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Induction of Noxa-Mediated Apoptosis by Modified Vaccinia Virus Ankara Depends on Viral Recognition by Cytosolic Helicases, Leading to IRF-3/IFN-β-Dependent Induction of Pro-Apoptotic Noxa

Viral infection is a stimulus for apoptosis, and in order to sustain viral replication many viruses are known to carry genes encoding apoptosis inhibitors. F1L, encoded by the orthopoxvirus modified vaccinia virus Ankara (MVA) has a Bcl-2-like structure. An MVA mutant lacking F1L (MVAΔF1L) induces a...

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Autores principales: Eitz Ferrer, Pedro, Potthoff, Stephanie, Kirschnek, Susanne, Gasteiger, Georg, Kastenmüller, Wolfgang, Ludwig, Holger, Paschen, Stefan A., Villunger, Andreas, Sutter, Gerd, Drexler, Ingo, Häcker, Georg
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3116819/
https://www.ncbi.nlm.nih.gov/pubmed/21698224
http://dx.doi.org/10.1371/journal.ppat.1002083
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author Eitz Ferrer, Pedro
Potthoff, Stephanie
Kirschnek, Susanne
Gasteiger, Georg
Kastenmüller, Wolfgang
Ludwig, Holger
Paschen, Stefan A.
Villunger, Andreas
Sutter, Gerd
Drexler, Ingo
Häcker, Georg
author_facet Eitz Ferrer, Pedro
Potthoff, Stephanie
Kirschnek, Susanne
Gasteiger, Georg
Kastenmüller, Wolfgang
Ludwig, Holger
Paschen, Stefan A.
Villunger, Andreas
Sutter, Gerd
Drexler, Ingo
Häcker, Georg
author_sort Eitz Ferrer, Pedro
collection PubMed
description Viral infection is a stimulus for apoptosis, and in order to sustain viral replication many viruses are known to carry genes encoding apoptosis inhibitors. F1L, encoded by the orthopoxvirus modified vaccinia virus Ankara (MVA) has a Bcl-2-like structure. An MVA mutant lacking F1L (MVAΔF1L) induces apoptosis, indicating that MVA infection activates and F1L functions to inhibit the apoptotic pathway. In this study we investigated the events leading to apoptosis upon infection by MVAΔF1L. Apoptosis largely proceeded through the pro-apoptotic Bcl-2 family protein Bak with some contribution from Bax. Of the family of pro-apoptotic BH3-only proteins, only the loss of Noxa provided substantial protection, while the loss of Bim had a minor effect. In mice, MVA preferentially infected macrophages and DCs in vivo. In both cell types wt MVA induced apoptosis albeit more weakly than MVAΔF1L. The loss of Noxa had a significant protective effect in macrophages, DC and primary lymphocytes, and the combined loss of Bim and Noxa provided strong protection. Noxa protein was induced during infection, and the induction of Noxa protein and apoptosis induction required transcription factor IRF3 and type I interferon signalling. We further observed that helicases RIG-I and MDA5 and their signalling adapter MAVS contribute to Noxa induction and apoptosis in response to MVA infection. RNA isolated from MVA-infected cells induced Noxa expression and apoptosis when transfected in the absence of viral infection. We thus here describe a pathway leading from the detection of viral RNA during MVA infection by the cytosolic helicase-pathway, to the up-regulation of Noxa and apoptosis via IRF3 and type I IFN signalling.
