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Protection and mechanism of action of a novel human respiratory syncytial virus vaccine candidate based on the extracellular domain of small hydrophobic protein

Infections with human respiratory syncytial virus (HRSV) occur globally in all age groups and can have devastating consequences in young infants. We demonstrate that a vaccine based on the extracellular domain (SHe) of the small hydrophobic (SH) protein of HRSV, reduced viral replication in challeng...

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Autores principales: Schepens, Bert, Sedeyn, Koen, Vande Ginste, Liesbeth, De Baets, Sarah, Schotsaert, Michael, Roose, Kenny, Houspie, Lieselot, Van Ranst, Marc, Gilbert, Brian, van Rooijen, Nico, Fiers, Walter, Piedra, Pedro, Saelens, Xavier
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BlackWell Publishing Ltd 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4237470/
https://www.ncbi.nlm.nih.gov/pubmed/25298406
http://dx.doi.org/10.15252/emmm.201404005
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author Schepens, Bert
Sedeyn, Koen
Vande Ginste, Liesbeth
De Baets, Sarah
Schotsaert, Michael
Roose, Kenny
Houspie, Lieselot
Van Ranst, Marc
Gilbert, Brian
van Rooijen, Nico
Fiers, Walter
Piedra, Pedro
Saelens, Xavier
author_facet Schepens, Bert
Sedeyn, Koen
Vande Ginste, Liesbeth
De Baets, Sarah
Schotsaert, Michael
Roose, Kenny
Houspie, Lieselot
Van Ranst, Marc
Gilbert, Brian
van Rooijen, Nico
Fiers, Walter
Piedra, Pedro
Saelens, Xavier
author_sort Schepens, Bert
collection PubMed
description Infections with human respiratory syncytial virus (HRSV) occur globally in all age groups and can have devastating consequences in young infants. We demonstrate that a vaccine based on the extracellular domain (SHe) of the small hydrophobic (SH) protein of HRSV, reduced viral replication in challenged laboratory mice and in cotton rats. We show that this suppression of viral replication can be transferred by serum and depends on a functional IgG receptor compartment with a major contribution of FcγRI and FcγRIII. Using a conditional cell depletion method, we provide evidence that alveolar macrophages are involved in the protection by SHe-specific antibodies. HRSV-infected cells abundantly express SH on the cell surface and are likely the prime target of the humoral immune response elicited by SHe-based vaccination. Finally, natural infection of humans and experimental infection of mice or cotton rats does not induce a strong immune response against HRSV SHe. Using SHe as a vaccine antigen induces immune protection against HRSV by a mechanism that differs from the natural immune response and from other HRSV vaccination strategies explored to date. Hence, HRSV vaccine candidates that aim at inducing protective neutralizing antibodies or T-cell responses could be complemented with a SHe-based antigen to further improve immune protection.
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spelling pubmed-42374702014-12-04 Protection and mechanism of action of a novel human respiratory syncytial virus vaccine candidate based on the extracellular domain of small hydrophobic protein Schepens, Bert Sedeyn, Koen Vande Ginste, Liesbeth De Baets, Sarah Schotsaert, Michael Roose, Kenny Houspie, Lieselot Van Ranst, Marc Gilbert, Brian van Rooijen, Nico Fiers, Walter Piedra, Pedro Saelens, Xavier EMBO Mol Med Research Articles Infections with human respiratory syncytial virus (HRSV) occur globally in all age groups and can have devastating consequences in young infants. We demonstrate that a vaccine based on the extracellular domain (SHe) of the small hydrophobic (SH) protein of HRSV, reduced viral replication in challenged laboratory mice and in cotton rats. We show that this suppression of viral replication can be transferred by serum and depends on a functional IgG receptor compartment with a major contribution of FcγRI and FcγRIII. Using a conditional cell depletion method, we provide evidence that alveolar macrophages are involved in the protection by SHe-specific antibodies. HRSV-infected cells abundantly express SH on the cell surface and are likely the prime target of the humoral immune response elicited by SHe-based vaccination. Finally, natural infection of humans and experimental infection of mice or cotton rats does not induce a strong immune response against HRSV SHe. Using SHe as a vaccine antigen induces immune protection against HRSV by a mechanism that differs from the natural immune response and from other HRSV vaccination strategies explored to date. Hence, HRSV vaccine candidates that aim at inducing protective neutralizing antibodies or T-cell responses could be complemented with a SHe-based antigen to further improve immune protection. BlackWell Publishing Ltd 2014-11 2014-10-08 /pmc/articles/PMC4237470/ /pubmed/25298406 http://dx.doi.org/10.15252/emmm.201404005 Text en © 2014 The Authors. Published under the terms of the CC BY 4.0 license http://creativecommons.org/licenses/by/4.0/ This is an open access article under the terms of the Creative Commons Attribution 4.0 License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Schepens, Bert
Sedeyn, Koen
Vande Ginste, Liesbeth
De Baets, Sarah
Schotsaert, Michael
Roose, Kenny
Houspie, Lieselot
Van Ranst, Marc
Gilbert, Brian
van Rooijen, Nico
Fiers, Walter
Piedra, Pedro
Saelens, Xavier
Protection and mechanism of action of a novel human respiratory syncytial virus vaccine candidate based on the extracellular domain of small hydrophobic protein
title Protection and mechanism of action of a novel human respiratory syncytial virus vaccine candidate based on the extracellular domain of small hydrophobic protein
title_full Protection and mechanism of action of a novel human respiratory syncytial virus vaccine candidate based on the extracellular domain of small hydrophobic protein
title_fullStr Protection and mechanism of action of a novel human respiratory syncytial virus vaccine candidate based on the extracellular domain of small hydrophobic protein
title_full_unstemmed Protection and mechanism of action of a novel human respiratory syncytial virus vaccine candidate based on the extracellular domain of small hydrophobic protein
title_short Protection and mechanism of action of a novel human respiratory syncytial virus vaccine candidate based on the extracellular domain of small hydrophobic protein
title_sort protection and mechanism of action of a novel human respiratory syncytial virus vaccine candidate based on the extracellular domain of small hydrophobic protein
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4237470/
https://www.ncbi.nlm.nih.gov/pubmed/25298406
http://dx.doi.org/10.15252/emmm.201404005
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