Enzyme-regulated NO programmed to release from hydrogel-forming microneedles with endogenous/photodynamic synergistic antibacterial for diabetic wound healing

明胶 自愈水凝胶 聚赖氨酸 伤口愈合 光热治疗 单宁酸 透明质酸 谷氨酰胺 控制释放 化学 药理学 生物医学工程 材料科学 纳米技术 生物化学 医学 外科 高分子化学 有机化学 氨基酸 解剖
作者
Penghui Wang,Yajie Pu,Yanhan Ren,Wenhao Kong,Liangliang Xu,Wenjie Zhang,Tianqi Shi,Juping Ma,Shuang Li,Xiaoyan Tan,Bo Chi
出处
期刊:International Journal of Biological Macromolecules [Elsevier BV]
卷期号:226: 813-822 被引量:33
标识
DOI:10.1016/j.ijbiomac.2022.12.063
摘要

The infection-prone wound pathology microenvironment leads to ulceration and difficult healing of diabetic wounds, which seriously affects the quality of survival of patients. In this study, natural polymer materials gelatin and polylysine were used as substrates. By introducing iron/tannic acid (FeIIITA) composite nanoparticles with excellent photothermal properties into the system, the glutamine residues of gelatin were crosslinked with the primary ammonia of polylysine by glutamine aminotransferase. A nanocomposite hydrogel with excellent antibacterial ability and NO production was constructed it was used to improve the clinical problems of diabetes wounds that were difficult to vascularize and easy to be infected. Under the premise of maintaining its structural stability, the hydrogel can be customized to meet the needs of different mechanical strengths by adjusting the ratios to match different diabetic wounds. Meanwhile, the photothermal effect of FeIIITA nanoparticles can synergize with the endogenous antibacterial ability of polylysine to improve the antibacterial efficacy of hydrogels. The potential of hydrogel to promote intracellular NO production was confirmed by fluorescent staining. Microneedle patches prepared from hydrogel can be applied to diabetic wounds, which can achieve NO deep release. Its anti-inflammatory and angiogenic abilities are also useful in achieving effective healing of diabetic wounds.
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