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Updated: Aug 15, 2025

Author Spotlight: A Bicelle Crystallization Setup for ABC Transporter Membrane Proteins to Advance Drug Development
Published on: August 25, 2023
Differential dynamics and direct interaction of bound ligands with lipids in multidrug transporter ABCG2
Ali Rasouli1,2, Qin Yu3, Sepehr Dehghani-Ghahnaviyeh1,2
1Theoretical and Computational Biophysics Group, NIH Center for Macromolecular Modeling and Bioinformatics, Beckman Institute for Advanced Science and Technology, Department of Biochemistry, University of Illinois, Urbana, IL 61801.
Abstract:
ABCG2 is an ATP-binding cassette (ABC) transporter that extrudes a wide range of xenobiotics and drugs from the cell and contributes to multidrug resistance in cancer cells. Following our recent structural characterization of topotecan-bound ABCG2, here, we present cryo-EM structures of ABCG2 under turnover conditions in complex with a special modulator and slow substrate, tariquidar, in nanodiscs. The structures reveal that similar to topotecan, tariquidar induces two distinct ABCG2 conformations under turnover conditions (turnover-1 and turnover-2). μs-scale molecular dynamics simulations of drug-bound and apo ABCG2 in native-like lipid bilayers, in both topotecan- and tariquidar-bound states, characterize the ligand size as a major determinant of its binding stability. The simulations highlight direct lipid-drug interactions for the smaller topotecan, which exhibits a highly dynamic binding mode. In contrast, the larger tariquidar occupies most of the available volume in the binding pocket, thus leaving little space for lipids to enter the cavity and interact with it. Similarly, when simulating ABCG2 in the apo inward-open state, we also observe spontaneous penetration of phospholipids into the binding cavity. The captured phospholipid diffusion pathway into ABCG2 offers a putative general path to recruit any hydrophobic/amphiphilic substrates directly from the membrane. Our simulations also reveal that ABCG2 rejects cholesterol as a substrate, which is omnipresent in plasma membranes that contain ABCG2. At the same time, cholesterol is found to prohibit the penetration of phospholipids into ABCG2. These molecular findings have direct functional ramifications on ABCG2's function as a transporter.
Insights
The ATP-binding cassette transporter ABCG2 adopts distinct conformations when bound to drugs like topotecan and tariquidar. Ligand size influences binding stability and lipid interactions, impacting transporter function.
Area of Science:
- Structural Biology
- Biochemistry
- Molecular Dynamics
Background:
- ABCG2 (ATP-binding cassette transporter G2) is crucial for extruding xenobiotics and drugs, contributing to multidrug resistance in cancer.
- Previous studies characterized topotecan-bound ABCG2 structures.
Purpose of the Study:
- To elucidate the structural and dynamic mechanisms of ABCG2 function under turnover conditions.
- To investigate the role of ligand size and lipid interactions in ABCG2 transport.
Main Methods:
- Cryo-electron microscopy (cryo-EM) to determine ABCG2 structures.
- Microsecond-scale molecular dynamics (MD) simulations in native-like lipid bilayers.
- Analysis of drug-bound and apo ABCG2 states.
Main Results:
- Tariquidar, a modulator and substrate, induces two distinct ABCG2 conformations (turnover-1 and turnover-2), similar to topotecan.
- Ligand size is a key determinant of binding stability; smaller topotecan shows dynamic lipid interactions, while larger tariquidar limits lipid access.
- Phospholipids can penetrate the apo ABCG2 binding cavity, suggesting a general pathway for substrate recruitment from the membrane.
- Cholesterol is rejected as a substrate by ABCG2 and inhibits phospholipid penetration.
Conclusions:
- ABCG2's conformational flexibility and ligand-binding properties are modulated by substrate size and lipid interactions.
- A conserved phospholipid diffusion pathway into ABCG2 may facilitate the uptake of membrane-associated substrates.
- Cholesterol's interaction with ABCG2 influences transporter dynamics and substrate access, with implications for drug resistance and membrane transport.
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