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Research Article | Open Access

Multifunctional nanofibrous membranes enhance diabetic wound healing by inhibiting endothelial pyroptosis and regulating macrophage polarization

Shuang Deng1,2,Ting Ying3,Xu Zhang1,Farnaz Ghorbani4Wen Luo2( )Chengqing Yi1( )Dejian Li1 ( )
Department of Orthopedics, Shanghai Pudong Hospital, Fudan University Pudong Medical Center, 2800 Gongwei Road, Pudong, Shanghai 201399, China
Henan Key Laboratory of Natural Medicine Innovation and Transformation, Henan University, 85 Minglun Street, Kaifeng 475004, China
Shanghai YangZhi Rehabilitation Hospital (Shanghai Sunshine Rehabilitation Center), School of Medicine, Tongji University, 2209 Gangxing Road, Songjiang, Shanghai 200092, China
Department of Translational Health Sciences, University of Bristol, Dorothy Hodgkin Building, Whtison Street, Bristol BS1 3NY, United Kingdom

Shuang Deng, Ting Ying and Xu Zhang contributed equally to this work.

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Highlights

• Lut@ZIF-8-PT patterned nanofiber scaffolds were developed with robust physicochemical stability, biocompatibility, and sustained dual release of luteolin and Zn2+.

• The scaffolds promote endothelial cell migration, angiogenesis, and M2 macrophage polarization, thereby remodeling the inflammatory microenvironment.

• Endothelial pyroptosis is inhibited via suppression of the ROS–NLRP3–GSDMD axis, contributing to improved vascular regeneration.

• In a diabetic mouse wound model, the scaffolds accelerated wound closure, enhanced collagen deposition, and supported neovascularization, highlighting their potential as multifunctional therapeutic platforms for chronic wound repair.

Abstract

Background

Persistent oxidative stress and aberrant inflammatory responses are major contributors to delayed wound healing in diabetic patients. Endothelial cell pyroptosis, a form of inflammatory programmed cell death, plays a critical role in vascular dysfunction and impaired tissue regeneration in diabetic wounds. Targeting endothelial pyroptosis therefore represents a promising therapeutic strategy. This study aims to develop a multifunctional nanofibrous scaffold capable of suppressing oxidative stress-induced endothelial pyroptosis while modulating the inflammatory microenvironment to promote angiogenesis and diabetic wound repair.

Methods

In this study, a pH-responsive nanoplatform based on zinc–imidazolate metal–organic frameworks (ZIF-8) was constructed for the controlled delivery of luteolin (Lut), a natural flavonoid with anti-inflammatory and antioxidant properties. The physicochemical characteristics, drug-loading efficiency, and pH-responsive release behavior of Lut@ZIF-8 nanoparticles were systematically evaluated. The effects of Lut@ZIF-8 on oxidative stress, endothelial pyroptosis, and angiogenic function were investigated in vitro, while therapeutic efficacy was further assessed in a diabetic mouse wound model using Lut@ZIF-8-loaded fibrous scaffolds.

Results

Lut@ZIF-8 nanoparticles exhibited uniform morphology, high drug-loading efficiency, and sustained drug release under mildly acidic conditions mimicking the diabetic wound microenvironment. In vitro, Lut@ZIF-8 effectively suppressed reactive oxygen species accumulation and inhibited endothelial cell pyroptosis by downregulating the activation of NLRP3 inflammasome components, including caspase-1 and GSDMD, thereby preserving endothelial barrier integrity and angiogenic capacity. In vivo, Lut@ZIF-8-loaded scaffolds significantly reduced inflammatory cytokine expression, enhanced collagen deposition, promoted neovascularization and re-epithelialization, and ultimately accelerated wound closure in diabetic mice.

Conclusions

The pH-responsive Lut@ZIF-8 nanoplatform effectively modulates oxidative stress and endothelial cell pyroptosis in diabetic wounds, thereby promoting angiogenesis and tissue regeneration. This strategy provides a promising and innovative therapeutic approach for the treatment of chronic diabetic wounds.

Graphical Abstract

References

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Burns & Trauma

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Cite this article:
Deng S, Ying T, Zhang X, et al. Multifunctional nanofibrous membranes enhance diabetic wound healing by inhibiting endothelial pyroptosis and regulating macrophage polarization. Burns & Trauma, 2026, 14(2). https://doi.org/10.1093/burnst/tkag005

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Received: 20 August 2025
Revised: 25 December 2025
Accepted: 05 January 2026
Published: 19 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 License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.