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Generation of CAR T Cells for Adoptive Therapy in the Context of Glioblastoma Standard of Care
Published on: February 16, 2015
Tumor Microenvironmental Regulation of CAR T-Cell Therapy in High Risk Medulloblastoma
Dalia Haydar1, Serge Yaacoub1, Mostafa Seblani1
1Center for Cancer and Immunology Research, Children's National Hospital, Washington DC, USA 20010.
Background:
B7-H3-directed chimeric antigen receptor (CAR) T cell therapy has demonstrated clinical safety and antitumor activity in pediatric brain tumors (pBTs) but lacks durable responses. Although preclinical studies show efficacy, the CAR designs that best support sustained function in immunosuppressive tumor microenvironments (TMEs) remain unclear. Group 3 medulloblastoma (G3MB) is a lethal pBT with poor responsiveness to immunotherapy. Within the TME, myeloid cells dominate the immune landscape and regulate T cell function through innate immune pathways, including the Toll-like receptor 7/8 (TLR7/8) axis. While TLR7/8 agonists activate antitumor myeloid programs, their integration with CAR T-cell therapy has not been explored. Therefore, we hypothesize that CAR architecture and TLR7/8-mediated myeloid activation cooperatively govern CAR T-cell function and subsequent therapeutic outcomes in G3MB.
Methods:
B7-H3 CARs incorporating CD28, 4-1BB, or dual CD28/4-1BB co-stimulation were evaluated in vitro and in orthotopic G3MB models. Resiquimod was formulated in a brain-penetrant poly (2-oxazoline) nanoparticle (ResiPOx) to activate TLR7/8-expressing myeloid cells. T cell and myeloid states were assessed by flow cytometry, bulk, and single-cell RNA sequencing.
Results:
CAR designs showed similar tumor control in immunodeficient hosts but diverged in immunocompetent models, where dual-costimulatory CAR T-cells demonstrated superior cytotoxicity and persistence. The optimal CAR induced sustained CAR T-cell cycling and TAM reprogramming while downregulating TLR7/8 in dominant myeloid clusters. ResiPOx enhanced CAR T-cell efficacy by activating myeloid cells and reducing suppressive populations.
Conclusions:
Optimized CAR design combined with TLR7/8-mediated myeloid reprogramming enhances T cell activity, supporting TME-guided immunotherapy for G3MB.
Insights
Optimizing chimeric antigen receptor (CAR) T-cell therapy with dual co-stimulation and Toll-like receptor 7/8 (TLR7/8) activation of myeloid cells improves pediatric brain tumor treatment by enhancing T-cell function within the tumor microenvironment.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- B7-H3-directed chimeric antigen receptor (CAR) T-cell therapy shows promise for pediatric brain tumors (pBTs) but lacks durable responses.
- The immunosuppressive tumor microenvironment (TME) and myeloid cell-mediated Toll-like receptor 7/8 (TLR7/8) signaling present challenges for CAR T-cell efficacy.
- Group 3 medulloblastoma (G3MB) is a lethal pBT with poor immunotherapy outcomes.
Purpose of the Study:
- To investigate how CAR architecture and TLR7/8-mediated myeloid activation influence CAR T-cell function and therapeutic outcomes in G3MB.
- To evaluate the efficacy of optimized CAR designs and TLR7/8 agonists in overcoming the immunosuppressive TME of G3MB.
Main Methods:
- B7-H3 CAR T-cells with CD28, 4-1BB, or dual CD28/4-1BB co-stimulation were tested in vitro and in orthotopic G3MB models.
- Resiquimod formulated in brain-penetrant nanoparticles (ResiPOx) was used to activate myeloid TLR7/8.
- T-cell and myeloid cell states were analyzed using flow cytometry and single-cell RNA sequencing.
Main Results:
- Dual-costimulatory CAR T-cells exhibited superior cytotoxicity and persistence in immunocompetent G3MB models.
- The optimal CAR design promoted sustained T-cell activity and myeloid-derived suppressor cell reprogramming.
- ResiPOx treatment enhanced CAR T-cell efficacy by activating myeloid cells and reducing suppressive populations within the TME.
Conclusions:
- Optimized CAR design, particularly with dual co-stimulation, is crucial for sustained CAR T-cell function in G3MB.
- TLR7/8-mediated myeloid reprogramming, facilitated by ResiPOx, synergizes with CAR T-cells to enhance antitumor activity.
- This TME-guided immunotherapy approach holds potential for improving treatment outcomes in pediatric brain tumors like G3MB.
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