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Updated: Jun 14, 2026

Assessment of Myofilament Ca2+ Sensitivity Underlying Cardiac Excitation-contraction Coupling
Published on: August 1, 2016
A dilated cardiomyopathy troponin C mutation lowers contractile force by reducing strong myosin-actin binding
David Dweck1, Daniel P Reynaldo, Jose R Pinto
1Department of Molecular and Cellular Pharmacology, University of Miami, Miller School of Medicine, Miami, Florida 33136, USA.
Abstract:
In this study we explore the mechanisms by which a double mutation (E59D/D75Y) in cardiac troponin C (CTnC) associated with dilated cardiomyopathy reduces the Ca(2+)-activated maximal tension of cardiac muscle. Studying the single mutants (i.e. E59D or D75Y) indicates that D75Y, but not E59D, causes a reduction in the calcium affinity of CTnC in troponin complex, regulated thin filaments (RTF), and the Ca(2+) sensitivity of contraction and ATPase in cardiac muscle preparations. However, both D75Y and E59D are required to reduce the actomyosin ATPase activity and maximal force in muscle fibers, indicating that E59D enhances the effects of D75Y. Part of the reduction in force/ATPase may be due to a defect in the interactions between CTnC and cardiac troponin T, which are known to be necessary for ATPase activation. An additional mechanism for the reduction in force/ATPase comes from measurements of the binding stoichiometry of myosin subfragment-1 (S-1) to the RTF. Using wild type RTFs, 4.8 mol S-1 was bound per mol filament (seven actins), whereas with E59D/D75Y RTFs, the number of binding sites was reduced by approximately 23% to 3.7. Altogether, these results suggest that the reduction in force and ATPase activation is possibly due to a thin filament conformation that promotes fewer accessible S-1-binding sites. In the absence of any family segregation data, the functional results presented here support the concept that this is likely a dilated cardiomyopathy-causing mutation.
Insights
A double mutation in cardiac troponin C (CTnC) reduces muscle tension in dilated cardiomyopathy. This mutation decreases calcium affinity and myosin binding sites, leading to reduced force and ATPase activity.
Area of Science:
- Biochemistry
- Molecular Biology
- Cardiovascular Physiology
Background:
- Dilated cardiomyopathy (DCM) is a heart muscle disease.
- Cardiac troponin C (CTnC) is crucial for muscle contraction.
- Specific CTnC mutations can cause DCM by altering muscle function.
Purpose of the Study:
- To investigate the molecular mechanisms by which a double mutation (E59D/D75Y) in CTnC reduces cardiac muscle tension.
- To elucidate the roles of individual mutations (E59D and D75Y) and their combined effect on CTnC function.
Main Methods:
- Studied single and double mutants of CTnC.
- Assessed calcium affinity, Ca(2+)-activated tension, and ATPase activity in cardiac muscle preparations.
- Measured actomyosin ATPase activity and maximal force in muscle fibers.
- Quantified myosin subfragment-1 (S-1) binding stoichiometry to regulated thin filaments (RTF).
Main Results:
- The D75Y mutation alone reduced calcium affinity and Ca(2+) sensitivity.
- Both E59D and D75Y mutations were required to significantly reduce actomyosin ATPase activity and maximal force.
- A defect in CTnC-CTnT interactions may contribute to reduced force/ATPase.
- The double mutation reduced S-1 binding sites on RTFs by approximately 23%.
Conclusions:
- The E59D/D75Y double mutation in CTnC impairs cardiac muscle function through multiple mechanisms.
- These mechanisms include reduced calcium affinity and fewer accessible myosin binding sites on the thin filament.
- The findings support the hypothesis that this CTnC mutation is a cause of dilated cardiomyopathy.
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