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Jump into a New Fold—A Homology Based Model for the ABCG2/BCRP Multidrug Transporter

ABCG2/BCRP is a membrane protein, involved in xenobiotic and endobiotic transport in key pharmacological barriers and drug metabolizing organs, in the protection of stem cells, and in multidrug resistance of cancer. Pharmacogenetic studies implicated the role of ABCG2 in response to widely used medi...

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Autores principales: László, Laura, Sarkadi, Balázs, Hegedűs, Tamás
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5065228/
https://www.ncbi.nlm.nih.gov/pubmed/27741279
http://dx.doi.org/10.1371/journal.pone.0164426
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author László, Laura
Sarkadi, Balázs
Hegedűs, Tamás
author_facet László, Laura
Sarkadi, Balázs
Hegedűs, Tamás
author_sort László, Laura
collection PubMed
description ABCG2/BCRP is a membrane protein, involved in xenobiotic and endobiotic transport in key pharmacological barriers and drug metabolizing organs, in the protection of stem cells, and in multidrug resistance of cancer. Pharmacogenetic studies implicated the role of ABCG2 in response to widely used medicines and anticancer agents, as well as in gout. Its Q141K variant exhibits decreased functional expression thus increased drug accumulation and decreased urate secretion. Still, there has been no reliable molecular model available for this protein, as the published structures of other ABC transporters could not be properly fitted to the ABCG2 topology and experimental data. The recently published high resolution structure of a close homologue, the ABCG5-ABCG8 heterodimer, revealed a new ABC transporter fold, unique for ABCG proteins. Here we present a structural model of the ABCG2 homodimer based on this fold and detail the experimental results supporting this model. In order to describe the effect of mutations on structure and dynamics, and characterize substrate recognition and cholesterol regulation we performed molecular dynamics simulations using full length ABCG2 protein embedded in a membrane bilayer and in silico docking simulations. Our results show that in the Q141K variant the introduced positive charge diminishes the interaction between the nucleotide binding and transmembrane domains and the R482G variation alters the orientation of transmembrane helices. Moreover, the R482 position, which plays a role the substrate specificity of the transporter, is located in one of the substrate binding pockets identified by the in silico docking calculations. In summary, the ABCG2 model and in silico simulations presented here may have significant impact on understanding drug distribution and toxicity, as well as drug development against cancer chemotherapy resistance or gout.
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spelling pubmed-50652282016-10-27 Jump into a New Fold—A Homology Based Model for the ABCG2/BCRP Multidrug Transporter László, Laura Sarkadi, Balázs Hegedűs, Tamás PLoS One Research Article ABCG2/BCRP is a membrane protein, involved in xenobiotic and endobiotic transport in key pharmacological barriers and drug metabolizing organs, in the protection of stem cells, and in multidrug resistance of cancer. Pharmacogenetic studies implicated the role of ABCG2 in response to widely used medicines and anticancer agents, as well as in gout. Its Q141K variant exhibits decreased functional expression thus increased drug accumulation and decreased urate secretion. Still, there has been no reliable molecular model available for this protein, as the published structures of other ABC transporters could not be properly fitted to the ABCG2 topology and experimental data. The recently published high resolution structure of a close homologue, the ABCG5-ABCG8 heterodimer, revealed a new ABC transporter fold, unique for ABCG proteins. Here we present a structural model of the ABCG2 homodimer based on this fold and detail the experimental results supporting this model. In order to describe the effect of mutations on structure and dynamics, and characterize substrate recognition and cholesterol regulation we performed molecular dynamics simulations using full length ABCG2 protein embedded in a membrane bilayer and in silico docking simulations. Our results show that in the Q141K variant the introduced positive charge diminishes the interaction between the nucleotide binding and transmembrane domains and the R482G variation alters the orientation of transmembrane helices. Moreover, the R482 position, which plays a role the substrate specificity of the transporter, is located in one of the substrate binding pockets identified by the in silico docking calculations. In summary, the ABCG2 model and in silico simulations presented here may have significant impact on understanding drug distribution and toxicity, as well as drug development against cancer chemotherapy resistance or gout. Public Library of Science 2016-10-14 /pmc/articles/PMC5065228/ /pubmed/27741279 http://dx.doi.org/10.1371/journal.pone.0164426 Text en © 2016 László et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
László, Laura
Sarkadi, Balázs
Hegedűs, Tamás
Jump into a New Fold—A Homology Based Model for the ABCG2/BCRP Multidrug Transporter
title Jump into a New Fold—A Homology Based Model for the ABCG2/BCRP Multidrug Transporter
title_full Jump into a New Fold—A Homology Based Model for the ABCG2/BCRP Multidrug Transporter
title_fullStr Jump into a New Fold—A Homology Based Model for the ABCG2/BCRP Multidrug Transporter
title_full_unstemmed Jump into a New Fold—A Homology Based Model for the ABCG2/BCRP Multidrug Transporter
title_short Jump into a New Fold—A Homology Based Model for the ABCG2/BCRP Multidrug Transporter
title_sort jump into a new fold—a homology based model for the abcg2/bcrp multidrug transporter
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5065228/
https://www.ncbi.nlm.nih.gov/pubmed/27741279
http://dx.doi.org/10.1371/journal.pone.0164426
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