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Updated: Jul 20, 2026

Real Time Measurements of Membrane Protein:Receptor Interactions Using Surface Plasmon Resonance (SPR)
Published on: November 29, 2014
Multiple drugbinding sites on the R482G isoform of the ABCG2 transporter
R Clark1, I D Kerr, R Callaghan
1Nuffield Department of Clinical Laboratory Sciences, University of Oxford, UK.
Background & Purpose:
Drug-resistant cancer cells frequently display efflux pumps such as P-glycoprotein (P-gp), the multidrug resistance associated protein (MRP1) or the transporter ABCG2. These transporters are each capable of mediating the active efflux of numerous anticancer drugs and display relatively distinct substrate preferences. The last, most recently discovered member, ABCG2, plays a major role in resistance in several types of cancer and the precise pharmacology of this multidrug transporter remain unresolved as does the nature of substrate binding.
Experimental Approach:
Plasma membranes from insect cells expressing ABCG2 were used to characterise binding of [3H]daunomycin to the multidrug transporter. The kinetics of association and dissociation for this substrate and several other compounds were also determined in this experimental system.
Key Results:
The dissociation constant for [3H]daunomycin binding was 564 +/- 57 nM and a Hill slope of 1.4 suggested cooperative binding. Doxorubicin, prazosin and daunomycin completely displaced the binding of radioligand, while mitoxantrone and Hoechst 33342 produced only a partial displacement. Analysis of the dissociation rates revealed that [3H]daunomycin and doxorubicin bind to multiple sites on the transporter.
Conclusions:
Both kinetic and equilibrium data support the presence of at least two symmetric drug binding sites on ABCG2, which is distinct from the asymmetry observed for P-gp. The data provide the first molecular details underlying the mechanism by which this transporter is capable of interacting with multiple substrates.
Insights
The ABCG2 transporter, crucial in multidrug resistance, exhibits cooperative binding with at least two symmetric drug sites. This finding clarifies how ABCG2 interacts with various anticancer drugs, unlike P-gp.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Multidrug resistance in cancer is often mediated by efflux pumps like P-glycoprotein (P-gp), MRP1, and ABCG2.
- ABCG2 is a significant transporter involved in resistance across various cancer types, but its substrate binding and pharmacology are not fully understood.
Purpose of the Study:
- To investigate the substrate binding characteristics of the ABCG2 transporter.
- To elucidate the molecular mechanism underlying ABCG2's interaction with multiple anticancer drugs.
Main Methods:
- Utilized plasma membranes from insect cells engineered to express ABCG2.
- Characterized the binding kinetics of [3H]daunomycin and other compounds to ABCG2.
- Determined association and dissociation rates for various substrates.
Main Results:
- Identified a dissociation constant of 564 +/- 57 nM for [3H]daunomycin binding, indicating cooperative binding (Hill slope 1.4).
- Doxorubicin, prazosin, and daunomycin fully displaced the radioligand, while mitoxantrone and Hoechst 33342 showed partial displacement.
- Dissociation rate analysis suggested that [3H]daunomycin and doxorubicin bind to multiple sites on ABCG2.
Conclusions:
- Kinetic and equilibrium data support the existence of at least two symmetric drug-binding sites on ABCG2.
- This binding site symmetry differs from the asymmetry observed for P-gp.
- The study provides the first molecular insights into ABCG2's mechanism for interacting with diverse substrates.
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