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Designing Inhibitors of M2 Proton Channel against H1N1 Swine Influenza Virus

BACKGROUND: M2 proton channel of H1N1 influenza A virus is the target protein of anti-flu drugs amantadine and rimantadine. However, the two once powerful adamantane-based drugs lost their 90% bioactivity because of mutations of virus in recent twenty years. The NMR structure of the M2 channel prote...

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Detalles Bibliográficos
Autores principales: Du, Qi-Shi, Huang, Ri-Bo, Wang, Shu-Qing, Chou, Kuo-Chen
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2826421/
https://www.ncbi.nlm.nih.gov/pubmed/20186344
http://dx.doi.org/10.1371/journal.pone.0009388
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author Du, Qi-Shi
Huang, Ri-Bo
Wang, Shu-Qing
Chou, Kuo-Chen
author_facet Du, Qi-Shi
Huang, Ri-Bo
Wang, Shu-Qing
Chou, Kuo-Chen
author_sort Du, Qi-Shi
collection PubMed
description BACKGROUND: M2 proton channel of H1N1 influenza A virus is the target protein of anti-flu drugs amantadine and rimantadine. However, the two once powerful adamantane-based drugs lost their 90% bioactivity because of mutations of virus in recent twenty years. The NMR structure of the M2 channel protein determined by Schnell and Chou (Nature, 2008, 451, 591–595) may help people to solve the drug-resistant problem and develop more powerful new drugs against H1N1 influenza virus. METHODOLOGY: Docking calculation is performed to build the complex structure between receptor M2 proton channel and ligands, including existing drugs amantadine and rimantadine, and two newly designed inhibitors. The computer-aided drug design methods are used to calculate the binding free energies, with the computational biology techniques to analyze the interactions between M2 proton channel and adamantine-based inhibitors. CONCLUSIONS: 1) The NMR structure of M2 proton channel provides a reliable structural basis for rational drug design against influenza virus. 2) The channel gating mechanism and the inhibiting mechanism of M2 proton channel, revealed by the NMR structure of M2 proton channel, provides the new ideas for channel inhibitor design. 3) The newly designed adamantane-based inhibitors based on the modeled structure of H1N1-M2 proton channel have two pharmacophore groups, which act like a “barrel hoop”, holding two adjacent helices of the H1N1-M2 tetramer through the two pharmacophore groups outside the channel. 4) The inhibitors with such binding mechanism may overcome the drug resistance problem of influenza A virus to the adamantane-based drugs.
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spelling pubmed-28264212010-02-26 Designing Inhibitors of M2 Proton Channel against H1N1 Swine Influenza Virus Du, Qi-Shi Huang, Ri-Bo Wang, Shu-Qing Chou, Kuo-Chen PLoS One Research Article BACKGROUND: M2 proton channel of H1N1 influenza A virus is the target protein of anti-flu drugs amantadine and rimantadine. However, the two once powerful adamantane-based drugs lost their 90% bioactivity because of mutations of virus in recent twenty years. The NMR structure of the M2 channel protein determined by Schnell and Chou (Nature, 2008, 451, 591–595) may help people to solve the drug-resistant problem and develop more powerful new drugs against H1N1 influenza virus. METHODOLOGY: Docking calculation is performed to build the complex structure between receptor M2 proton channel and ligands, including existing drugs amantadine and rimantadine, and two newly designed inhibitors. The computer-aided drug design methods are used to calculate the binding free energies, with the computational biology techniques to analyze the interactions between M2 proton channel and adamantine-based inhibitors. CONCLUSIONS: 1) The NMR structure of M2 proton channel provides a reliable structural basis for rational drug design against influenza virus. 2) The channel gating mechanism and the inhibiting mechanism of M2 proton channel, revealed by the NMR structure of M2 proton channel, provides the new ideas for channel inhibitor design. 3) The newly designed adamantane-based inhibitors based on the modeled structure of H1N1-M2 proton channel have two pharmacophore groups, which act like a “barrel hoop”, holding two adjacent helices of the H1N1-M2 tetramer through the two pharmacophore groups outside the channel. 4) The inhibitors with such binding mechanism may overcome the drug resistance problem of influenza A virus to the adamantane-based drugs. Public Library of Science 2010-02-23 /pmc/articles/PMC2826421/ /pubmed/20186344 http://dx.doi.org/10.1371/journal.pone.0009388 Text en Du 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Du, Qi-Shi
Huang, Ri-Bo
Wang, Shu-Qing
Chou, Kuo-Chen
Designing Inhibitors of M2 Proton Channel against H1N1 Swine Influenza Virus
title Designing Inhibitors of M2 Proton Channel against H1N1 Swine Influenza Virus
title_full Designing Inhibitors of M2 Proton Channel against H1N1 Swine Influenza Virus
title_fullStr Designing Inhibitors of M2 Proton Channel against H1N1 Swine Influenza Virus
title_full_unstemmed Designing Inhibitors of M2 Proton Channel against H1N1 Swine Influenza Virus
title_short Designing Inhibitors of M2 Proton Channel against H1N1 Swine Influenza Virus
title_sort designing inhibitors of m2 proton channel against h1n1 swine influenza virus
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2826421/
https://www.ncbi.nlm.nih.gov/pubmed/20186344
http://dx.doi.org/10.1371/journal.pone.0009388
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