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Acidic residues in the membrane-proximal stalk region of vaccinia virus protein B5 are required for glycosaminoglycan-mediated disruption of the extracellular enveloped virus outer membrane

The extracellular enveloped virus (EEV) form of vaccinia virus (VACV) is surrounded by two lipid envelopes. This presents a topological problem for virus entry into cells, because a classical fusion event would only release a virion surrounded by a single envelope into the cell. Recently, we describ...

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Autores principales: Roberts, Kim L., Breiman, Adrien, Carter, Gemma C., Ewles, Helen A., Hollinshead, Michael, Law, Mansun, Smith, Geoffrey L.
Formato: Texto
Lenguaje:English
Publicado: Society for General Microbiology 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2885056/
https://www.ncbi.nlm.nih.gov/pubmed/19264647
http://dx.doi.org/10.1099/vir.0.009092-0
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author Roberts, Kim L.
Breiman, Adrien
Carter, Gemma C.
Ewles, Helen A.
Hollinshead, Michael
Law, Mansun
Smith, Geoffrey L.
author_facet Roberts, Kim L.
Breiman, Adrien
Carter, Gemma C.
Ewles, Helen A.
Hollinshead, Michael
Law, Mansun
Smith, Geoffrey L.
author_sort Roberts, Kim L.
collection PubMed
description The extracellular enveloped virus (EEV) form of vaccinia virus (VACV) is surrounded by two lipid envelopes. This presents a topological problem for virus entry into cells, because a classical fusion event would only release a virion surrounded by a single envelope into the cell. Recently, we described a mechanism in which the EEV outer membrane is disrupted following interaction with glycosaminoglycans (GAGs) on the cell surface and thus allowing fusion of the inner membrane with the plasma membrane and penetration of a naked core into the cytosol. Here we show that both the B5 and A34 viral glycoproteins are required for this process. A34 is required to recruit B5 into the EEV membrane and B5 acts as a molecular switch to control EEV membrane rupture upon exposure to GAGs. Analysis of VACV strains expressing mutated B5 proteins demonstrated that the acidic stalk region between the transmembrane anchor sequence and the fourth short consensus repeat of B5 are critical for GAG-induced membrane rupture. Furthermore, the interaction between B5 and A34 can be disrupted by the addition of polyanions (GAGs) and polycations, but only the former induce membrane rupture. Based on these data we propose a revised model for EEV entry.
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spelling pubmed-28850562010-07-06 Acidic residues in the membrane-proximal stalk region of vaccinia virus protein B5 are required for glycosaminoglycan-mediated disruption of the extracellular enveloped virus outer membrane Roberts, Kim L. Breiman, Adrien Carter, Gemma C. Ewles, Helen A. Hollinshead, Michael Law, Mansun Smith, Geoffrey L. J Gen Virol Animal The extracellular enveloped virus (EEV) form of vaccinia virus (VACV) is surrounded by two lipid envelopes. This presents a topological problem for virus entry into cells, because a classical fusion event would only release a virion surrounded by a single envelope into the cell. Recently, we described a mechanism in which the EEV outer membrane is disrupted following interaction with glycosaminoglycans (GAGs) on the cell surface and thus allowing fusion of the inner membrane with the plasma membrane and penetration of a naked core into the cytosol. Here we show that both the B5 and A34 viral glycoproteins are required for this process. A34 is required to recruit B5 into the EEV membrane and B5 acts as a molecular switch to control EEV membrane rupture upon exposure to GAGs. Analysis of VACV strains expressing mutated B5 proteins demonstrated that the acidic stalk region between the transmembrane anchor sequence and the fourth short consensus repeat of B5 are critical for GAG-induced membrane rupture. Furthermore, the interaction between B5 and A34 can be disrupted by the addition of polyanions (GAGs) and polycations, but only the former induce membrane rupture. Based on these data we propose a revised model for EEV entry. Society for General Microbiology 2009-07 /pmc/articles/PMC2885056/ /pubmed/19264647 http://dx.doi.org/10.1099/vir.0.009092-0 Text en Copyright © 2009, SGM http://creativecommons.org/licenses/by/2.5/ 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 work is properly cited.
spellingShingle Animal
Roberts, Kim L.
Breiman, Adrien
Carter, Gemma C.
Ewles, Helen A.
Hollinshead, Michael
Law, Mansun
Smith, Geoffrey L.
Acidic residues in the membrane-proximal stalk region of vaccinia virus protein B5 are required for glycosaminoglycan-mediated disruption of the extracellular enveloped virus outer membrane
title Acidic residues in the membrane-proximal stalk region of vaccinia virus protein B5 are required for glycosaminoglycan-mediated disruption of the extracellular enveloped virus outer membrane
title_full Acidic residues in the membrane-proximal stalk region of vaccinia virus protein B5 are required for glycosaminoglycan-mediated disruption of the extracellular enveloped virus outer membrane
title_fullStr Acidic residues in the membrane-proximal stalk region of vaccinia virus protein B5 are required for glycosaminoglycan-mediated disruption of the extracellular enveloped virus outer membrane
title_full_unstemmed Acidic residues in the membrane-proximal stalk region of vaccinia virus protein B5 are required for glycosaminoglycan-mediated disruption of the extracellular enveloped virus outer membrane
title_short Acidic residues in the membrane-proximal stalk region of vaccinia virus protein B5 are required for glycosaminoglycan-mediated disruption of the extracellular enveloped virus outer membrane
title_sort acidic residues in the membrane-proximal stalk region of vaccinia virus protein b5 are required for glycosaminoglycan-mediated disruption of the extracellular enveloped virus outer membrane
topic Animal
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2885056/
https://www.ncbi.nlm.nih.gov/pubmed/19264647
http://dx.doi.org/10.1099/vir.0.009092-0
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