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Assessment of Myofilament Ca2+ Sensitivity Underlying Cardiac Excitation-contraction Coupling
Published on: August 1, 2016
Targeting Troponin C with Small Molecules Containing Diphenyl Moieties: Calcium Sensitivity Effects on Striated
Eric R Hantz1, Svetlana B Tikunova2, Natalya Belevych3
1Department of Chemistry and Biochemistry, The Ohio State University, Columbus, OH, 43210.
Abstract:
Despite large investments from academia and industry, heart failure, which results from a disruption of the contractile apparatus, remains a leading cause of death. Cardiac muscle contraction is a calcium-dependent mechanism, which is regulated by the troponin protein complex (cTn) and specifically by the N-terminal domain of its calcium binding subunit (cNTnC). There is an increasing need for the development of small molecules that increase calcium sensitivity without altering systolic calcium concentration, thereby strengthening cardiac function. Here, we examined the effect of our previously identified calcium sensitizing small molecule, ChemBridge compound 7930079, in the context of several homologous muscle systems. The effect of this molecule on force generation in isolated cardiac trabeculae and slow skeletal muscle fibers was measured. Furthermore, we explored the use of Gaussian accelerated molecular dynamics in sampling highly predictive receptor conformations based on NMR derived starting structures. Additionally, we took a rational computational approach for lead optimization based on lipophilic diphenyl moieties. This led to the identification of three novel low affinity binders, which had similar binding affinities to known positive inotrope trifluoperazine. The most potent identified calcium sensitizer was compound 16 with an apparent affinity of 117 ± 17 μM .
Insights
Researchers identified a novel small molecule, compound 16, that enhances cardiac muscle calcium sensitivity. This discovery offers a potential new therapeutic strategy for heart failure by strengthening heart function without altering calcium levels.
Area of Science:
- Biochemistry
- Cardiovascular Science
- Pharmacology
Background:
- Heart failure is a major cause of death, stemming from disruptions in the cardiac muscle's contractile apparatus.
- Cardiac muscle contraction relies on calcium, regulated by the troponin protein complex (cTn), particularly the N-terminal domain of its calcium-binding subunit (cNTnC).
- There is a critical need for small molecules that boost calcium sensitivity to improve cardiac function without affecting systolic calcium concentrations.
Approach:
- Investigated the effects of a previously identified calcium-sensitizing molecule (ChemBridge compound 7930079) on force generation in cardiac trabeculae and slow skeletal muscle fibers.
- Utilized Gaussian accelerated molecular dynamics with NMR-derived structures to predict receptor conformations.
- Employed a rational computational strategy for lead optimization, focusing on lipophilic diphenyl moieties.
Key Points:
- The study evaluated a novel small molecule's impact on muscle force generation.
- Computational methods, including Gaussian accelerated molecular dynamics, were used to guide drug design.
- Three new low-affinity binders were identified, comparable in affinity to trifluoperazine.
Conclusions:
- Compound 16 emerged as the most potent calcium sensitizer, exhibiting an apparent affinity of 117 ± 17 μM.
- This research contributes to developing new therapeutic agents for heart failure by enhancing cardiac contractility.
- The findings highlight the potential of small molecules to modulate calcium sensitivity for improved heart function.
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