Myofilament Calcium Sensitivity: Consequences of the Effective Concentration of Troponin I

Jalal K Siddiqui1, Svetlana B Tikunova1, Shane D Walton1

  • 1Department of Physiology and Cell Biology and the Davis Heart and Lung Research Institute, The Ohio State University Columbus, OH, USA.

Frontiers in Physiology
|January 10, 2017
PubMed

Insights

Cardiac muscle contraction relies on calcium binding to troponin C (TnC). Aberrant protein modifications can alter TnC

Area of Science:

  • Cardiovascular physiology
  • Molecular biology
  • Biophysics

Background:

  • Cardiac muscle contraction and relaxation are precisely regulated by calcium binding to cardiac troponin C (TnC).
  • Numerous protein modifications and mutations disrupt this calcium-dependent regulation, leading to cardiac dysfunction and disease.
  • Altered calcium sensitivity is a hallmark of various heart conditions.

Purpose of the Study:

  • To investigate the molecular mechanisms underlying altered calcium sensitivity in cardiac muscle.
  • To develop a mathematical model simulating the impact of protein modifications on TnC calcium binding.
  • To explore the role of troponin I (TnI) effective concentration in modulating TnC's calcium binding properties.

Main Methods:

  • Utilized TnI peptide binding studies and chimeric TnC-TnI fusion constructs.
  • Developed a mathematical model to simulate steady-state and kinetic calcium binding properties.
  • Applied the model to analyze disease-related and post-translational protein modifications in the troponin complex and thin filament.

Main Results:

  • Predicted that several TnI and TnT modifications do not change intrinsic binding constants but affect TnC's ability to interact with TnI.
  • Demonstrated that the "effective concentration" of TnI significantly modulates apparent calcium binding properties of TnC.
  • The developed model successfully simulates calcium binding under various disease-associated modifications.

Conclusions:

  • The "effective concentration" of TnI is a critical factor in regulating TnC's calcium sensitivity.
  • Protein modifications can impair TnC's ability to efficiently bind TnI, thereby altering cardiac function.
  • This study provides a novel framework for understanding and predicting the impact of modifications on cardiac contractility.

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