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Bufalin Suppresses Head and Neck Cancer Development by Modulating Immune Responses and Targeting the β-Catenin
Nour Mhaidly1, Noura Barake1, Anne Trelcat1
1Department of Human Anatomy and Experimental Oncology, Faculty of Medicine, Research Institute for Health Sciences and Technology, University of Mons, Avenue du Champ de Mars, 8, 7000 Mons, Belgium.
Abstract:
Bufalin, a cardiotonic steroid derived from the Chinese toad (Bufo gargarizans), has demonstrated potent anticancer properties across various cancer types, positioning it as a promising therapeutic candidate. However, comprehensive mechanistic studies specific to head and neck cancers have been lacking. Our study aimed to bridge this gap by investigating bufalin's mechanisms of action in head and neck cancer cells. Using several methods, such as Western blotting, immunofluorescence, and flow cytometry, we observed bufalin's dose-dependent reduction in cell viability, disruption of cell membrane integrity, and inhibition of colony formation in both HPV-positive and HPV-negative cell lines. Bufalin induces apoptosis through the modulation of apoptosis-related proteins, mitochondrial function, and reactive oxygen species production. It also arrests the cell cycle at the G2/M phase and attenuates cell migration while affecting epithelial-mesenchymal transition markers and targeting pivotal signaling pathways, including Wnt/β-catenin, EGFR, and NF-κB. Additionally, bufalin exerted immunomodulatory effects by polarizing macrophages toward the M1 phenotype, bolstering antitumor immune responses. These findings underscore bufalin's potential as a multifaceted therapeutic agent against head and neck cancers, targeting essential pathways involved in proliferation, apoptosis, cell cycle regulation, metastasis, and immune modulation. Further research is warranted to validate these mechanisms and optimize bufalin's clinical application.
Insights
Bufalin, a compound from toad venom, shows significant potential against head and neck cancers by inducing cell death and inhibiting tumor growth. It also modulates the immune system, offering a multifaceted therapeutic approach.
Area of Science:
- Oncology
- Pharmacology
- Immunology
Background:
- Bufalin, a cardiotonic steroid, exhibits anticancer properties but lacks detailed mechanistic studies in head and neck cancers.
- Head and neck cancers require novel therapeutic strategies due to treatment resistance and recurrence.
Purpose of the Study:
- To elucidate the mechanisms of bufalin's action in both HPV-positive and HPV-negative head and neck cancer cells.
- To evaluate bufalin's effects on cancer cell viability, apoptosis, cell cycle, migration, and immune modulation.
Main Methods:
- Cell viability assays, membrane integrity tests, colony formation assays.
- Western blotting, immunofluorescence, and flow cytometry to analyze apoptosis, cell cycle, and signaling pathways.
- Macrophage polarization assays to assess immunomodulatory effects.
Main Results:
- Bufalin reduced cell viability, disrupted membrane integrity, and inhibited colony formation in head and neck cancer cells.
- Bufalin induced apoptosis, caused G2/M cell cycle arrest, and attenuated cell migration by affecting EMT markers.
- Targeted key signaling pathways (Wnt/β-catenin, EGFR, NF-κB) and promoted M1 macrophage polarization.
Conclusions:
- Bufalin demonstrates multifaceted anticancer effects in head and neck cancer models.
- Bufalin's mechanisms involve apoptosis induction, cell cycle arrest, anti-metastasis, and immune modulation.
- Bufalin is a promising therapeutic candidate for head and neck cancers, warranting further clinical investigation.
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