Increased myocyte calcium sensitivity in end-stage pediatric dilated cardiomyopathy
Stephanie J Nakano1, John S Walker2, Lori A Walker2
1Division of Cardiology, Department of Pediatrics, University of Colorado Denver, Aurora, Colorado.
Insights
Pediatric dilated cardiomyopathy (DCM) involves altered cardiomyocyte function, showing increased calcium sensitivity due to reduced troponin I phosphorylation. These changes may impact treatment responses in children with heart failure.
Area of Science:
- Cardiology
- Molecular Biology
- Pediatric Heart Disease
Background:
- Dilated cardiomyopathy (DCM) is a leading cause of heart failure (HF) in children, with unclear pathophysiology and potentially different responses to treatment compared to adults.
- Understanding molecular adaptations in pediatric DCM is crucial for developing effective therapies.
Purpose of the Study:
- To investigate alterations in cardiomyocyte contractile properties and sarcomeric protein phosphorylation in pediatric DCM.
- To compare these changes with nonfailing (NF) pediatric hearts.
Main Methods:
- Skinned cardiomyocytes from pediatric DCM (N=8) and NF (N=8) hearts were used to generate force-pCa curves.
- Sarcomeric protein phosphorylation was quantified using Pro-Q Diamond staining.
Main Results:
- Pediatric DCM cardiomyocytes exhibited increased calcium sensitivity (pCa50) and decreased troponin I phosphorylation compared to NF.
- Lower phosphorylation of myosin binding protein C and troponin T, and increased desmin phosphorylation were observed in pediatric DCM.
- Peak tension was comparable between DCM and NF, but cooperativity was reduced in pediatric DCM.
Conclusions:
- Altered sarcomeric phosphorylation and cardiomyocyte contractility in pediatric DCM may indicate an impaired compensatory response.
- These distinct adaptations, including reduced cooperativity, could influence the efficacy of pharmacological therapies in pediatric HF patients.
Abstract:
Dilated cardiomyopathy (DCM) is the most common cause of heart failure (HF) in children, resulting in high mortality and need for heart transplantation. The pathophysiology underlying pediatric DCM is largely unclear; however, there is emerging evidence that molecular adaptations and response to conventional HF medications differ between children and adults. To gain insight into alterations leading to systolic dysfunction in pediatric DCM, we measured cardiomyocyte contractile properties and sarcomeric protein phosphorylation in explanted pediatric DCM myocardium (N = 8 subjects) compared with nonfailing (NF) pediatric hearts (N = 8 subjects). Force-pCa curves were generated from skinned cardiomyocytes in the presence and absence of protein kinase A. Sarcomeric protein phosphorylation was quantified with Pro-Q Diamond staining after gel electrophoresis. Pediatric DCM cardiomyocytes demonstrate increased calcium sensitivity (pCa50 =5.70 ± 0.0291), with an associated decrease in troponin (Tn)I phosphorylation compared with NF pediatric cardiomyocytes (pCa50 =5.59 ± 0.0271, P = 0.0073). Myosin binding protein C and TnT phosphorylation are also lower in pediatric DCM, whereas desmin phosphorylation is increased. Pediatric DCM cardiomyocytes generate peak tension comparable to that of NF pediatric cardiomyocytes [DCM 29.7 mN/mm2, interquartile range (IQR) 21.5-49.2 vs. NF 32.8 mN/mm2, IQR 21.5-49.2 mN/mm2; P = 0.6125]. In addition, cooperativity is decreased in pediatric DCM compared with pediatric NF (Hill coefficient: DCM 1.56, IQR 1.31-1.94 vs. NF 1.94, IQR 1.36-2.86; P = 0.0425). Alterations in sarcomeric phosphorylation and cardiomyocyte contractile properties may represent an impaired compensatory response, contributing to the detrimental DCM phenotype in children.NEW & NOTEWORTHY Our study is the first to demonstrate that cardiomyocytes from infants and young children with dilated cardiomyopathy (DCM) exhibit increased calcium sensitivity (likely mediated by decreased troponin I phosphorylation) compared with nonfailing pediatric cardiomyocytes. Compared with published values in adult cardiomyocytes, pediatric cardiomyocytes have notably decreased cooperativity, with a further reduction in the setting of DCM. Distinct adaptations in cardiomyocyte contractile properties may contribute to a differential response to pharmacological therapies in the pediatric DCM population.
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