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Murine Excisional Wound Healing Model and Histological Morphometric Wound Analysis
Published on: August 21, 2020
Epidermal Smad4 deletion results in aberrant wound healing
Philip Owens1, Erin Engelking, Gangwen Han
1Department of Otolaryngology, Oregon Health Sciences University, Portland, Oregon, USA.
Abstract:
In the present study, we assessed the role of Smad4, a component of the transforming growth factor-beta signaling pathway, in cutaneous wound repair. Interestingly, when Smad4 was deleted in the epidermis, several defects in wound healing were observed in non-keratinocyte compartments. In comparison with wounded wild-type mouse skin, Smad4-deficient wounds had delayed wound closure and remodeling. Increased angiogenesis and inflammation were found in Smad4-deficient skin; these effects were exacerbated throughout the entire wound healing process. In addition, increased numbers of myofibroblasts but reduced collagen levels were found in Smad4-deficient wounds in comparison with wild-type wounds. Since Smad4 is not a secreted protein, we assessed if the above non-cell autonomous alterations were the result of molecular alterations in Smad4-deficient keratinocytes, which exert paracrine effects on wound stroma. Smad4-deficient skin and wounds had elevated levels of transforming growth factor-beta1, which have been shown to induce similar phenotypes, as well as of several transforming growth factor-beta1 target genes, such as matrix metalloproteinases, vascular endothelial growth factor-A, and chemokine (C-C motif) ligand 5. Furthermore, the above pathological and molecular alterations were exacerbated in skin cancer lesions that spontaneously developed from Smad4-deficient skin. Therefore, loss of Smad4 in the epidermis appears to significantly affect the microenvironment during wound healing and carcinogenesis.
Insights
Loss of Smad4 in skin cells impairs wound healing by increasing inflammation and delaying repair. This also exacerbates skin cancer development, highlighting Smad4's crucial role in tissue repair and cancer.
Area of Science:
- Dermatology
- Molecular Biology
- Wound Healing Research
Background:
- Smad4 is a key protein in the transforming growth factor-beta (TGF-β) signaling pathway.
- The TGF-β pathway regulates crucial cellular processes including wound repair and cancer development.
Purpose of the Study:
- To investigate the role of Smad4 in epidermal cells during cutaneous wound repair.
- To understand the non-cell autonomous effects of Smad4 deletion in keratinocytes on the wound microenvironment.
Main Methods:
- Utilized a mouse model with Smad4 deletion specifically in epidermal keratinocytes.
- Analyzed wound closure, remodeling, angiogenesis, inflammation, myofibroblast count, and collagen levels.
- Assessed molecular changes in Smad4-deficient skin and wounds, including TGF-β1 and its target genes.
Main Results:
- Epidermal Smad4 deletion led to delayed wound closure and impaired remodeling.
- Increased angiogenesis and inflammation were observed in Smad4-deficient wounds.
- Elevated TGF-β1 and its target genes (MMPs, VEGF-A, CCL5) were found, suggesting paracrine signaling alterations.
- These defects were more severe in spontaneously developing skin cancer lesions.
Conclusions:
- Loss of Smad4 in epidermal cells significantly disrupts the wound healing microenvironment.
- Epidermal Smad4 plays a critical role in regulating inflammation, angiogenesis, and tissue remodeling during repair.
- Impaired Smad4 function in keratinocytes contributes to both delayed wound healing and enhanced skin carcinogenesis.
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