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.

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.

Related Concept Videos

Drug-Receptor Interaction: Agonist01:25

Drug-Receptor Interaction: Agonist

Agonists are drugs that interact with specific receptors in the body to produce a biological response. When an agonist binds to a receptor, it activates or enhances the receptor's function, leading to physiological effects. The interaction between agonist drugs and receptors is crucial for their therapeutic action in various medical treatments.
Agonists can bind to receptors in different ways. Some agonists bind directly to the receptor's active site, mimicking the endogenous ligand's action.
The Two-State Receptor Model01:29

The Two-State Receptor Model

The two-state receptor model explains a drug's interaction with receptors, such as G protein-coupled receptors and ligand-gated ion channels, to induce or inhibit a biological response. When no natural ligands are present, a receptor exists in an equilibrium of inactive (Ri) and active (Ra) conformations. The inactive form does not produce a response, while the active form generates a basal effect known as constitutive activity.
The binding affinity of a drug determines its interaction with one...
Drug-Receptor Interaction: Antagonist01:28

Drug-Receptor Interaction: Antagonist

An antagonist is a drug that binds strongly to a receptor without activating it. An antagonist prevents other molecules, such as neurotransmitters or hormones, from binding to the receptor and triggering a cellular response. Such interaction effectively hinders the normal physiological processes mediated by the receptor, resulting in various pharmacological effects depending on the specific receptor targeted.
Antagonists can be classified as competitive or noncompetitive based on their...
Drug-Receptor Interactions01:29

Drug-Receptor Interactions

Drug-receptor interaction describes the binding of receptors by drugs, but not all drug-receptor interactions result in activation and tissue response. For instance, the binding of agonists activates the receptor to generate a cellular reaction, while antagonists bind to receptors without causing their activation.
Several parameters, such as the drug's affinity for its receptor and its efficacy, which is its ability to activate the receptor, determine the drug's effect on the tissue.
Opioid Receptors: Overview01:22

Opioid Receptors: Overview

Opioid receptors, including the mu (μ, MOR), delta (δ, DOR), and kappa (κ, KOR) types, belong to the rhodopsin family of G protein-coupled receptors. These receptors are located throughout the central and peripheral nervous systems and in non-neuronal tissues such as macrophages and astrocytes. Opioid receptor ligands can be categorized into agonists or antagonists. Highly selective agonists include [d-Ala2, MePhe4, Gly(ol)5]-enkephalin or DAMGO for MOR, [D-Pen2, D-Pen5]-enkephalin or DPDPE for...
Combined Effects of Drugs: Antagonism01:30

Combined Effects of Drugs: Antagonism

The combined effects of drugs can result in various interactions, of which an important type is antagonism. Antagonism is a mechanism where one drug inhibits or counteracts the effects of another drug. Antagonism can occur through various means, including receptor binding, allosteric modulation, functional interaction, chemical reactions, and pharmacokinetic processes.
The most common type is receptor antagonism, where one drug acts as an antagonist to block the effects of another drug by...