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Mutational Analysis of the GXXXG/A Motifs in the Human Na(+)/Taurocholate Co-Transporting Polypeptide NTCP on Its Bile Acid Transport Function and Hepatitis B/D Virus Receptor Function

Homodimerization is essential for plasma membrane sorting of the liver bile acid transporter NTCP and its function as Hepatitis B/D Virus (HBV/HDV) receptor. However, the protein domains involved in NTCP dimerization are unknown. NTCP bears two potential GXXXG/A dimerization motifs in its transmembr...

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Autores principales: Palatini, Massimo, Müller, Simon Franz, Lowjaga, Kira Alessandra Alicia Theresa, Noppes, Saskia, Alber, Jörg, Lehmann, Felix, Goldmann, Nora, Glebe, Dieter, Geyer, Joachim
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8257933/
https://www.ncbi.nlm.nih.gov/pubmed/34239896
http://dx.doi.org/10.3389/fmolb.2021.699443
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author Palatini, Massimo
Müller, Simon Franz
Lowjaga, Kira Alessandra Alicia Theresa
Noppes, Saskia
Alber, Jörg
Lehmann, Felix
Goldmann, Nora
Glebe, Dieter
Geyer, Joachim
author_facet Palatini, Massimo
Müller, Simon Franz
Lowjaga, Kira Alessandra Alicia Theresa
Noppes, Saskia
Alber, Jörg
Lehmann, Felix
Goldmann, Nora
Glebe, Dieter
Geyer, Joachim
author_sort Palatini, Massimo
collection PubMed
description Homodimerization is essential for plasma membrane sorting of the liver bile acid transporter NTCP and its function as Hepatitis B/D Virus (HBV/HDV) receptor. However, the protein domains involved in NTCP dimerization are unknown. NTCP bears two potential GXXXG/A dimerization motifs in its transmembrane domains (TMDs) 2 and 7. The present study aimed to analyze the role of these GXXXG/A motifs for the sorting, function, and dimerization of NTCP. The NTCP mutants G(60)LXXXA(64)L (TMD2), G(233)LXXXG(237)L (TMD7) and a double mutant were generated and analyzed for their interaction with wild-type NTCP using a membrane-based yeast-two hybrid system (MYTH) and co-immunoprecipitation (co-IP). In the MYTH system, the TMD2 and TMD7 mutants showed significantly lower interaction with the wild-type NTCP. In transfected HEK293 cells, membrane expression and bile acid transport activity were slightly reduced for the TMD2 mutant but were completely abolished for the TMD7 and the TMD2/7 mutants, while co-IP experiments still showed intact protein-protein interactions. Susceptibility for in vitro HBV infection in transfected HepG2 cells was reduced to 50% for the TMD2 mutant, while the TMD7 mutant was not susceptible for HBV infection at all. We conclude that the GXXXG/A motifs in TMD2 and even more pronounced in TMD7 are important for proper folding and sorting of NTCP, and so indirectly affect glycosylation, homodimerization, and bile acid transport of NTCP, as well as its HBV/HDV receptor function.
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spelling pubmed-82579332021-07-07 Mutational Analysis of the GXXXG/A Motifs in the Human Na(+)/Taurocholate Co-Transporting Polypeptide NTCP on Its Bile Acid Transport Function and Hepatitis B/D Virus Receptor Function Palatini, Massimo Müller, Simon Franz Lowjaga, Kira Alessandra Alicia Theresa Noppes, Saskia Alber, Jörg Lehmann, Felix Goldmann, Nora Glebe, Dieter Geyer, Joachim Front Mol Biosci Molecular Biosciences Homodimerization is essential for plasma membrane sorting of the liver bile acid transporter NTCP and its function as Hepatitis B/D Virus (HBV/HDV) receptor. However, the protein domains involved in NTCP dimerization are unknown. NTCP bears two potential GXXXG/A dimerization motifs in its transmembrane domains (TMDs) 2 and 7. The present study aimed to analyze the role of these GXXXG/A motifs for the sorting, function, and dimerization of NTCP. The NTCP mutants G(60)LXXXA(64)L (TMD2), G(233)LXXXG(237)L (TMD7) and a double mutant were generated and analyzed for their interaction with wild-type NTCP using a membrane-based yeast-two hybrid system (MYTH) and co-immunoprecipitation (co-IP). In the MYTH system, the TMD2 and TMD7 mutants showed significantly lower interaction with the wild-type NTCP. In transfected HEK293 cells, membrane expression and bile acid transport activity were slightly reduced for the TMD2 mutant but were completely abolished for the TMD7 and the TMD2/7 mutants, while co-IP experiments still showed intact protein-protein interactions. Susceptibility for in vitro HBV infection in transfected HepG2 cells was reduced to 50% for the TMD2 mutant, while the TMD7 mutant was not susceptible for HBV infection at all. We conclude that the GXXXG/A motifs in TMD2 and even more pronounced in TMD7 are important for proper folding and sorting of NTCP, and so indirectly affect glycosylation, homodimerization, and bile acid transport of NTCP, as well as its HBV/HDV receptor function. Frontiers Media S.A. 2021-06-22 /pmc/articles/PMC8257933/ /pubmed/34239896 http://dx.doi.org/10.3389/fmolb.2021.699443 Text en Copyright © 2021 Palatini, Müller, Lowjaga, Noppes, Alber, Lehmann, Goldmann, Glebe and Geyer. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Molecular Biosciences
Palatini, Massimo
Müller, Simon Franz
Lowjaga, Kira Alessandra Alicia Theresa
Noppes, Saskia
Alber, Jörg
Lehmann, Felix
Goldmann, Nora
Glebe, Dieter
Geyer, Joachim
Mutational Analysis of the GXXXG/A Motifs in the Human Na(+)/Taurocholate Co-Transporting Polypeptide NTCP on Its Bile Acid Transport Function and Hepatitis B/D Virus Receptor Function
title Mutational Analysis of the GXXXG/A Motifs in the Human Na(+)/Taurocholate Co-Transporting Polypeptide NTCP on Its Bile Acid Transport Function and Hepatitis B/D Virus Receptor Function
title_full Mutational Analysis of the GXXXG/A Motifs in the Human Na(+)/Taurocholate Co-Transporting Polypeptide NTCP on Its Bile Acid Transport Function and Hepatitis B/D Virus Receptor Function
title_fullStr Mutational Analysis of the GXXXG/A Motifs in the Human Na(+)/Taurocholate Co-Transporting Polypeptide NTCP on Its Bile Acid Transport Function and Hepatitis B/D Virus Receptor Function
title_full_unstemmed Mutational Analysis of the GXXXG/A Motifs in the Human Na(+)/Taurocholate Co-Transporting Polypeptide NTCP on Its Bile Acid Transport Function and Hepatitis B/D Virus Receptor Function
title_short Mutational Analysis of the GXXXG/A Motifs in the Human Na(+)/Taurocholate Co-Transporting Polypeptide NTCP on Its Bile Acid Transport Function and Hepatitis B/D Virus Receptor Function
title_sort mutational analysis of the gxxxg/a motifs in the human na(+)/taurocholate co-transporting polypeptide ntcp on its bile acid transport function and hepatitis b/d virus receptor function
topic Molecular Biosciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8257933/
https://www.ncbi.nlm.nih.gov/pubmed/34239896
http://dx.doi.org/10.3389/fmolb.2021.699443
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