National and Local Joint Engineering Research Center of Biomedical Functional Materials, School of Chemistry and Materials Science, Nanjing Normal University, Nanjing 210023, P. R. China.
Biomater Sci. 2022 Sep 27;10(19):5608-5619. doi: 10.1039/d2bm00845a.
The drug-resistance of bacteria poses a serious threat to public health, so the exploration of new antibacterial materials has attracted extensive attention. Here, we report Au@ZnO@SiO-ICG nanomotors as an antibacterial candidate. Firstly, we prepared the Janus structure Au@ZnO loaded with indocyanine green (ICG) and constructed a synergistic antibacterial platform with photothermal and photodynamic properties triggered by dual light sources. Specifically, the metal/semiconductor heterostructure of Au@ZnO has a synergistic effect under ultraviolet (UV) irradiation, which can adjust the transfer of interface electrons, so as to greatly improve the generation of cytotoxic ROS for photodynamic sterilization. The loaded ICG is an effective photosensitizer, and can induce a stronger photothermal effect in collaboration with Au under near-infrared light (NIR). In addition, the asymmetric structures of nanomotors have autonomous movement with the help of generated temperature gradient when exposed to NIR light, conducive to breaking through the bacterial membrane and improving the membrane insertion ability of antibacterial therapeutic agents. The results indicate that the prepared Au@ZnO@SiO-ICG nanomotors show excellent light responses and synergistic sterilization ability to Gram-negative () and Gram-positive (). This study will provide a new idea for the application of metal-semiconductor nanocomposites in the treatment of bacterial infection.
细菌的耐药性对公共健康构成了严重威胁,因此,新的抗菌材料的探索引起了广泛关注。在这里,我们报告了 Au@ZnO@SiO-ICG 纳米马达作为一种抗菌候选物。首先,我们制备了负载有吲哚菁绿(ICG)的 Janus 结构 Au@ZnO,并构建了具有光热和光动力性质的协同抗菌平台,该平台由双光源触发。具体而言,Au@ZnO 的金属/半导体异质结构在紫外(UV)照射下具有协同作用,能够调整界面电子的转移,从而大大提高光动力杀菌的细胞毒性 ROS 的产生。负载的 ICG 是一种有效的光敏剂,并且可以在近红外(NIR)光下与 Au 协同作用,诱导更强的光热效应。此外,纳米马达的不对称结构在暴露于 NIR 光时会产生温度梯度,从而有助于自主运动,有利于突破细菌膜并提高抗菌治疗剂的膜插入能力。结果表明,所制备的 Au@ZnO@SiO-ICG 纳米马达表现出优异的光响应和协同杀菌能力,能够有效杀灭革兰氏阴性菌()和革兰氏阳性菌()。这项研究将为金属-半导体纳米复合材料在细菌感染治疗中的应用提供新的思路。