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Updated: Jan 20, 2026

Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Fropofol prevents disease progression in mice with hypertrophic cardiomyopathy
Yiyuan Huang1, Haisong Lu2, Xianfeng Ren3
1Department of Cardiology, 2nd Xiangya Hospital Central South University, 139 Renmin Middle Road, Changsha, Hunan 410011, China.
Insights
Fropofol, a small molecule, prevents hypertrophic cardiomyopathy (HCM) by directly reducing myofilament contractility. This inhibition halts disease progression and reduces cardiac hypertrophy in mouse models.
Area of Science:
- Cardiology
- Molecular Biology
- Pharmacology
Background:
- Hypertrophic cardiomyopathy (HCM) is linked to increased myofilament contractility.
- Directly reducing myofilament force may prevent HCM progression.
Purpose of the Study:
- To investigate if fropofol, a small molecule, can prevent HCM phenotype and disease progression.
- To determine if fropofol works by directly reducing myofilament force development.
Main Methods:
- Assessed force, intracellular calcium ([Ca2+]i), and activation in isolated mouse heart muscles.
- Treated HCM mice with fropofol via intraperitoneal infusion for 12 weeks.
- Analyzed heart tissue for histology, gene expression (prohypertrophic/profibrotic), cell size, and fibrosis.
Main Results:
- Fropofol dose-dependently decreased muscle force without altering [Ca2+]i.
- Fropofol reduced maximal Ca2+-activated force and increased [Ca2+]i needed for 50% activation.
- Fropofol treatment prevented hypertrophy, diastolic dysfunction, attenuated prohypertrophic/profibrotic genes, reduced cell size, and decreased fibrosis in mice.
Conclusions:
- Fropofol directly inhibits myofilament contraction, preventing HCM phenotypic expression and progression.
- This suggests that elevated myofilament contractile force is a primary driver of HCM development and progression.
Aims:
Increased myofilament contractility is recognized as a crucial factor in the pathogenesis of hypertrophic cardiomyopathy (HCM). Direct myofilament desensitization might be beneficial in preventing HCM disease progression. Here, we tested whether the small molecule fropofol prevents HCM phenotype expression and disease progression by directly depressing myofilament force development.
Methods And Results:
Force, intracellular Ca2+, and steady-state activation were determined in isolated trabecular muscles from wild-type (WT) and transgenic HCM mice with heterozygous human α-myosin heavy chain R403Q mutation (αMHC 403/+). αMHC 403/+ HCM mice were treated continuously with fropofol by intraperitoneal infusion for 12 weeks. Heart tissue was analysed with histology and real-time PCR of prohypertrophic and profibrotic genes. Fropofol decreased force in a concentration-dependent manner without significantly altering [Ca2+]i in isolated muscles from both WT and αMHC 403/+ HCM mouse hearts. Fropofol also depressed maximal Ca2+-activated force and increased the [Ca2+]i required for 50% activation during steady-state activation. In whole-animal studies, chronic intra-abdominal administration of fropofol prevented hypertrophy development and diastolic dysfunction. Chronic fropofol treatment also led to attenuation of prohypertrophic and profibrotic gene expression, reductions in cell size, and decreases in tissue fibrosis.
Conclusions:
Direct inhibition of myofilament contraction by fropofol prevents HCM disease phenotypic expression and progression, suggesting that increased myofilament contractile force is the primary trigger for hypertrophy development and HCM disease progression.
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