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Characterization of Inflammatory Responses During Intranasal Colonization with Streptococcus pneumoniae
Published on: January 17, 2014
Mathematical Modeling of Streptococcus pneumoniae Colonization, Invasive Infection and Treatment
Elisa Domínguez-Hüttinger1, Neville J Boon2, Thomas B Clarke3
1Department of Bioengineering, Imperial College LondonLondon, UK; Instituto de Ecología, Universidad Nacional Autónoma de MéxicoMexico City, Mexico.
Abstract:
Streptococcus pneumoniae (Sp) is a commensal bacterium that normally resides on the upper airway epithelium without causing infection. However, factors such as co-infection with influenza virus can impair the complex Sp-host interactions and the subsequent development of many life-threatening infectious and inflammatory diseases, including pneumonia, meningitis or even sepsis. With the increased threat of Sp infection due to the emergence of new antibiotic resistant Sp strains, there is an urgent need for better treatment strategies that effectively prevent progression of disease triggered by Sp infection, minimizing the use of antibiotics. The complexity of the host-pathogen interactions has left the full understanding of underlying mechanisms of Sp-triggered pathogenesis as a challenge, despite its critical importance in the identification of effective treatments. To achieve a systems-level and quantitative understanding of the complex and dynamically-changing host-Sp interactions, here we developed a mechanistic mathematical model describing dynamic interplays between Sp, immune cells, and epithelial tissues, where the host-pathogen interactions initiate. The model serves as a mathematical framework that coherently explains various in vitro and in vitro studies, to which the model parameters were fitted. Our model simulations reproduced the robust homeostatic Sp-host interaction, as well as three qualitatively different pathogenic behaviors: immunological scarring, invasive infection and their combination. Parameter sensitivity and bifurcation analyses of the model identified the processes that are responsible for qualitative transitions from healthy to such pathological behaviors. Our model also predicted that the onset of invasive infection occurs within less than 2 days from transient Sp challenges. This prediction provides arguments in favor of the use of vaccinations, since adaptive immune responses cannot be developed de novo in such a short time. We further designed optimal treatment strategies, with minimal strengths and minimal durations of antibiotics, for each of the three pathogenic behaviors distinguished by our model. The proposed mathematical framework will help to design better disease management strategies and new diagnostic markers that can be used to inform the most appropriate patient-specific treatment options.
Insights
A new mathematical model simulates Streptococcus pneumoniae (Sp) interactions with the host, revealing distinct disease pathways and informing optimal, minimal antibiotic treatments. This aids in developing better disease management and diagnostics.
Area of Science:
- Computational Biology and Immunology
- Mathematical Modeling of Infectious Diseases
- Host-Pathogen Dynamics
Background:
- Streptococcus pneumoniae (Sp) is a common bacterium that can cause severe infections, especially when co-infecting with viruses.
- Emerging antibiotic resistance in Sp necessitates novel treatment strategies that minimize antibiotic use.
- Understanding complex host-Sp interactions is crucial for developing effective interventions.
Purpose of the Study:
- To develop a mechanistic mathematical model of host-Sp interactions.
- To quantitatively understand dynamic interplays between Sp, immune cells, and epithelial tissues.
- To identify key factors driving transitions from homeostasis to pathogenesis and design optimal treatments.
Main Methods:
- Developed a mechanistic mathematical model simulating host-Sp dynamics.
- Fitted model parameters using in vitro and in vivo data.
- Performed parameter sensitivity and bifurcation analyses.
Main Results:
- Model reproduced homeostatic host-Sp interaction and three pathogenic behaviors: immunological scarring, invasive infection, and combined.
- Identified critical processes controlling transitions between healthy and pathological states.
- Predicted rapid onset (<2 days) of invasive infection, supporting vaccination strategies.
Conclusions:
- The mathematical framework provides a systems-level understanding of host-Sp dynamics.
- Model-derived insights support timely interventions and vaccination.
- Optimal, minimal antibiotic treatment strategies were designed for distinct pathogenic behaviors.
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