Simulation of the Dynamics of Primary Immunodeficiencies in B Cells
Primary immunodeficiencies (PIDs) are a group of over 300 hereditary, heterogeneous, and mainly rare disorders that affect the immune system. Various aspects of immune system and PID proteins and genes have been investigated and facilitate systems biological studies of effects of PIDs on B cell phys...
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doaj-60e563fa9fbc45dd9a5114fc46b5998f2020-11-25T00:04:59ZengFrontiers Media S.A.Frontiers in Immunology1664-32242018-08-01910.3389/fimmu.2018.01785371503Simulation of the Dynamics of Primary Immunodeficiencies in B CellsGabriel Ndipagbornchi TekuMauno VihinenPrimary immunodeficiencies (PIDs) are a group of over 300 hereditary, heterogeneous, and mainly rare disorders that affect the immune system. Various aspects of immune system and PID proteins and genes have been investigated and facilitate systems biological studies of effects of PIDs on B cell physiology and response. We reconstructed a B cell network model based on data for the core B cell receptor activation and response processes and performed semi-quantitative dynamic simulations for normal and B cell PID failure modes. The results for several knockout simulations correspond to previously reported molecular studies and reveal novel mechanisms for PIDs. The simulations for CD21, CD40, LYN, MS4A1, ORAI1, PLCG2, PTPRC, and STIM1 indicated profound changes to major transcription factor signaling and to the network. Significant effects were observed also in the BCL10, BLNK, BTK, loss-of-function CARD11, IKKB, MALT1, and NEMO, simulations whereas only minor effects were detected for PIDs that are caused by constitutively active proteins (PI3K, gain-of-function CARD11, KRAS, and NFKBIA). This study revealed the underlying dynamics of PID diseases, confirms previous observations, and identifies novel candidates for PID diagnostics and therapy.https://www.frontiersin.org/article/10.3389/fimmu.2018.01785/fullprimary immunodeficiencysystems analysismodelsbiologicalB-cell network modelsemi-quantitative network simulation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Gabriel Ndipagbornchi Teku Mauno Vihinen |
spellingShingle |
Gabriel Ndipagbornchi Teku Mauno Vihinen Simulation of the Dynamics of Primary Immunodeficiencies in B Cells Frontiers in Immunology primary immunodeficiency systems analysis models biological B-cell network model semi-quantitative network simulation |
author_facet |
Gabriel Ndipagbornchi Teku Mauno Vihinen |
author_sort |
Gabriel Ndipagbornchi Teku |
title |
Simulation of the Dynamics of Primary Immunodeficiencies in B Cells |
title_short |
Simulation of the Dynamics of Primary Immunodeficiencies in B Cells |
title_full |
Simulation of the Dynamics of Primary Immunodeficiencies in B Cells |
title_fullStr |
Simulation of the Dynamics of Primary Immunodeficiencies in B Cells |
title_full_unstemmed |
Simulation of the Dynamics of Primary Immunodeficiencies in B Cells |
title_sort |
simulation of the dynamics of primary immunodeficiencies in b cells |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Immunology |
issn |
1664-3224 |
publishDate |
2018-08-01 |
description |
Primary immunodeficiencies (PIDs) are a group of over 300 hereditary, heterogeneous, and mainly rare disorders that affect the immune system. Various aspects of immune system and PID proteins and genes have been investigated and facilitate systems biological studies of effects of PIDs on B cell physiology and response. We reconstructed a B cell network model based on data for the core B cell receptor activation and response processes and performed semi-quantitative dynamic simulations for normal and B cell PID failure modes. The results for several knockout simulations correspond to previously reported molecular studies and reveal novel mechanisms for PIDs. The simulations for CD21, CD40, LYN, MS4A1, ORAI1, PLCG2, PTPRC, and STIM1 indicated profound changes to major transcription factor signaling and to the network. Significant effects were observed also in the BCL10, BLNK, BTK, loss-of-function CARD11, IKKB, MALT1, and NEMO, simulations whereas only minor effects were detected for PIDs that are caused by constitutively active proteins (PI3K, gain-of-function CARD11, KRAS, and NFKBIA). This study revealed the underlying dynamics of PID diseases, confirms previous observations, and identifies novel candidates for PID diagnostics and therapy. |
topic |
primary immunodeficiency systems analysis models biological B-cell network model semi-quantitative network simulation |
url |
https://www.frontiersin.org/article/10.3389/fimmu.2018.01785/full |
work_keys_str_mv |
AT gabrielndipagbornchiteku simulationofthedynamicsofprimaryimmunodeficienciesinbcells AT maunovihinen simulationofthedynamicsofprimaryimmunodeficienciesinbcells |
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1725426974144331776 |