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Updated: Sep 7, 2026

A Protocol for Constructing a Rat Wound Model of Type 1 Diabetes
Published on: February 17, 2023
An NIR-responsive FeS-loaded alginate hydrogel promotes diabetic wound healing through Nrf2 activation and macrophage
Xiaofang Wang1, Jun Chen2, Tingyi Guo3
1Department of Anesthesiology, Shengjing Hospital of China Medical University, Shenyang, China.
Abstract:
Diabetic wounds are characterized by excessive oxidative stress, persistent inflammation, and impaired tissue regeneration, which collectively hinder normal wound healing. Here, we developed a near-infrared (NIR)-responsive sodium alginate hydrogel incorporating nano‑iron sulfide (nFeS) through mild gelation mediated by calcium carbonate and glucono-δ-lactone. The resulting SA-nFeS hydrogel exhibited a porous structure, favorable rheological properties, hydrogen peroxide-responsive degradation, radical-scavenging activity, and good cytocompatibility. NIR irradiation accelerated the release of Fe from the hydrogel, increasing the cumulative release from approximately 35.5% to 75.4% over 48 h. In cells exposed to oxidative stress, the NIR-treated SA-nFeS hydrogel markedly reduced intracellular reactive oxygen species and promoted Nrf2 nuclear translocation, accompanied by decreased Keap1 expression and increased expression of the downstream antioxidant proteins HO-1, SOD1, SOD2, and GPX4. Furthermore, the hydrogel suppressed pro-inflammatory macrophage markers and cytokines while increasing the expression of CD206, Arg-1, and IL-10, indicating a shift toward a pro-healing macrophage phenotype. In a streptozotocin-induced diabetic full-thickness wound model, SA-nFeS combined with NIR irradiation achieved approximately 93% wound-area reduction by Day 14 and promoted re-epithelialization, granulation tissue formation, and collagen deposition. No obvious histopathological abnormalities were observed in the major organs. Collectively, these findings demonstrate that the NIR-responsive SA-nFeS hydrogel promotes diabetic wound repair by activating endogenous antioxidant defense and modulating the inflammatory microenvironment, providing a promising therapeutic platform for chronic wound management.
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