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光热增强原位超分子水凝胶促进糖尿病患者细菌感染伤口愈合

Photothermal-enhanced in situ supramolecular hydrogel promotes bacteria-infected wound healing in diabetes.

作者信息

Zheng Chen, Wu Xuan, Liu Ming, Lan Yulong, Liu Qian, Cai Erya, Liao Zhiyong, Shen Jianliang

机构信息

College of Life and Environmental Science Wenzhou University Wenzhou Zhejiang China.

Zhejiang Engineering Research Center for Tissue Repair Materials Wenzhou Institute University of Chinese Academy of Sciences Wenzhou Zhejiang China.

出版信息

Smart Med. 2024 Feb 23;3(1):e20230047. doi: 10.1002/SMMD.20230047. eCollection 2024 Feb.

Abstract

Bacterial infection can impede the healing of chronic wounds, particularly diabetic wounds. The high-sugar environment of diabetic wounds creates a favorable condition for bacterial growth, posing a challenge to wound healing. In clinical treatment, the irregular shape of the wound and the poor mechanical properties of traditional gel adjuvants make them susceptible to mechanical shear and compression, leading to morphological changes and fractures, and difficult to adapt to irregular wounds. Traditional gel adjuvants are prepared in advance, while in situ gel is formed at the site of administration after drug delivery in a liquid state, which can better fit the shape of the wound. Therefore, this study developed an in situ HA/GCA/Fe-GOx gel using a photothermal-enhanced Fenton reaction to promote the generation of hydroxyl radicals (·OH). The generation of ·OH has an antibacterial effect while promoting the formation of the gel, achieving a dual effect. The addition of double-bonded adamantane (Ada) interacts with the host-guest effect of graphene oxide and the double-bond polymerization of HAMA gel, making the entire gel system more complete. At the same time, the storage modulus (G') of the gel increased from 130 to 330 Pa, enhancing the mechanical properties of the gel. This enables the gel to have better injectability and self-healing effects. The addition of GOx can consume glucose at the wound site, providing a good microenvironment for the repair of diabetic wounds. The gel has good biocompatibility and in a diabetic rat wound model infected with . , it can effectively kill bacteria at the wound site and promote wound repair. Meanwhile, the inflammation of wounds treated with HA/GCA/Fe-GOx + NIR was lighter compared to untreated wounds. Therefore, this study provides a promising strategy for treating bacterial-infected diabetic wounds.

摘要

细菌感染会阻碍慢性伤口的愈合,尤其是糖尿病伤口。糖尿病伤口的高糖环境为细菌生长创造了有利条件,对伤口愈合构成挑战。在临床治疗中,伤口形状不规则以及传统凝胶佐剂的机械性能较差,使其易受机械剪切和压缩,导致形态变化和破裂,难以适应不规则伤口。传统凝胶佐剂是预先制备的,而原位凝胶是在药物以液态给药后在给药部位形成的,它能更好地贴合伤口形状。因此,本研究利用光热增强的芬顿反应开发了一种原位HA/GCA/Fe-GOx凝胶,以促进羟基自由基(·OH)的生成。·OH的生成具有抗菌作用,同时促进凝胶的形成,实现双重效果。双键金刚烷(Ada)的加入与氧化石墨烯的主客体效应以及HAMA凝胶的双键聚合相互作用,使整个凝胶体系更加完整。同时,凝胶的储能模量(G')从130 Pa增加到330 Pa,增强了凝胶的机械性能。这使得凝胶具有更好的可注射性和自愈效果。GOx的加入可以消耗伤口部位的葡萄糖,为糖尿病伤口的修复提供良好的微环境。该凝胶具有良好的生物相容性,在感染了……的糖尿病大鼠伤口模型中,它可以有效杀灭伤口部位的细菌并促进伤口修复。同时,与未治疗的伤口相比,用HA/GCA/Fe-GOx + NIR治疗的伤口炎症更轻。因此,本研究为治疗细菌感染的糖尿病伤口提供了一种有前景的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b8e/11236056/10ca803c450a/SMMD-3-e20230047-g006.jpg

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