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Updated: Mar 23, 2026

Generation of CAR T Cells for Adoptive Therapy in the Context of Glioblastoma Standard of Care
Published on: February 16, 2015
Augmentation of CAR T-cell Trafficking and Antitumor Efficacy by Blocking Protein Kinase A Localization
Kheng Newick1, Shaun O'Brien1, Jing Sun1
1Department of Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, Pennsylvania.
Abstract:
Antitumor treatments based on the infusion of T cells expressing chimeric antigen receptors (CAR T cells) are still relatively ineffective for solid tumors, due to the presence of immunosuppressive mediators [such as prostaglandin E2 (PGE2) and adenosine] and poor T-cell trafficking. PGE2 and adenosine activate protein kinase A (PKA), which then inhibits T-cell receptor (TCR) activation. This inhibition process requires PKA to localize to the immune synapse via binding to the membrane protein ezrin. We generated CAR T cells that expressed a small peptide called the "regulatory subunit I anchoring disruptor" (RIAD) that inhibits the association of PKA with ezrin, thus blunting the negative effects of PKA on TCR activation. After exposure to PGE2 or adenosine in vitro, CAR-RIAD T cells showed increased TCR signaling, released more cytokines, and showed enhanced killing of tumor cells compared with CAR T cells. When injected into tumor-bearing mice, the antitumor efficacy of murine and human CAR-RIAD T cells was enhanced compared with that of CAR T cells, due to resistance to tumor-induced hypofunction and increased T-cell infiltration of established tumors. Subsequent in vitro assays showed that both mouse and human CAR-RIAD cells migrated more efficiently than CAR cells did in response to the chemokine CXCL10 and also had better adhesion to various matrices. Thus, the intracellular addition of the RIAD peptide to adoptively transferred CAR T cells augments their efficacy by increasing their effector function and by improving trafficking into tumor sites. This treatment strategy, therefore, shows potential clinical application for treating solid tumors. Cancer Immunol Res; 4(6); 541-51. ©2016 AACR.
Insights
Engineered chimeric antigen receptor (CAR) T cells expressing the RIAD peptide overcome solid tumor defenses. This enhances T-cell function and trafficking, improving antitumor efficacy for potential clinical applications.
Area of Science:
- Immunology
- Cancer Therapy
- Cellular Engineering
Background:
- Chimeric antigen receptor (CAR) T-cell therapy faces challenges in solid tumors due to immunosuppressive mediators like prostaglandin E2 (PGE2) and adenosine.
- These mediators activate protein kinase A (PKA), which inhibits T-cell receptor (TCR) activation by binding to the membrane protein ezrin at the immune synapse.
Purpose of the Study:
- To engineer CAR T cells to resist immunosuppressive mediators and improve trafficking into solid tumors.
- To evaluate the efficacy of CAR T cells engineered with the regulatory subunit I anchoring disruptor (RIAD) peptide.
Main Methods:
- Generated CAR T cells expressing the RIAD peptide, designed to inhibit PKA-ezrin association.
- Assessed in vitro T-cell signaling, cytokine release, and tumor cell killing upon exposure to PGE2 or adenosine.
- Evaluated in vivo antitumor efficacy and T-cell infiltration in tumor-bearing mice.
Main Results:
- CAR-RIAD T cells exhibited enhanced TCR signaling, cytokine release, and tumor cell killing compared to standard CAR T cells in vitro.
- In vivo studies showed improved antitumor efficacy of CAR-RIAD T cells, attributed to resistance to immunosuppression and increased tumor infiltration.
- CAR-RIAD T cells demonstrated superior migration and adhesion in response to chemokines and matrices.
Conclusions:
- The RIAD peptide augments CAR T-cell efficacy by enhancing effector function and improving tumor site trafficking.
- This strategy holds promise for overcoming limitations of CAR T-cell therapy in solid tumors.
- CAR-RIAD T-cell therapy represents a potential clinical application for treating solid tumors.
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