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PDBsum entry 4m2s
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Hydrolase/hydrolase inhibitor
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PDB id
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4m2s
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References listed in PDB file
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Key reference
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Title
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Refined structures of mouse p-Glycoprotein.
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Authors
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J.Li,
K.F.Jaimes,
S.G.Aller.
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Ref.
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Protein Sci, 2014,
23,
34-46.
[DOI no: ]
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PubMed id
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Abstract
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The recently determined C. elegans P-glycoprotein (Pgp) structure revealed
significant deviations compared to the original mouse Pgp structure, which
suggested possible misinterpretations in the latter model. To address this
concern, we generated an experimental electron density map from
single-wavelength anomalous dispersion phasing of an original mouse Pgp dataset
to 3.8 Å resolution. The map exhibited significantly more detail compared to
the original MAD map and revealed several regions of the structure that required
de novo model building. The improved drug-free structure was refined to 3.8 Å
resolution with a 9.4 and 8.1% decrease in Rwork and Rfree , respectively,
(Rwork = 21.2%, Rfree = 26.6%) and a significant improvement in
protein geometry. The improved mouse Pgp model contains ∼95% of residues in
the favorable Ramachandran region compared to only 57% for the original model.
The registry of six transmembrane helices was corrected, revealing amino acid
residues involved in drug binding that were previously unrecognized. Registry
shifts (rotations and translations) for three transmembrane (TM)4 and TM5 and
the addition of three N-terminal residues were necessary, and were validated
with new mercury labeling and anomalous Fourier density. The corrected position
of TM4, which forms the frame of a portal for drug entry, had backbone atoms
shifted >6 Å from their original positions. The drug translocation pathway
of mouse Pgp is 96% identical to human Pgp and is enriched in aromatic residues
that likely play a collective role in allowing a high degree of polyspecific
substrate recognition.
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