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Updated: Aug 14, 2026

Protocol to Create Chronic Wounds in Diabetic Mice
Published on: September 25, 2019
Structurally coupled polysaccharide-lignin tri-domain phyto-cryogel for microenvironment buffering of oxidative and
Waha Ismail Yahia Abdelmula1, Babbiker Mohammed Taher Gorish1, Bin Liu2
1International Joint Laboratory on Synthetic Biology and Biomass Biorefinery, Biofuels Institute, School of Emergency Management, School of the Environment and Safety Engineering, Jiangsu University, Zhenjiang, 212013, PR China.; Jiangsu Collaborative Innovation Center of Technology and Material of Water Treatment, Suzhou University of Science and Technology, Suzhou, 215009, PR China.
Abstract:
Infected diabetic wounds face a dual therapeutic challenge of rapid biomaterial degradation under combined oxidative-osmotic stress, and mechanical collapse of conventional redox-active polysaccharide gels upon prolonged wet-state exposure. To address these challenges, we engineered a tri-domain phyto-cryogel integrating oxidized lignin, gum Arabic, and Aloe vera into an interpenetrating architecture. A covalently crosslinked poly (N-vinylpyrrolidone-co-N,N'-methylenebisacrylamide) [poly(NVP-co-MBAM)] backbone provides wet-state persistence. At the same time, hydrogen-bond-rich polysaccharide domains maintain hydration under hyperosmotic challenge, and lignin-derived phenolic motifs contribute radical-scavenging capacity. The tri-domain cryogel retained consistent antioxidant activity across seven 2,2-diphenyl-1-picrylhydrazyl (DPPH) cycles (82.4 ± 0.6% to 81.0 ± 0.2%, p > 0.05), whereas binary preparations showed significant decay. In an infected diabetic animal model, the lignin-gum Arabic-Aloe vera (LGA) 0.2% tri-domain cryogel accelerated early-stage wound closure compared to a medical-grade bandage control (38.6% vs. 19.3% by Day 3, p < 0.01), accompanied by reduced cluster of differentiation 68 (CD68) macrophage infiltration, normalized redox ratios, and enhanced angiogenesis. These findings demonstrate that polymer architecture-driven microenvironment buffering, through integrated mitigation of oxidative stress, osmotic stress, and infection, can accelerate diabetic wound healing without relying on drug delivery.