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NF-κB-dependent Luciferase Activation and Quantification of Gene Expression in Salmonella Infected Tissue Culture Cells
Published on: January 12, 2020
Information-theoretic analysis of a model of CAR-4-1BB-mediated NFκB activation
Vardges Tserunyan1, Stacey Finley1,2,3
1Department of Quantitative and Computational Biology, University of Southern California, Los Angeles, CA, USA.
Abstract:
Systems biology utilizes computational approaches to examine an array of biological processes, such as cell signaling, metabolomics and pharmacology. This includes mathematical modeling of CAR T cells, a modality of cancer therapy by which genetically engineered immune cells recognize and combat a cancerous target. While successful against hematologic malignancies, CAR T cells have shown limited success against other cancer types. Thus, more research is needed to understand their mechanisms of action and leverage their full potential. In our work, we set out to apply information theory on a mathematical model of cell signaling of CAR-mediated activation following antigen encounter. First, we estimated channel capacity for CAR-4-1BB-mediated NFκB signal transduction. Next, we evaluated the pathway's ability to distinguish contrasting "low" and "high" antigen concentration levels, depending on the amount of intrinsic noise. Finally, we assessed the fidelity by which NFκB activation reflects the encountered antigen concentration, depending on the prevalence of antigen-positive targets in tumor population. We found that in most scenarios, fold change in the nuclear concentration of NFκB carries a higher channel capacity for the pathway than NFκB's absolute response. Additionally, we found that most errors in transducing the antigen signal through the pathway skew towards underestimating the concentration of encountered antigen. Finally, we found that disabling IKKβ deactivation could increase signaling fidelity against targets with antigen-negative cells. Our information-theoretic analysis of signal transduction can provide novel perspectives on biological signaling, as well as enable a more informed path to cell engineering.
Insights
Information theory reveals how CAR T-cell signaling accurately transmits antigen concentration. Enhancing NFκB signaling improves cancer therapy efficacy.
Area of Science:
- Systems biology and computational approaches applied to cellular signaling.
- Immunotherapy, specifically Chimeric Antigen Receptor (CAR) T-cell therapy for cancer.
Background:
- CAR T-cell therapy shows promise in hematologic malignancies but faces limitations in other cancer types.
- Understanding CAR T-cell signaling mechanisms is crucial for improving therapeutic potential and efficacy.
Approach:
- Utilized information theory to analyze a mathematical model of CAR-mediated cell signaling.
- Estimated channel capacity for CAR-4-1BB-mediated NFκB signal transduction.
- Evaluated pathway's ability to distinguish antigen concentrations and assessed signaling fidelity.
Key Points:
- Fold change in nuclear NFκB concentration offers higher channel capacity than absolute response.
- Signaling errors predominantly lead to underestimation of antigen concentration.
- Disabling IKKβ deactivation can enhance signaling fidelity, especially with antigen-negative cells.
Conclusions:
- Information-theoretic analysis provides novel insights into biological signal transduction.
- Findings enable a more informed approach to CAR T-cell engineering for improved cancer therapy.
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