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Mechanisms of pathogenicity in the hypertrophic cardiomyopathy-associated TPM1 variant S215L
Saiti S Halder1, Michael J Rynkiewicz2, Jenette G Creso1
1Department of Biomedical Engineering, Yale University, New Haven, CT 06511.
Insights
The TPM1 S215L mutation in hypertrophic cardiomyopathy (HCM) destabilizes tropomyosin, leading to increased calcium sensitivity and hypercontractility. This study classifies S215L as pathogenic, revealing a mechanism for thin-filament HCM.
Area of Science:
- Cardiovascular Biology
- Molecular Genetics
- Biophysics
Background:
- Hypertrophic cardiomyopathy (HCM) is a genetic heart disease often caused by sarcomeric gene mutations.
- TPM1 mutations are linked to HCM, but the pathogenicity of many variants, like S215L, is unknown.
- Understanding TPM1 variant pathogenicity is crucial for diagnosing and treating HCM.
Purpose of the Study:
- To computationally assess the pathogenicity of the TPM1 S215L variant.
- To experimentally validate the predicted functional consequences of S215L.
- To elucidate the molecular mechanism by which TPM1 S215L causes HCM.
Main Methods:
- Molecular dynamic simulations of tropomyosin-actin interactions.
- Markov modeling of thin-filament activation.
- In vitro motility assays and isometric force measurements.
- Analysis of genetically engineered heart tissues (GEHTs) expressing TPM1 S215L.
Main Results:
- S215L destabilizes the blocked regulatory state of tropomyosin, increasing chain flexibility.
- Simulations predicted increased Ca2+ sensitivity and twitch force, with slowed relaxation.
- In vitro experiments confirmed higher Ca2+ sensitivity.
- GEHTs showed hypercontractility, hypertrophic marker upregulation, and diastolic dysfunction.
Conclusions:
- TPM1 S215L is a pathogenic mutation causing HCM through disruption of tropomyosin's mechanical and regulatory functions.
- The mechanism involves impaired actomyosin inhibition, leading to hypercontractility and a hypertrophic phenotype.
- This study provides a mechanistic link between thin-filament dysfunction and HCM pathogenesis.
Abstract:
Hypertrophic cardiomyopathy (HCM) is an inherited disorder often caused by mutations to sarcomeric genes. Many different HCM-associated TPM1 mutations have been identified but they vary in their degrees of severity, prevalence, and rate of disease progression. The pathogenicity of many TPM1 variants detected in the clinical population remains unknown. Our objective was to employ a computational modeling pipeline to assess pathogenicity of one such variant of unknown significance, TPM1 S215L, and validate predictions using experimental methods. Molecular dynamic simulations of tropomyosin on actin suggest that the S215L significantly destabilizes the blocked regulatory state while increasing flexibility of the tropomyosin chain. These changes were quantitatively represented in a Markov model of thin-filament activation to infer the impacts of S215L on myofilament function. Simulations of in vitro motility and isometric twitch force predicted that the mutation would increase Ca2+ sensitivity and twitch force while slowing twitch relaxation. In vitro motility experiments with thin filaments containing TPM1 S215L revealed higher Ca2+ sensitivity compared with wild type. Three-dimensional genetically engineered heart tissues expressing TPM1 S215L exhibited hypercontractility, upregulation of hypertrophic gene markers, and diastolic dysfunction. These data form a mechanistic description of TPM1 S215L pathogenicity that starts with disruption of the mechanical and regulatory properties of tropomyosin, leading thereafter to hypercontractility and finally induction of a hypertrophic phenotype. These simulations and experiments support the classification of S215L as a pathogenic mutation and support the hypothesis that an inability to adequately inhibit actomyosin interactions is the mechanism whereby thin-filament mutations cause HCM.
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