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The Attenuated Brucella abortus Strain 19 Invades, Persists in, and Activates Human Dendritic Cells, and Induces the Secretion of IL-12p70 but Not IL-23

BACKGROUND: Bacterial vectors have been proposed as novel vaccine strategies to induce strong cellular immunity. Attenuated strains of Brucella abortus comprise promising vector candidates since they have the potential to induce strong CD4(+) and CD8(+) T-cell mediated immune responses in the absenc...

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Autores principales: Weinhold, Mario, Eisenblätter, Martin, Jasny, Edith, Fehlings, Michael, Finke, Antje, Gayum, Hermine, Rüschendorf, Ursula, Renner Viveros, Pablo, Moos, Verena, Allers, Kristina, Schneider, Thomas, Schaible, Ulrich E., Schumann, Ralf R., Mielke, Martin E., Ignatius, Ralf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3689767/
https://www.ncbi.nlm.nih.gov/pubmed/23805193
http://dx.doi.org/10.1371/journal.pone.0065934
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author Weinhold, Mario
Eisenblätter, Martin
Jasny, Edith
Fehlings, Michael
Finke, Antje
Gayum, Hermine
Rüschendorf, Ursula
Renner Viveros, Pablo
Moos, Verena
Allers, Kristina
Schneider, Thomas
Schaible, Ulrich E.
Schumann, Ralf R.
Mielke, Martin E.
Ignatius, Ralf
author_facet Weinhold, Mario
Eisenblätter, Martin
Jasny, Edith
Fehlings, Michael
Finke, Antje
Gayum, Hermine
Rüschendorf, Ursula
Renner Viveros, Pablo
Moos, Verena
Allers, Kristina
Schneider, Thomas
Schaible, Ulrich E.
Schumann, Ralf R.
Mielke, Martin E.
Ignatius, Ralf
author_sort Weinhold, Mario
collection PubMed
description BACKGROUND: Bacterial vectors have been proposed as novel vaccine strategies to induce strong cellular immunity. Attenuated strains of Brucella abortus comprise promising vector candidates since they have the potential to induce strong CD4(+) and CD8(+) T-cell mediated immune responses in the absence of excessive inflammation as observed with other Gram-negative bacteria. However, some Brucella strains interfere with the maturation of dendritic cells (DCs), which is essential for antigen-specific T-cell priming. In the present study, we investigated the interaction of human monocyte-derived DCs with the smooth attenuated B. abortus strain (S) 19, which has previously been employed successfully to vaccinate cattle. METHODOLOGY/PRINCIPAL FINDINGS: We first looked into the potential of S19 to hamper the cytokine-induced maturation of DCs; however, infected cells expressed CD25, CD40, CD80, and CD86 to a comparable extent as uninfected, cytokine-matured DCs. Furthermore, S19 activated DCs in the absence of exogeneous stimuli, enhanced the expression of HLA-ABC and HLA-DR, and was able to persist intracellularly without causing cytotoxicity. Thus, DCs provide a cellular niche for persisting brucellae in vivo as a permanent source of antigen. S19-infected DCs produced IL-12/23p40, IL-12p70, and IL-10, but not IL-23. While heat-killed bacteria also activated DCs, soluble mediators were not involved in S19-induced activation of human DCs. HEK 293 transfectants revealed cellular activation by S19 primarily through engagement of Toll-like receptor (TLR)2. CONCLUSIONS/SIGNIFICANCE: Thus, as an immunological prerequisite for vaccine efficacy, B. abortus S19 potently infects and potently activates (most likely via TLR2) human DCs to produce Th1-promoting cytokines.
