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Updated: Jun 23, 2025

A Nonviral Approach to Generate Transient Chimeric Antigen Receptor T Cells Using mRNA for Cancer Immunotherapy
Published on: February 21, 2025
CAR-T-Cell-Based Cancer Immunotherapies: Potentials, Limitations, and Future Prospects
Mahmood S Choudhery1, Taqdees Arif1, Ruhma Mahmood2
1Department of Human Genetics & Molecular Biology, University of Health Sciences, Lahore 54600, Pakistan.
Abstract:
Cancer encompasses various elements occurring at the cellular and genetic levels, necessitating an immunotherapy capable of efficiently addressing both aspects. T cells can combat cancer cells by specifically recognizing antigens on them. This innate capability of T cells has been used to develop cellular immunotherapies, but most of them can only target antigens through major histocompatibility complexes (MHCs). New gene-editing techniques such as clustered regularly interspaced short palindromic repeat (CRISPR)-associated protein 9 (CRISPR-cas9) can precisely edit the DNA sequences. CRISPR-cas9 has made it possible to generate genetically engineered chimeric antigen receptors (CARs) that can overcome the problems associated with old immunotherapies. In chimeric antigen receptor T (CAR-T) cell therapy, the patient's T cells are isolated and genetically modified to exhibit synthetic CAR(s). CAR-T cell treatment has shown remarkably positive clinical outcomes in cancers of various types. Nevertheless, there are various challenges that reduce CAR-T effectiveness in solid tumors. It is required to address these challenges in order to make CAR-T cell therapy a better and safer option. Combining CAR-T treatment with other immunotherapies that target multiple antigens has shown positive outcomes. Moreover, recently generated Boolean logic-gated advanced CARs along with artificial intelligence has expanded its potential to treat solid tumors in addition to blood cancers. This review aims to describe the structure, types, and various methods used to develop CAR-T cells. The clinical applications of CAR-T cells in hematological malignancies and solid tumours have been described in detail. In addition, this discussion has addressed the limitations associated with CAR-T cells, explored potential strategies to mitigate CAR-T-related toxicities, and delved into future perspectives.
Insights
Chimeric antigen receptor T (CAR-T) cell therapy engineers T cells to fight cancer, showing promise in blood cancers but facing challenges in solid tumors. Advanced CAR designs and AI integration are expanding its potential for broader cancer treatment.
Area of Science:
- Immunology
- Genetics
- Oncology
Background:
- Cancer requires immunotherapies targeting cellular and genetic aspects.
- T cells target cancer via antigens, historically limited by MHC-dependent recognition.
- Gene-editing technologies like CRISPR-cas9 enable advanced immunotherapy development.
Purpose of the Study:
- To review the development, structure, and types of CAR-T cells.
- To detail CAR-T clinical applications in hematological malignancies and solid tumors.
- To address CAR-T limitations, toxicities, and future perspectives.
Main Methods:
- Review of scientific literature on CAR-T cell therapy.
- Analysis of gene-editing techniques, including CRISPR-cas9.
- Examination of clinical outcomes and challenges in CAR-T treatment.
Main Results:
- CAR-T therapy demonstrates significant clinical success in various cancers.
- Challenges persist in CAR-T effectiveness against solid tumors.
- Combination therapies and advanced CAR designs show improved outcomes.
Conclusions:
- CAR-T cell therapy is a powerful tool in cancer treatment.
- Overcoming solid tumor challenges is crucial for broader application.
- Future advancements, including AI, promise enhanced CAR-T efficacy and safety.
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11:08Advances in Human Induced Pluripotent Stem Cell-Derived Chimeric Antigen Receptor-Expressing Natural Killer Cells
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