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Targeting Neuropeptide Y/DPP4 Signalling Suppresses Ewing Sarcoma Survival and Improves Monocyte Viability
Robin M H Rumney1, Dariusz C Górecki1
1School of Medicine, Pharmacy and Biomedical Sciences, University of Portsmouth, Portsmouth PO1 2DT, UK.
Abstract:
Survival rates for metastatic Ewing sarcoma (EwS) have remained persistently low over recent decades, highlighting the need for more effective chemotherapeutic options. Potential targets may be found within the Neuropeptide Y (NPY) signalling pathway that has been implicated in EwS cell survival. However, confounding factors include hypoxia that modulates NPY signalling, dipeptidyl peptidase-4 (DPP4/CD26) that cleaves NPY and interactions via NPY signalling from infiltrating immune cells. We investigated these interactions in A673 and SK-ES-1 EwS cell lines and THP-1 monocytes to identify therapeutic targets suitable for drug repurposing. Both EwS cell lines secreted NPY into conditioned media and extracellular vesicles. Recombinant NPY enhanced viability of both A673 and SK-ES-1 cells; however, the NPY1R antagonist BMS-193885 reduced viability in A673 cells only. Recombinant DPP4 widely promoted EwS viability and, under hypoxic conditions, it increased cell metabolism. The DPP4 inhibitor linagliptin, which is used clinically, consistently suppressed EwS viability with elevated sensitivity under hypoxia, where there was increased cell death of SK-ES-1 cells. Conversely, in THP-1 monocytes, NPY suppressed metabolism, BMS-193885 increased live-cell staining and DPP4 induced cell death. These findings suggest that NPY and DPP4 enhance EwS survival through autocrine/paracrine signalling while reducing monocyte viability. Thus, targeting the NPY/DPP4 signalling axis may provide therapeutic benefit by directly suppressing EwS growth and enhancing efficacy of immunotherapy.
Insights
Neuropeptide Y (NPY) and dipeptidyl peptidase-4 (DPP4) signaling promote Ewing sarcoma (EwS) growth. Inhibiting DPP4 with linagliptin suppressed EwS viability, especially under hypoxia, suggesting a new therapeutic strategy for metastatic EwS.
Area of Science:
- Oncology
- Molecular Biology
- Immunology
Background:
- Metastatic Ewing sarcoma (EwS) has poor survival rates, necessitating novel chemotherapeutic strategies.
- The Neuropeptide Y (NPY) signaling pathway is implicated in EwS cell survival.
- Hypoxia, dipeptidyl peptidase-4 (DPP4/CD26), and immune cell interactions complicate NPY signaling in EwS.
Purpose of the Study:
- To investigate the roles of NPY and DPP4 in EwS cell survival and interactions with monocytes.
- To identify potential therapeutic targets for drug repurposing in EwS treatment.
Main Methods:
- Ewing sarcoma cell lines (A673, SK-ES-1) and THP-1 monocytes were used.
- NPY and DPP4 effects on cell viability, metabolism, and cell death were assessed.
- The NPY1R antagonist BMS-193885 and the DPP4 inhibitor linagliptin were tested.
Main Results:
- Both EwS cell lines secreted NPY; recombinant NPY enhanced EwS viability.
- Recombinant DPP4 promoted EwS viability and metabolism, particularly under hypoxia.
- Linagliptin suppressed EwS viability, with increased efficacy under hypoxic conditions.
- NPY and DPP4 had opposing effects on monocyte viability and metabolism.
Conclusions:
- NPY and DPP4 signaling pathways enhance EwS survival via autocrine/paracrine mechanisms.
- Targeting the NPY/DPP4 axis may suppress EwS growth and improve immunotherapy efficacy.
- Linagliptin shows promise as a therapeutic agent for metastatic Ewing sarcoma, especially in hypoxic environments.
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