Stem-cell based, machine learning approach for optimizing natural killer cell-based personalized immunotherapy for

Sally Esmail1, Wayne R Danter1

  • 1Windsor and London, Canada.

The FEBS Journal
|September 28, 2021
PubMed

Insights

This study introduces AI-driven simulations of natural killer (NK) cells and ovarian cancer to identify new immunotherapy targets. These simulations successfully pinpointed factors that enhance NK cell activity against tumors, paving the way for personalized cancer treatments.

Area of Science:

  • Immunology
  • Computational Biology
  • Oncology

Background:

  • Advanced high-grade serous ovarian cancer remains a significant therapeutic challenge.
  • Personalized cancer immunotherapy using natural killer (NK) cells is gaining interest.
  • NK cells are crucial components of the innate immune system and tumor microenvironment.

Purpose of the Study:

  • To utilize a machine learning platform for simulating NK cells and ovarian cancer.
  • To identify novel targets for reinvigorating NK cell activity against ovarian cancer.
  • To predict the efficacy of immunotherapeutic strategies based on tumor profiles.

Main Methods:

  • A machine learning platform (DeepNEU-C2Rx) created validated simulations of pluripotent stem cells.
  • Wild-type artificially induced NK cells (aiNK-WT) and tumor microenvironment (TME) simulations were generated.
  • Simulated NK cells were tested against simulated ovarian cancer cells (aiOVCAR3) with and without various inhibitors.

Main Results:

  • TME simulations identified 26 factors that could enhance aiNK-WT cytolytic activity.
  • Programmed cell death-1 (PD-1) inhibitors significantly reinvigorated aiNK cytolytic activity.
  • Combinations of PD-1 inhibitors, glycogen synthase kinase 3 inhibitors, and ascitic fluid factor inhibitors led to optimal NK cell activation.

Conclusions:

  • NK cell simulations can identify novel immunotherapeutic targets.
  • Simulations can predict the outcomes of targeting tumors with specific genetic and mutation profiles.
  • This approach offers a pathway for developing personalized immunotherapies for ovarian cancer.

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