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Doxycycline Loaded Collagen-Chitosan Composite Scaffold for the Accelerated Healing of Diabetic Wounds
Published on: August 21, 2021
Multifunctional carboxymethyl chitosan-based supramolecular-polymeric hydrogel with integrated antibacterial and
Hong Jiang1, Xingyu Guo1, Luyao Wen1
1Collaborative Innovation Center of Henan Province for Green Manufacturing of Fine Chemicals, Key Laboratory of Green Chemical Media and Reactions, Ministry of Education, Henan Engineering Laboratory of Chemical Pharmaceutical and Biomedical Materials, School of Chemistry and Chemical Engineering, Henan Normal University, Xinxiang, 453007, China.
Abstract:
Skin is vulnerable to injuries that can lead to bacterial infection and prolonged inflammation, impeding the healing process. To address this, we developed an antibacterial and anti-inflammatory supramolecular-polymeric composite hydrogel for accelerated wound healing. The hydrogel is formed by integrating paromomycin sulfate-loaded G-quartet (G4) supramolecular nanofibers with a polymeric network of carboxymethyl chitosan grafted with phenylboronic acid (CMCS-PBA). The antibiotic, paromomycin sulfate, was in-situ loaded via dynamic Schiff base linkages with the aldehyde groups on the G4 fibers, enabling a controllable release. While the pure G4 hydrogel is mechanically weak, the introduced CMCS-PBA network significantly enhances the mechanical strength through multi-valent boronate ester bonds and supramolecular co-assembly, making it suitable for wound sites requiring mechanical robustness. The resulting composite hydrogel exhibits excellent tissue adhesion, hemostatic ability, and biocompatibility. It demonstrated potent antibacterial efficacy in vitro and in vivo. In a full-thickness mouse skin wound model, the hydrogel markedly accelerated wound closure and effectively modulated the wound microenvironment by reducing pro-inflammatory cytokines (TNF-α and IL-6) and elevating anti-inflammatory cytokine (IL-10). This work pioneers a synergistic supramolecular-polymeric strategy, yielding a multifunctional platform that surpasses the limitations of traditional single-network hydrogels, offering a versatile therapeutic strategy for managing infected and inflammatory wounds.

