A Novel Three-Dimensional Immune Oncology Model for High-Throughput Testing of Tumoricidal Activity

Hilary Sherman1, Hannah J Gitschier1, Ann E Rossi1

  • 1Life Sciences Division, Corning Incorporated, Kennebunk, ME, United States.

Insights

A new 3D model using multicellular tumor spheroids improves preclinical screening for cancer immunotherapies. This advanced model better predicts immune cell effectiveness against tumors, aiding drug development.

Area of Science:

  • Oncology
  • Immunotherapy
  • Preclinical Models

Background:

  • Autologous immune cell therapy is a key advancement in oncology.
  • Current preclinical models like 2D cultures do not fully replicate in vivo tumor biology, limiting immunotherapy effectiveness prediction.
  • There is a need for improved models to assess immune cell therapy efficacy across diverse patients and cancer types.

Purpose of the Study:

  • To develop and validate a novel 3D immune oncology model for enhanced preclinical screening of cancer immunotherapies.
  • To simultaneously assess immune cell homing, invasion, and tumor cell cytotoxicity in a more in vivo-like system.
  • To facilitate high-throughput studies of tumoricidal activity.

Main Methods:

  • Combined 96-well permeable support systems with 96-well low-attachment microplates to create a 3D multicellular tumor spheroid model.
  • Assessed natural killer (NK-92MI) cell migration via chemotaxis to stromal cell-derived factor-1 (SDF-1α).
  • Measured NK-92MI cell invasion into A549 lung carcinoma spheroids and evaluated spheroid cytotoxicity.

Main Results:

  • The developed 3D model successfully enabled simultaneous assessment of immune cell homing, spheroid invasion, and cytotoxicity.
  • Demonstrated NK-92MI cell chemotaxis and infiltration into lung carcinoma spheroids.
  • The model provides a more comprehensive and in vivo-like platform for immunotherapy evaluation.

Conclusions:

  • The novel 3D immune oncology model offers a superior platform for preclinical evaluation of cancer immunotherapies compared to traditional 2D methods.
  • This system allows for high-throughput screening, accelerating the development of effective immunotherapies.
  • The model's ability to recapitulate in vivo tumor biology is crucial for predicting treatment outcomes.

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