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Updated: May 11, 2026

A Kinetic Fluorescence-based Ca2+ Mobilization Assay to Identify G Protein-coupled Receptor Agonists, Antagonists, and Allosteric Modulators
Published on: February 20, 2018
Binding kinetics differentiates functional antagonism of orexin-2 receptor ligands
R Mould1, J Brown, F H Marshall
1Heptares Therapeutics Ltd, BioPark, Broadwater Road, Welwyn Garden City, Herts, AL7 3AX, UK.
Abstract:
Orexin receptor antagonism represents a novel approach for the treatment of insomnia that directly targets sleep/wake regulation. Several such compounds have entered into clinical development, including the dual orexin receptor antagonists, suvorexant and almorexant. In this study, we have used equilibrium and kinetic binding studies with the orexin-2 (OX₂) selective antagonist radioligand, [³H]-EMPA, to profile several orexin receptor antagonists. Furthermore, selected compounds were studied in cell-based assays of inositol phosphate accumulation and ERK-1/2 phosphorylation in CHO cells stably expressing the OX2 receptor that employ different agonist incubation times (30 and 5 min, respectively). EMPA, suvorexant, almorexant and TCS-OX-29 all bind to the OX₂ receptor with moderate to high affinity (pk(I) values ≥ 7.5), whereas the primarily OX1 selective antagonists SB-334867 and SB-408124 displayed low affinity (pK(I) values ca. 6). Competition kinetic analysis showed that the compounds displayed a range of dissociation rates from very fast (TCS-OX2-29, k(off) = 0.22 min⁻¹) to very slow (almorexant, k(off) = 0.005 min⁻¹). Notably, there was a clear correlation between association rate and affinity. In the cell-based assays, fast-offset antagonists EMPA and TCS-OX2-29 displayed surmountable antagonism of orexin-A agonist activity. However, both suvorexant and particularly almorexant cause concentration-dependent depression in the maximal orexin-A response, a profile that is more evident with a shorter agonist incubation time. Analysis according to a hemi-equilibrium model suggests that antagonist dissociation is slower in a cellular system than in membrane binding; under these conditions, almorexant effectively acts as a pseudo-irreversible antagonist.
Insights
Orexin receptor antagonists, like suvorexant, show varied binding and dissociation rates. Almorexant acts as a pseudo-irreversible antagonist in cellular assays, impacting sleep-wake regulation for insomnia treatment.
Area of Science:
- Pharmacology
- Neuroscience
- Sleep Medicine
Background:
- Orexin receptor antagonism is a novel insomnia treatment targeting sleep/wake regulation.
- Dual orexin receptor antagonists like suvorexant and almorexant are in clinical development.
Purpose of the Study:
- To profile orexin receptor antagonists using binding and cell-based assays.
- To characterize the kinetic and equilibrium binding properties of various antagonists at the OX2 receptor.
Main Methods:
- Equilibrium and kinetic binding studies using [³H]-EMPA at the OX2 receptor.
- Cell-based assays measuring inositol phosphate accumulation and ERK-1/2 phosphorylation.
- Analysis using a hemi-equilibrium model to assess antagonist dissociation in cellular systems.
Main Results:
- EMPA, suvorexant, almorexant, and TCS-OX-29 exhibit moderate to high affinity for the OX2 receptor.
- Antagonists displayed a range of dissociation rates, from very fast (TCS-OX2-29) to very slow (almorexant).
- Almorexant demonstrated pseudo-irreversible antagonist behavior in cellular assays due to slow dissociation.
Conclusions:
- Orexin receptor antagonists have diverse kinetic profiles influencing their cellular antagonism.
- Almorexant's slow dissociation from the OX2 receptor in cellular systems suggests a unique mechanism of action for insomnia treatment.
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