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Updated: Mar 2, 2026

Assessment of Myofilament Ca2+ Sensitivity Underlying Cardiac Excitation-contraction Coupling
Published on: August 1, 2016
Changes in the dynamics of the cardiac troponin C molecule explain the effects of Ca2+-sensitizing mutations
Charles M Stevens1, Kaveh Rayani2, Gurpreet Singh3
1Cardiovascular Sciences, British Columbia Children's Hospital Research Institute, Vancouver, British Columbia V5Z 4H4, Canada; Departments of Biomedical Physiology and Kinesiology, Simon Fraser University, Burnaby, British Columbia V5A 1S6, Canada.
Abstract:
Cardiac troponin C (cTnC) is the regulatory protein that initiates cardiac contraction in response to Ca2+ TnC binding Ca2+ initiates a cascade of protein-protein interactions that begins with the opening of the N-terminal domain of cTnC, followed by cTnC binding the troponin I switch peptide (TnISW). We have evaluated, through isothermal titration calorimetry and molecular-dynamics simulation, the effect of several clinically relevant mutations (A8V, L29Q, A31S, L48Q, Q50R, and C84Y) on the Ca2+ affinity, structural dynamics, and calculated interaction strengths between cTnC and each of Ca2+ and TnISW Surprisingly the Ca2+ affinity measured by isothermal titration calorimetry was only significantly affected by half of these mutations including L48Q, which had a 10-fold higher affinity than WT, and the Q50R and C84Y mutants, each of which had affinities 3-fold higher than wild type. This suggests that Ca2+ affinity of the N-terminal domain of cTnC in isolation is insufficient to explain the pathogenicity of these mutations. Molecular-dynamics simulation was used to evaluate the effects of these mutations on Ca2+ binding, structural dynamics, and TnI interaction independently. Many of the mutations had a pronounced effect on the balance between the open and closed conformations of the TnC molecule, which provides an indirect mechanism for their pathogenic properties. Our data demonstrate that the structural dynamics of the cTnC molecule are key in determining myofilament Ca2+ sensitivity. Our data further suggest that modulation of the structural dynamics is the underlying molecular mechanism for many disease mutations that are far from the regulatory Ca2+-binding site of cTnC.
Insights
Cardiac troponin C (cTnC) mutations impact Ca2+ binding and structural dynamics, affecting heart contraction. Altered protein dynamics, not just Ca2+ affinity, explain disease mechanisms.
Area of Science:
- Biochemistry
- Molecular Biology
- Cardiovascular Research
Background:
- Cardiac troponin C (cTnC) regulates cardiac muscle contraction via Ca2+ binding.
- Mutations in cTnC can lead to cardiac diseases, but their precise molecular mechanisms are not fully understood.
Purpose of the Study:
- To investigate the impact of clinically relevant cTnC mutations on Ca2+ affinity, structural dynamics, and protein interactions.
- To elucidate the molecular mechanisms underlying the pathogenicity of cTnC mutations.
Main Methods:
- Isothermal titration calorimetry (ITC) to measure Ca2+ binding affinity.
- Molecular-dynamics (MD) simulations to analyze structural dynamics and interaction strengths.
- Evaluation of mutations A8V, L29Q, A31S, L48Q, Q50R, and C84Y.
Main Results:
- Only some mutations significantly altered Ca2+ affinity; L48Q showed a 10-fold increase, Q50R and C84Y showed 3-fold increases.
- MD simulations revealed mutations profoundly affect the balance between cTnC open and closed conformations.
- Structural dynamics, rather than direct Ca2+ affinity changes, appear crucial for pathogenicity.
Conclusions:
- Ca2+ affinity alone is insufficient to explain the pathogenicity of cTnC mutations.
- Modulation of cTnC structural dynamics is a key molecular mechanism for disease-associated mutations.
- Understanding cTnC dynamics is vital for diagnosing and treating cardiac conditions linked to these mutations.
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