Self‐Adaptive Allantoin@ZIF8 Nanocomposite Hydrogel with Resveratrol Synergy for MRSA‐Infected Wound Regeneration

自愈水凝胶 生物相容性 白藜芦醇 伤口愈合 化学 体内 壳聚糖 纳米复合材料 再生(生物学) 控制释放 羧甲基纤维素 生物医学工程 抗菌剂 生物物理学 药物输送 纳米技术 纳米颗粒 材料科学 体外 脚手架 组织工程
作者
Yongjie Zhu,Dun Liu,Mengran Zhao,Xinyi Jian,Enuo Peng,Xingping Zhao,Z Z Zhu,Bolin Tang,Benlong Shi
出处
期刊:Advanced Science [Wiley]
卷期号:13 (21): e20614-e20614
标识
DOI:10.1002/advs.202520614
摘要

Infected wounds present a formidable challenge to healing due to their complex pathological microenvironment, whereas conventional dressings are often functionally limited and ill-suited to adapt to dynamic wound changes. In this study, based on allantoin-loaded ZIF8 nanoparticles (Alla@ZIF8) and methacrylated quaternary ammonium carboxymethyl chitosan/resveratrol composite hydrogels (RMQCC), we designed and developed an adaptive multifunctional hydrogel system (Alla@ZIF8-Gel). This nanocomposite hydrogel exhibited multiple intelligent features, including pH-responsiveness and morphological adaptability. The quaternary ammonium carboxymethyl chitosan imparted well biocompatibility and robust antimicrobial properties. Electrostatic interactions and hydrogen bonds endowed hydrogels with excellent injectability and self-healing capabilities. The ZIF8 nanoparticles enabled the intelligent, on-demand release of allantoin, thereby promoting tissue regeneration. Resveratrol conferred potent antioxidant, anti-inflammatory, and immunomodulatory effects. The Alla@ZIF8-Gel dynamically modulated drug release kinetics in response to the wound microenvironment, synergistically delivering antibacterial, antioxidant, anti-inflammatory, and tissue-regenerative functions. Both in vitro and in vivo experimental results demonstrated that this adaptive hydrogel markedly accelerated the healing of MRSA-infected wounds, suppressed bacterial proliferation, alleviated oxidative damage and inflammatory responses, and enhanced collagen deposition, re-epithelialization, and neovascularization. This work provides a novel design paradigm for the development of intelligent, multifunctional therapeutic materials for infected wound management, with significant translational potential for clinical application.
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