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Updated: Jun 20, 2026

Murine Excisional Wound Healing Model and Histological Morphometric Wound Analysis
Published on: August 21, 2020
Persistent inflammation and angiogenesis during wound healing in K14-directed Hoxb13 transgenic mice
Judith A Mack1, Edward V Maytin
1Department of Biomedical Engineering, Lerner Research Institute, Cleveland Clinic, Cleveland, Ohio 44195, USA. mackj@ccf.org
Abstract:
Chronic, nonhealing wounds and inadequate tissue repair characterized by excessive fibrosis continue to have a considerable negative effect on health and quality of life. Understanding the molecular events required for adequate healing, including the transcriptional control of wound repair, will be important for the development of future therapies. We previously showed that loss of Hoxb13 from murine skin results in enhanced cutaneous wound healing, suggesting that Hoxb13 has a negative effect on wound repair. To test this, we generated skin-specific Hoxb13 transgenic (TG) mice that overexpress Hoxb13 in the basal layer of the epidermis by the human keratin 14 promoter. Using these mice, we evaluated the effects of Hoxb13 overexpression on cutaneous wound healing. Transgenic wounds were characterized by persistence of the fibrin clot and prolonged inflammation. Notably, neutrophils, which had cleared from wild-type wounds, were still pronounced in TG wounds. Marked epidermal hyperplasia was observed at TG wound edges, and dermal vessels were grossly abnormal compared with wild-type mice. Both vascular endothelial growth factor and tumor necrosis factor-alpha were upregulated in Hoxb13 TG skin. Together, our results identify Hoxb13 as a potential important clinical target in wound healing and other pathologies characterized by abnormal or excessive inflammation, angiogenesis, or epidermal proliferation.
Insights
Hoxb13 overexpression impairs skin wound healing by prolonging inflammation and altering tissue repair. This suggests Hoxb13 is a key factor in chronic wound development and a potential therapeutic target.
Area of Science:
- Molecular Biology
- Dermatology
- Regenerative Medicine
Background:
- Chronic wounds and fibrosis significantly impact patient health and quality of life.
- Understanding transcriptional control in wound repair is crucial for developing new therapies.
- Previous studies indicated Hoxb13 negatively regulates cutaneous wound healing.
Purpose of the Study:
- To investigate the effects of Hoxb13 overexpression on skin wound healing.
- To determine the role of Hoxb13 in the molecular events of wound repair.
Main Methods:
- Generated skin-specific Hoxb13 transgenic (TG) mice using the keratin 14 promoter.
- Evaluated cutaneous wound healing in TG mice compared to wild-type controls.
- Analyzed inflammatory cell presence, fibrin clot persistence, epidermal hyperplasia, and vascular abnormalities.
Main Results:
- TG wounds exhibited persistent fibrin clots and prolonged inflammation with significant neutrophil infiltration.
- Marked epidermal hyperplasia and abnormal dermal vasculature were observed in TG wounds.
- Vascular endothelial growth factor and tumor necrosis factor-alpha were upregulated in Hoxb13 TG skin.
Conclusions:
- Hoxb13 overexpression significantly impairs cutaneous wound healing.
- Hoxb13 is identified as a potential clinical target for wound healing and inflammatory diseases.
- Targeting Hoxb13 may offer therapeutic strategies for conditions involving abnormal inflammation, angiogenesis, or proliferation.
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