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Updated: Jun 2, 2025

Non-Viral Engineering of Primary Human T Cells via Homology-Mediated End-Joining Targeted Integration of Large DNA Templates
Published on: May 9, 2025
Enabling next-generation engineered TCR-T therapies based on high-throughput TCR discovery from diagnostic tumor
Thomas Kuilman1, Deborah S Schrikkema2, Jules Gadiot2
1Neogene Therapeutics, A member of the AstraZeneca Group, Amsterdam, The Netherlands. thomas.kuilman@astrazeneca.com.
Abstract:
Adoptive cell therapy with tumor-infiltrating lymphocytes (TIL) can mediate tumor regression, including complete and durable responses, in a range of solid cancers, most notably in melanoma. However, its wider application and efficacy has been restricted by the limited accessibility, proliferative capacity and effector function of tumor-specific TIL. Here, we develop a platform for the efficient identification of tumor-specific TCR genes from diagnostic tumor biopsies, including core-needle biopsies frozen in a non-viable format, to enable engineered T cell therapy. Using a genetic screening approach that detects antigen-reactive TCRs with high sensitivity and specificity based on T cell activation, we show that high complexity TCR libraries can be efficiently screened against multiplexed antigen libraries to identify both HLA class I and II restricted TCRs. Through the identification of neoantigen-specific TCRs directly from melanoma as well as low tumor mutational burden microsatellite-stable colorectal carcinoma samples, we demonstrate the pan-cancer potential of this platform.
Insights
This study introduces a new platform for identifying tumor-specific T cell receptor (TCR) genes from biopsies. This advance aims to improve adoptive cell therapy for various solid cancers, including melanoma and colorectal carcinoma.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Adoptive cell therapy using tumor-infiltrating lymphocytes (TIL) shows promise for solid cancers but is limited by TIL accessibility and function.
- Identifying tumor-specific T cell receptors (TCRs) is crucial for enhancing engineered T cell therapies.
Purpose of the Study:
- To develop an efficient platform for identifying tumor-specific TCR genes from diagnostic tumor biopsies.
- To enable the use of engineered T cell therapy across a broader range of cancers.
Main Methods:
- A genetic screening approach was employed to detect antigen-reactive TCRs with high sensitivity and specificity.
- High-complexity TCR libraries were screened against multiplexed antigen libraries to identify HLA class I and II restricted TCRs.
- The platform was tested on melanoma and microsatellite-stable colorectal carcinoma samples.
Main Results:
- The platform efficiently identifies tumor-specific TCR genes, even from non-viable frozen core-needle biopsies.
- Both HLA class I and II restricted TCRs were successfully identified.
- Neoantigen-specific TCRs were identified from melanoma and low tumor mutational burden colorectal carcinoma samples.
Conclusions:
- The developed platform demonstrates pan-cancer potential for identifying TCRs for engineered T cell therapy.
- This technology can overcome limitations in TIL accessibility and function, broadening the application of adoptive cell therapy.
- The platform's ability to screen diverse TCR libraries against multiplexed antigens offers a sensitive and specific method for TCR discovery.
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