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Updated: Aug 11, 2025

Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Cardiomyocyte apoptosis contributes to contractile dysfunction in stem cell model of MYH7 E848G hypertrophic
Alexander M Loiben1,2,3, Wei-Ming Chien1,2,3,4, Clayton E Friedman1,2,3
1Institute for Stem Cell and Regenerative Medicine, University of Washington, School of Medicine, Seattle, WA, USA.
Insights
Pathogenic MYH7 mutations cause hypertrophic cardiomyopathy (HCM). This study found MYH7 E848G variant increases cell death independently of p53, suggesting new therapeutic targets for HCM patients with systolic dysfunction.
Area of Science:
- Cardiovascular Biology
- Stem Cell Biology
- Genetics
Background:
- Missense mutations in myosin heavy chain 7 (MYH7) are a leading cause of hypertrophic cardiomyopathy (HCM).
- The precise molecular mechanisms driving MYH7-associated HCM, particularly concerning systolic dysfunction, are not fully understood.
- Understanding these mechanisms is crucial for developing targeted therapies.
Conclusions:
- Cardiomyocyte apoptosis is a significant factor in the in vitro phenotype of MYH7 E848G HCM.
- The observed apoptosis and contractile dysfunction are independent of p53.
- Targeting p53-independent cell death pathways may offer a therapeutic avenue for HCM patients with systolic dysfunction.
Abstract:
Missense mutations in myosin heavy chain 7 ( MYH7 ) are a common cause of hyper-trophic cardiomyopathy (HCM), but the molecular mechanisms underlying MYH7 -based HCM remain unclear. In this work, we generated cardiomyocytes derived from isogenic human induced pluripotent stem cells to model the heterozygous pathogenic MYH7 missense variant, E848G, which is associated with left ventricular hypertrophy and adultonset systolic dysfunction. MYH7 E848G/+ increased cardiomyocyte size and reduced the maximum twitch forces of engineered heart tissue, consistent with the systolic dysfunction in MYH7 E848G HCM patients. Interestingly, MYH7 E848G/+ cardiomyocytes more frequently underwent apoptosis that was associated with increased p53 activity relative to controls. However, genetic ablation of TP53 did not rescue cardiomyocyte survival or restore engineered heart tissue twitch force, indicating MYH7 E848G/+ cardiomyocyte apoptosis and contractile dysfunction are p53-independent. Overall, our findings suggest that cardiomyocyte apoptosis plays an important role in the MYH7 E848G/+ HCM phenotype in vitro and that future efforts to target p53-independent cell death pathways may be beneficial for the treatment of HCM patients with systolic dysfunction.
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