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.

APL Bioengineering
|December 30, 2020
PubMed

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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