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Updated: May 12, 2026

Murine Excisional Wound Healing Model and Histological Morphometric Wound Analysis
Published on: August 21, 2020
Collagen synthesis modulated in wounds treated by pulsed radiofrequency energy
Huang-Kai Kao1, Qin Li, Brendan Flynn
1Boston and Burlington, Mass.; and Tao-Yuan, Taiwan From the Division of Plastic Surgery and the Department of Pathology, Brigham and Women's Hospital, Harvard Medical School; the Department of Plastic and Reconstructive Surgery, Chang Gung Memorial Hospital, Chang Gung University College of Medicine; the Department of Mechanical and Industrial Engineering, Northeastern University; and the Department of Plastic Surgery, Lahey Clinic Medical Center.
Background:
Chronic wounds are biochemically complex and are associated with insufficient cell proliferation, angiogenesis, and extracellular matrix remodeling. The mechanisms by which pulsed radiofrequency energy modulates wound healing are still unclear.
Methods:
Db/db mice were wounded and exposed to pulsed radiofrequency energy. Gross closure, cell proliferation, and morphometric analysis of CD31-stained wound cross-sections were assessed. The mRNA expression of profibrotic factors (transforming growth factor-β and platelet-derived growth factor-A), angiogenetic factors (vascular endothelial growth factor and basic fibroblast growth factor), and extracellular matrix components (collagen I and α-smooth muscle actin) were evaluated by quantitative reverse-transcriptase polymerase chain reaction. Collagen protein level of the wound was determined by Western blot analysis. To test the effect of pulsed radiofrequency energy on cell movement in wound healing, cell migration was monitored in monolayer dermal fibroblast cultures. The degree of collagen alignment and gelation time was quantitatively assessed using image analysis techniques.
Results:
Pulsed radiofrequency energy-treated wounds were characterized by dermal cell proliferation and increased collagen synthesis. By contrast, the CD31 density and the mRNA expression of vascular endothelial growth factor and basic fibroblast growth factor showed no significant difference between the pulsed radiofrequency energy-treated wounds and the sham group. The pulsed radiofrequency energy-treated dermal fibroblast cultures expressed a significantly longer gelation time compared with the sham-exposed cultures.
Conclusions:
Exposing wounds to pulsed radiofrequency accelerated wound healing in this diabetic mouse model by means of significantly increasing dermal cell proliferation and collagen synthesis. A cellular mechanism behind these observations has been proposed.
Insights
Pulsed radiofrequency energy accelerates chronic wound healing in diabetic mice by boosting cell proliferation and collagen synthesis. This study explores the underlying cellular mechanisms for improved dermal repair.
Area of Science:
- Biomedical Engineering
- Wound Healing Research
- Regenerative Medicine
Background:
- Chronic wounds exhibit impaired cell proliferation, angiogenesis, and extracellular matrix remodeling.
- The precise mechanisms of pulsed radiofrequency energy's impact on wound healing remain largely unknown.
Purpose of the Study:
- To investigate the effects of pulsed radiofrequency energy on chronic wound healing in a diabetic mouse model.
- To elucidate the cellular and molecular mechanisms by which pulsed radiofrequency energy influences dermal repair processes.
Main Methods:
- Db/db mice with induced wounds were treated with pulsed radiofrequency energy.
- Assessed wound closure, cell proliferation, and analyzed CD31 expression for angiogenesis.
- Evaluated mRNA and protein levels of key growth factors and extracellular matrix components, alongside fibroblast migration and collagen gelation assays.
Main Results:
- Pulsed radiofrequency energy significantly enhanced dermal cell proliferation and collagen synthesis in treated wounds.
- No significant differences were observed in angiogenesis markers (CD31 density, VEGF, bFGF mRNA) between treated and control groups.
- Fibroblast cultures exposed to pulsed radiofrequency energy demonstrated increased collagen gelation time, suggesting altered matrix deposition.
Conclusions:
- Pulsed radiofrequency energy effectively accelerates wound healing in diabetic mice, primarily through enhanced cell proliferation and collagen synthesis.
- The findings propose a cellular mechanism involving improved collagen production and potentially altered fibroblast behavior, contributing to faster wound closure.
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