A structural and functional perspective into the mechanism of Ca2+-sensitizers that target the cardiac troponin

Ian M Robertson1, Yin-Biao Sun, Monica X Li

  • 1Department of Biochemistry, University of Alberta, Edmonton, Alberta, Canada.

Insights

Novel levosimendan analogs, dfbp-o and dfbp, were studied to understand Ca(2+)-sensitizer mechanisms. Dfbp-o enhances cardiac muscle sensitivity to Ca(2+) by stabilizing the troponin C-troponin I interaction.

Area of Science:

  • Cardiovascular Pharmacology
  • Biochemistry
  • Structural Biology

Background:

  • Heart failure reduces cardiac output, necessitating treatments that enhance cardiac muscle Ca(2+) sensitivity.
  • Levosimendan is a Ca(2+)-sensitizer targeting cardiac troponin C (cTnC), but its instability hinders mechanistic studies.
  • Novel analogs are needed to elucidate the mechanism of action for this class of positive inotropes.

Purpose of the Study:

  • To investigate the mechanism of action of two novel levosimendan analogs, dfbp-o and dfbp.
  • To determine how these compounds interact with cardiac troponin C (cTnC) and troponin I (cTnI).
  • To elucidate the structural basis for Ca(2+)-sensitizer activity.

Main Methods:

  • NMR spectroscopy to measure binding affinities of dfbp and dfbp-o to cTnC, with and without cTnI.
  • Functional assays using demembranated cardiac trabeculae to assess Ca(2+)-sensitivity.
  • High-resolution NMR to determine the solution structure of the cTnC-cTnI-dfbp-o ternary complex.

Main Results:

  • Dfbp-o exhibited stronger binding affinity to cTnC than dfbp.
  • Dfbp-o increased the affinity between cTnI and cTnC, enhancing Ca(2+)-sensitivity of cardiac trabeculae similarly to levosimendan.
  • Structural analysis revealed dfbp-o binds to the cTnC-cTnI hydrophobic interface, stabilizing the complex.

Conclusions:

  • Levosimendan-class Ca(2+)-sensitizers stabilize the cTnC-cTnI complex by binding to cTnC's regulatory domain.
  • Stabilization occurs through hydrophobic and electrostatic interactions at the cTnC-cTnI interface.
  • Dfbp-o serves as a stable analog for studying the mechanism of these important cardiovascular drugs.

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