School of Nano-Tech and Nano-Bionics, University of Science and Technology of China, Hefei, 230026, China.
CAS Key Laboratory for Nano-Bio Interface, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou, 215123, China.
J Mater Chem B. 2023 Mar 8;11(10):2166-2183. doi: 10.1039/d2tb02403a.
Wound healing is a multifaceted process that involves hemostasis, inflammation, proliferation, and remodeling stages. Diabetic wounds affect the transition of the organized phases and result in delayed healing due to impaired angiogenesis, chronic inflammation, bacterial infection, and insufficient growth factors. Multifunctional heterostructural nanoparticles enriched minimally invasive hydrogels for on-demand procedural distribution to aid wound healing at various stages has become a promising strategy. Herein, silk fibroin-hyaluronic acid based injectable hydrogels incorporated with mace-like Au-CuS heterostructural nanoparticles (gAu-CuS HSs) were used to cure diabetic wounds. SF-HA and the rough surface of gAu-CuS HSs confer a synergistic hemostatic phase with a nano-bridge effect and rapidly close the wounds. During the inflammation stage, gAu-CuS HSs perform in-space resonance energy transfer under 808 nm laser irradiation which in return produces reactive oxygen species for bacterial destruction. The unusual mace-like rough structure of nanoparticles causes macrophage transfer to the M2 phenotype, regulates cytokine expression (interleukin 6, transforming factor-β1, interferon γ, and interleukin-10), promotes angiogenesis, and promotes cell multiplication and fibroblast emigration to the wound area during the proliferation and remodeling phase. Overall, the gAu-CuS HSs reinforced injectable hydrogel programmatically accelerates wound healing and could represent a versatile strategy for advanced diabetic wound healing.
伤口愈合是一个多方面的过程,涉及止血、炎症、增殖和重塑阶段。糖尿病伤口会影响有序阶段的过渡,并由于血管生成受损、慢性炎症、细菌感染和生长因子不足而导致愈合延迟。富含多功能异质结构纳米粒子的微创水凝胶,用于按需程序性分配,以在各个阶段辅助伤口愈合,已成为一种很有前途的策略。本文中,基于丝素蛋白-透明质酸的可注射水凝胶中掺入了狼牙棒状的 Au-CuS 异质结构纳米粒子(gAu-CuS HSs),用于治疗糖尿病伤口。SF-HA 和 gAu-CuS HSs 的粗糙表面赋予了协同止血相,具有纳米桥效应,并能迅速封闭伤口。在炎症阶段,gAu-CuS HSs 在 808nm 激光照射下进行空间共振能量转移,从而产生活性氧物质来破坏细菌。纳米粒子异常的狼牙棒状粗糙结构导致巨噬细胞向 M2 表型转移,调节细胞因子表达(白细胞介素 6、转化生长因子-β1、干扰素 γ 和白细胞介素-10),促进血管生成,并在增殖和重塑阶段促进细胞增殖和成纤维细胞向伤口区域迁移。总的来说,gAu-CuS HSs 增强型可注射水凝胶可程序化地加速伤口愈合,为先进的糖尿病伤口愈合提供了一种多功能策略。