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Synthesis of Strong Adhesive Hydrogel, Gelatin O-Nitrosobenzaldehyde
Published on: November 11, 2022
ROS-responsive multifunctional hyaluronic acid/gelatin based adhesive hydrogel encapsulating baicalin and cerium
Wei Lu1, Yanming Zhao1, Hao Wen1
1Department of Orthopaedic Surgery, the First Affiliated Hospital of Jinzhou Medical University, Liaoning, 121001, PR China.
Abstract:
The management of chronic wounds in diabetic patients continues to pose a substantial clinical challenge, especially when complicated by methicillin-resistant Staphylococcus aureus (MRSA) infection, which exacerbates inflammation and impedes the healing process. To address this, we developed a Reactive Oxygen Species(ROS)-responsive, self-healing multifunctional hydrogel (HA/Gel@CeO₂@BA) incorporating baicalin (BA) and cerium dioxide (CeO₂) nanozymes with superoxide dismutase and catalase activities to synergistically provide antibacterial, antioxidant, anti-inflammatory, and pro-regenerative effects. The hydrogel comprises a dual-network structure: (1) a dynamic Schiff base-crosslinked network formed between hydrazine-modified hyaluronic acid (HA-DTPH) (containing disulfide bonds) and aldehyde-modified HA (HA-CHO), enabling tissue adhesion through amino-aldehyde bonding; and (2) a secondary network of gelatin methacrylate (GelMA) and acryloylated cyclodextrin, which anchors hydrophobic BA for sustained release. Dynamic Schiff base bonds and disulfide bonds undergo diabetes-responsive degradation via pathways involving reactive oxygen species, enabling drug release in response to the local environment. In vitro, HA/Gel@CeO₂@BA was found to scavenge ROS in macrophages, promote M2 polarization and enhance angiogenesis. It also exhibited strong antibacterial effects against Escherichia coli and S. aureus. In a diabetic rat model of infected wounds, the hydrogel significantly reduced the bacterial load and accelerated the healing process without the need for external intervention. This strategy combines ROS-triggered drug release and multifunctional therapeutic effects with biodegradability, demonstrating its high potential for clinical translation in the treatment of infected chronic wounds.