Copper-based polymer-metal–organic framework embedded with Ag nanoparticles: Long-acting and intelligent antibacterial activity and accelerated wound healing

生物相容性 金属有机骨架 化学 配体(生物化学) 抗菌活性 聚合物 纳米颗粒 自愈水凝胶 核化学 水溶液中的金属离子 化学工程 材料科学 金属 吸附 高分子化学 纳米技术 有机化学 细菌 受体 工程类 生物 生物化学 遗传学
作者
Chuanpan Guo,Fang Cheng,Gaolei Liang,Shuai Zhang,Qiaojuan Jia,Linghao He,Shuxia Duan,Yingkun Fu,Zhihong Zhang,Miao Du
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:435: 134915-134915 被引量:124
标识
DOI:10.1016/j.cej.2022.134915
摘要

Herein, we provided a novel copper-based polymer-metal–organic framework (polyCu-MOF) as an efficient scaffold for loading silver nanoparticles (denoted as [email protected]), which was applied as a superior antibacterial agent for wound healing. PolyCu-MOF was prepared by using the polyether ligand containing 1,4-benzenedicarboxylic acid (H2BDC) unit as building block, 4,4′-bipyridine as co-ligand, and copper ions as coordination centers. Given that polyCu-MOF comprised an ultrathin nanosheet-like structure, abundant carboxyl moieties, and structure defects and possessed large specific surface area and high porosity, large amounts of Ag ions were adsorbed in the polyCu-MOF network, forming [email protected] hybrid after reduction by NaBH4. Compared with the [email protected] hybrid, in which Cu-MOF was synthesized using H2BDC as ligand, the [email protected] hybrid contained lower density of copper nodes and higher loading amount of Ag NPs, thereby showing lower released amount of Cu2+ ions and higher released amount of Ag+ ions, enhancing biocompatibility, and decreasing hemolysis. In vitro experiments showed that [email protected] efficiently killed bacteria through damaging cell integrity caused by the production of reactive oxygen species and disruption of bacterial metabolism. Furthermore, in vivo experiments revealed that [email protected] improved the healing efficiency of bacteria-infected wound because of the synergistic antibacterial effect, promoting skin regeneration and dense collagen deposition. The present work can provides an effective antibacterial platform based on polymer-MOF and extends great potential applications of MOFs in wound healing.
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