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Caspase-Dependent Inhibition of Mousepox Replication by gzmB

BACKGROUND: Ectromelia virus is a natural mouse pathogen, causing mousepox. The cytotoxic T (Tc) cell granule serine-protease, granzyme B, is important for its control, but the underlying mechanism is unknown. Using ex vivo virus immune Tc cells, we have previously shown that granzyme B is able to a...

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Autores principales: Pardo, Julián, Gálvez, Eva Ma, Koskinen, Aulikki, Simon, Markus M., Lobigs, Mario, Regner, Matthias, Müllbacher, Arno
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2759507/
https://www.ncbi.nlm.nih.gov/pubmed/19838298
http://dx.doi.org/10.1371/journal.pone.0007512
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author Pardo, Julián
Gálvez, Eva Ma
Koskinen, Aulikki
Simon, Markus M.
Lobigs, Mario
Regner, Matthias
Müllbacher, Arno
author_facet Pardo, Julián
Gálvez, Eva Ma
Koskinen, Aulikki
Simon, Markus M.
Lobigs, Mario
Regner, Matthias
Müllbacher, Arno
author_sort Pardo, Julián
collection PubMed
description BACKGROUND: Ectromelia virus is a natural mouse pathogen, causing mousepox. The cytotoxic T (Tc) cell granule serine-protease, granzyme B, is important for its control, but the underlying mechanism is unknown. Using ex vivo virus immune Tc cells, we have previously shown that granzyme B is able to activate several independent pro-apoptotic pathways, including those mediated by Bid/Bak/Bax and caspases-3/-7, in target cells pulsed with Tc cell determinants. METHODS AND FINDINGS: Here we analysed the physiological relevance of those pro-apoptotic pathways in ectromelia infection, by incubating ectromelia-immune ex vivo Tc cells from granzyme A deficient (GzmB(+) Tc cells) or granzyme A and granzyme B deficient (GzmA×B(−/−) Tc cell) mice with ectromelia-infected target cells. We found that gzmB-induced apoptosis was totally blocked in ectromelia infected or peptide pulsed cells lacking caspases-3/-7. However ectromelia inhibited only partially apoptosis in cells deficient for Bid/Bak/Bax and not at all when both pathways were operative suggesting that the virus is able to interfere with apoptosis induced by gzmB in case not all pathways are activated. Importantly, inhibition of viral replication in vitro, as seen with wild type cells, was not affected by the lack of Bid/Bak/Bax but was significantly reduced in caspase-3/-7-deficient cells. Both caspase dependent processes were strictly dependent on gzmB, since Tc cells, lacking both gzms, neither induced apoptosis nor reduced viral titers. SIGNIFICANCE: Out findings present the first evidence on the biological importance of the independent gzmB-inducible pro-apoptotic pathways in a physiological relevant virus infection model.
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spelling pubmed-27595072009-10-19 Caspase-Dependent Inhibition of Mousepox Replication by gzmB Pardo, Julián Gálvez, Eva Ma Koskinen, Aulikki Simon, Markus M. Lobigs, Mario Regner, Matthias Müllbacher, Arno PLoS One Research Article BACKGROUND: Ectromelia virus is a natural mouse pathogen, causing mousepox. The cytotoxic T (Tc) cell granule serine-protease, granzyme B, is important for its control, but the underlying mechanism is unknown. Using ex vivo virus immune Tc cells, we have previously shown that granzyme B is able to activate several independent pro-apoptotic pathways, including those mediated by Bid/Bak/Bax and caspases-3/-7, in target cells pulsed with Tc cell determinants. METHODS AND FINDINGS: Here we analysed the physiological relevance of those pro-apoptotic pathways in ectromelia infection, by incubating ectromelia-immune ex vivo Tc cells from granzyme A deficient (GzmB(+) Tc cells) or granzyme A and granzyme B deficient (GzmA×B(−/−) Tc cell) mice with ectromelia-infected target cells. We found that gzmB-induced apoptosis was totally blocked in ectromelia infected or peptide pulsed cells lacking caspases-3/-7. However ectromelia inhibited only partially apoptosis in cells deficient for Bid/Bak/Bax and not at all when both pathways were operative suggesting that the virus is able to interfere with apoptosis induced by gzmB in case not all pathways are activated. Importantly, inhibition of viral replication in vitro, as seen with wild type cells, was not affected by the lack of Bid/Bak/Bax but was significantly reduced in caspase-3/-7-deficient cells. Both caspase dependent processes were strictly dependent on gzmB, since Tc cells, lacking both gzms, neither induced apoptosis nor reduced viral titers. SIGNIFICANCE: Out findings present the first evidence on the biological importance of the independent gzmB-inducible pro-apoptotic pathways in a physiological relevant virus infection model. Public Library of Science 2009-10-19 /pmc/articles/PMC2759507/ /pubmed/19838298 http://dx.doi.org/10.1371/journal.pone.0007512 Text en Pardo 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
Pardo, Julián
Gálvez, Eva Ma
Koskinen, Aulikki
Simon, Markus M.
Lobigs, Mario
Regner, Matthias
Müllbacher, Arno
Caspase-Dependent Inhibition of Mousepox Replication by gzmB
title Caspase-Dependent Inhibition of Mousepox Replication by gzmB
title_full Caspase-Dependent Inhibition of Mousepox Replication by gzmB
title_fullStr Caspase-Dependent Inhibition of Mousepox Replication by gzmB
title_full_unstemmed Caspase-Dependent Inhibition of Mousepox Replication by gzmB
title_short Caspase-Dependent Inhibition of Mousepox Replication by gzmB
title_sort caspase-dependent inhibition of mousepox replication by gzmb
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2759507/
https://www.ncbi.nlm.nih.gov/pubmed/19838298
http://dx.doi.org/10.1371/journal.pone.0007512
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