State Key Laboratory for Advanced Metals and Materials, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, P. R. China.
School of Chemistry and Biological Engineering, University of Science and Technology Beijing, Beijing 100083, P. R. China.
ACS Appl Bio Mater. 2023 Sep 18;6(9):3919-3926. doi: 10.1021/acsabm.3c00646. Epub 2023 Sep 7.
The antibacterial system based on the silver element has been a very promising antibacterial material. However, the antibacterial activity of silver nanomaterials largely depends on their chemical composition and physical properties. Herein, we prepared ultrasmall silver nanoclusters by directly reducing silver ions with antimicrobial peptide in a green way. The positively charged peptide ligands drove the silver nanoclusters binding to bacteria by electrostatic attraction. Contrary to the large-sized silver nanomaterials, the ultrasmall silver nanoclusters were able to rapidly penetrate bacteria membranes via strong hydrophobic association, significantly promoting the generation of reactive oxygen species, and the subsequent high oxidative stress led to bacterial death. Moreover, the silver nanoclusters with antibacterial peptide ligand exhibited good stability, low cytotoxicity, and long-term antibacterial activity. Besides, synergistic enhancement of silver nanoclusters on antibacterial activity was observed. Therefore, the silver nanoclusters conjugated with the antimicrobial peptide can act as a synergistic antibacterial agent, in which their bio-interactions with bacteria have been regulated to achieve a rapid, long-lasting, and broad-spectrum antibacterial effect.
基于银元素的抗菌系统一直是一种很有前途的抗菌材料。然而,纳米银材料的抗菌活性在很大程度上取决于其化学组成和物理性质。在此,我们通过绿色的方法,直接用抗菌肽还原银离子来制备超小的银纳米团簇。带正电荷的肽配体通过静电吸引驱动银纳米团簇与细菌结合。与大尺寸的银纳米材料相反,超小的银纳米团簇能够通过强烈的疏水相互作用快速穿透细菌膜,显著促进活性氧的产生,随后高氧化应激导致细菌死亡。此外,具有抗菌肽配体的银纳米团簇表现出良好的稳定性、低细胞毒性和长期的抗菌活性。此外,还观察到银纳米团簇对抗菌活性的协同增强作用。因此,与抗菌肽偶联的银纳米团簇可以作为一种协同抗菌剂,其与细菌的生物相互作用已被调节,以实现快速、持久和广谱的抗菌效果。