Three-dimensional structure of the human breast cancer resistance protein (BCRP/ABCG2) in an inward-facing conformation
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Published version
Author(s)
Type
Journal Article
Abstract
ABCG2 is an efflux drug transporter that plays an important role in drug resistance and drug disposition. In this study, the first three-dimensional structure of human full-length ABCG2 analysed by electron crystallography from two-dimensional crystals in the absence of nucleotides and transported substrates is reported at 2 nm resolution. In this state, ABCG2 forms a symmetric homodimer with a noncrystallographic twofold axis perpendicular to the two-dimensional crystal plane, as confirmed by subtomogram averaging. This configuration suggests an inward-facing configuration similar to murine ABCB1, with the nucleotide-binding domains (NBDs) widely separated from each other. In the three-dimensional map, densities representing the long cytoplasmic extensions from the transmembrane domains that connect the NBDs are clearly visible. The structural data have allowed the atomic model of ABCG2 to be refined, in which the two arms of the V-shaped ABCG2 homodimeric complex are in a more closed and narrower conformation. The structural data and the refined model of ABCG2 are compatible with the biochemical analysis of the previously published mutagenesis studies, providing novel insight into the structure and function of the transporter.
Keywords: ABCG2; BCRP; ABC transporter; ATP-binding cassette transporter; cryo-electron microscopy; three-dimensional structure from two-dimensional crystals.
Keywords: ABCG2; BCRP; ABC transporter; ATP-binding cassette transporter; cryo-electron microscopy; three-dimensional structure from two-dimensional crystals.
Date Issued
2015-07-31
Date Acceptance
2015-06-02
Citation
Acta Crystallographica Section D - Biological Crystallography, 2015, 71 (8), pp.1725-1735
ISSN
0907-4449
Publisher
International Union of Crystallography
Start Page
1725
End Page
1735
Journal / Book Title
Acta Crystallographica Section D - Biological Crystallography
Volume
71
Issue
8
Copyright Statement
© 2015 International Union of Crystallography
Publication Status
Published