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Research Article | Open Access

Mechanical stretching enhances the cellular and paracrine effects of bone marrow mesenchymal stem cells on diabetic wound healing

Wei DaiHaowei Zhou Jincheng DuRuozu XiaoJunwei SuZhe LiuRong HuangYuqian Li( )Jing Li( )
Department of Burn and Plastic Surgery, Tangdu Hospital, The Fourth Military Medical University, No. 569 Xinsi Road, Baqiao District, Xi’an, Shaanxi Province, 710038, China

Wei Dai, Haowei Zhou, and Jincheng Du contributed equally to this work.

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Highlights

• Mechanical stretching promotes BMSC proliferation, preserves cell stemness, and increases the expression of ECM components, including collagen and growth factors.

• Mechanical stretching optimizes the mechanical properties of BMSC cell sheets and increases the expression of growth factors and ECM components.

• BMSC cell sheets, optimized via mechanical stretching, accelerate wound closure in diabetic rats by increasing neovascularization and collagen formation.

Abstract

Background

Diabetic wounds present persistent clinical challenges characterized by disrupted extracellular matrix (ECM) homeostasis, which critically impedes tissue regeneration. While bone marrow-derived mesenchymal stem cells (BMSCs) exhibit therapeutic potential through ECM remodeling, conventional transplantation strategies are limited by suboptimal cell retention and transient therapeutic effects.

Methods

BMSCs cultured on Flexcell plates were subjected to programmable mechanical stretching using a custom-built spherical cell-stretching system. Strain rate- and duration-dependent effects on paracrine signaling and ECM secretion were longitudinally assessed through western blot ting and ELISA. The optimized mechanical parameters (15% deformation, 1440 cycles, 5-s vertex residence time) were subsequently applied to generate BMSC sheets. Comparative analyses of biological activity and mechanical properties were performed between non-stretched controls and mechanically optimized groups. In vivo therapeutic efficacy was evaluated in diabetic rat models through wound closure kinetics, Masson’s trichrome staining, and immunofluorescence detection of neovascularization markers. Mechanistic insights were obtained via transcriptomic profiling of stretch-activated signaling pathways.

Results

Mechanical stretching significantly upregulated type Ⅰ collagen, type Ⅲ collagen, vascular endothelial growth factor, and transforming growth factor-beta (TGF-β) secretion in BMSCs. The optimized stretching parameters (15% deformation, 1440 cycles, and 5-s vertex residence time) promoted BMSC proliferation while reducing apoptosis without compromising stemness. Mechanical stretching facilitated the formation of layered cell sheets with more organized collagen deposition and higher mechanical strength, expediting wound healing in diabetic rats through enhanced re-epithelialization and neovascularization. RNA sequencing analysis revealed that mechanical stretching significantly upregulated mechanosensitive molecules, mechanical stimulation signaling pathways, and cellular behavior regulatory pathways, particularly those associated with mechanical stimuli response, integrin binding, ECM secretion, and intercellular adhesion.

Conclusions

Mechanically stretched BMSC cell sheets can promote diabetic wound healing by enhancing cellular activity, paracrine of growth factors, and ECM components.

Graphical Abstract

References

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Burns & Trauma
Article number: tkaf022

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Cite this article:
Dai W, Zhou H, Du J, et al. Mechanical stretching enhances the cellular and paracrine effects of bone marrow mesenchymal stem cells on diabetic wound healing. Burns & Trauma, 2025, 13(11): tkaf022. https://doi.org/10.1093/burnst/tkaf022

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Received: 27 September 2024
Revised: 02 March 2025
Accepted: 03 March 2025
Published: 05 March 2025
© The Author(s) 2025. 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