A multifunctional self-adhesive hydrogel for integrated hemostatic, antibacterial, and regenerative wound management with a synergistic dual-crosslinked network, acting as a promising strategy for the treatment of infected wounds.
Abstract
Conventional wound dressings often fail to integrate rapid hemostasis, antibacterial protection, and a pro-regenerative microenvironment, leading to persistent infection and delayed healing in complex wounds. Herein, we report a multifunctional self-adhesive hydrogel for integrated hemostatic, antibacterial, and regenerative wound management with a synergistic dual-crosslinked network. The hydrogel is composed of methylacrylamide-modified type I collagen (ColMA), o-nitrobenzene-modified hyaluronic acid (HANB), and methylacrylamide-modified chitosan (CSMA), and can rapidly form in situ under UV irradiation through free-radical polymerization of methacrylamide groups and Schiff base reactions between HANB and amino groups on ColMA/CSMA. Once applied to infected wounds, the hydrogel rapidly seals the wound bed and adheres tightly to the tissue, where HANB contributes hemostatic and adhesive properties, CSMA provides intrinsic antibacterial activity to inhibit bacterial colonization, and ColMA offers extracellular matrix-mimicking cues to support cell adhesion and tissue regeneration. Through this coordinated mechanism, the hydrogel not only controls bleeding and reduces infection risk at the early stage but also promotes the growth of granulation tissue, re-epithelialization, and matrix reconstruction during the subsequent repair phase. This platform integrates wound closure, antibacterial defense, and tissue regeneration into a single dressing system, acting as a promising strategy for the treatment of infected wounds.
Its unique integration of the multi-dynamic network and intrinsic bioactivity endows the hydrogel with adaptability and microenvironment-regulating capabilities, offering a promising strategy for burn wound management.
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This study develops an injectable, self-healing hydrogel adhesive that orchestrates wound repair through three aspects of microenvironment regulation that achieves wound closure comparable to sutures with reduced inflammation, offering a promising strategy for high-quality tissue regeneration.
Fengya Jing, Tao Liu, Anbei Chen et al.· Acta Biomaterialia· 0 citations
The photothermal-driven AHAMA+rhCM hydrogel represents a promising therapeutic strategy for infected wound repair, offering a dual-action solution that integrates effective antibacterial properties with enhanced tissue regeneration capabilities.
Yafang Chen, Xue Zhan, Zhenyu Luo et al.· Small· 0 citations
Wound healing is a multifaceted biological process comprising the phases of hemostasis, inflammation, proliferation, and remodeling, all of which require supportive microenvironment for optimal tissue regeneration. Biopolymer-based hydrogels, derived from materials such as cellulose and its derivatives, chitosan, alginate, and hyaluronic acid, have emerged as promising wound dressing materials due to their excellent biocompatibility, biodegradability, moisture-retention capacity, and potential to mimic the native extracellular matrix. The structural characteristics, wound healing functions, and underlying mechanisms of these biopolymers are critically examined and summarized in tabular form. The review further highlights the incorporation of natural and synthetic therapeutic agents, growth factors, stem-cell-derived products, and peptides into biopolymer matrices to enhance therapeutic efficacy. The examined research findings indicate significant increases in fluid intake, moisture retention, antibacterial activity, angiogenesis, collagen deposition, tissue regeneration, and wound healing rates. Translational difficulties, regulatory issues, clinical research, and new patent activity pertaining to advanced wound healing biomaterials are also covered in the review. Despite tremendous improvements, issues still exist in bulk manufacturing, long-term safety, reproducibility, mechanical stability, and clinical validation. Future innovations are anticipated to concentrate on smart, multipurpose, and customized hydrogel systems that can integrate drug delivery, biosensing, and regenerative capabilities while reacting dynamically to wound microenvironments. Overall, biopolymer-based hydrogels are a flexible, rapidly developing platform with significant promise to improve next-generation skin tissue engineering and change the treatment of both acute and chronic wounds.
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A multifunctional hydrogel dressing was constructed from carboxymethyl chitosan and oxidized dextran as the dynamic network, incorporating CeO2 nanozymes for early anti-inflammatory and antioxidant effects and PLGA microspheres loaded with astragaloside IV for sustained pro-regeneration.
Xihao Wang, Jingting Huang, Chuipin Kong et al.· ACS Applied Materials and In...· 0 citations
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