School of Public Health, Guangdong Pharmaceutical University, Guangzhou 510310, China.
Int J Mol Sci. 2023 Jul 31;24(15):12238. doi: 10.3390/ijms241512238.
Metal-Organic Frameworks (MOFs) offer new ideas for the design of antibacterial materials because of their antibacterial properties, high porosity and specific surface area, low toxicity and good biocompatibility compared with other nanomaterials. Herein, a novel antimicrobial nanomaterial, MIL-101(Fe)@ZnO, has been synthesized by hydrothermal synthesis and characterized by FTIR, UV-vis, ICP-OES, XRD, SEM, EDS and BET to show that the zinc ions are doped into the crystal lattice of MIL-101(Fe) to form a Fe-Zn bimetallic structure. MIL-101(Fe)@ZnO was found to be effective against a wide range of antibacterial materials including , , , , and . It has a significant antibacterial effect, weak cytotoxicity, high safety performance and good biocompatibility. Meanwhile, MIL-101(Fe)@ZnO was able to achieve antibacterial effects by causing cells to produce ROS, disrupting the cell membrane structure, and causing protein leakage and lipid preoxidation mechanisms. In conclusion, MIL-101(Fe)@ZnO is an easy-to-prepare antimicrobial nanomaterial with broad-spectrum bactericidal activity and low toxicity.
金属有机骨架(MOFs)因其具有抗菌性能、高孔隙率和比表面积、低毒性和良好的生物相容性等特点,为抗菌材料的设计提供了新的思路。本文通过水热合成法合成了一种新型抗菌纳米材料 MIL-101(Fe)@ZnO,并通过 FTIR、UV-vis、ICP-OES、XRD、SEM、EDS 和 BET 对其进行了表征,结果表明锌离子被掺杂到 MIL-101(Fe)的晶格中,形成了 Fe-Zn 双金属结构。MIL-101(Fe)@ZnO 对包括 、 、 、 、 在内的多种抗菌材料均具有显著的抗菌效果。它具有显著的抗菌效果、较弱的细胞毒性、较高的安全性和良好的生物相容性。同时,MIL-101(Fe)@ZnO 能够通过引起细胞产生 ROS、破坏细胞膜结构以及导致蛋白质泄漏和脂质预氧化等机制来实现抗菌作用。总之,MIL-101(Fe)@ZnO 是一种易于制备的具有广谱杀菌活性和低毒性的抗菌纳米材料。