A framework integrating multiscale in silico modeling and experimental data predicts CAR-NK cell cytotoxicity across

Saeed Ahmad1, Kun Xing2,3, Marcelo S F Pereira2

  • 1Steve and Cindy Rasmussen Institute for Genomic Medicine, Abigail Wexner Research Institute, Nationwide Children's Hospital, Columbus, OH 43205.

Insights

A new computational model accurately predicts chimeric antigen receptor (CAR)-NK cell cytotoxicity by integrating diverse receptor signals. This tool aids in understanding CAR-NK cell biology and improving cancer therapies.

Area of Science:

  • Immunology
  • Computational Biology
  • Biotechnology

Background:

  • Chimeric antigen receptor (CAR)-NK cells offer promising cancer immunotherapy by leveraging innate immune responses.
  • CAR-NK cell efficacy is complex, influenced by CARs, diverse innate receptors, and donor variations, complicating predictive modeling.
  • Existing models struggle to capture the multifaceted interactions governing CAR-NK cell cytotoxicity.

Purpose of the Study:

  • To develop a computational mechanistic multiscale model for predicting CAR-NK cell cytotoxicity.
  • To explore the impact of receptor expression, signaling, and kinetics on CAR-NK cell effector functions.
  • To provide a framework for understanding and optimizing CAR-NK cell-based cancer therapies.

Main Methods:

  • Developed a multiscale computational model incorporating heterogeneous expression of CARs, NKRs, adhesion receptors, and their ligands.
  • Integrated signal transduction pathways and NK cell-target cell population kinetics into the model.
  • Trained and validated the model using quantitative flow cytometry and in-vitro cytotoxicity data.

Main Results:

  • The model accurately predicts short-term, long-term, and in-vivo cytotoxicity of CAR-NK cells.
  • Pareto optimization revealed the influence of CAR proportion and signaling on differential cytotoxicity against cancer and healthy cells.
  • Demonstrated the model's capability to predict CD33CAR-NK cell activity.

Conclusions:

  • The developed computational model provides a robust framework for predicting CAR-NK cell cytotoxicity.
  • This tool can be extended to various antigens and tumor targets, facilitating mechanistic exploration of CAR-NK cell biology.
  • The model aids in optimizing CAR-NK cell therapy design and improving therapeutic efficacy in cancer treatment.

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