediatric cardiomyopathy, pediatric CM) is associated with a high morbidity and mortality. Because little is known about the pathophysiology of pediatric CM, treatment is largely based on adult heart failure therapy. The reason for high morbidity and mortality is largely unknown as well as data on cellular pathomechanisms is limited. Here, we assessed cardiomyocyte contractility and protein expression to define cellular pathomechanisms in pediatric CM. Explanted heart tissue of 11 pediatric CM patients and 18 controls was studied. Contractility was measured in single membrane-permeabilized cardiomyocytes and protein expression was assessed with gel electrophoresis and western blot analysis. We observed increased Ca2+-sensitivity of myofilaments which was due to hypophosphorylation of cardiac troponin I, a feature commonly observed in adult DCM. We also found a significantly reduced maximal force generating capacity of pediatric CM cardiomyocytes, as well as a reduced passive force development over a range of sarcomere lengths. Myofibril density was reduced in pediatric CM compared to controls. Correction of maximal force and passive force for myofibril density normalized forces in pediatric CM cardiomyocytes to control values. This implies that the hypocontractility was caused by the reduction in myofibril density. Unlike in adult DCM we did not find an increase in compliant titin isoform expression in end-stage pediatric CM. The limited ability of pediatric CM patients to maintain myofibril density might have contributed to their early disease onset and severity.
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