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Updated: Mar 1, 2026

A Model for Perineural Invasion in Head and Neck Squamous Cell Carcinoma
Published on: January 5, 2017
Effects of PPARα inhibition in head and neck paraganglioma cells
Rosalba Florio1,2, Laura De Lellis1,2, Viviana di Giacomo1
1Department of Pharmacy, "G. d'Annunzio" University of Chieti-Pescara, Chieti, Italy.
Abstract:
Head and neck paragangliomas (HNPGLs) are rare tumors that may cause important morbidity, because of their tendency to infiltrate the skull base. At present, surgery is the only therapeutic option, but radical removal may be difficult or impossible. Thus, effective targets and molecules for HNPGL treatment need to be identified. However, the lack of cellular models for this rare tumor hampers this task. PPARα receptor activation was reported in several tumors and this receptor appears to be a promising therapeutic target in different malignancies. Considering that the role of PPARα in HNPGLs was never studied before, we analyzed the potential of modulating PPARα in a unique model of HNPGL cells. We observed an intense immunoreactivity for PPARα in HNPGL tumors, suggesting that this receptor has an important role in HNPGL. A pronounced nuclear expression of PPARα was also confirmed in HNPGL-derived cells. The specific PPARα agonist WY14643 had no effect on HNPGL cell viability, whereas the specific PPARα antagonist GW6471 reduced HNPGL cell viability and growth by inducing cell cycle arrest and caspase-dependent apoptosis. GW6471 treatment was associated with a marked decrease of CDK4, cyclin D3 and cyclin B1 protein expression, along with an increased expression of p21 in HNPGL cells. Moreover, GW6471 drastically impaired clonogenic activity of HNPGL cells, with a less marked effect on cell migration. Notably, the effects of GW6471 on HNPGL cells were associated with the inhibition of the PI3K/GSK3β/β-catenin signaling pathway. In conclusion, the PPARα antagonist GW6471 reduces HNPGL cell viability, interfering with cell cycle and inducing apoptosis. The mechanisms affecting HNPGL cell viability involve repression of the PI3K/GSK3β/β-catenin pathway. Therefore, PPARα could represent a novel therapeutic target for HNPGL.
Insights
The PPARα receptor antagonist GW6471 effectively reduced head and neck paraganglioma (HNPGL) cell viability and growth. This suggests PPARα is a potential therapeutic target for treating these rare tumors.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Head and neck paragangliomas (HNPGLs) are rare tumors with limited treatment options, often infiltrating the skull base.
- Effective therapeutic targets for HNPGLs are needed, but the lack of cellular models has hindered research.
- Peroxisome proliferator-activated receptor alpha (PPARα) is implicated in various cancers and presents a potential therapeutic avenue.
Purpose of the Study:
- To investigate the role of PPARα in HNPGLs.
- To evaluate the therapeutic potential of modulating PPARα in a unique HNPGL cell model.
Main Methods:
- Analysis of PPARα expression in HNPGL tumors and derived cell lines.
- Treatment of HNPGL cells with PPARα agonist (WY14643) and antagonist (GW6471).
- Assessment of cell viability, cell cycle, apoptosis, protein expression (CDK4, cyclin D3, cyclin B1, p21), clonogenic activity, cell migration, and signaling pathways (PI3K/GSK3β/β-catenin).
Main Results:
- Intense PPARα immunoreactivity was observed in HNPGL tumors and nuclear expression in cell lines.
- The PPARα antagonist GW6471 significantly reduced HNPGL cell viability and growth.
- GW6471 induced cell cycle arrest, caspase-dependent apoptosis, and altered protein expression, while inhibiting the PI3K/GSK3β/β-catenin pathway.
Conclusions:
- PPARα antagonist GW6471 demonstrates efficacy in reducing HNPGL cell viability and growth.
- GW6471 interferes with the cell cycle and induces apoptosis in HNPGL cells.
- Modulating PPARα, specifically through antagonism, represents a promising novel therapeutic strategy for HNPGLs.
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