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Synthesis of Strong Adhesive Hydrogel, Gelatin O-Nitrosobenzaldehyde
Published on: November 11, 2022
A high strength multifunctional lignin-based hydrogel dressing with antibacterial, antioxidant, hemostatic and
Yuqing Wang1, Shuo Tang1, Yuting Fu2
1National & Local Joint Engineering Laboratory for New Petro-chemical Materials and Fine Utilization of Resources, Key Laboratory of Light Energy Conversion Materials of Hunan Province College, College of Chemistry and Chemical Engineering, Hunan Normal University, Changsha 410081, PR China.
Abstract:
Developing multifunctional hydrogel wound dressings that integrate hemostasis, adhesion, antibacterial activity, mechanical robustness, and antioxidant properties remains a significant challenge. This study employed both curcumin and lignin to reduce silver ions in situ while simultaneously incorporating Callicarpa nudiflora into an acrylamide-acrylic acid (AM/AA) hydrogel system. Characterization techniques including FTIR, XRD, XPS, SEM, swelling tests, rheological measurements, and mechanical tests revealed that lignin and curcumin synergistically generate quinone free radicals, promoting the self-gelation of the AA/AM system and resulting in the formation of an Ag@Lig-Cur NPs/C.nudiflora-P (AM-AA) hydrogel. Furthermore, the incorporation of Callicarpa nudiflora and Ag@Lig-Cur NPs modulated both covalent and non-covalent interactions within the P(AM-AA) polymer network, endowing the hydrogel with an ultra-high tensile strain of 2100 %. The hydrogel also exhibited potent antibacterial efficacy, achieving inhibition rates of up to 99 % against both Staphylococcus aureus and Escherichia coli, alongside a remarkable DPPH radical scavenging rate of 90 %, indicating superior antioxidant activity. Notably, the hydrogel demonstrated exceptional hemostatic performance, achieving complete control of hepatic hemorrhage within 30 s of application. In a mouse full-thickness skin defect model, the Ag@Lig-Cur NPs/C.nudiflora-P(AM-AA) hydrogel achieved an exceptional wound healing rate of 98.9 %, highlighting its significant potential as an advanced wound dressing material.

