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Functional and biochemical characterization of the baculovirus caspase inhibitor MaviP35

Many viruses express proteins which prevent the host cell death that their infection would otherwise provoke. Some insect viruses suppress host apoptosis through the expression of caspase inhibitors belonging to the P35 superfamily. Although a number of P35 relatives have been identified, Autographa...

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Autores principales: Brand, I L, Green, M M, Civciristov, S, Pantaki-Eimany, D, George, C, Gort, T R, Huang, N, Clem, R J, Hawkins, C J
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3252740/
https://www.ncbi.nlm.nih.gov/pubmed/22170098
http://dx.doi.org/10.1038/cddis.2011.127
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author Brand, I L
Green, M M
Civciristov, S
Pantaki-Eimany, D
George, C
Gort, T R
Huang, N
Clem, R J
Hawkins, C J
author_facet Brand, I L
Green, M M
Civciristov, S
Pantaki-Eimany, D
George, C
Gort, T R
Huang, N
Clem, R J
Hawkins, C J
author_sort Brand, I L
collection PubMed
description Many viruses express proteins which prevent the host cell death that their infection would otherwise provoke. Some insect viruses suppress host apoptosis through the expression of caspase inhibitors belonging to the P35 superfamily. Although a number of P35 relatives have been identified, Autographa californica (Ac) P35 and Spodoptera littoralis (Spli) P49 have been the most extensively characterized. AcP35 was found to inhibit caspases via a suicide substrate mechanism: the caspase cleaves AcP35 within its ‘reactive site loop' then becomes trapped, irreversibly bound to the cleaved inhibitor. The Maruca vitrata multiple nucleopolyhedrovirus encodes a P35 family member (MaviP35) that exhibits 81% identity to AcP35. We found that this relative shared with AcP35 the ability to inhibit mammalian and insect cell death. Caspase-mediated cleavage within the MaviP35 reactive site loop occurred at a sequence distinct from that in AcP35, and the inhibitory profiles of the two P35 relatives differed. MaviP35 potently inhibited human caspases 2 and 3, DCP-1, DRICE and CED-3 in vitro, but (in contrast to AcP35) only weakly suppressed the proteolytic activity of the initiator human caspases 8, 9 and 10. Although MaviP35 inhibited the AcP35-resistant caspase DRONC in yeast, and was sensitive to cleavage by DRONC in vitro, MaviP35 failed to inhibit the proteolytic activity of bacterially produced DRONC in vitro.
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spelling pubmed-32527402012-01-06 Functional and biochemical characterization of the baculovirus caspase inhibitor MaviP35 Brand, I L Green, M M Civciristov, S Pantaki-Eimany, D George, C Gort, T R Huang, N Clem, R J Hawkins, C J Cell Death Dis Original Article Many viruses express proteins which prevent the host cell death that their infection would otherwise provoke. Some insect viruses suppress host apoptosis through the expression of caspase inhibitors belonging to the P35 superfamily. Although a number of P35 relatives have been identified, Autographa californica (Ac) P35 and Spodoptera littoralis (Spli) P49 have been the most extensively characterized. AcP35 was found to inhibit caspases via a suicide substrate mechanism: the caspase cleaves AcP35 within its ‘reactive site loop' then becomes trapped, irreversibly bound to the cleaved inhibitor. The Maruca vitrata multiple nucleopolyhedrovirus encodes a P35 family member (MaviP35) that exhibits 81% identity to AcP35. We found that this relative shared with AcP35 the ability to inhibit mammalian and insect cell death. Caspase-mediated cleavage within the MaviP35 reactive site loop occurred at a sequence distinct from that in AcP35, and the inhibitory profiles of the two P35 relatives differed. MaviP35 potently inhibited human caspases 2 and 3, DCP-1, DRICE and CED-3 in vitro, but (in contrast to AcP35) only weakly suppressed the proteolytic activity of the initiator human caspases 8, 9 and 10. Although MaviP35 inhibited the AcP35-resistant caspase DRONC in yeast, and was sensitive to cleavage by DRONC in vitro, MaviP35 failed to inhibit the proteolytic activity of bacterially produced DRONC in vitro. Nature Publishing Group 2011-12 2011-12-15 /pmc/articles/PMC3252740/ /pubmed/22170098 http://dx.doi.org/10.1038/cddis.2011.127 Text en Copyright © 2011 Macmillan Publishers Limited http://creativecommons.org/licenses/by-nc-sa/3.0/ This work is licensed under the Creative Commons Attribution-NonCommercial-Share Alike 3.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-sa/3.0/
spellingShingle Original Article
Brand, I L
Green, M M
Civciristov, S
Pantaki-Eimany, D
George, C
Gort, T R
Huang, N
Clem, R J
Hawkins, C J
Functional and biochemical characterization of the baculovirus caspase inhibitor MaviP35
title Functional and biochemical characterization of the baculovirus caspase inhibitor MaviP35
title_full Functional and biochemical characterization of the baculovirus caspase inhibitor MaviP35
title_fullStr Functional and biochemical characterization of the baculovirus caspase inhibitor MaviP35
title_full_unstemmed Functional and biochemical characterization of the baculovirus caspase inhibitor MaviP35
title_short Functional and biochemical characterization of the baculovirus caspase inhibitor MaviP35
title_sort functional and biochemical characterization of the baculovirus caspase inhibitor mavip35
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3252740/
https://www.ncbi.nlm.nih.gov/pubmed/22170098
http://dx.doi.org/10.1038/cddis.2011.127
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