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Translational Implications for Off-the-shelf Immune Cells Expressing Chimeric Antigen Receptors
Hiroki Torikai1, Laurence Jn Cooper1,2
1Division of Pediatrics, The University of Texas MD Anderson Cancer Center, Houston, Texas, USA.
Abstract:
Chimeric antigen receptor (CAR) endows specificity to T-cells independent of human leukocyte antigen (HLA). This enables one immunoreceptor to directly target the same surface antigen on different subsets of tumor cells from multiple HLA-disparate recipients. Most approaches manufacture individualized CAR(+)T-cells from the recipient or HLA-compatible donor, which are revealing promising clinical results. This is the impetus to broaden the number of patients eligible to benefit from adoptive immunotherapy such as to infuse third-party donor derived CAR(+)T-cells. This will overcome issues associated with (i) time to manufacture T-cells, (ii) cost to generate one product for one patient, (iii) inability to generate a product from lymphopenic patients or patient's immune cells fail to complete the manufacturing process, and (iv) heterogeneity of T-cell products produced for or from individual recipients. Establishing a biobank of allogeneic genetically modified immune cells from healthy third-party donors, which are cryopreserved and validated in advance of administration, will facilitate the centralizing manufacturing and widespread distribution of CAR(+)T-cells to multiple points-of-care in a timely manner. To achieve this, it is necessary to engineer an effective strategy to avoid deleterious allogeneic immune responses leading to toxicity and rejection. We review the strategies to establish "off-the-shelf" donor-derived biobanks for human application of CAR(+)T-cells as a drug.
Insights
Establishing an "off-the-shelf" biobank of allogeneic CAR(+)T-cells from healthy donors can overcome manufacturing challenges. This approach aims to broaden patient access to CAR T-cell immunotherapy by using cryopreserved, third-party cells.
Area of Science:
- Immunotherapy
- Oncology
- Cellular Therapy
Background:
- Chimeric antigen receptor (CAR) T-cell therapy offers HLA-independent tumor targeting.
- Current CAR T-cell manufacturing is individualized, leading to time, cost, and logistical challenges.
- Limitations include manufacturing failures in certain patient populations and product heterogeneity.
Purpose of the Study:
- To review strategies for establishing allogeneic, donor-derived CAR(+)T-cell biobanks.
- To enable widespread, timely access to CAR T-cell immunotherapy for more patients.
- To overcome limitations of autologous CAR T-cell manufacturing.
Main Methods:
- Review of strategies for engineering "off-the-shelf" CAR(+)T-cell products.
- Focus on cryopreservation and validation of allogeneic immune cells from healthy donors.
- Engineering approaches to mitigate deleterious allogeneic immune responses and rejection.
Main Results:
- Centralized manufacturing and distribution of CAR(+)T-cells from biobanks are feasible.
- Allogeneic CAR T-cell biobanks can address issues of manufacturing time, cost, and patient eligibility.
- Effective strategies are necessary to prevent immune rejection of donor-derived CAR T-cells.
Conclusions:
- Establishing "off-the-shelf" allogeneic CAR(+)T-cell biobanks is a promising strategy for broader immunotherapy application.
- This approach facilitates timely administration and distribution of CAR T-cell therapy.
- Further research into mitigating allogeneic immune responses is crucial for clinical success.
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