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Updated: Jun 9, 2026

Assessment of Myofilament Ca2+ Sensitivity Underlying Cardiac Excitation-contraction Coupling
Published on: August 1, 2016
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.
Abstract:
The Ca(2+) dependent interaction between troponin I (cTnI) and troponin C (cTnC) triggers contraction in heart muscle. Heart failure is characterized by a decrease in cardiac output, and compounds that increase the sensitivity of cardiac muscle to Ca(2+) have therapeutic potential. The Ca(2+)-sensitizer, levosimendan, targets cTnC; however, detailed understanding of its mechanism has been obscured by its instability. In order to understand how this class of positive inotropes function, we investigated the mode of action of two fluorine containing novel analogs of levosimendan; 2',4'-difluoro(1,1'-biphenyl)-4-yloxy acetic acid (dfbp-o) and 2',4'-difluoro(1,1'-biphenyl)-4-yl acetic acid (dfbp). The affinities of dfbp and dfbp-o for the regulatory domain of cTnC were measured in the absence and presence of cTnI by NMR spectroscopy, and dfbp-o was found to bind more strongly than dfbp. Dfbp-o also increased the affinity of cTnI for cTnC. Dfbp-o increased the Ca(2+)-sensitivity of demembranated cardiac trabeculae in a manner similar to levosimendan. The high resolution NMR solution structure of the cTnC-cTnI-dfbp-o ternary complex showed that dfbp-o bound at the hydrophobic interface formed by cTnC and cTnI making critical interactions with residues such as Arg147 of cTnI. In the absence of cTnI, docking localized dfbp-o to the same position in the hydrophobic groove of cTnC. The structural and functional data reveal that the levosimendan class of Ca(2+)-sensitizers work by binding to the regulatory domain of cTnC and stabilizing the pivotal cTnC-cTnI regulatory unit via a network of hydrophobic and electrostatic interactions, in contrast to the destabilizing effects of antagonists such as W7 at the same interface.
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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