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spelling pubmed-31168192011-06-22 Induction of Noxa-Mediated Apoptosis by Modified Vaccinia Virus Ankara Depends on Viral Recognition by Cytosolic Helicases, Leading to IRF-3/IFN-β-Dependent Induction of Pro-Apoptotic Noxa Eitz Ferrer, Pedro Potthoff, Stephanie Kirschnek, Susanne Gasteiger, Georg Kastenmüller, Wolfgang Ludwig, Holger Paschen, Stefan A. Villunger, Andreas Sutter, Gerd Drexler, Ingo Häcker, Georg PLoS Pathog Research Article Viral infection is a stimulus for apoptosis, and in order to sustain viral replication many viruses are known to carry genes encoding apoptosis inhibitors. F1L, encoded by the orthopoxvirus modified vaccinia virus Ankara (MVA) has a Bcl-2-like structure. An MVA mutant lacking F1L (MVAΔF1L) induces apoptosis, indicating that MVA infection activates and F1L functions to inhibit the apoptotic pathway. In this study we investigated the events leading to apoptosis upon infection by MVAΔF1L. Apoptosis largely proceeded through the pro-apoptotic Bcl-2 family protein Bak with some contribution from Bax. Of the family of pro-apoptotic BH3-only proteins, only the loss of Noxa provided substantial protection, while the loss of Bim had a minor effect. In mice, MVA preferentially infected macrophages and DCs in vivo. In both cell types wt MVA induced apoptosis albeit more weakly than MVAΔF1L. The loss of Noxa had a significant protective effect in macrophages, DC and primary lymphocytes, and the combined loss of Bim and Noxa provided strong protection. Noxa protein was induced during infection, and the induction of Noxa protein and apoptosis induction required transcription factor IRF3 and type I interferon signalling. We further observed that helicases RIG-I and MDA5 and their signalling adapter MAVS contribute to Noxa induction and apoptosis in response to MVA infection. RNA isolated from MVA-infected cells induced Noxa expression and apoptosis when transfected in the absence of viral infection. We thus here describe a pathway leading from the detection of viral RNA during MVA infection by the cytosolic helicase-pathway, to the up-regulation of Noxa and apoptosis via IRF3 and type I IFN signalling. Public Library of Science 2011-06-16 /pmc/articles/PMC3116819/ /pubmed/21698224 http://dx.doi.org/10.1371/journal.ppat.1002083 Text en Eitz Ferrer 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
Eitz Ferrer, Pedro
Potthoff, Stephanie
Kirschnek, Susanne
Gasteiger, Georg
Kastenmüller, Wolfgang
Ludwig, Holger
Paschen, Stefan A.
Villunger, Andreas
Sutter, Gerd
Drexler, Ingo
Häcker, Georg
Induction of Noxa-Mediated Apoptosis by Modified Vaccinia Virus Ankara Depends on Viral Recognition by Cytosolic Helicases, Leading to IRF-3/IFN-β-Dependent Induction of Pro-Apoptotic Noxa
title Induction of Noxa-Mediated Apoptosis by Modified Vaccinia Virus Ankara Depends on Viral Recognition by Cytosolic Helicases, Leading to IRF-3/IFN-β-Dependent Induction of Pro-Apoptotic Noxa
title_full Induction of Noxa-Mediated Apoptosis by Modified Vaccinia Virus Ankara Depends on Viral Recognition by Cytosolic Helicases, Leading to IRF-3/IFN-β-Dependent Induction of Pro-Apoptotic Noxa
title_fullStr Induction of Noxa-Mediated Apoptosis by Modified Vaccinia Virus Ankara Depends on Viral Recognition by Cytosolic Helicases, Leading to IRF-3/IFN-β-Dependent Induction of Pro-Apoptotic Noxa
title_full_unstemmed Induction of Noxa-Mediated Apoptosis by Modified Vaccinia Virus Ankara Depends on Viral Recognition by Cytosolic Helicases, Leading to IRF-3/IFN-β-Dependent Induction of Pro-Apoptotic Noxa
title_short Induction of Noxa-Mediated Apoptosis by Modified Vaccinia Virus Ankara Depends on Viral Recognition by Cytosolic Helicases, Leading to IRF-3/IFN-β-Dependent Induction of Pro-Apoptotic Noxa
title_sort induction of noxa-mediated apoptosis by modified vaccinia virus ankara depends on viral recognition by cytosolic helicases, leading to irf-3/ifn-β-dependent induction of pro-apoptotic noxa
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3116819/
https://www.ncbi.nlm.nih.gov/pubmed/21698224
http://dx.doi.org/10.1371/journal.ppat.1002083
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