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Research Article | Open Access

Negative pressure-induced fibroblast activation for wound healing through the Piezo1-Ca2+-NFAT3 signaling pathway

Shu-Ao Xiao1,Ni Liu2,Yi-Wei Cui3,Hang Li4Yu-Chen Dong3 Jie-Zhang Tang3 Hao Zhang5Wen-Xuan Wang6Yong-Qian Bian3 ( )Jing Li3 ( )Xue-Yong Li4 ( )
Department of Plastic Surgery, Xijing Hospital, Fourth Military Medical University, No. 127, Changle West Road, Xincheng District, Xi’an, Shaanxi, 710032, China
Department of Pain Management, the First Affiliated Hospital of Xi’an Jiaotong University, No. 277, Yanta West Road, Yanta District, Xi’an, Shaanxi, 710061, China
Department of Burn and Plastic Surgery, Tangdu Hospital, Fourth Military Medical University, No. 1, Xinsi Road, Baqiao District, Xi’an, Shaanxi, 710000, China
Department of Burn, Plastic and Wound Repair Surgery, the Second Affiliated Hospital, Xi ’an Jiaotong University, No. 157, West Fifth Road, Xincheng District, Xi’an, Shaanxi, 710004, China
Department of Burn and Plastic Surgery, the 927th Hospital of the Joint Logistic Support Force, No. 3, Yushui Road, Nanping Town, Simao District, Pu’er, Yunnan, 665000, China
Burn and Dermatology Surgery, Xijing Hospital, Fourth Military Medical University, No. 127, Changle West Road, Xincheng District, Xi’an, Shaanxi, 710032, China

Shu-Ao Xiao, Ni Liu, and Yi-Wei Cui contributed equally to this work.

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Highlights

• Pioneered a six-channel automated in vitro negative pressure loading system for precise mechanical stimulation.

• Established finite element modeling to quantify cellular mechanical responses under negative pressure.

• Identified optimal parameters (–40 mmHg, 2 kPa, 2 h) for enhanced fibroblast activation via negative pressure stimuli.

• Unveiled Piezo1 as the unique mechanosensor governing negative pressure-induced fibroblast activation.

• Disclosed the novel Piezo1/Calcineurin/NFAT3 mechanotransduction cascade in mechanical regulation of fibroblast function.

Abstract

Background

Negative pressure wound therapy (NPWT) is widely used to promote wound healing, yet the mechanotransduction mechanisms underlying its efficacy remain unclear because of the absence of precise and controllable in vitro negative pressure loading devices for cellular-level studies. Therefore, this study aims to develop a precise and controllable in vitro negative pressure loading device and to elucidate the mechanotransduction mechanism by which negative pressure activates dermal fibroblasts during wound healing.

Methods

We developed a high-precision negative pressure loading device compatible with six-well plates, facilitating independent and intelligent control over negative pressure values, durations, and modes for each well. To validate the uniformity and stability of the negative pressure environment, finite element analysis (FEA) was implemented. The mechanism was explored using proteomic profiling of negative pressure-treated fibroblasts, complemented by molecular interrogation of Piezo1 expression and calcium signaling dynamics. The results of functional studies integrated genetic silencing and pharmacological modulation of the pathway, with in vivo confirmation through SD rat-based NPWT experiments.

Results

FEA confirmed a stable pressure distribution within the negative pressure chamber. The cells experienced predominantly compressive stresses that scaled linearly with the applied pressure, reaching −2 kPa at −40 mmHg. We found that applying a continuous negative pressure of −40 mmHg for 2 hours significantly activated dermal fibroblasts. TMT-based proteomic analysis revealed the upregulation of Piezo1 in negative pressure-treated dermal fibroblasts, which was further confirmed by molecular and immunohistochemical analyses of both cellular and granulation tissue samples. Pharmacological inhibition or knockdown of Piezo1 attenuated negative pressure-induced dermal fibroblast activation in vivo and in vitro. Mechanistically, we determined that Piezo1-mediated Ca2+ influx and the calcineurin/NFAT3 signaling pathway are critically enhanced during this process.

Conclusions

This study revealed that the Piezo1-Ca2+-NFAT3 mechanotransduction axis is the central pathway that mediates the therapeutic effects of NPWT. This work lays the foundational groundwork for elucidating the biomechanical mechanisms of negative pressure and reveals new approaches for research in tissue engineering and regenerative medicine.

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Cite this article:
Xiao S-A, Liu N, Cui Y-W, et al. Negative pressure-induced fibroblast activation for wound healing through the Piezo1-Ca2+-NFAT3 signaling pathway. Burns & Trauma, 2026, 14(2). https://doi.org/10.1093/burnst/tkag007

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Received: 29 May 2025
Revised: 07 January 2026
Accepted: 08 January 2026
Published: 15 January 2026
© The Author(s) 2026. Published by Oxford University Press.

This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial 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 reprints@oup.com for reprints and translation rights for reprints. All other permissions can be obtained through our RightsLink service via the Permissions link on the article page on our site—for further information please contact journals.permissions@oup.com.