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Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Incomplete-penetrant hypertrophic cardiomyopathy MYH7 G256E mutation causes hypercontractility and elevated
Soah Lee1,2,3, Alison S Vander Roest4,5, Cheavar A Blair6,7
1Stanford Cardiovascular Institute, Stanford University School of Medicine, Stanford, CA 94305.
Insights
The MYH7 G256E mutation causes hypercontractile myosin function, leading to early cardiac changes in hypertrophic cardiomyopathy. This study reveals a multiscale platform to assess gene variant pathogenicity in cardiovascular diseases.
Area of Science:
- Cardiovascular Genetics
- Molecular Cardiology
- Biophysics
Background:
- Determining pathogenicity of hypertrophic cardiomyopathy (HCM)-associated MYH7 mutations is challenging due to variable penetrance.
- The MYH7 G256E mutation is linked to HCM but its early pathogenic mechanisms remain unclear.
Purpose of the Study:
- Investigate early pathogenic effects of the MYH7 G256E mutation on myosin function.
- Hypothesize that G256E alters myosin biomechanics, triggering cellular adaptations and hypertrophy.
- Characterize multiscale effects of G256E on the contractile apparatus, gene regulation, and metabolism.
Main Methods:
- Developed a collaborative pipeline to analyze myosin function from protein to tissue levels.
- Utilized gene-edited MYH7WT/G256E human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs).
- Performed single-cell transcriptomic and metabolic profiling.
Main Results:
- G256E mutation disrupts the S1 head transducer region, increasing available myosin heads for contraction.
- Myofibrils and hiPSC-CMs from G256E models showed greater and faster tension development (hypercontractility).
- Upregulated mitochondrial genes and increased respiration indicated early bioenergetic alterations.
Conclusions:
- MYH7 G256E mutation causes a consistent hypercontractile myosin phenotype across multiple scales.
- This hypercontractility is a primary consequence, highlighting the variant's pathogenicity.
- The multiscale platform effectively evaluates gene variant pathogenicity and early cellular/tissue consequences for cardiovascular diseases.
Abstract:
Determining the pathogenicity of hypertrophic cardiomyopathy-associated mutations in the β-myosin heavy chain (MYH7) can be challenging due to its variable penetrance and clinical severity. This study investigates the early pathogenic effects of the incomplete-penetrant MYH7 G256E mutation on myosin function that may trigger pathogenic adaptations and hypertrophy. We hypothesized that the G256E mutation would alter myosin biomechanical function, leading to changes in cellular functions. We developed a collaborative pipeline to characterize myosin function across protein, myofibril, cell, and tissue levels to determine the multiscale effects on structure-function of the contractile apparatus and its implications for gene regulation and metabolic state. The G256E mutation disrupts the transducer region of the S1 head and reduces the fraction of myosin in the folded-back state by 33%, resulting in more myosin heads available for contraction. Myofibrils from gene-edited MYH7WT/G256E human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) exhibited greater and faster tension development. This hypercontractile phenotype persisted in single-cell hiPSC-CMs and engineered heart tissues. We demonstrated consistent hypercontractile myosin function as a primary consequence of the MYH7 G256E mutation across scales, highlighting the pathogenicity of this gene variant. Single-cell transcriptomic and metabolic profiling demonstrated upregulated mitochondrial genes and increased mitochondrial respiration, indicating early bioenergetic alterations. This work highlights the benefit of our multiscale platform to systematically evaluate the pathogenicity of gene variants at the protein and contractile organelle level and their early consequences on cellular and tissue function. We believe this platform can help elucidate the genotype-phenotype relationships underlying other genetic cardiovascular diseases.
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