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Virtual Screening Identifies Chebulagic Acid as an Inhibitor of the M2(S31N) Viral Ion Channel and Influenza A Virus

The increasing prevalence of drug-resistant influenza viruses emphasizes the need for new antiviral countermeasures. The M2 protein of influenza A is a proton-gated, proton-selective ion channel, which is essential for influenza replication and an established antiviral target. However, all currently...

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Autores principales: Duncan, Maggie C., Onguéné, Pascal Amoa, Kihara, Ibuki, Nebangwa, Derrick N., Naidu, Maya E., Williams, David E., Balgi, Aruna D., Andrae-Marobela, Kerstin, Roberge, Michel, Andersen, Raymond J., Niikura, Masahiro, Ntie-Kang, Fidele, Tietjen, Ian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7356874/
https://www.ncbi.nlm.nih.gov/pubmed/32599753
http://dx.doi.org/10.3390/molecules25122903
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author Duncan, Maggie C.
Onguéné, Pascal Amoa
Kihara, Ibuki
Nebangwa, Derrick N.
Naidu, Maya E.
Williams, David E.
Balgi, Aruna D.
Andrae-Marobela, Kerstin
Roberge, Michel
Andersen, Raymond J.
Niikura, Masahiro
Ntie-Kang, Fidele
Tietjen, Ian
author_facet Duncan, Maggie C.
Onguéné, Pascal Amoa
Kihara, Ibuki
Nebangwa, Derrick N.
Naidu, Maya E.
Williams, David E.
Balgi, Aruna D.
Andrae-Marobela, Kerstin
Roberge, Michel
Andersen, Raymond J.
Niikura, Masahiro
Ntie-Kang, Fidele
Tietjen, Ian
author_sort Duncan, Maggie C.
collection PubMed
description The increasing prevalence of drug-resistant influenza viruses emphasizes the need for new antiviral countermeasures. The M2 protein of influenza A is a proton-gated, proton-selective ion channel, which is essential for influenza replication and an established antiviral target. However, all currently circulating influenza A virus strains are now resistant to licensed M2-targeting adamantane drugs, primarily due to the widespread prevalence of an M2 variant encoding a serine to asparagine 31 mutation (S31N). To identify new chemical leads that may target M2(S31N), we performed a virtual screen of molecules from two natural product libraries and identified chebulagic acid as a candidate M2(S31N) inhibitor and influenza antiviral. Chebulagic acid selectively restores growth of M2(S31N)-expressing yeast. Molecular modeling also suggests that chebulagic acid hydrolysis fragments preferentially interact with the highly-conserved histidine residue within the pore of M2(S31N) but not adamantane-sensitive M2(S31). In contrast, chebulagic acid inhibits in vitro influenza A replication regardless of M2 sequence, suggesting that it also acts on other influenza targets. Taken together, results implicate chebulagic acid and/or its hydrolysis fragments as new chemical leads for M2(S31N) and influenza-directed antiviral development.
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spelling pubmed-73568742020-07-22 Virtual Screening Identifies Chebulagic Acid as an Inhibitor of the M2(S31N) Viral Ion Channel and Influenza A Virus Duncan, Maggie C. Onguéné, Pascal Amoa Kihara, Ibuki Nebangwa, Derrick N. Naidu, Maya E. Williams, David E. Balgi, Aruna D. Andrae-Marobela, Kerstin Roberge, Michel Andersen, Raymond J. Niikura, Masahiro Ntie-Kang, Fidele Tietjen, Ian Molecules Article The increasing prevalence of drug-resistant influenza viruses emphasizes the need for new antiviral countermeasures. The M2 protein of influenza A is a proton-gated, proton-selective ion channel, which is essential for influenza replication and an established antiviral target. However, all currently circulating influenza A virus strains are now resistant to licensed M2-targeting adamantane drugs, primarily due to the widespread prevalence of an M2 variant encoding a serine to asparagine 31 mutation (S31N). To identify new chemical leads that may target M2(S31N), we performed a virtual screen of molecules from two natural product libraries and identified chebulagic acid as a candidate M2(S31N) inhibitor and influenza antiviral. Chebulagic acid selectively restores growth of M2(S31N)-expressing yeast. Molecular modeling also suggests that chebulagic acid hydrolysis fragments preferentially interact with the highly-conserved histidine residue within the pore of M2(S31N) but not adamantane-sensitive M2(S31). In contrast, chebulagic acid inhibits in vitro influenza A replication regardless of M2 sequence, suggesting that it also acts on other influenza targets. Taken together, results implicate chebulagic acid and/or its hydrolysis fragments as new chemical leads for M2(S31N) and influenza-directed antiviral development. MDPI 2020-06-24 /pmc/articles/PMC7356874/ /pubmed/32599753 http://dx.doi.org/10.3390/molecules25122903 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Duncan, Maggie C.
Onguéné, Pascal Amoa
Kihara, Ibuki
Nebangwa, Derrick N.
Naidu, Maya E.
Williams, David E.
Balgi, Aruna D.
Andrae-Marobela, Kerstin
Roberge, Michel
Andersen, Raymond J.
Niikura, Masahiro
Ntie-Kang, Fidele
Tietjen, Ian
Virtual Screening Identifies Chebulagic Acid as an Inhibitor of the M2(S31N) Viral Ion Channel and Influenza A Virus
title Virtual Screening Identifies Chebulagic Acid as an Inhibitor of the M2(S31N) Viral Ion Channel and Influenza A Virus
title_full Virtual Screening Identifies Chebulagic Acid as an Inhibitor of the M2(S31N) Viral Ion Channel and Influenza A Virus
title_fullStr Virtual Screening Identifies Chebulagic Acid as an Inhibitor of the M2(S31N) Viral Ion Channel and Influenza A Virus
title_full_unstemmed Virtual Screening Identifies Chebulagic Acid as an Inhibitor of the M2(S31N) Viral Ion Channel and Influenza A Virus
title_short Virtual Screening Identifies Chebulagic Acid as an Inhibitor of the M2(S31N) Viral Ion Channel and Influenza A Virus
title_sort virtual screening identifies chebulagic acid as an inhibitor of the m2(s31n) viral ion channel and influenza a virus
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7356874/
https://www.ncbi.nlm.nih.gov/pubmed/32599753
http://dx.doi.org/10.3390/molecules25122903
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