ABCG2 requires a single aromatic amino acid to "clamp" substrates and inhibitors into the binding pocket
Tomoka Gose1, Talha Shafi2, Yu Fukuda1
1Department of Pharmaceutical Sciences, St. Jude Children's Research Hospital, Memphis, TN, USA.
Abstract:
ATP-binding cassette sub-family G member 2 (ABCG2) is a homodimeric ATP-binding cassette (ABC) transporter that not only has a key role in helping cancer cells to evade the cytotoxic effects of chemotherapy, but also in protecting organisms from multiple xeno- and endobiotics. Structural studies indicate that substrate and inhibitor (ligands) binding to ABCG2 can be differentiated quantitatively by the number of amino acid contacts, with inhibitors displaying more contacts. Although binding is the obligate initial step in the transport cycle, there is no empirical evidence for one amino acid being primarily responsible for ligand binding. By mutagenesis and biochemical studies, we demonstrated that the phylogenetically conserved amino acid residue, F439, was critical for both transport and the binding of multiple substrates and inhibitors. Structural modeling implied that the π-π interactions from each F439 monomer mediated the binding of a surprisingly diverse array of structurally unrelated substrates and inhibitors and that this symmetrical π-π interaction "clamps" the ligand into the binding pocket. Key molecular features of diverse ABCG2 ligands using the π-π clamp along with structural studies created a pharmacophore model. These novel findings have important therapeutic implications because key properties of ligands interacting with ABCG2 have been disovered. Furthermore, mechanistic insights have been revealed by demonstrating that for ABCG2 a single amino acid is essential for engaging and initiating transport of multiple drugs and xenobiotics.
Insights
The ATP-binding cassette transporter ABCG2
Area of Science:
- Biochemistry
- Structural Biology
- Pharmacology
Background:
- ATP-binding cassette sub-family G member 2 (ABCG2) is an ABC transporter crucial for drug resistance in cancer and xenobiotic detoxification.
- Ligand binding to ABCG2 is essential for its transport function, but the specific amino acid residues involved remain largely uncharacterized.
Purpose of the Study:
- To identify key amino acid residues responsible for substrate and inhibitor binding to ABCG2.
- To elucidate the molecular mechanism by which ABCG2 interacts with diverse ligands.
- To develop a pharmacophore model for ABCG2 ligands.
Main Methods:
- Site-directed mutagenesis of ABCG2.
- Biochemical assays to assess ligand binding and transport.
- Structural modeling and computational analysis.
Main Results:
- The conserved amino acid residue F439 is critical for both ABCG2 transport activity and the binding of various substrates and inhibitors.
- Structural modeling suggests that π-π interactions involving F439 mediate ligand binding by clamping diverse molecules into the pocket.
- A pharmacophore model for ABCG2 ligands was developed based on F439's π-π clamp mechanism.
Conclusions:
- A single amino acid residue, F439, plays a pivotal role in ABCG2's interaction with and transport of multiple drugs and xenobiotics.
- Understanding the F439-mediated π-π clamp mechanism offers novel therapeutic strategies for modulating ABCG2 activity.
- This study provides critical mechanistic insights into ABCG2 function and ligand recognition.
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