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An In vitro Model to Study Immune Responses of Human Peripheral Blood Mononuclear Cells to Human Respiratory Syncytial Virus Infection
Published on: December 10, 2013
Predictive Virtual Infection Modeling of Fungal Immune Evasion in Human Whole Blood
Maria T E Prauße1,2, Teresa Lehnert1,3, Sandra Timme1,2
1Applied Systems Biology, Leibniz Institute for Natural Product Research and Infection Biology, Hans Knöll Institute (HKI), Jena, Germany.
Abstract:
Bloodstream infections by the human-pathogenic fungi Candida albicans and Candida glabrata increasingly occur in hospitalized patients and are associated with high mortality rates. The early immune response against these fungi in human blood comprises a concerted action of humoral and cellular components of the innate immune system. Upon entering the blood, the majority of fungal cells will be eliminated by innate immune cells, i.e., neutrophils and monocytes. However, recent studies identified a population of fungal cells that can evade the immune response and thereby may disseminate and cause organ dissemination, which is frequently observed during candidemia. In this study, we investigate the so far unresolved mechanism of fungal immune evasion in human whole blood by testing hypotheses with the help of mathematical modeling. We use a previously established state-based virtual infection model for whole-blood infection with C. albicans to quantify the immune response and identified the fungal immune-evasion mechanism. While this process was assumed to be spontaneous in the previous model, we now hypothesize that the immune-evasion process is mediated by host factors and incorporate such a mechanism in the model. In particular, we propose, based on previous studies that the fungal immune-evasion mechanism could possibly arise through modification of the fungal surface by as of yet unknown proteins that are assumed to be secreted by activated neutrophils. To validate or reject any of the immune-evasion mechanisms, we compared the simulation of both immune-evasion models for different infection scenarios, i.e., infection of whole blood with either C. albicans or C. glabrata under non-neutropenic and neutropenic conditions. We found that under non-neutropenic conditions, both immune-evasion models fit the experimental data from whole-blood infection with C. albicans and C. glabrata. However, differences between the immune-evasion models could be observed for the infection outcome under neutropenic conditions with respect to the distribution of fungal cells across the immune cells. Based on these predictions, we suggested specific experimental studies that might allow for the validation or rejection of the proposed immune-evasion mechanism.
Insights
This study models how fungi like Candida evade the immune system in blood. Mathematical modeling suggests host factors, possibly neutrophil proteins, mediate this immune evasion, impacting infection outcomes.
Area of Science:
- Immunology
- Mycology
- Computational Biology
Background:
- Bloodstream infections by Candida albicans and Candida glabrata are a significant cause of mortality in hospitalized patients.
- The innate immune system, involving neutrophils and monocytes, is crucial for eliminating fungi in the blood.
- A subset of fungal cells can evade immune detection, leading to dissemination and organ involvement during candidemia.
Purpose of the Study:
- To investigate the mechanism of fungal immune evasion in human whole blood using mathematical modeling.
- To test the hypothesis that immune evasion is mediated by host factors, specifically proteins secreted by neutrophils.
- To compare spontaneous versus host-mediated immune evasion models under various infection conditions.
Main Methods:
- Utilized a state-based virtual infection model for whole-blood infection with Candida species.
- Incorporated a novel host-mediated immune evasion mechanism into the existing model.
- Simulated infection scenarios with Candida albicans and Candida glabrata under non-neutropenic and neutropenic conditions.
Main Results:
- Both spontaneous and host-mediated immune evasion models fit experimental data under non-neutropenic conditions for Candida infections.
- Differences between the models emerged under neutropenic conditions, particularly in the distribution of fungal cells among immune cells.
- Model predictions suggest specific experimental studies can validate or refute the proposed host-mediated immune evasion mechanism.
Conclusions:
- Host factors, potentially neutrophil-secreted proteins modifying the fungal surface, likely play a role in Candida immune evasion.
- The proposed host-mediated mechanism offers a more nuanced explanation for fungal immune evasion, especially under compromised immune conditions (neutropenia).
- Further experimental validation is required to confirm the precise mechanism of fungal immune evasion in candidemia.
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