透明质酸
光热治疗
酶
体内
透明质酸酶
伤口愈合
细菌
化学
微生物学
炎症
医学
生物
生物化学
免疫学
纳米技术
材料科学
生物技术
遗传学
解剖
作者
Yijun Liu,Xuan Zhang,Silan Yang,Qiuyan Guo,Yuying Zhang,Zishu Wang,Shan Xu,Dan Qiao,MeiGui Ma,Pengwu Zheng,Wufu Zhu,Qingshan Pan
标识
DOI:10.1016/j.ijbiomac.2024.132277
摘要
The high-glycemic microenvironment of diabetic wounds promotes bacterial proliferation, leading to persistent infections and delayed wound healing. This poses a significant threat to human health, necessitating the development of new nanodrug visualization platforms. In this study, we designed and synthesized cascade nano-systems modified with targeted peptide and hyaluronic acid for diabetic infection therapy. The nano-systems were able to target the site of infection using LL-37, and in the microenvironment of wound infection, the hyaluronic acid shell of the nano-systems was degraded by endogenous hyaluronidase. This precise degradation released a cascade of nano-enzymes on the surface of the bacteria, effectively destroying their cytoskeleton. Additionally, the metals in the nano-enzymes provided a photo-thermal effect, accelerating wound healing. The cascade nano-visualization platform demonstrated excellent bactericidal efficacy in both in vitro antimicrobial assays and in vivo diabetic infection models. In conclusion, this nano-system employs multiple approaches including targeting, enzyme-catalyzed therapy, photothermal therapy, and chemodynamic therapy to kill bacteria and promote healing. The Ag@Pt-Au-LYZ/HA-LL-37 formulation shows great potential for the treatment of diabetic wounds.
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