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Published on: August 8, 2022
Hypertrophic Cardiomyopathy Cardiac Troponin C Mutations Differentially Affect Slow Skeletal and Cardiac Muscle
Tiago Veltri1, Maicon Landim-Vieira1, Michelle S Parvatiyar2
1Department of Biomedical Sciences, Florida State University College of MedicineTallahassee, FL, USA.
Insights
Mutations in the cardiac troponin C (cTnC) gene impact muscle function. While some mutations primarily affect cardiac muscle, the C84Y mutant significantly alters both cardiac and slow skeletal muscle properties, warranting further study.
Area of Science:
- Biochemistry
- Molecular Biology
- Physiology
Background:
- Mutations in TNNC1, encoding cardiac troponin C (cTnC), are linked to hypertrophic cardiomyopathy (HCM) and cardiac dysfunction.
- The TNNC1 gene is expressed in both cardiac and slow skeletal muscle, suggesting potential impacts on both muscle types.
Purpose of the Study:
- To investigate the effects of HCM-associated cTnC mutants (A8V, C84Y, E134D, D145E) on contractile force and ATPase rates in slow skeletal muscle preparations.
- To determine if co-expression with slow skeletal troponin I (ssTnI) can replicate slow skeletal muscle functional phenotypes in cardiac fibers.
Main Methods:
- Reconstitution of rabbit soleus fibers with mutant cTnCs to assess isometric force and Ca2+ sensitivity.
- Incorporation of mutant cTnCs into bovine masseter myofibrils to measure ATPase rates.
- Reconstitution of cardiac fibers with troponin complexes containing cTnC mutants and ssTnI.
Main Results:
- The C84Y mutant increased Ca2+ sensitivity of isometric force in soleus fibers.
- cTnC C84Y reduced ATPase activity in masseter myofibrils, while D145E increased it.
- Co-expression with ssTnI differentially affected Ca2+ sensitization in cardiac fibers depending on the cTnC mutant.
Conclusions:
- HCM-associated cTnC mutants exhibit varied functional phenotypes in cardiac versus slow skeletal muscle.
- The C84Y mutant profoundly affects both muscle types and may explain early clinical onset in patients.
- Protein-protein interactions within the troponin complex are crucial for differential muscle-specific functional outcomes.
Abstract:
Mutations in TNNC1-the gene encoding cardiac troponin C (cTnC)-that have been associated with hypertrophic cardiomyopathy (HCM) and cardiac dysfunction may also affect Ca2+-regulation and function of slow skeletal muscle since the same gene is expressed in both cardiac and slow skeletal muscle. Therefore, we reconstituted rabbit soleus fibers and bovine masseter myofibrils with mutant cTnCs (A8V, C84Y, E134D, and D145E) associated with HCM to investigate their effects on contractile force and ATPase rates, respectively. Previously, we showed that these HCM cTnC mutants, except for E134D, increased the Ca2+ sensitivity of force development in cardiac preparations. In the current study, an increase in Ca2+ sensitivity of isometric force was only observed for the C84Y mutant when reconstituted in soleus fibers. Incorporation of cTnC C84Y in bovine masseter myofibrils reduced the ATPase activity at saturating [Ca2+], whereas, incorporation of cTnC D145E increased the ATPase activity at inhibiting and saturating [Ca2+]. We also tested whether reconstitution of cardiac fibers with troponin complexes containing the cTnC mutants and slow skeletal troponin I (ssTnI) could emulate the slow skeletal functional phenotype. Reconstitution of cardiac fibers with troponin complexes containing ssTnI attenuated the Ca2+ sensitization of isometric force when cTnC A8V and D145E were present; however, it was enhanced for C84Y. In summary, although the A8V and D145E mutants are present in both muscle types, their functional phenotype is more prominent in cardiac muscle than in slow skeletal muscle, which has implications for the protein-protein interactions within the troponin complex. The C84Y mutant warrants further investigation since it drastically alters the properties of both muscle types and may account for the earlier clinical onset in the proband.
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