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Updated: Jan 19, 2026

Chemical-induced Two-stage Skin Carcinogenesis Model: An Experimental In Vivo Mouse Model of Skin Cancer
Published on: April 30, 2023
Taxifolin suppresses UV-induced skin carcinogenesis by targeting EGFR and PI3K
Naomi Oi1, Hanyong Chen, Myoung Ok Kim
1The Hormel Institute, University of Minnesota, 801 16 Ave NE, Austin, MN 55912, USA.
Abstract:
Skin cancer is one of the most commonly diagnosed cancers in the United States. Taxifolin reportedly exerts multiple biologic effects, but the molecular mechanisms and direct target(s) of taxifolin in skin cancer chemoprevention are still unknown. In silico computer screening and kinase profiling results suggest that the EGF receptor (EGFR), phosphoinositide 3-kinase (PI3K), and Src are potential targets for taxifolin. Pull-down assay results showed that EGFR, PI3K, and Src directly interacted with taxifolin in vitro, whereas taxifolin bound to EGFR and PI3K, but not to Src in cells. ATP competition and in vitro kinase assay data revealed that taxifolin interacted with EGFR and PI3K at the ATP-binding pocket and inhibited their kinase activities. Western blot analysis showed that taxifolin suppressed UVB-induced phosphorylation of EGFR and Akt, and subsequently suppressed their signaling pathways in JB6 P+ mouse skin epidermal cells. Expression levels and promoter activity of COX-2 and prostaglandin E(2) (PGE(2)) generation induced by UVB were also attenuated by taxifolin. The effect of taxifolin on UVB-induced signaling pathways and PGE(2) generation was reduced in EGFR knockout murine embryonic fibroblasts (MEF) compared with EGFR wild-type MEFs. Taxifolin also inhibited EGF-induced cell transformation. Importantly, topical treatment of taxifolin to the dorsal skin significantly suppressed tumor incidence, volume, and multiplicity in a solar UV (SUV)-induced skin carcinogenesis mouse model. Further analysis showed that the taxifolin-treated group had a substantial reduction in SUV-induced phosphorylation of EGFR and Akt in mouse skin. These results suggest that taxifolin exerts chemopreventive activity against UV-induced skin carcinogenesis by targeting EGFR and PI3K.
Insights
Taxifolin, a natural compound, shows promise in preventing UV-induced skin cancer by inhibiting key signaling pathways like EGFR and PI3K. This research identifies its molecular targets, offering new avenues for skin cancer chemoprevention.
Area of Science:
- Oncology
- Molecular Biology
- Dermatology
Background:
- Skin cancer is a prevalent malignancy.
- The chemopreventive mechanisms of taxifolin against skin cancer are not fully understood.
- Identifying molecular targets is crucial for understanding taxifolin's effects.
Purpose of the Study:
- To investigate the molecular mechanisms and direct targets of taxifolin in skin cancer chemoprevention.
- To evaluate the efficacy of taxifolin in preventing UV-induced skin carcinogenesis.
- To elucidate the role of EGFR and PI3K in taxifolin's chemopreventive activity.
Main Methods:
- In silico screening and kinase profiling to identify potential targets.
- In vitro pull-down assays and ATP competition assays to confirm direct interaction and inhibition.
- Western blot analysis to assess signaling pathway modulation in mouse skin cells.
- In vivo studies using a solar UV-induced skin carcinogenesis mouse model.
- Utilizing EGFR knockout murine embryonic fibroblasts to determine EGFR's role.
Main Results:
- Taxifolin directly interacts with and inhibits EGFR and PI3K kinase activities.
- Taxifolin suppresses UVB-induced phosphorylation of EGFR and Akt, and downstream signaling.
- Taxifolin reduces UVB-induced COX-2 expression and PGE(2) generation.
- EGFR is critical for taxifolin's effects on UVB-induced pathways.
- Topical taxifolin significantly suppresses tumor development in a mouse model of skin carcinogenesis.
- Taxifolin treatment reduces EGFR and Akt phosphorylation in mouse skin.
Conclusions:
- Taxifolin exhibits chemopreventive effects against UV-induced skin carcinogenesis.
- Taxifolin targets EGFR and PI3K, inhibiting key signaling pathways involved in skin cancer development.
- These findings support taxifolin's potential as a therapeutic agent for skin cancer prevention.
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