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Published on: February 3, 2023
Programmed Death Ligand 1 (PD-L1)-targeted TRAIL combines PD-L1-mediated checkpoint inhibition with TRAIL-mediated
Djoke Hendriks1, Yuan He1, Iris Koopmans1
1University of Groningen, University Medical Center Groningen (UMCG), Department of Surgery, Laboratory for Translational Surgical Oncology , Groningen, the Netherlands.
Abstract:
Antibodies that block PD-L1/PD-1 immune checkpoints restore the activity of functionally-impaired antitumor T cells. These antibodies show unprecedented clinical benefit in various advanced cancers, particularly in melanoma. However, only a subset of cancer patients responds to current PD-L1/PD-1-blocking strategies, highlighting the need for further advancements in PD-L1/PD-1-based immunotherapy. Here, we report on a novel approach designed to combine PD-L1 checkpoint inhibition with the tumor-selective induction of apoptosis by TNF-related Apoptosis Inducing Ligand (TRAIL). In brief, a new bi-functional fusion protein, designated anti-PD-L1:TRAIL, was constructed comprising a PD-L1-blocking antibody fragment genetically fused to the extracellular domain of the pro-apoptotic tumoricidal protein TRAIL. Treatment of PD-L1-expressing cancer cells with anti-PD-L1:TRAIL induced PD-L1-directed TRAIL-mediated cancer cell death. Treatment of T cells with anti-PD-L1:TRAIL augmented T cell activation, as evidenced by increased proliferation, secretion of IFNγ and enhanced killing of cancer cell lines and primary patient-derived cancer cells in mixed T cell/cancer cell culture experiments. Of note, elevated levels of IFNγ further upregulated PD-L1 on cancer cells and simultaneously sensitized cancer cells to TRAIL-mediated apoptosis by anti-PD-L1:TRAIL. Additionally, anti-PD-L1:TRAIL converted immunosuppressive PD-L1-expressing myeloid cells into pro-apoptotic effector cells that triggered TRAIL-mediated cancer cell death. In conclusion, combining PD-L1 checkpoint inhibition with TRAIL-mediated induction of apoptosis using anti-PD-L1:TRAIL yields promising multi-fold and mutually reinforcing anticancer activity that may be exploited to enhance the efficacy of therapeutic PD-L1/PD-1 checkpoint inhibition.
Insights
This study introduces anti-PD-L1:TRAIL, a novel fusion protein combining PD-L1 checkpoint inhibition with TRAIL-induced apoptosis. This approach enhances anti-cancer activity by reactivating T cells and promoting tumor cell death.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Antibodies blocking PD-L1/PD-1 immune checkpoints show clinical benefit in advanced cancers by restoring T cell activity.
- Limited patient response to current PD-L1/PD-1 therapies necessitates improved immunotherapy strategies.
Purpose of the Study:
- To develop a novel therapeutic approach combining PD-L1 checkpoint inhibition with tumor-selective apoptosis induction.
- To evaluate the efficacy of a bi-functional fusion protein, anti-PD-L1:TRAIL, in cancer treatment.
Main Methods:
- Construction of a bi-functional fusion protein (anti-PD-L1:TRAIL) linking a PD-L1 antibody fragment with TNF-related Apoptosis Inducing Ligand (TRAIL).
- Assessment of anti-PD-L1:TRAIL's effects on PD-L1-expressing cancer cells, T cells, and myeloid cells in vitro.
Main Results:
- Anti-PD-L1:TRAIL induced cancer cell death via TRAIL-mediated apoptosis and augmented T cell activation, including increased proliferation and IFNγ secretion.
- Elevated IFNγ levels upregulated PD-L1 on cancer cells, enhancing their sensitivity to TRAIL-mediated apoptosis.
- Immunosuppressive myeloid cells were converted into pro-apoptotic effector cells by anti-PD-L1:TRAIL.
Conclusions:
- The combination of PD-L1 checkpoint inhibition and TRAIL-mediated apoptosis via anti-PD-L1:TRAIL demonstrates multi-fold, mutually reinforcing anti-cancer activity.
- This novel approach holds promise for enhancing the efficacy of existing PD-L1/PD-1-based immunotherapies.
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