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Updated: Apr 24, 2026

A Protocol for Constructing a Rat Wound Model of Type 1 Diabetes
Published on: February 17, 2023
Skin-derived precursor cells promote wound healing in diabetic mice
Hideyoshi Sato1, Katsumi Ebisawa, Keisuke Takanari
1From the Departments of *Plastic and Reconstructive Surgery, and †Cardiac Surgery, Nagoya University Graduate School of Medicine, Nagoya, Aichi, Japan.
Background:
Impaired wound healing as one of the complications arising from diabetes mellitus is a serious clinical issue. Recently, various cell therapies have been reported for promotion of wound healing. Skin-derived precursor cells (SKPs) are multipotent adult stem cells with the tendency to differentiate into neurons. We investigated the potency of promoting diabetic wound healing by the application of SKPs.
Methods:
Skin-derived precursor cells isolated from diabetic murine skin were cultured in sphere formation medium. At passage 2, they were suspended in phosphate-buffered saline (PBS), and applied topically to full-thickness excisional cutaneous wounds in diabetic mice. Application of PBS served as controls (n = 21 for each group; n = 42 total). Time to closure and percentage closure were calculated by morphometry. Wounds were harvested at 10 and 28 days and then processed, sectioned, and stained (CD31, α-smooth muscle actin, and neurofilament heavy chain) to quantify vascularity and neurofilaments.
Results:
Wounds treated with SKPs demonstrated a significantly decreased time to closure (18.63 days) compared with PBS-control wounds (21.72 days, P < 0.01), and a significant improvement in percentage closure at 7, 10, 14, and 18 days compared with PBS-control wounds (P < 0.01). Histological analysis showed that the Capillary Score (the number of vessels/mm2) was significantly higher in SKP-treated wounds at day 10 but not at day 28. Nerve Density (the number of neurofilaments/mm2) had increased significantly in SKP-treated wounds at day 28 compared with control group. Some applied SKPs were stained by neurofilament heavy chain, which demonstrates that SKPs directly differentiated into neurons.
Conclusions:
Skin-derived precursor cells promoted diabetic wound healings through vasculogenesis at the early stage of wound healing. Skin-derived precursor cells are a possible therapeutic tool for diabetic impaired wound healing.
Insights
Skin-derived precursor cells (SKPs) significantly improved diabetic wound healing by accelerating closure and enhancing vascularity. These multipotent stem cells also promoted nerve regeneration, showing potential as a therapeutic for diabetic complications.
Area of Science:
- Regenerative Medicine
- Stem Cell Biology
- Diabetic Complications Research
Background:
- Diabetes mellitus often leads to impaired wound healing, a significant clinical challenge.
- Cell therapies are being explored to promote wound healing.
- Skin-derived precursor cells (SKPs) are multipotent stem cells with neurogenic potential.
Purpose of the Study:
- To investigate the efficacy of topical SKP application in promoting diabetic wound healing.
- To assess the impact of SKPs on wound closure, vascularity, and neurogenesis in diabetic mice.
Main Methods:
- SKPs were isolated from diabetic murine skin and cultured.
- SKPs were topically applied to full-thickness cutaneous wounds in diabetic mice.
- Wound closure was monitored, and histological analyses were performed to quantify vascularity and nerve density.
Main Results:
- SKP-treated wounds showed significantly faster closure times and improved percentage closure compared to controls.
- Histological analysis revealed increased vascularity at day 10 and significantly higher nerve density at day 28 in SKP-treated wounds.
- Evidence suggested that applied SKPs differentiated into neurons, indicated by neurofilament staining.
Conclusions:
- Topical application of SKPs effectively promotes diabetic wound healing.
- SKPs enhance healing through early-stage vasculogenesis and later-stage neurogenesis.
- SKPs represent a promising therapeutic strategy for managing impaired wound healing in diabetes.
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