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A Real-time Potency Assay for Chimeric Antigen Receptor T Cells Targeting Solid and Hematological Cancer Cells
Published on: November 12, 2019
Optimized procurement of cancer-reactive T-cell receptors from clinical samples
Marine E Caillaud1, Cristina Rius1, Théo Morin1
1Division of Infection and Immunity, Cardiff University School of Medicine, Cardiff, Wales, United Kingdom.
Abstract:
T-cell receptors can sense cancer-associated changes in cellular proteins, lipids, metabolites, and stress pathways, enabling immune-mediated tumour elimination in some patients. These receptors underpin T-cell receptor-based immunotherapies, yet their isolation from clinical samples remains challenging due to labour-intensive workflows, dependence on prior antigen knowledge, and loss of cell viability. We developed an optimized flow cytometry-based assay, termed the T107 assay, to isolate viable cancer-reactive T-cells directly from clinical samples. Following short-term exposure to cancer cells, responding T-cells are identified by simultaneous surface detection of tumour necrosis factor and the degranulation marker CD107a, enabling recovery of live antigen-reactive cells for downstream analysis. The T107 assay enabled rapid identification of cancer-reactive T-cells from tumour-infiltrating lymphocyte products derived from melanoma and sarcoma patients. The assay supported phenotypic and functional characterization of αβ and γδ T-cell receptor populations, including CD4+ and CD8+ subsets, responding to both patient-specific and shared cancer antigens. Isolation of viable responding cells enabled high-resolution receptor sequencing, generation of functional T-cell clones, determination of antigen specificity and major histocompatibility complex restriction or independence. Paired receptors were engineered into primary T-cells to generate T-cell receptor-engineered products capable of recognizing multiple cancer types. The T107 assay provides a rapid and robust method for antigen-agnostic procurement of viable cancer-reactive T-cells and their receptors from clinical material. This approach removes key bottlenecks in T-cell receptor discovery and is expected to accelerate development of T-cell receptor-based immunotherapies across a broad range of cancers.
Insights
A new T107 assay rapidly isolates viable cancer-reactive T-cells from patient samples. This method accelerates the discovery of T-cell receptors for developing novel cancer immunotherapies.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- T-cell receptors (TCRs) are crucial for cancer recognition and immunotherapy.
- Current methods for isolating cancer-reactive T-cells are inefficient, antigen-dependent, and compromise cell viability.
Purpose of the Study:
- To develop a rapid, antigen-agnostic assay for isolating viable cancer-reactive T-cells from clinical samples.
- To overcome existing bottlenecks in T-cell receptor discovery for cancer immunotherapy.
Main Methods:
- Developed the T107 assay, a flow cytometry-based method.
- Identified responding T-cells by detecting tumor necrosis factor and CD107a.
- Isolated viable T-cells for downstream analysis, including receptor sequencing and clone generation.
Main Results:
- The T107 assay successfully identified cancer-reactive T-cells from melanoma and sarcoma patient samples.
- Enabled characterization of diverse T-cell populations (αβ, γδ, CD4+, CD8+).
- Facilitated high-resolution TCR sequencing, clone generation, and antigen specificity determination.
Conclusions:
- The T107 assay is a robust and rapid method for isolating viable, antigen-reactive T-cells and their TCRs.
- This approach significantly accelerates TCR discovery and the development of TCR-based cancer immunotherapies.
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