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Antitumor Immunity Mediated by Engineered Stem Cells Exploiting TRAIL-Induced Cell Death and FLT3L Immunomodulation
Thijs A van Schaik1,2, Kok-Siong Chen1,2, Nobuhiko Kanaya1,2
1Center for Stem Cell and Translational Immunotherapy, Brigham and Women's Hospital, Harvard Medical School, Boston, Massachusetts.
Purpose:
Death receptor (DR)-targeted therapies offer a promising tumor cell-specific therapeutic strategy for highly malignant brain tumors, such as glioblastoma (GBM). However, whether DR-mediated cell death leads to activation of the adaptive immune system and impacts the tumor immune microenvironment (TIME) remains unknown. In this study, we explored the (i) immunomodulatory role of secretable human DR4/5 ligand, TNF-related apoptosis-inducing ligand (S-TRAIL) and (ii) the therapeutic potential of mesenchymal stem cell (SC)-delivered S-TRAIL and myeloid progenitor cell-activating cytokine, FMS-like tyrosine kinase 3 ligand (FLT3L).
Experimental Design:
We created syngeneic murine immune-active and -suppressive mouse GBM tumor models expressing a human-murine chimeric DR5. Next, we created therapeutic SCs that release FLT3L and S-TRAIL and assessed their efficacy in GBM tumor models. To facilitate clinical translation, we tested the mechanism-based efficacy of encapsulated SC-TRAIL/FLT3L in both syngeneic and humanized mouse tumor models of GBM resection.
Results:
We show that S-TRAIL-induced apoptosis in GBM cells provokes infiltration and maturation of dendritic cells within the TIME in vivo. Next, we show that locoregional transplantation of encapsulated bimodal SCs expressing S-TRAIL and FLT3L post surgical GBM resection improves the survival probability and induces upregulation of conventional dendritic cell type 1 and CD8+ T cells. Furthermore, treatment with encapsulated off-the-shelf clinical-grade bimodal human SCs in GBM-bearing humanized mice results in a significant decrease in tumor volumes.
Conclusions:
This study uncovers the immunologic role of TRAIL-mediated cell death in the TIME and provides evidence for the encapsulated cell-based therapy to kill residual tumor cells and induce long-term immunity.
Insights
Secretable TRAIL-based therapy kills glioblastoma cells, activating immune cells and improving survival. Encapsulated stem cells delivering S-TRAIL and FLT3L show therapeutic potential for brain tumors.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Glioblastoma (GBM) is a highly malignant brain tumor.
- Death receptor (DR)-targeted therapies are promising for GBM.
- The impact of DR-mediated cell death on the tumor immune microenvironment (TIME) is unclear.
Purpose of the Study:
- To explore the immunomodulatory role of secretable human tumor necrosis factor (TNF)-related apoptosis-inducing ligand (S-TRAIL).
- To evaluate the therapeutic potential of allogeneic stem cells (SCs) delivering S-TRAIL and FMS-like tyrosine kinase 3 ligand (FLT3L).
Main Methods:
- Created syngeneic mouse GBM models (immune-active and -suppressive) with chimeric DR5.
- Developed therapeutic SCs releasing FLT3L and S-TRAIL.
- Assessed efficacy of encapsulated SC-TRAIL/FLT3L in syngeneic and humanized GBM resection models.
Main Results:
- S-TRAIL induced GBM cell apoptosis and dendritic cell (DC) infiltration and maturation in the TIME.
- Transplantation of encapsulated SCs post-resection improved survival and upregulated cDC1 and CD8+ T cells.
- Encapsulated clinical-grade SCs significantly reduced tumor volumes in humanized mice.
Conclusions:
- S-TRAIL-mediated cell death plays an immunological role in the TIME.
- Encapsulated cell-based therapy can eliminate residual GBM cells.
- This approach can induce long-term anti-tumor immunity.
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