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.
Abstract:
The CXC chemokine receptor 3 (CXCR3) is predominantly expressed on T helper type 1 (Th1) cells that are involved in inflammatory diseases. The three CXCR3 ligands CXCL9, CXCL10, and CXCL11 are produced at sites of inflammation and elicit migration of pathological Th1 cells. Here, we are the first to characterize the pharmacological potencies and specificity of a CXCR3 antagonist, N-1R-[3-(4-ethoxy-phenyl)-4-oxo-3,4-dihydro-pyrido[2,3-d]pyrimidin-2-yl]-ethyl-N-pyridin-3-ylmethyl-2-(4-fluoro-3-trifluoromethyl-phenyl)-acetamide (NBI-74330), from the T487 small molecule series. NBI-74330 demonstrated potent inhibition of [(125)I]CXCL10 and [(125)I]CXCL11 specific binding (K(i) of 1.5 and 3.2 nM, respectively) and of functional responses mediated by CXCR3, such as ligand-induced guanosine 5'-O-(3-[(35)S]thio)triphosphate ([(35)S]GTPgammaS) binding, calcium mobilization, and cellular chemotaxis (IC(50) of 7 to 18 nM). NBI-74330 was selective for CXCR3 because it showed no significant inhibition of chemotactic responses to other chemokines and did not inhibit radioligand binding to a panel of nonchemokine G-protein coupled receptors. There was a striking difference in potencies among the three CXCR3 ligands, with CXCL11 >> CXCL10 > CXCL9. A comparison of the rank order of K(i) values with the rank order of monocyte production levels of these three ligands revealed a precise inverse correlation, suggesting that the weaker receptor affinities of CXCL9 and CXCL10 were physiologically compensated for by an elevated expression, perhaps to maintain effectiveness of each ligand under physiological conditions.
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