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Updated: Nov 2, 2025

Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Hypertrophic cardiomyopathy β-cardiac myosin mutation (P710R) leads to hypercontractility by disrupting super relaxed
Alison Schroer Vander Roest1,2,3,4, Chao Liu4,5, Makenna M Morck4,5
1Department of Pediatrics (Cardiology), Stanford University School of Medicine, Palo Alto, CA 94304.
Insights
The P710R mutation in hypertrophic cardiomyopathy (HCM) destabilizes myosin
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Biophysics
Background:
- Hypertrophic cardiomyopathy (HCM) is a common inherited heart disease.
- Over 1,000 mutations are linked to HCM, with many affecting the MYH7 gene encoding β-cardiac myosin.
- Predicting cellular effects from diverse molecular myosin mutations is challenging.
Purpose of the Study:
- Investigate the P710R mutation's molecular and cellular impact in HCM.
- Understand how molecular changes influence cellular force generation and phenotype.
- Validate a multiscale approach for studying HCM mechanisms.
Main Methods:
- In vitro motility assays and actin-activated ATPase assays.
- Optical trap measurements of single myosin molecules.
- CRISPR-edited human induced pluripotent stem cell (hiPSC)-derived cardiomyocytes.
- Traction force microscopy, immunostaining, electron microscopy, and computational modeling.
Main Results:
- The P710R mutation reduced motility velocity and ATPase activity but destabilized the myosin super relaxed state.
- Single-molecule studies revealed reduced step size and altered load sensitivity.
- P710R hiPSC-cardiomyocytes exhibited increased force, hypertrophy, and cytoskeletal remodeling.
- Cellular hypertrophy was mitigated by inhibiting ERK or Akt pathways.
Conclusions:
- Regulation of the myosin super relaxed state is crucial for P710R-associated hypercontractility in HCM.
- The P710R mutation drives HCM phenotypes through complex molecular and cellular alterations.
- A multiscale approach effectively elucidates disease mechanisms in inherited cardiomyopathies.
Abstract:
Hypertrophic cardiomyopathy (HCM) is the most common inherited form of heart disease, associated with over 1,000 mutations, many in β-cardiac myosin (MYH7). Molecular studies of myosin with different HCM mutations have revealed a diversity of effects on ATPase and load-sensitive rate of detachment from actin. It has been difficult to predict how such diverse molecular effects combine to influence forces at the cellular level and further influence cellular phenotypes. This study focused on the P710R mutation that dramatically decreased in vitro motility velocity and actin-activated ATPase, in contrast to other MYH7 mutations. Optical trap measurements of single myosin molecules revealed that this mutation reduced the step size of the myosin motor and the load sensitivity of the actin detachment rate. Conversely, this mutation destabilized the super relaxed state in longer, two-headed myosin constructs, freeing more heads to generate force. Micropatterned human induced pluripotent derived stem cell (hiPSC)-cardiomyocytes CRISPR-edited with the P710R mutation produced significantly increased force (measured by traction force microscopy) compared with isogenic control cells. The P710R mutation also caused cardiomyocyte hypertrophy and cytoskeletal remodeling as measured by immunostaining and electron microscopy. Cellular hypertrophy was prevented in the P710R cells by inhibition of ERK or Akt. Finally, we used a computational model that integrated the measured molecular changes to predict the measured traction forces. These results confirm a key role for regulation of the super relaxed state in driving hypercontractility in HCM with the P710R mutation and demonstrate the value of a multiscale approach in revealing key mechanisms of disease.
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