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Updated: Nov 23, 2025

Flow Cytometry-based Assay for the Monitoring of NK Cell Functions
Published on: October 30, 2016
An optimal control approach for enhancing natural killer cells' secretion of cytolytic molecules
Sahak Z Makaryan1, Stacey D Finley2
1Department of Biomedical Engineering, University of Southern California, Los Angeles, California 90089, USA.
Abstract:
Natural killer (NK) cells are immune effector cells that can detect and lyse cancer cells. However, NK cell exhaustion, a phenotype characterized by reduced secretion of cytolytic models upon serial stimulation, limits the NK cell's ability to lyse cells. In this work, we investigated in silico strategies that counteract the NK cell's reduced secretion of cytolytic molecules. To accomplish this goal, we constructed a mathematical model that describes the dynamics of the cytolytic molecules granzyme B (GZMB) and perforin-1 (PRF1) and calibrated the model predictions to published experimental data using a Bayesian parameter estimation approach. We applied an information-theoretic approach to perform a global sensitivity analysis, from which we found that the suppression of phosphatase activity maximizes the secretion of GZMB and PRF1. However, simply reducing the phosphatase activity is shown to deplete the cell's intracellular pools of GZMB and PRF1. Thus, we added a synthetic Notch (synNotch) signaling circuit to our baseline model as a method for controlling the secretion of GZMB and PRF1 by inhibiting phosphatase activity and increasing production of GZMB and PRF1. We found that the optimal synNotch system depends on the frequency of NK cell stimulation. For only a few rounds of stimulation, the model predicts that inhibition of phosphatase activity leads to more secreted GZMB and PRF1; however, for many rounds of stimulation, the model reveals that increasing production of the cytolytic molecules is the optimal strategy. In total, we developed a mathematical framework that provides actionable insight into engineering robust NK cells for clinical applications.
Insights
We developed a mathematical model to improve natural killer (NK) cell cancer-killing ability. Our findings suggest engineering NK cells by controlling phosphatase activity and cytolytic molecule production for enhanced cancer immunotherapy.
Area of Science:
- Immunology
- Systems Biology
- Computational Biology
Background:
- Natural killer (NK) cells are crucial for cancer immunosurveillance, but their efficacy is limited by exhaustion.
- NK cell exhaustion is characterized by reduced secretion of cytotoxic molecules like granzyme B (GZMB) and perforin-1 (PRF1).
- Strategies to counteract NK cell exhaustion are needed for effective cancer immunotherapy.
Purpose of the Study:
- To investigate in silico strategies for enhancing NK cell cytotoxic molecule secretion.
- To develop a mathematical model of GZMB and PRF1 dynamics in NK cells.
- To identify optimal engineering approaches for robust NK cell function.
Main Methods:
- Constructed a mathematical model for GZMB and PRF1 dynamics.
- Calibrated the model using Bayesian parameter estimation against experimental data.
- Employed information-theoretic global sensitivity analysis to identify key regulatory nodes.
- Integrated a synthetic Notch (synNotch) signaling circuit for dynamic control.
Main Results:
- Suppression of phosphatase activity was identified as a key factor maximizing GZMB and PRF1 secretion.
- Directly inhibiting phosphatase activity can deplete intracellular cytotoxic molecule pools.
- A synNotch system can dynamically control GZMB and PRF1 secretion by balancing phosphatase inhibition and production.
- Optimal synNotch system design depends on NK cell stimulation frequency.
Conclusions:
- A computational framework was developed to guide the engineering of NK cells.
- The study provides actionable insights for enhancing NK cell-mediated cancer cell lysis.
- Engineering strategies can overcome NK cell exhaustion for improved clinical applications in cancer immunotherapy.
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