Chemokine receptor CXCR4 oligomerization is disrupted selectively by the antagonist ligand IT1t
Richard J Ward1, John D Pediani1, Sara Marsango1
1Centre for Translational Pharmacology, Institute of Molecular, Cell and Systems Biology, College of Medical, Veterinary and Life Sciences, University of Glasgow, Glasgow, Scotland, United Kingdom.
Abstract:
CXCR4, a member of the family of chemokine-activated G protein-coupled receptors, is widely expressed in immune response cells. It is involved in both cancer development and progression as well as viral infection, notably by HIV-1. A variety of methods, including structural information, have suggested that the receptor may exist as a dimer or an oligomer. However, the mechanistic details surrounding receptor oligomerization and its potential dynamic regulation remain unclear. Using both biochemical and biophysical means, we confirm that CXCR4 can exist as a mixture of monomers, dimers, and higher-order oligomers in cell membranes and show that oligomeric structure becomes more complex as receptor expression levels increase. Mutations of CXCR4 residues located at a putative dimerization interface result in monomerization of the receptor. Additionally, binding of the CXCR4 antagonist IT1t-a small drug-like isothiourea derivative-rapidly destabilizes the oligomeric structure, whereas AMD3100, another well-characterized CXCR4 antagonist, does not. Although a mutation that regulates constitutive activity of CXCR4 also results in monomerization of the receptor, binding of IT1t to this variant promotes receptor dimerization. These results provide novel insights into the basal organization of CXCR4 and how antagonist ligands of different chemotypes differentially regulate its oligomerization state.
Insights
Chemokine receptor CXCR4 exists as monomers, dimers, and oligomers. Antagonist IT1t destabilizes CXCR4 oligomers, while AMD3100 does not, revealing differential regulation of receptor structure.
Area of Science:
- Biochemistry
- Biophysics
- Cell Biology
Background:
- Chemokine receptor CXCR4 is implicated in cancer and HIV-1 infection.
- CXCR4's oligomeric state is suggested but mechanistically unclear.
- Understanding CXCR4 oligomerization is crucial for therapeutic strategies.
Purpose of the Study:
- To investigate the oligomeric state of CXCR4 in cell membranes.
- To determine how receptor expression levels affect oligomerization.
- To elucidate the differential effects of antagonists on CXCR4 oligomerization.
Main Methods:
- Biochemical assays
- Biophysical techniques
- Site-directed mutagenesis
- Ligand binding studies
Main Results:
- CXCR4 exists as a mixture of monomers, dimers, and higher-order oligomers.
- Receptor oligomerization increases with higher expression levels.
- Mutations at the dimerization interface lead to monomerization.
- Antagonist IT1t destabilizes oligomers, while AMD3100 does not.
- IT1t promotes dimerization in a constitutively active CXCR4 variant.
Conclusions:
- CXCR4 exhibits complex basal organization in cell membranes.
- Ligand chemotype dictates differential regulation of CXCR4 oligomerization.
- Findings offer insights into CXCR4 structure-function relationships and drug development.
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