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CD200 Immune-Checkpoint Peptide Elicits an Anti-glioma Response Through the DAP10 Signaling Pathway
Elisabet Ampudia-Mesias1, Francisco Puerta-Martinez2, Miurel Bridges3
1Department of Pediatrics, University of Minnesota, Minneapolis, MN, 55455, USA.
Abstract:
Numerous therapies aimed at driving an effective anti-glioma response have been employed over the last decade; nevertheless, survival outcomes for patients remain dismal. This may be due to the expression of immune-checkpoint ligands such as PD-L1 by glioblastoma (GBM) cells which interact with their respective receptors on tumor-infiltrating effector T cells curtailing the activation of anti-GBM CD8+ T cell-mediated responses. Therefore, a combinatorial regimen to abolish immunosuppression would provide a powerful therapeutic approach against GBM. We developed a peptide ligand (CD200AR-L) that binds an uncharacterized CD200 immune-checkpoint activation receptor (CD200AR). We sought to test the hypothesis that CD200AR-L/CD200AR binding signals via he DAP10&12 pathways through in vitro studies by analyzing transcription, protein, and phosphorylation, and in vivo loss of function studies using inhibitors to select signaling molecules. We report that CD200AR-L/CD200AR binding induces an initial activation of the DAP10&12 pathways followed by a decrease in activity within 30 min, followed by reactivation via a positive feedback loop. Further in vivo studies using DAP10&12KO mice revealed that DAP10, but not DAP12, is required for tumor control. When we combined CD200AR-L with an immune-stimulatory gene therapy, in an intracranial GBM model in vivo, we observed increased median survival, and long-term survivors. These studies are the first to characterize the signaling pathway used by the CD200AR, demonstrating a novel strategy for modulating immune checkpoints for immunotherapy currently being analyzed in a phase I adult trial.
Insights
A novel peptide ligand targeting the CD200 immune-checkpoint receptor (CD200AR) shows promise for glioblastoma (GBM) immunotherapy. Combination therapy with this ligand and gene therapy significantly improved survival in GBM models.
Area of Science:
- Immunology
- Neuro-oncology
- Molecular Biology
Background:
- Glioblastoma (GBM) therapies have limited success due to immune suppression.
- Immune checkpoints like PD-L1 on GBM cells inhibit anti-tumor T cell responses.
- Targeting immune checkpoints offers a potential therapeutic strategy for GBM.
Purpose of the Study:
- To investigate a novel peptide ligand (CD200AR-L) targeting the CD200 immune-checkpoint activation receptor (CD200AR).
- To elucidate the signaling pathways (DAP10&12) involved in CD200AR-L/CD200AR interactions.
- To evaluate the therapeutic potential of CD200AR-L in combination with gene therapy for GBM.
Main Methods:
- In vitro analysis of transcription, protein expression, and phosphorylation.
- In vivo loss-of-function studies using DAP10&12 knockout mice and signaling inhibitors.
- Assessment of median survival and long-term survival in an intracranial GBM model.
Main Results:
- CD200AR-L/CD200AR binding initially activates, then decreases, and finally reactivates DAP10&12 pathways via feedback.
- DAP10, but not DAP12, is essential for tumor control in vivo.
- Combination therapy with CD200AR-L and gene therapy significantly increased median survival and produced long-term survivors in a GBM model.
Conclusions:
- This study characterizes the CD200AR signaling pathway, revealing DAP10's critical role.
- CD200AR-L represents a novel immunomodulatory strategy for GBM immunotherapy.
- The findings support ongoing clinical trials for this novel therapeutic approach.
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