ArticleBurns & trauma2024
Suture-anchored cutaneous tension induces persistent hypertrophic scarring in a novel murine model.
Article in Burns & trauma, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- Beyond Suture Material: Integrating Tension-Line Orientation, Flap Redraping and Progressive Tension Sutures for Optimal Scar Suppression.Aesthetic plastic surgery · 2026Article
- Autonomous In Situ Biointerfacing Platform for Real-Time Electrophysiological Monitoring and Advanced Wound Management.ACS nano · 2026Article
- Advances in microneedle design for the delivery of drugs, proteins, and cells in the treatment of hypertrophic scars.Burns & trauma · 2026Review
- Effect of early application of a skin surface closure device combined with pulsed dye laser on the morphologic characteristics and clinical symptoms of tension scars on the backs of children.American journal of translational research · 2026Article
- Effects of aesthetic suturing on wound healing and scar formation in patients with traffic accident-related injuries.Frontiers in surgery · 2026Article
- Fine sutures combined with local flaps in the cosmetic repair of surgical defects of basal cell carcinoma of the head and face: a single-centre retrospective clinical study.European journal of medical research · 2025Article
- Investigating the Efficacy of Layered Moderate Tension Reduction Suturing in Facial Aesthetic Surgery.Cureus · 2025Article
- Mechanical stretching enhances the cellular and paracrine effects of bone marrow mesenchymal stem cells on diabetic wound healing.Burns & trauma · 2025Article
- Biomechanical mechanism and clinical management progress of surgical wound tension.Frontiers in surgery · 2025Review
Corrections and comments
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Authors and funding
8 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Background: Hypertrophic scars cause impaired skin appearance and function, seriously affecting physical and mental health. Due to medical ethics and clinical accessibility, the collection of human scar specimens is frequently restricted, and the establishment of scar experimental animal models for scientific research is urgently needed. The four most commonly used animal models of hypertrophic scars have the following drawbacks: the rabbit ear model takes a long time to construct; the immunodeficient mouse hypertrophic scar model necessitates careful feeding and experimental operations; female Duroc pigs are expensive to purchase and maintain, and their large size makes it difficult to produce a significant number of models; and mouse scar models that rely on tension require special skin stretch devices, which are often damaged and shed, resulting in unstable model establishment. Our group overcame the shortcomings of previous scar animal models and created a new mouse model of hypertrophic scarring induced by suture anchoring at the wound edge. Methods: We utilized suture anchoring of incisional wounds to impose directional tension throughout the healing process, restrain wound contraction, and generate granulation tissue, thus inducing scar formation. Dorsal paired incisions were generated in mice, with wound edges on the upper back sutured to the rib cage and the wound edges on the lower back relaxed as a control. Macroscopic manifestation, microscopic histological analysis, mRNA sequencing, bioinformatics, and Results: Compared with those in relaxed controls, the fibrotic changes in stretched wounds were more profound. Histologically, the stretched scars were hypercellular, hypervascular, and hyperproliferative with disorganized extracellular matrix deposition, and displayed molecular hallmarks of hypertrophic fibrosis. In addition, the stretched scars exhibited transcriptional overlap with mechanically stretched scars, and human hypertrophic and keloid scars. Phosphatidylinositol 3-kinase-serine/threonine-protein kinase B signaling was implicated as a profibrotic mediator of apoptosis resistance under suture-induced tension. Conclusions: This straightforward murine model successfully induces cardinal molecular and histological features of pathological hypertrophic scarring through localized suture tension to inhibit wound contraction. The model enables us to interrogate the mechanisms of tension-induced fibrosis and evaluate anti-scarring therapies.
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