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Modeling the effects of a Staphylococcal Enterotoxin B (SEB) on the apoptosis pathway
Brandon W Higgs1, John Dileo, Wenling E Chang
1Emerging Technologies Office, The MITRE Corporation, McLean, VA, USA. bhiggs@mitre.org
Background:
The lack of detailed understanding of the mechanism of action of many biowarfare agents poses an immediate challenge to biodefense efforts. Many potential bioweapons have been shown to affect the cellular pathways controlling apoptosis 1234. For example, pathogen-produced exotoxins such as Staphylococcal Enterotoxin B (SEB) and Anthrax Lethal Factor (LF) have been shown to disrupt the Fas-mediated apoptotic pathway 24. To evaluate how these agents affect these pathways it is first necessary to understand the dynamics of a normally functioning apoptosis network. This can then serve as a baseline against which a pathogen perturbed system can be compared. Such comparisons can expose both the proteins most susceptible to alteration by the agent as well as the most critical reaction rates to better instill control on a biological network.
Results:
We explore this through the modeling and simulation of the Fas-mediated apoptotic pathway under normal and SEB influenced conditions. We stimulated human Jurkat cells with an anti-Fas antibody in the presence and absence of SEB and determined the relative levels of seven proteins involved in the core pathway at five time points following exposure. These levels were used to impute relative rate constants and build a quantitative model consisting of a series of ordinary differential equations (ODEs) that simulate the network under both normal and pathogen-influenced conditions. Experimental results show that cells exposed to SEB exhibit an increase in the rate of executioner caspase expression (and subsequently apoptosis) of 1 hour 43 minutes (+/- 14 minutes), as compared to cells undergoing normal cell death.
Conclusion:
Our model accurately reflects these results and reveals intervention points that can be altered to restore SEB-influenced system dynamics back to levels within the range of normal conditions.
Insights
Staphylococcal Enterotoxin B (SEB) accelerates apoptosis by disrupting the Fas pathway. Modeling revealed intervention points to restore normal cell death dynamics, crucial for biodefense.
Area of Science:
- Biochemistry
- Systems Biology
- Immunology
Background:
- Understanding biowarfare agent mechanisms is vital for biodefense.
- Apoptosis pathways are frequently targeted by bioweapons like Staphylococcal Enterotoxin B (SEB).
- Modeling normal apoptosis provides a baseline for studying pathogen-induced disruptions.
Purpose of the Study:
- To model and simulate the Fas-mediated apoptotic pathway under normal and SEB-influenced conditions.
- To quantitatively assess the impact of SEB on apoptosis dynamics.
- To identify potential intervention points for biodefense strategies.
Main Methods:
- Stimulated human Jurkat cells with anti-Fas antibody +/- SEB.
- Quantified relative protein levels of seven core pathway proteins over five time points.
- Developed a quantitative model using ordinary differential equations (ODEs) based on experimental data.
Main Results:
- SEB exposure accelerated executioner caspase expression and apoptosis by 1 hour 43 minutes compared to normal cell death.
- The developed ODE model accurately simulated these experimental findings.
- The model identified specific proteins and reaction rates susceptible to SEB influence.
Conclusions:
- The quantitative model accurately reflects experimental data on SEB's effect on apoptosis.
- Identified intervention points can potentially restore normal cell death dynamics.
- This approach aids in developing targeted biodefense strategies against agents like SEB.
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