Lellouche Jonathan, Kahana Edith, Elias Sivan, Gedanken Aharon, Banin Ehud
The Mina and Everard Goodman Faculty of Life Sciences, The Institute for Advanced Materials and Nanotechnology, Bar-Ilan University, Ramat-Gan, Israel.
Biomaterials. 2009 Oct;30(30):5969-78. doi: 10.1016/j.biomaterials.2009.07.037. Epub 2009 Aug 7.
The ability of bacteria to develop antibiotic resistance and colonize abiotic surfaces by forming biofilms is a major cause of medical implant-associated infections and results in prolonged hospitalization periods and patient mortality. This raises the urgent need to develop compounds that can inhibit bacterial colonization of surfaces. In this study, we present an unreported microwave-based synthesis of MgF(2) nanoparticles (Nps) using ionic liquid. We demonstrate the antimicrobial activity of these fluoride nanomaterials and their ability to restrict biofilm formation of common bacterial pathogens. Scanning and transmission electron microscopic techniques indicated that the MgF(2).Nps attach and penetrate into the cells. Flow cytometry analysis revealed that the Nps caused a disruption in the membrane potential. The MgF(2).Nps also induced membrane lipid peroxidation and once internalized can interact with chromosomal DNA. Based on these findings we further explored the possibility of using the MgF(2).Nps to coat surfaces and inhibit biofilm formation. A microwave synthesis and coating procedure was utilized to coat glass coupons. The MgF(2) coated surfaces effectively restricted biofilm formation of the tested bacteria. Taken together these results highlight the potential for developing MgF(2) nanoparticles in order to inhibit bacterial infections.
细菌通过形成生物膜产生抗生素耐药性并在非生物表面定植的能力,是与医用植入物相关感染的主要原因,会导致住院时间延长和患者死亡。这就迫切需要开发能够抑制细菌在表面定植的化合物。在本研究中,我们展示了一种尚未报道的基于微波的使用离子液体合成MgF₂纳米颗粒(Nps)的方法。我们证明了这些氟化物纳米材料的抗菌活性及其限制常见细菌病原体生物膜形成的能力。扫描和透射电子显微镜技术表明,MgF₂.Nps附着并穿透细胞。流式细胞术分析显示,Nps导致膜电位破坏。MgF₂.Nps还诱导膜脂质过氧化,一旦内化,就可以与染色体DNA相互作用。基于这些发现,我们进一步探索了使用MgF₂.Nps包被表面并抑制生物膜形成的可能性。利用微波合成和包被程序对玻璃片进行包被。MgF₂包被的表面有效地限制了受试细菌的生物膜形成。综上所述,这些结果突出了开发MgF₂纳米颗粒以抑制细菌感染的潜力。