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Alternative splicing liberates a cryptic cytoplasmic isoform of mitochondrial MECR that antagonizes influenza virus

Viruses must balance their reliance on host cell machinery for replication while avoiding host defense. Influenza A viruses are zoonotic agents that frequently switch hosts, causing localized outbreaks with the potential for larger pandemics. The host range of influenza virus is limited by the need...

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Autores principales: Baker, Steven F., Meistermann, Helene, Tzouros, Manuel, Baker, Aaron, Golling, Sabrina, Polster, Juliane Siebourg, Ledwith, Mitchell P., Gitter, Anthony, Augustin, Angelique, Javanbakht, Hassan, Mehle, Andrew
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9815647/
https://www.ncbi.nlm.nih.gov/pubmed/36542656
http://dx.doi.org/10.1371/journal.pbio.3001934
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author Baker, Steven F.
Meistermann, Helene
Tzouros, Manuel
Baker, Aaron
Golling, Sabrina
Polster, Juliane Siebourg
Ledwith, Mitchell P.
Gitter, Anthony
Augustin, Angelique
Javanbakht, Hassan
Mehle, Andrew
author_facet Baker, Steven F.
Meistermann, Helene
Tzouros, Manuel
Baker, Aaron
Golling, Sabrina
Polster, Juliane Siebourg
Ledwith, Mitchell P.
Gitter, Anthony
Augustin, Angelique
Javanbakht, Hassan
Mehle, Andrew
author_sort Baker, Steven F.
collection PubMed
description Viruses must balance their reliance on host cell machinery for replication while avoiding host defense. Influenza A viruses are zoonotic agents that frequently switch hosts, causing localized outbreaks with the potential for larger pandemics. The host range of influenza virus is limited by the need for successful interactions between the virus and cellular partners. Here we used immunocompetitive capture-mass spectrometry to identify cellular proteins that interact with human- and avian-style viral polymerases. We focused on the proviral activity of heterogenous nuclear ribonuclear protein U-like 1 (hnRNP UL1) and the antiviral activity of mitochondrial enoyl CoA-reductase (MECR). MECR is localized to mitochondria where it functions in mitochondrial fatty acid synthesis (mtFAS). While a small fraction of the polymerase subunit PB2 localizes to the mitochondria, PB2 did not interact with full-length MECR. By contrast, a minor splice variant produces cytoplasmic MECR (cMECR). Ectopic expression of cMECR shows that it binds the viral polymerase and suppresses viral replication by blocking assembly of viral ribonucleoprotein complexes (RNPs). MECR ablation through genome editing or drug treatment is detrimental for cell health, creating a generic block to virus replication. Using the yeast homolog Etr1 to supply the metabolic functions of MECR in MECR-null cells, we showed that specific antiviral activity is independent of mtFAS and is reconstituted by expressing cMECR. Thus, we propose a strategy where alternative splicing produces a cryptic antiviral protein that is embedded within a key metabolic enzyme.
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spelling pubmed-98156472023-01-06 Alternative splicing liberates a cryptic cytoplasmic isoform of mitochondrial MECR that antagonizes influenza virus Baker, Steven F. Meistermann, Helene Tzouros, Manuel Baker, Aaron Golling, Sabrina Polster, Juliane Siebourg Ledwith, Mitchell P. Gitter, Anthony Augustin, Angelique Javanbakht, Hassan Mehle, Andrew PLoS Biol Research Article Viruses must balance their reliance on host cell machinery for replication while avoiding host defense. Influenza A viruses are zoonotic agents that frequently switch hosts, causing localized outbreaks with the potential for larger pandemics. The host range of influenza virus is limited by the need for successful interactions between the virus and cellular partners. Here we used immunocompetitive capture-mass spectrometry to identify cellular proteins that interact with human- and avian-style viral polymerases. We focused on the proviral activity of heterogenous nuclear ribonuclear protein U-like 1 (hnRNP UL1) and the antiviral activity of mitochondrial enoyl CoA-reductase (MECR). MECR is localized to mitochondria where it functions in mitochondrial fatty acid synthesis (mtFAS). While a small fraction of the polymerase subunit PB2 localizes to the mitochondria, PB2 did not interact with full-length MECR. By contrast, a minor splice variant produces cytoplasmic MECR (cMECR). Ectopic expression of cMECR shows that it binds the viral polymerase and suppresses viral replication by blocking assembly of viral ribonucleoprotein complexes (RNPs). MECR ablation through genome editing or drug treatment is detrimental for cell health, creating a generic block to virus replication. Using the yeast homolog Etr1 to supply the metabolic functions of MECR in MECR-null cells, we showed that specific antiviral activity is independent of mtFAS and is reconstituted by expressing cMECR. Thus, we propose a strategy where alternative splicing produces a cryptic antiviral protein that is embedded within a key metabolic enzyme. Public Library of Science 2022-12-21 /pmc/articles/PMC9815647/ /pubmed/36542656 http://dx.doi.org/10.1371/journal.pbio.3001934 Text en © 2022 Baker et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://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
Baker, Steven F.
Meistermann, Helene
Tzouros, Manuel
Baker, Aaron
Golling, Sabrina
Polster, Juliane Siebourg
Ledwith, Mitchell P.
Gitter, Anthony
Augustin, Angelique
Javanbakht, Hassan
Mehle, Andrew
Alternative splicing liberates a cryptic cytoplasmic isoform of mitochondrial MECR that antagonizes influenza virus
title Alternative splicing liberates a cryptic cytoplasmic isoform of mitochondrial MECR that antagonizes influenza virus
title_full Alternative splicing liberates a cryptic cytoplasmic isoform of mitochondrial MECR that antagonizes influenza virus
title_fullStr Alternative splicing liberates a cryptic cytoplasmic isoform of mitochondrial MECR that antagonizes influenza virus
title_full_unstemmed Alternative splicing liberates a cryptic cytoplasmic isoform of mitochondrial MECR that antagonizes influenza virus
title_short Alternative splicing liberates a cryptic cytoplasmic isoform of mitochondrial MECR that antagonizes influenza virus
title_sort alternative splicing liberates a cryptic cytoplasmic isoform of mitochondrial mecr that antagonizes influenza virus
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9815647/
https://www.ncbi.nlm.nih.gov/pubmed/36542656
http://dx.doi.org/10.1371/journal.pbio.3001934
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