Mu Xuemin, Zhang Qin, Zhang Meixuan, Zhang Shuhui, Zhao Wenyi, Song Xiaoming, Wang Xiaolin, Pan Lulu, Zhao Qi, Qiang Qingwang, Zhao Xiuhua, Li Yanyan
College of Chemistry, Chemical Engineering and Resource Utilization, Northeast Forestry University, Harbin 150040, People's Republic of China.
Engineering Research Center of Forest Bio-preparation, Ministry of Education, Northeast Forestry University, Harbin 150040, People's Republic of China.
Nanotechnology. 2025 Jun 20;36(26). doi: 10.1088/1361-6528/ade15e.
To develop a multifunctional curcumin-based self-assembled nanomedicine for antibacterial purposes and to provide substantial support for the development of novel multifunctional antibacterial agents, thereby mitigating the challenges posed by bacterial infections. Self-assembled curcumin nanoparticles (Cur NPs) were synthesized via solvent evaporation. Caffeic acid (CA) and iron ions were then reacted under mildly alkaline conditions (pH 8.0) to form metal-phenolic networks (MPNs), which were coated onto the Cur NPs (Cur@MPN). Efficient antibacterial performance is achieved by multifunctional Cur@MPN through spatiotemporally synergistic integration of photothermal therapy, chemodynamic therapy, and drug treatment. The results obtained from TEM, UV-vis spectroscopy, FTIR, and XPS confirmed the successful preparation of a multifunctional nano-antibacterial material, Cur@MPN, by modifying Cur NPs with MPNs through a coordination reaction between CA and iron ions. Cur@MPN exhibited excellent photothermal conversion efficiency (64.1%), pH-dependent hydroxyl radical (·OH) generation, and glutathione consumption. The minimum inhibitory concentration of Cur@MPN againstandwas 100g mland 120g ml, respectively, under the synergistic effect of multiple modalities.studies suggested that Cur@MPN accelerates wound healing by promoting angiogenesis and collagen deposition. These findings suggest that Cur@MPN is a promising innovative multifunctional self-assembled nanomaterial with considerable potential for antibacterial therapy and wound healing.
开发一种基于姜黄素的多功能自组装纳米药物用于抗菌目的,并为新型多功能抗菌剂的开发提供有力支持,从而缓解细菌感染带来的挑战。通过溶剂蒸发合成自组装姜黄素纳米颗粒(Cur NPs)。然后使咖啡酸(CA)和铁离子在弱碱性条件(pH 8.0)下反应形成金属-酚网络(MPNs),将其包覆在Cur NPs上(Cur@MPN)。多功能Cur@MPN通过光热疗法、化学动力疗法和药物治疗的时空协同整合实现高效抗菌性能。透射电子显微镜(TEM)、紫外-可见光谱、傅里叶变换红外光谱(FTIR)和X射线光电子能谱(XPS)获得的结果证实,通过CA与铁离子之间的配位反应,用MPNs修饰Cur NPs成功制备了一种多功能纳米抗菌材料Cur@MPN。Cur@MPN表现出优异的光热转换效率(64.1%)、pH依赖的羟基自由基(·OH)生成和谷胱甘肽消耗。在多种模式的协同作用下,Cur@MPN对大肠杆菌和金黄色葡萄球菌的最低抑菌浓度分别为100 μg/ml和120 μg/ml。体内研究表明,Cur@MPN通过促进血管生成和胶原蛋白沉积加速伤口愈合。这些发现表明,Cur@MPN是一种有前途的创新型多功能自组装纳米材料,在抗菌治疗和伤口愈合方面具有巨大潜力。