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Updated: Jun 8, 2026

A Protocol for Constructing a Rat Wound Model of Type 1 Diabetes
Published on: February 17, 2023
Improved diabetic wound healing through topical silencing of p53 is associated with augmented vasculogenic mediators
Phuong D Nguyen1, John Paul Tutela, Vishal D Thanik
1Institute of Reconstructive Plastic Surgery, New York University Langone Medical Center, New York, New York 10016, USA.
Abstract:
Diabetes is characterized by several poorly understood phenomena including dysfunctional wound healing and impaired vasculogenesis. p53, a master cell cycle regulator, is upregulated in diabetic wounds and has recently been shown to play a regulatory roles in vasculogenic pathways. We have previously described a novel method to topically silence target genes in a wound bed with small interfering (si)RNA. We hypothesized that silencing p53 results in improved diabetic wound healing and augmentation of vasculogenic mediators. Paired 4-mm stented wounds were created on diabetic db/db mice. Topically applied p53 siRNA, evenly distributed in an agarose matrix, was applied to wounds at postwound day 1 and 7 (matrix alone and nonsense siRNA served as controls). Animals were sacrificed at postwound days 10 and 24. Wound time to closure was photometrically assessed, and wounds were harvested for histology, immunohistochemistry, and immunofluorescence. Vasculogenic cytokine expression was evaluated via Western blot, reverse transcription-polymerase chain reaction, and enzyme-linked immunosorbent assay. The ANOVA/t-test was used to determine significance (p≤ 0.05). Local p53 silencing resulted in faster wound healing with wound closure at 18±1.3 d in the treated group vs. 28±1.0 d in controls. The treated group demonstrated improved wound architecture at each time point while demonstrating near-complete local p53 knockdown. Moreover, treated wounds showed a 1.92-fold increase in CD31 endothelial cell staining over controls. Western blot analysis confirmed near-complete p53 knockdown in treated wounds. At day 10, VEGF secretion (enzyme-linked immunosorbent assay) was significantly increased in treated wounds (109.3±13.9 pg/mL) vs. controls (33.0±3.8 pg/mL) while reverse transcription-polymerase chain reaction demonstrated a 1.86-fold increase in SDF-1 expression in treated wounds vs. controls. This profile was reversed after the treated wounds healed and before closure of controls (day 24). Augmented vasculogenic cytokine profile and endothelial cell markers are associated with improved diabetic wound healing in topical gene therapy with p53 siRNA.
Insights
Topical gene therapy silencing p53 (a cell cycle regulator) in diabetic mice accelerated wound healing and improved blood vessel formation. This approach enhances diabetic wound repair by targeting key molecular pathways.
Area of Science:
- Regenerative Medicine
- Molecular Biology
- Genetics
Background:
- Diabetic wounds exhibit poor healing and impaired blood vessel formation (vasculogenesis).
- The cell cycle regulator p53 is upregulated in diabetic wounds and influences vasculogenic pathways.
- Topical small interfering RNA (siRNA) offers a novel method for gene silencing in wound beds.
Purpose of the Study:
- To investigate the effect of topical p53 silencing on diabetic wound healing.
- To determine if p53 inhibition augments vasculogenic mediators in diabetic wounds.
Main Methods:
- Diabetic db/db mice received topical p53 siRNA in an agarose matrix on wounds.
- Controls received matrix alone or nonsense siRNA.
- Wound healing, histology, and gene/protein expression (VEGF, SDF-1, CD31) were assessed.
Main Results:
- Topical p53 silencing significantly accelerated wound closure (18 days vs. 28 days).
- Treated wounds showed improved architecture, near-complete p53 knockdown, and increased CD31 staining.
- Vascular Endothelial Growth Factor (VEGF) and Stromal cell-Derived Factor-1 (SDF-1) expression were significantly increased in treated wounds.
Conclusions:
- Local p53 silencing via topical siRNA therapy promotes diabetic wound healing.
- This therapeutic strategy enhances vasculogenesis and improves wound repair outcomes in diabetes.
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