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Updated: Aug 24, 2026

Non-Viral Engineering of Primary Human T Cells via Homology-Mediated End-Joining Targeted Integration of Large DNA Templates
Published on: May 9, 2025
Targeting of tumor cells by lymphocytes engineered to express chimeric receptor genes
Constantin N Baxevanis1, Michael Papamichail
1Cancer Immunology and Immunotherapy Center, Saint Savas Cancer Hospital, Athens, Greece. baxevanis@ciic.gr
Abstract:
Adoptive cellular immunotherapy of cancer has been limited to date mostly due to the poor immunogenicity of tumor cells, the immunocompromised status of cancer patients in advanced stages of their disease, and difficulties in raising sufficient numbers of autologous tumor-specific T lymphocytes. On the other hand, the slow tumor penetration and short half-life of exogenously administered tumor-specific monoclonal antibodies have provided major obstacles for an effective destruction of tumor cells by the humoral effector arm of the immune system. Attempts to improve the efficacy of adoptive cellular cancer immunotherapy have led to the development of novel strategies that combine advantages of T cell-based (i.e., efficient tumor penetration, cytokine release and cytotoxicity) and antibody-based (high specificity for tumor-associated antigens) immunotherapy by grafting cytotoxic T lymphocytes (CTLs) with chimeric receptors composed of antibody fragments (which recognize tumor-cell antigens) and a cellular activation motif. Antigen recognition is therefore not restricted by major histocompatibility genes, as the physiological T-cell receptor, but rather is directed to native cell surface structures. Since the requirements of major histocompatibility complex (MHC) restriction in the interaction of effector cells with target cells are bypassed, the tumor cell-binding of CTLs grafted with chimeric receptors is not affected by down-regulation of HLA class I antigens and by defects in the antigen-processing machinery. Ligand binding by the chimeric receptor triggers phosphorylation of immunoglobulin tyrosine activation motifs (ITAMs) in the cytoplasmic region of the molecule and this activates a signaling cascade that is required for the induction of cytotoxicity, cytokine secretion and proliferation. Here, the authors discuss the potential of lymphocytes grafted with chimeric antigen receptors in the immunotherapy of malignant disease.
Insights
Chimeric antigen receptor (CAR) T-cells overcome cancer immunotherapy limitations by combining T-cell and antibody strengths for targeted tumor cell destruction. This approach enhances immune response against cancer, regardless of MHC restriction.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Adoptive cellular immunotherapy faces challenges like poor tumor immunogenicity and patient immune status.
- Monoclonal antibodies have limitations in tumor penetration and half-life for effective cancer cell destruction.
Purpose of the Study:
- To explore novel strategies combining T-cell and antibody-based immunotherapy for enhanced cancer treatment.
- To discuss the potential of lymphocytes engineered with chimeric antigen receptors (CARs) for malignant disease immunotherapy.
Main Methods:
- Grafting cytotoxic T lymphocytes (CTLs) with chimeric receptors comprising antibody fragments and cellular activation motifs.
- Bypassing major histocompatibility complex (MHC) restriction for antigen recognition by engineered T-cells.
Main Results:
- Chimeric receptors enable antigen recognition independent of MHC genes, targeting native cell surface structures.
- Engineered CTLs demonstrate tumor cell binding unaffected by HLA class I antigen downregulation or antigen-processing defects.
- Ligand binding to chimeric receptors activates signaling cascades for cytotoxicity, cytokine secretion, and proliferation.
Conclusions:
- Lymphocytes engineered with CARs show significant potential for overcoming limitations in adoptive cellular cancer immunotherapy.
- This strategy offers a promising avenue for treating malignant diseases by enhancing immune-mediated tumor destruction.
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