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Full Inactivation of Human Influenza Virus by High Hydrostatic Pressure Preserves Virus Structure and Membrane Fusion While Conferring Protection to Mice against Infection

Whole inactivated vaccines (WIVs) possess greater immunogenicity than split or subunit vaccines, and recent studies have demonstrated that WIVs with preserved fusogenic activity are more protective than non-fusogenic WIVs. In this work, we describe the inactivation of human influenza virus X-31 by h...

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Autores principales: Dumard, Carlos H., Barroso, Shana P. C., de Oliveira, Guilherme A. P., Carvalho, Carlos A. M., Gomes, Andre M. O., Couceiro, José Nelson S. S., Ferreira, Davis F., Nico, Dirlei, Oliveira, Andrea C., Silva, Jerson L., Santos, Patrícia S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3840014/
https://www.ncbi.nlm.nih.gov/pubmed/24282553
http://dx.doi.org/10.1371/journal.pone.0080785
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author Dumard, Carlos H.
Barroso, Shana P. C.
de Oliveira, Guilherme A. P.
Carvalho, Carlos A. M.
Gomes, Andre M. O.
Couceiro, José Nelson S. S.
Ferreira, Davis F.
Nico, Dirlei
Oliveira, Andrea C.
Silva, Jerson L.
Santos, Patrícia S.
author_facet Dumard, Carlos H.
Barroso, Shana P. C.
de Oliveira, Guilherme A. P.
Carvalho, Carlos A. M.
Gomes, Andre M. O.
Couceiro, José Nelson S. S.
Ferreira, Davis F.
Nico, Dirlei
Oliveira, Andrea C.
Silva, Jerson L.
Santos, Patrícia S.
author_sort Dumard, Carlos H.
collection PubMed
description Whole inactivated vaccines (WIVs) possess greater immunogenicity than split or subunit vaccines, and recent studies have demonstrated that WIVs with preserved fusogenic activity are more protective than non-fusogenic WIVs. In this work, we describe the inactivation of human influenza virus X-31 by high hydrostatic pressure (HHP) and analyze the effects on the structure by spectroscopic measurements, light scattering, and electron microscopy. We also investigated the effects of HHP on the glycoprotein activity and fusogenic activity of the viral particles. The electron microscopy data showed pore formation on the viral envelope, but the general morphology was preserved, and small variations were seen in the particle structure. The activity of hemagglutinin (HA) during the process of binding and fusion was affected in a time-dependent manner, but neuraminidase (NA) activity was not affected. Infectious activity ceased after 3 hours of pressurization, and mice were protected from infection after being vaccinated. Our results revealed full viral inactivation with overall preservation of viral structure and maintenance of fusogenic activity, thereby conferring protection against infection. A strong response consisting of serum immunoglobulin IgG1, IgG2a, and serum and mucosal IgA was also detected after vaccination. Thus, our data strongly suggest that applying hydrostatic pressure may be an effective method for developing new vaccines against influenza A as well as other viruses.
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spelling pubmed-38400142013-11-26 Full Inactivation of Human Influenza Virus by High Hydrostatic Pressure Preserves Virus Structure and Membrane Fusion While Conferring Protection to Mice against Infection Dumard, Carlos H. Barroso, Shana P. C. de Oliveira, Guilherme A. P. Carvalho, Carlos A. M. Gomes, Andre M. O. Couceiro, José Nelson S. S. Ferreira, Davis F. Nico, Dirlei Oliveira, Andrea C. Silva, Jerson L. Santos, Patrícia S. PLoS One Research Article Whole inactivated vaccines (WIVs) possess greater immunogenicity than split or subunit vaccines, and recent studies have demonstrated that WIVs with preserved fusogenic activity are more protective than non-fusogenic WIVs. In this work, we describe the inactivation of human influenza virus X-31 by high hydrostatic pressure (HHP) and analyze the effects on the structure by spectroscopic measurements, light scattering, and electron microscopy. We also investigated the effects of HHP on the glycoprotein activity and fusogenic activity of the viral particles. The electron microscopy data showed pore formation on the viral envelope, but the general morphology was preserved, and small variations were seen in the particle structure. The activity of hemagglutinin (HA) during the process of binding and fusion was affected in a time-dependent manner, but neuraminidase (NA) activity was not affected. Infectious activity ceased after 3 hours of pressurization, and mice were protected from infection after being vaccinated. Our results revealed full viral inactivation with overall preservation of viral structure and maintenance of fusogenic activity, thereby conferring protection against infection. A strong response consisting of serum immunoglobulin IgG1, IgG2a, and serum and mucosal IgA was also detected after vaccination. Thus, our data strongly suggest that applying hydrostatic pressure may be an effective method for developing new vaccines against influenza A as well as other viruses. Public Library of Science 2013-11-25 /pmc/articles/PMC3840014/ /pubmed/24282553 http://dx.doi.org/10.1371/journal.pone.0080785 Text en © 2013 Dumard 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
Dumard, Carlos H.
Barroso, Shana P. C.
de Oliveira, Guilherme A. P.
Carvalho, Carlos A. M.
Gomes, Andre M. O.
Couceiro, José Nelson S. S.
Ferreira, Davis F.
Nico, Dirlei
Oliveira, Andrea C.
Silva, Jerson L.
Santos, Patrícia S.
Full Inactivation of Human Influenza Virus by High Hydrostatic Pressure Preserves Virus Structure and Membrane Fusion While Conferring Protection to Mice against Infection
title Full Inactivation of Human Influenza Virus by High Hydrostatic Pressure Preserves Virus Structure and Membrane Fusion While Conferring Protection to Mice against Infection
title_full Full Inactivation of Human Influenza Virus by High Hydrostatic Pressure Preserves Virus Structure and Membrane Fusion While Conferring Protection to Mice against Infection
title_fullStr Full Inactivation of Human Influenza Virus by High Hydrostatic Pressure Preserves Virus Structure and Membrane Fusion While Conferring Protection to Mice against Infection
title_full_unstemmed Full Inactivation of Human Influenza Virus by High Hydrostatic Pressure Preserves Virus Structure and Membrane Fusion While Conferring Protection to Mice against Infection
title_short Full Inactivation of Human Influenza Virus by High Hydrostatic Pressure Preserves Virus Structure and Membrane Fusion While Conferring Protection to Mice against Infection
title_sort full inactivation of human influenza virus by high hydrostatic pressure preserves virus structure and membrane fusion while conferring protection to mice against infection
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3840014/
https://www.ncbi.nlm.nih.gov/pubmed/24282553
http://dx.doi.org/10.1371/journal.pone.0080785
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