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Research Article | Open Access

Suture-anchored cutaneous tension induces persistent hypertrophic scarring in a novel murine model

Yashu Li1,†, Anqi Liu2,3,†, Jingyan Wang1, Changsheng Yang1, Kaiyang Lv1 ( ), Weifeng He4 ( ), Jun Wu5( ), Wenbin Chen1 ( )
Department of Plastic Surgery, Xinhua Hospital, Shanghai Jiao Tong University School of Medicine, No. 1665 Kangjiang Road, Yangpu District, Shanghai 200092, People’s Republic of China
Department of Dermatology, Xiangya Hospital, Central South University, Changsha, Hunan 410008, People’s Republic of China
Key Laboratory for the Genetics of Developmental and Neuropsychiatric Disorders (Ministry of Education), Bio-X Institutes, Shanghai Jiao Tong University, Shanghai 200240, People’s Republic of China
State Key Laboratory of Trauma, Burn and Combined Injury, Institute of Burn Research, Southwest Hospital, Third Military Medical University (Army Medical University), No. 30 Gaotanyan main Street, Shapingba District, Chongqing 400038, People’s Republic of China
Department of Burn and Plastic Surgery, Shenzhen Institute of Translational Medicine, Shenzhen Second People’s Hospital, The First Affiliated Hospital of Shenzhen University, No. 3002 Sungang Road, Futian District, Shenzhen 518035, People’s Republic of China

†Yashu Li and Anqi Liu contributed equally to this work.

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Highlights

• Few animal models could simply and efficiently replicate key features of human hypertrophic scarring.

• We developed an innovative and reliable murine model which generated scars with histological and molecular features resembling human pathological fibrosis by utilizing suture anchoring to restrain wound contraction throughout the healing process without repeated animal restraint or mechanical equipment that could cause general confounders.

• This model enables unraveling of the mechanisms of tension-induced fibrosis and the development of targeted anti-scarring therapies.

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 in vitro cell assays were also conducted to verify the reliability of this method.

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.

References

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Burns & Trauma
Article number: tkae051

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Cite this article:
Li Y, Liu A, Wang J, et al. Suture-anchored cutaneous tension induces persistent hypertrophic scarring in a novel murine model. Burns & Trauma, 2024, 12: tkae051. https://doi.org/10.1093/burnst/tkae051

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Received: 08 November 2023
Revised: 31 December 2023
Published: 10 October 2026
© The Author(s) 2024. Published by Oxford University Press.

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com