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Flow Cytometry-Based Isolation and Therapeutic Evaluation of Tumor-Infiltrating Lymphocytes in a Mouse Model of Pancreatic Cancer
Published on: January 17, 2025
Definition of an enhanced immune cell therapy in mice that can target stem-like lymphoma cells
Christopher H Contag1, Rachel Sikorski, Robert S Negrin
1Department of Pediatrics, Stanford University, Stanford, California, USA.
Abstract:
Current treatments of high-grade lymphoma often have curative potential, but unfortunately many patients relapse and develop therapeutic resistance. Thus, there remains a need for novel therapeutics that can target the residual cancer cells whose phenotypes are distinct from the bulk tumor and that are capable of reforming tumors from very few cells. Oncolytic viruses offer an approach to destroy tumors by multiple mechanisms, but they cannot effectively reach residual disease or micrometastases, especially within the lymphatic system. To address these limitations, we have generated immune cells infected with oncolytic viruses as a therapeutic strategy that can combine effective cellular delivery with synergistic tumor killing. In this study, we tested this approach against minimal disease states of lymphomas characterized by the persistence of cancer cells that display stem cell-like properties and resistance to conventional therapies. We found that the immune cells were capable of trafficking to and targeting residual cancer cells. The combination biotherapy used prevented relapse by creating a long-term, disease-free state, with acquired immunity to the tumor functioning as an essential mediator of this effect. Immune components necessary for this acquired immunity were identified. We further demonstrated that the dual biotherapy could be applied before or after conventional therapy. Our approach offers a potentially powerful new way to clear residual cancer cells, showing how restoring immune surveillance is critical for maintenance of a disease-free state.
Insights
Novel biotherapy using oncolytic viruses within immune cells targets residual lymphoma cells. This approach prevents relapse by restoring immune surveillance, leading to a long-term, disease-free state in minimal disease models.
Area of Science:
- Oncology
- Immunotherapy
- Virology
Background:
- High-grade lymphoma treatments can lead to relapse and therapeutic resistance.
- Residual cancer cells with stem cell-like properties are difficult to target.
- Oncolytic viruses struggle to reach minimal residual disease, especially in lymphatic systems.
Purpose of the Study:
- To develop a novel therapeutic strategy for targeting residual lymphoma cells.
- To evaluate the efficacy of immune cells infected with oncolytic viruses against minimal disease states.
- To investigate the role of acquired immunity in preventing lymphoma relapse.
Main Methods:
- Generating immune cells engineered to carry oncolytic viruses.
- Testing the biotherapy in minimal disease lymphoma models characterized by resistant cancer cells.
- Identifying immune components essential for therapeutic efficacy.
Main Results:
- Engineered immune cells effectively trafficked to and targeted residual lymphoma cells.
- The combination biotherapy prevented relapse, establishing a long-term, disease-free state.
- Acquired immunity was identified as a critical mediator of the therapeutic effect.
- The dual biotherapy demonstrated efficacy when administered before or after conventional therapy.
Conclusions:
- Engineered oncolytic viruses delivered by immune cells offer a promising strategy against residual lymphoma.
- Restoring immune surveillance is crucial for maintaining a disease-free state after treatment.
- This dual biotherapy approach has potential for clearing resistant cancer cells and preventing relapse.
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