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논문 기본 정보

자료유형
학술저널
저자정보
Wenjing Li (Changhai Clinical Research Unit Shanghai Changhai Hospital Naval Medical University) Ying Bei (College of Life Science Mudanjiang Medical University) Xiangqiang Pan (Jiangsu Key Laboratory of Advanced Functional Polymer Design and Application Department of Polymer Science and Engineering College of Chemistry Chemical Engineering and Materials Science Soochow Unive) Jian Zhu (Jiangsu Key Laboratory of Advanced Functional Polymer Design and Application Department of Polymer Science and Engineering College of Chemistry Chemical Engineering and Materials Science Soochow Unive) Zhengbiao Zhang (Jiangsu Key Laboratory of Advanced Functional Polymer Design and Application Department of Polymer Science and Engineering College of Chemistry Chemical Engineering and Materials Science Soochow Unive) Tinglin Zhang (Changhai Clinical Research Unit Shanghai Changhai Hospital Naval Medical University) Jieting Liu (College of Life Science Mudanjiang Medical University) Dan Wu (College of Life Science Mudanjiang Medical University) Meng Li (Department of Dermatology Shanghai Ninth People's Hospital Shanghai Jiaotong University) Yan Wu (College of Life Science Mudanjiang Medical University) Jie Gao (Changhai Clinical Research Unit Shanghai Changhai Hospital Naval Medical University)
저널정보
한국생체재료학회 생체재료학회지 생체재료학회지 제27권
발행연도
2023.3
수록면
1,358 - 1,379 (22page)
DOI
https://doi.org/10.1186/s40824-023-00367-w

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BackgroundMultifunctional hydrogels with controllable degradation and drug release have attracted extensive attention in diabetic wound healing. This study focused on the acceleration of diabetic wound healing with selenide-linked polydopamine-reinforced hybrid hydrogels with on-demand degradation and light-triggered nanozyme release. MethodsHerein, selenium-containing hybrid hydrogels, defined as DSeP@PB, were fabricated via the reinforcement of selenol-end capping polyethylene glycol (PEG) hydrogels by polydopamine nanoparticles (PDANPs) and Prussian blue nanozymes in a one-pot approach in the absence of any other chemical additive or organic solvent based on diselenide and selenide bonding-guided crosslinking, making them accessible for large-scale mass production. ResultsReinforcement by PDANPs greatly increases the mechanical properties of the hydrogels, realizing excellent injectability and flexible mechanical properties for DSeP@PB. Dynamic diselenide introduction endowed the hydrogels with on-demand degradation under reducing or oxidizing conditions and light-triggered nanozyme release. The bioactivity of Prussian blue nanozymes afforded the hydrogels with efficient antibacterial, ROS-scavenging and immunomodulatory effects, which protected cells from oxidative damage and reduced inflammation. Further animal studies indicated that DSeP@PB under red light irradiation showed the most efficient wound healing activity by stimulating angiogenesis and collagen deposition and inhibiting inflammation. ConclusionThe combined merits of DSeP@PB (on-demand degradation, light-triggered release, flexible mechanical robustness, antibacterial, ROS-scavenging and immunomodulatory capacities) enable its high potential as a new hydrogel dressing that can be harnessed for safe and efficient therapeutics for diabetic wound healing.

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