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Updated: Aug 17, 2026

Generation of CAR T Cells for Adoptive Therapy in the Context of Glioblastoma Standard of Care
Published on: February 16, 2015
Genetic modification of T cells for cancer therapy
1Departments of Hematology-Oncology, University of Tennessee College of Medicine, Memphis, TN, USA.
Abstract:
The use of immune cells with restricted specificities for the treatment of cancer is a rapidly emerging area of clinical research. Chimeric receptors composed of the single-chain variable domain of murine antibodies and human signaling molecules are a promising tool to redirect the specificity of autologous or allogeneic immune cells. The success of this approach depends on the identification of target molecules expressed preferentially on cancer cells. Moreover, appropriate primary and secondary stimuli must be delivered to generate vigorous and durable immune responses. Since cancer cells often lack ligands for key co-stimulatory molecules, the addition of molecules such as CD28 or 4-1BB to the chimeric receptors can significantly improve their function. Studies in vitro and in animal models indicate that immune cells expressing chimeric receptors can have remarkable anti-cancer activity, while experimental and clinical data indicate that long-term persistence of adoptively transferred cells is feasible. Therefore, testing of this approach in clinical trials is warranted. We here review the principles and methodologies for designing chimeric receptors and delivering them into immune cells, as well as some of the potential complications associated with this form of cell therapy.
Insights
Chimeric receptor technology redirects immune cells to target cancer cells, showing promise for effective cancer treatment. Clinical trials are warranted to further evaluate this advanced cell therapy.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Cancer treatment research is exploring immune cell-based therapies.
- Chimeric receptors offer a novel approach to redirect immune cell specificity.
Purpose of the Study:
- To review the principles and methodologies of designing chimeric receptors for cancer therapy.
- To discuss the potential complications associated with this cell therapy.
Main Methods:
- Designing chimeric receptors using single-chain variable domains of antibodies and signaling molecules.
- Incorporating co-stimulatory molecules (e.g., CD28, 4-1BB) to enhance immune cell function.
- Evaluating anti-cancer activity in vitro and in animal models.
Main Results:
- Immune cells engineered with chimeric receptors demonstrate significant anti-cancer activity.
- Long-term persistence of adoptively transferred cells is achievable.
- Co-stimulatory molecules enhance chimeric receptor function.
Conclusions:
- Chimeric receptor technology is a promising strategy for cancer immunotherapy.
- Further clinical trials are necessary to validate this approach.
- Understanding potential complications is crucial for safe application.
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