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Modelling the Innate Immune Response against Avian Influenza Virus in Chicken

At present there is limited understanding of the host immune response to (low pathogenic) avian influenza virus infections in poultry. Here we develop a mathematical model for the innate immune response to avian influenza virus in chicken lung, describing the dynamics of viral load, interferon-α, -β...

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Autores principales: Hagenaars, T. J., Fischer, E. A. J., Jansen, C. A., Rebel, J. M. J., Spekreijse, D., Vervelde, L., Backer, J. A., de Jong, M. C. M., Koets, A. P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4915690/
https://www.ncbi.nlm.nih.gov/pubmed/27328069
http://dx.doi.org/10.1371/journal.pone.0157816
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author Hagenaars, T. J.
Fischer, E. A. J.
Jansen, C. A.
Rebel, J. M. J.
Spekreijse, D.
Vervelde, L.
Backer, J. A.
de Jong, M. C. M.
Koets, A. P.
author_facet Hagenaars, T. J.
Fischer, E. A. J.
Jansen, C. A.
Rebel, J. M. J.
Spekreijse, D.
Vervelde, L.
Backer, J. A.
de Jong, M. C. M.
Koets, A. P.
author_sort Hagenaars, T. J.
collection PubMed
description At present there is limited understanding of the host immune response to (low pathogenic) avian influenza virus infections in poultry. Here we develop a mathematical model for the innate immune response to avian influenza virus in chicken lung, describing the dynamics of viral load, interferon-α, -β and -γ, lung (i.e. pulmonary) cells and Natural Killer cells. We use recent results from experimentally infected chickens to validate some of the model predictions. The model includes an initial exponential increase of the viral load, which we show to be consistent with experimental data. Using this exponential growth model we show that the duration until a given viral load is reached in experiments with different inoculation doses is consistent with a model assuming a linear relationship between initial viral load and inoculation dose. Subsequent to the exponential-growth phase, the model results show a decline in viral load caused by both target-cell limitation as well as the innate immune response. The model results suggest that the temporal viral load pattern in the lungs displayed in experimental data cannot be explained by target-cell limitation alone. For biologically plausible parameter values the model is able to qualitatively match to data on viral load in chicken lungs up until approximately 4 days post infection. Comparison of model predictions with data on CD107-mediated degranulation of Natural Killer cells yields some discrepancy also for earlier days post infection.
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spelling pubmed-49156902016-07-06 Modelling the Innate Immune Response against Avian Influenza Virus in Chicken Hagenaars, T. J. Fischer, E. A. J. Jansen, C. A. Rebel, J. M. J. Spekreijse, D. Vervelde, L. Backer, J. A. de Jong, M. C. M. Koets, A. P. PLoS One Research Article At present there is limited understanding of the host immune response to (low pathogenic) avian influenza virus infections in poultry. Here we develop a mathematical model for the innate immune response to avian influenza virus in chicken lung, describing the dynamics of viral load, interferon-α, -β and -γ, lung (i.e. pulmonary) cells and Natural Killer cells. We use recent results from experimentally infected chickens to validate some of the model predictions. The model includes an initial exponential increase of the viral load, which we show to be consistent with experimental data. Using this exponential growth model we show that the duration until a given viral load is reached in experiments with different inoculation doses is consistent with a model assuming a linear relationship between initial viral load and inoculation dose. Subsequent to the exponential-growth phase, the model results show a decline in viral load caused by both target-cell limitation as well as the innate immune response. The model results suggest that the temporal viral load pattern in the lungs displayed in experimental data cannot be explained by target-cell limitation alone. For biologically plausible parameter values the model is able to qualitatively match to data on viral load in chicken lungs up until approximately 4 days post infection. Comparison of model predictions with data on CD107-mediated degranulation of Natural Killer cells yields some discrepancy also for earlier days post infection. Public Library of Science 2016-06-21 /pmc/articles/PMC4915690/ /pubmed/27328069 http://dx.doi.org/10.1371/journal.pone.0157816 Text en © 2016 Hagenaars 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Hagenaars, T. J.
Fischer, E. A. J.
Jansen, C. A.
Rebel, J. M. J.
Spekreijse, D.
Vervelde, L.
Backer, J. A.
de Jong, M. C. M.
Koets, A. P.
Modelling the Innate Immune Response against Avian Influenza Virus in Chicken
title Modelling the Innate Immune Response against Avian Influenza Virus in Chicken
title_full Modelling the Innate Immune Response against Avian Influenza Virus in Chicken
title_fullStr Modelling the Innate Immune Response against Avian Influenza Virus in Chicken
title_full_unstemmed Modelling the Innate Immune Response against Avian Influenza Virus in Chicken
title_short Modelling the Innate Immune Response against Avian Influenza Virus in Chicken
title_sort modelling the innate immune response against avian influenza virus in chicken
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4915690/
https://www.ncbi.nlm.nih.gov/pubmed/27328069
http://dx.doi.org/10.1371/journal.pone.0157816
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