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Published on: September 1, 2023
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.
Abstract:
The latest advancements in oncology research are focused on autologous immune cell therapy. However, the effectiveness of this type of immunotherapy for cancer remediation is not equivalent for all patients or cancer types. This suggests the need for better preclinical screening models that more closely recapitulate in vivo tumor biology. The established method for investigating tumoricidal activity of immunotherapies has been study of two-dimensional (2D) monolayer cultures of immortalized cancer cell lines or primary tumor cells in standard tissue culture vessels. Indeed, a proven means to examine immune cell migration and invasion are 2D chemotaxis assays in permeabilized supports or Boyden chambers. Nevertheless, the more in vivo-like three-dimensional (3D) multicellular tumor spheroids are quickly becoming the favored model to examine immune cell invasion and tumor cell cytotoxicity. Accordingly, we have developed a 3D immune oncology model by combining 96-well permeable support systems and 96-well low-attachment microplates. The use of the permeable support system enables assessment of immune cell migration, which was tested in this study as chemotactic response of natural killer NK-92MI cells to human stromal-cell derived factor-1 (SDF-1α). Immune invasion was assessed by measuring NK-92MI infiltration into lung carcinoma A549 cell spheroids that were formed in low-attachment microplates. The novel pairing of the permeable support system with low-attachment microplates permitted simultaneous investigation of immune cell homing, immune invasion of tumor spheroids, and spheroid cytotoxicity. In effect, the system represents a more comprehensive and in vivo-like immune oncology model that can be utilized for high-throughput study of tumoricidal activity.
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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