Pharmacological characterization of CXC chemokine receptor 3 ligands and a small molecule antagonist

Christopher E Heise1, Anil Pahuja, Sarah C Hudson

  • 1Neurocrine Biosciences, Inc., San Diego, CA 92130, USA. cheise@neurocrine.com

Insights

Researchers developed NBI-74330, a potent CXCR3 antagonist, to block T helper type 1 (Th1) cell migration in inflammatory diseases. This molecule selectively inhibits CXCR3, offering a promising therapeutic target for conditions involving pathological Th1 cell activity.

Area of Science:

  • Immunology
  • Pharmacology
  • Medicinal Chemistry

Background:

  • CXC chemokine receptor 3 (CXCR3) is crucial for T helper type 1 (Th1) cell function in inflammatory diseases.
  • CXCR3 ligands (CXCL9, CXCL10, CXCL11) are produced at inflammation sites, directing Th1 cell migration.

Purpose of the Study:

  • To characterize the pharmacological profile of NBI-74330, a novel small molecule antagonist of CXCR3.
  • To evaluate the potency and selectivity of NBI-74330 against CXCR3 and its ligands.

Main Methods:

  • Radioligand binding assays using [(125)I]CXCL10 and [(125)I]CXCL11 to determine K(i) values.
  • Functional assays including [(35)S]GTPgammaS binding, calcium mobilization, and chemotaxis assays.
  • Selectivity profiling against other chemokines and non-chemokine receptors.

Main Results:

  • NBI-74330 exhibited potent inhibition of CXCL10 and CXCL11 binding (K(i) = 1.5 and 3.2 nM).
  • Effective inhibition of CXCR3-mediated functional responses (IC(50) = 7-18 nM), including chemotaxis.
  • Demonstrated high selectivity for CXCR3, with no significant activity against other chemokine receptors or GPCRs.
  • Observed differential potencies for ligands: CXCL11 >> CXCL10 > CXCL9, inversely correlated with their production levels.

Conclusions:

  • NBI-74330 is a potent and selective CXCR3 antagonist with potential therapeutic applications.
  • Ligand potency differences suggest physiological compensation mechanisms for maintaining CXCR3 pathway effectiveness.

Related Concept Videos

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...
Cholinergic Antagonists: Chemistry and Structure-Activity Relationship01:29

Cholinergic Antagonists: Chemistry and Structure-Activity Relationship

Cholinergic antagonists bind to cholinergic receptors and limit the effects of acetylcholine and other cholinergic agonists. Based on the specific cholinergic receptor affinity, these antagonists are classified as muscarinic or nicotinic. Anticholinergics interrupt parasympathetic innervations while sympathetic innervations remain uninterrupted. Muscarinic antagonists are also called 'muscarinic antagonists', 'antimuscarinics', or 'parasympatholytics'. Nicotinic antagonists are called...
Chemotherapy-Induced Nausea and Vomiting: Neurokinin-1 Receptor Antagonists01:28

Chemotherapy-Induced Nausea and Vomiting: Neurokinin-1 Receptor Antagonists

Neurokinin 1 (NK1) receptors are distributed across the GI tract, vagal afferents, and key CNS regions including the central vomiting center and chemoreceptor trigger zone (CTZ) Chemotherapy agents stimulate enterochromaffin cells in the gastrointestinal (GI) tract to release large amounts of substance P (SP). SP is a neuropeptide released by specific sensory nerves in response to many different stressors, including those in the GI mucosa affected by chemotherapy.  SP binds and activates these...
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.
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.
Adrenergic Antagonists: Chemistry and Classification of ɑ-Receptor Blockers01:17

Adrenergic Antagonists: Chemistry and Classification of ɑ-Receptor Blockers

Adrenergic antagonists, or sympatholytics, inhibit adrenoceptor activation driven by catecholamines or agonists. Based on their adrenoceptor specificity, adrenergic blockers can be categorized into two primary groups: α-adrenergic blockers (α-blockers) and β-adrenergic blockers (β-blockers). α-blockers interact with α1 and α2 subtypes of α-adrenoceptors.
Nonselective α-blockers: Nonselective α-blockers contain haloalkylamine or imidazoline moieties. Phenoxybenzamine, with a haloalkylamine...