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Research Article | Open Access

Thermo-responsive cascade antimicrobial platform for precise biofilm removal and enhanced wound healing

Ting Du1,† , Jiangli Cao1,†, Zhannuo Zhang1, Zehui Xiao1, Jingbo Jiao1, Zhiyong Song2, Xinjun Du1( ), Shuo Wang3 ( )
State Key Laboratory of Food Nutrition and Safety, College of Food Science and Engineering, Tianjin University of Science and Technology, No. 29, Thirteenth Street, Binhai New Area, Tianjin 300457, PR China
College of Science, Huazhong Agricultural University, No. 1, Shizishan Street, Hongshan District, Wuhan 430070, PR China
Tianjin Key Laboratory of Food Science and Health, School of Medicine, Nankai University, No. 38 Tongyan Road, Haihe Education Park, Jinnan District, Tianjin 300071, PR China

†Ting Du and Jiangli Cao contributed equally to this work.

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Highlights

• A multifunctional specific therapeutic photo-activated release nanosystem (HMAPH) against biofilms and bacteria and promoting wound healing is developed.

• HMAPH can bind bacterial outer membrane through polymyxin B to increase bacterial membrane sensitivity to photodynamic treatment and provide favorable conditions for targeted and precise treatment of bacterial infections.

• Under dual NIR irradiation, a large amount of HMAPH-released iron ions reacted with H2O2 in bacteria to generate hydroxyl radicals (•OH), coupled with ROS generated by photodynamic activity of MB released by light-induced activation, achieving photothermal synergistic inhibition of bacterial infection.

• In vivo experiments revealed that HMAPH can accelerate P. aeruginosa-infected wound healing by promoting angiogenesis and skin regeneration, inhibiting the inflammatory response and promoting M1 to M2 polarization.

Abstract

Background

Bacterial infection, tissue hypoxia and inflammatory response can hinder infected wound repair. This study aimed to develop a multifunctional specific therapeutic photo-activated release nanosystem [HMPB@MB@AuNPs@PMB@HA (HMAPH)] by loading photosensitizer methylene blue (MB) into hollow mesoporous Prussian blue nanostructures and modifying the surface with gold particles, polymyxin B (PMB) and hydrophilic hyaluronic acid.

Methods

The HMAPH was characterized using transmission electron microscopy, UV–vis, Fourier-transform infrared spectroscopy, X-ray diffraction and X-ray photon spectroscopy. The photothermal performance, iron ion release and free radical generation of the HMAPH were measured under different conditions to investigate its thermo-responsive cascade reaction. The antibacterial ability of HMAPH was investigated using live/dead fluorescence tests. The morphology and membrane integrity of Pseudomonas aeruginosa (P. aeruginosa) were investigated using transmission electron microscopy. The anti-biofilm activity of HMAPH was evaluated using crystal violet and SYBR Green I staining. Finally, we established a mouse model of a skin wound infected by P. aeruginosa to confirm the in vivo effectiveness of HMAPH. We used immunofluorescent staining, hematoxylin–eosin staining, Masson staining and enzyme-linked immunosorbent assay to examine whether HMAPH promoted wound healing and reduced inflammatory damage.

Results

In this study, hyaluronic acid was decomposed under the action of hyaluronidase. Also, the exposed nanomaterials specifically bound to the outer membrane of P. aeruginosa through PMB to increase the membrane sensitivity to photodynamic treatment. Under dual-light irradiation, a large amount of iron ions released by HMAPH underwent a Fenton reaction with H2O2 in bacteria to generate hydroxyl radicals (•OH), enabling direct killing of cells by hyperthermia. Additionally, the photodynamic activity of MB released by photo-induced activation led to the generation of reactive oxygen species, achieving synergistic and effective inhibition of P. aeruginosa. HMAPH also inhibited biofilm formation and downregulated the expression of virulence factors. In vivo experiments revealed that HMAPH accelerated the healing of P. aeruginosa-infected wounds by promoting angiogenesis and skin regeneration, inhibiting the inflammatory response and promoting M1 to M2 polarization.

Conclusions

Our study proposed a strategy against bacteria and biofilms through a synergistic photothermal–photodynamic–Fenton reaction, opening up new prospects for combating biofilm-associated infections.

Graphical Abstract

References

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Burns & Trauma
Article number: tkae038

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Cite this article:
Du T, Cao J, Zhang Z, et al. Thermo-responsive cascade antimicrobial platform for precise biofilm removal and enhanced wound healing. Burns & Trauma, 2024, 12: tkae038. https://doi.org/10.1093/burnst/tkae038

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Received: 29 December 2023
Revised: 29 May 2024
Accepted: 19 June 2024
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 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.