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spelling pubmed-36897672013-06-26 The Attenuated Brucella abortus Strain 19 Invades, Persists in, and Activates Human Dendritic Cells, and Induces the Secretion of IL-12p70 but Not IL-23 Weinhold, Mario Eisenblätter, Martin Jasny, Edith Fehlings, Michael Finke, Antje Gayum, Hermine Rüschendorf, Ursula Renner Viveros, Pablo Moos, Verena Allers, Kristina Schneider, Thomas Schaible, Ulrich E. Schumann, Ralf R. Mielke, Martin E. Ignatius, Ralf PLoS One Research Article BACKGROUND: Bacterial vectors have been proposed as novel vaccine strategies to induce strong cellular immunity. Attenuated strains of Brucella abortus comprise promising vector candidates since they have the potential to induce strong CD4(+) and CD8(+) T-cell mediated immune responses in the absence of excessive inflammation as observed with other Gram-negative bacteria. However, some Brucella strains interfere with the maturation of dendritic cells (DCs), which is essential for antigen-specific T-cell priming. In the present study, we investigated the interaction of human monocyte-derived DCs with the smooth attenuated B. abortus strain (S) 19, which has previously been employed successfully to vaccinate cattle. METHODOLOGY/PRINCIPAL FINDINGS: We first looked into the potential of S19 to hamper the cytokine-induced maturation of DCs; however, infected cells expressed CD25, CD40, CD80, and CD86 to a comparable extent as uninfected, cytokine-matured DCs. Furthermore, S19 activated DCs in the absence of exogeneous stimuli, enhanced the expression of HLA-ABC and HLA-DR, and was able to persist intracellularly without causing cytotoxicity. Thus, DCs provide a cellular niche for persisting brucellae in vivo as a permanent source of antigen. S19-infected DCs produced IL-12/23p40, IL-12p70, and IL-10, but not IL-23. While heat-killed bacteria also activated DCs, soluble mediators were not involved in S19-induced activation of human DCs. HEK 293 transfectants revealed cellular activation by S19 primarily through engagement of Toll-like receptor (TLR)2. CONCLUSIONS/SIGNIFICANCE: Thus, as an immunological prerequisite for vaccine efficacy, B. abortus S19 potently infects and potently activates (most likely via TLR2) human DCs to produce Th1-promoting cytokines. Public Library of Science 2013-06-21 /pmc/articles/PMC3689767/ /pubmed/23805193 http://dx.doi.org/10.1371/journal.pone.0065934 Text en © 2013 Weinhold 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
Weinhold, Mario
Eisenblätter, Martin
Jasny, Edith
Fehlings, Michael
Finke, Antje
Gayum, Hermine
Rüschendorf, Ursula
Renner Viveros, Pablo
Moos, Verena
Allers, Kristina
Schneider, Thomas
Schaible, Ulrich E.
Schumann, Ralf R.
Mielke, Martin E.
Ignatius, Ralf
The Attenuated Brucella abortus Strain 19 Invades, Persists in, and Activates Human Dendritic Cells, and Induces the Secretion of IL-12p70 but Not IL-23
title The Attenuated Brucella abortus Strain 19 Invades, Persists in, and Activates Human Dendritic Cells, and Induces the Secretion of IL-12p70 but Not IL-23
title_full The Attenuated Brucella abortus Strain 19 Invades, Persists in, and Activates Human Dendritic Cells, and Induces the Secretion of IL-12p70 but Not IL-23
title_fullStr The Attenuated Brucella abortus Strain 19 Invades, Persists in, and Activates Human Dendritic Cells, and Induces the Secretion of IL-12p70 but Not IL-23
title_full_unstemmed The Attenuated Brucella abortus Strain 19 Invades, Persists in, and Activates Human Dendritic Cells, and Induces the Secretion of IL-12p70 but Not IL-23
title_short The Attenuated Brucella abortus Strain 19 Invades, Persists in, and Activates Human Dendritic Cells, and Induces the Secretion of IL-12p70 but Not IL-23
title_sort attenuated brucella abortus strain 19 invades, persists in, and activates human dendritic cells, and induces the secretion of il-12p70 but not il-23
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3689767/
https://www.ncbi.nlm.nih.gov/pubmed/23805193
http://dx.doi.org/10.1371/journal.pone.0065934
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