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Updated: Jul 17, 2026

A Mouse Model of Mechanotransduction-driven, Human-like Hypertrophic Scarring
Published on: November 29, 2024
Comparison of rat hypertrophic scar models: Caudal tension model with superior pathological consistency
Lingyi Zhan1,2, Hong Xiang1, Yaohui Kong1,3
1Department of Pharmacy, Daping Hospital, Army Medical University, Chongqing, China.
Background:
Hypertrophic scars (HS) are a common fibrotic disorder in skin wound healing, characterized by excessive fibroblast proliferation and abnormal collagen deposition, with an incidence reaching 40%-70% in burn patients. Current treatments (e.g., corticosteroid injections) face challenges such as high recurrence rates and significant adverse effects, highlighting the urgent need for reliable animal models to investigate pathogenesis and develop novel therapies.
Methods:
Forty-eight male Sprague-Dawley (SD) rats were used to systematically compare modeling efficacy across auricular (3.5 mm corneal trephine), dorsal (linear incision/tension/full-thickness excision), and caudal (linear incision/tension) sites. Each subgroup contained 12 rats (n = 12/group). Scar formation was evaluated over 60 days via macroscopic observation, Vancouver Scar Scale (VSS) scoring, H&E/Masson staining (fibroblast density/collagen deposition), and immunofluorescence α-smooth muscle actin (α-SMA), transforming growth factor beta (TGF-β), type I collagen/type III collagen (COL I/III).
Results:
The caudal tension group demonstrated optimal outcomes, with scar thickness (0.394 ± 0.006 mm), fibroblast density (1079 ± 118 cells/mm2), and collagen deposition (90.6% ± 2.4%) significantly higher than other groups (***p < 0.001), alongside sustained upregulation of α-SMA and TGF-β. The auricular site was excluded due to rapid self-healing.
Conclusion:
The tension method on the tail is a simple, stable, and clinically relevant HS model, effectively replicating human pathological features and providing an ideal platform for disease mechanism research and drug screening.

