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Updated: Mar 24, 2026

Murine Excisional Wound Healing Model and Histological Morphometric Wound Analysis
Published on: August 21, 2020
Foxn1 Transcription Factor Regulates Wound Healing of Skin through Promoting Epithelial-Mesenchymal Transition
Barbara Gawronska-Kozak1, Anna Grabowska1, Anna Kur-Piotrowska1
1Institute of Animal Reproduction and Food Research of Polish Academy of Sciences, Olsztyn, Poland.
Abstract:
Transcription factors are key molecules that finely tune gene expression in response to injury. We focused on the role of a transcription factor, Foxn1, whose expression is limited to the skin and thymus epithelium. Our previous studies showed that Foxn1 inactivity in nude mice creates a pro-regenerative environment during skin wound healing. To explore the mechanistic role of Foxn1 in the skin wound healing process, we analyzed post-injured skin tissues from Foxn1::Egfp transgenic and C57BL/6 mice with Western Blotting, qRT-PCR, immunofluorescence and flow cytometric assays. Foxn1 expression in non-injured skin localized to the epidermis and hair follicles. Post-injured skin tissues showed an intense Foxn1-eGFP signal at the wound margin and in leading epithelial tongue, where it co-localized with keratin 16, a marker of activated keratinocytes. This data support the concept that suprabasal keratinocytes, expressing Foxn1, are key cells in the process of re-epithelialization. The occurrence of an epithelial-mesenchymal transition (EMT) was confirmed by high levels of Snail1 and Mmp-9 expression as well as through co-localization of vimentin/E-cadherin-positive cells in dermis tissue at four days post-wounding. Involvement of Foxn1 in the EMT process was verified by co-localization of Foxn1-eGFP cells with Snail1 in histological sections. Flow cytometric analysis showed the increase of double positive E-cadherin/N-cadherin cells within Foxn1-eGFP population of post-wounded skin cells isolates, which corroborated histological and gene expression analyses. Together, our findings indicate that Foxn1 acts as regulator of the skin wound healing process through engagement in re-epithelization and possible involvement in scar formation due to Foxn1 activity during the EMT process.
Insights
Transcription factor Foxn1 regulates skin wound healing by promoting re-epithelialization and potentially influencing scar formation through epithelial-mesenchymal transition (EMT). Its expression in activated keratinocytes is key to these processes.
Area of Science:
- Dermatology
- Molecular Biology
- Wound Healing Research
Background:
- Transcription factors regulate gene expression during tissue repair.
- Foxn1 (Forkhead box N1) is primarily expressed in skin and thymus epithelium.
- Previous work suggested Foxn1 inactivity promotes skin regeneration.
Purpose of the Study:
- To elucidate the mechanistic role of Foxn1 in skin wound healing.
- To investigate Foxn1's involvement in re-epithelialization and epithelial-mesenchymal transition (EMT).
Main Methods:
- Analysis of post-injured skin tissues from Foxn1::Egfp transgenic and C57BL/6 mice.
- Techniques included Western Blotting, qRT-PCR, immunofluorescence, and flow cytometry.
- Assessed expression of Foxn1, keratin 16, Snail1, Mmp-9, vimentin, E-cadherin, and N-cadherin.
Main Results:
- Foxn1 localized to epidermis and hair follicles in uninjured skin.
- Post-injury, Foxn1-eGFP signal was intense at wound margins and in leading epithelial tongues, co-localizing with keratin 16.
- Foxn1-eGFP co-localized with Snail1, and flow cytometry showed increased E-cadherin/N-cadherin double-positive cells within the Foxn1-eGFP population, indicating EMT involvement.
Conclusions:
- Foxn1 is a regulator of skin wound healing, crucial for re-epithelialization.
- Foxn1 activity during EMT may contribute to scar formation.
- Suprabasal keratinocytes expressing Foxn1 are key players in wound closure.
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