Jul 2026· ACS Applied Bio Materials· 0 citations· 50 references
Medicine
TL;DR
In vivo diabetic mouse wound models confirmed that the MSFP hydrogel synergistically improved the wound microenvironment by establishing barrier protection, inhibiting bacterial growth, reducing inflammation, promoting M2 macrophage polarization, and enhancing vascularization.
Abstract
The abnormal microenvironment of chronic diabetic wounds leads to the disorder of the tissue repair process. Herein, based on the principles of click chemistry, a multifunctional rapid gelation hydrogel dressing (MSFP hydrogel) was designed for the treatment of diabetic wounds. The hydrogel was formed via thiol-ene click reaction between thiolated Pluronic F127 (F127SH) and maleimide-modified gelatin (GelatinMAL). This thiol-ene click reaction required no metal catalyst, exhibited good biocompatibility, and proceeded under mild conditions. The system incorporated antimicrobial component F127-acetylbromide (F127AcBr) and puerarin (PUE) and responded to overexpressed matrix metalloproteinase 9 (MMP-9) at wound sites, enabling controlled drug release. In vitro experiments demonstrated that the MSFP hydrogel effectively eliminated ROS; modulated macrophage polarization; promoted human umbilical vein endothelial cell proliferation, migration, and tube formation; and exhibited robust antibacterial activity against Staphylococcus aureus and Escherichia coli. In vivo diabetic mouse wound models confirmed that the MSFP hydrogel synergistically improved the wound microenvironment by establishing barrier protection, inhibiting bacterial growth, reducing inflammation, promoting M2 macrophage polarization, and enhancing vascularization. Collectively, this multifunctional hydrogel can promote diabetic wound healing through immunoregulation, angiogenesis, and antibacterial activity, presenting a promising therapeutic strategy for clinical application.
A multifunctional peptide-based antibacterial hydrogel (PAHG) for treating infected wounds, constructed through the incorporation of Cys-Arg-NH2 (CR)-Ag nanoassemblies into a bioactive matrix with excellent antibacterial activity against Escherichia coli and methicillin-resistant Staphylococcus aureus.
Heng Ge, Wen Yuan, Yulin Sun et al.· Journal of materials chemist...· 0 citations
It is demonstrated that the catechol-nanocellulose/chitosan polymeric hydrogel effectively overcomes adhesion, infection, and oxidative stress barriers in diabetic wound healing, making it a promising candidate for difficult-to-heal chronic ulcers.
With its integrated hemostatic, antioxidant, antibacterial, and pro-regenerative properties, the CBOS hydrogel offers a viable and attractive therapeutic approach for complex wound tissue repair.
Xueyan Hou, Yanan Lu, Tenglong Xu et al.· ACS Applied Materials and In...· 0 citations
HA-c-FZ1 functions as a pH-responsive hydrogel dressing that combines peptide delivery and antimicrobial, redox-regulatory, immunomodulatory, and pro-angiogenic functions that positions it as a therapy for chronic diabetic wound repair by simultaneously addressing infection, inflammation, oxidative stress, and vascular regeneration.
Zhe Fu, Jingyu Jiang, Yutong Wu et al.· Burns & Trauma· 2 citations
This multifunctional hydrogel provides a promising strategy for diabetic wound management by integrating antibacterial potential and tissue regeneration by integrating antibacterial potential and tissue regeneration.
The high glycemic environment of diabetic wounds predisposes to bacterial infections that seriously threaten the wound healing process. Therefore, inhibition of bacterial infection and remodeling of the wound microenvironment are crucial for the healing of diabetic infected wounds. In this study, gold nanoparticles (Au NPs) and glucose oxidase (GOx) were loaded in situ onto the surface of zeolitic imidazolate framework-8 nanoparticles (ZIF-8 NPs) to prepare ZIF-8@Au@GOx (ZAG) nanoenzymes. It catalyzed the production of glucuronic acid and H2O2 from glucose, lowered the wound pH, promoted the release of Zn2+, and catalyzed the production of hydroxyl radicals (·OH) from H2O2, thus serving to regulate the wound microenvironment, reducing glucose levels, and providing efficient antimicrobial activity. Subsequently, the nanoenzymes were loaded into β-cyclodextrin-based host-guest interaction and perylene-bonded tandem highly dynamic adaptive (DSA) hydrogels to obtain nanoenzyme-functionalized hydrogels (ZAG@Gel). The hydrogel could adapt to the shape of the wound, effectively fit the damaged skin, and play a role in reducing the toxicity and slowing down the release. In vitro studies showed that ZAG@Gel could release ZAG nanoenzymes in situ, causing the bacterial surface to crumple, the cell membrane structure to be disrupted, and the internal substances to be leaked. In vivo animal experiments showed that the wound healing rate after ZAG@Gel treatment reached nearly 98.06%. Thus, this highly effective antibacterial nanoenzyme-functionalized hydrogel has a strong bactericidal ability and shows good pro-diabetic infected wound healing properties.
Changyu Yao, Dongqin Zhang, Jiaqi Kan et al.· ACS Biomaterials Science & E...· 0 citations
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