Department of Biosciences, COMSATS Institute of Information Technology, Islamabad, Pakistan.
Department of Physics, Faculty of Sciences, University of Gujrat, Gujrat, Pakistan.
Mater Sci Eng C Mater Biol Appl. 2019 May;98:125-133. doi: 10.1016/j.msec.2018.12.087. Epub 2018 Dec 28.
Infectious diarrhea caused by the food borne pathogen, Campylobacter jejuni, is a major threat to public health worldwide leads high incidence of child mortality each year. In the present study, hydrothermal synthesis of Silver-Graphene-TiO nanocomposites along with TiO, TiO-Graphene and TiO-silver nanocomposites was done and the samples were characterized using X-ray diffraction (XRD), tunneling electron microscopy (TEM) and UV-Vis Spectroscopy. Effect of silver and graphene addition on the broad spectrum antibacterial ability of TiO was studied under visible light. Moreover, the effects on bacterial survival, membrane integrity, cellular motiltiy and biofilm formation of C. jejuni were also evaluated. A synergetic effect of silver and graphene on Silver-Graphene-TiO nanocomposites was observed as indicated by its increased visible light sensitivity and enhanced antibacterial activity under visible light compared to its parent derivatives. Silver-Graphene-TiO composites effectively reduced growth and caused leakage of protein and DNA from C. jejuni cell. Atomic Force Microscopy was used to confirm bacterial cell damage. Besides, it also reduced motillity, hydrophobicity and autoaggregation of C. jejuni and showed excellent inhibition of biofilm formation. Furthermore, no significant cytotoxicity of synthesized nanoparticles was observed in human cell lines. We propose that Silver-Graphene-TiO composites can be used as effective antimicrobial agents to control the spread of C. jejuni by preventing both bacterial growth and biofilm formation.
由食源性病原体空肠弯曲菌引起的感染性腹泻是全球公共卫生的主要威胁,每年导致高比例的儿童死亡。在本研究中,采用水热合成法制备了银-石墨烯-TiO 纳米复合材料以及 TiO、TiO-石墨烯和 TiO-银纳米复合材料,并通过 X 射线衍射(XRD)、隧道电子显微镜(TEM)和紫外可见光谱(UV-Vis Spectroscopy)对样品进行了表征。研究了在可见光下添加银和石墨烯对 TiO 广谱抗菌能力的影响。此外,还评估了其对空肠弯曲菌存活、膜完整性、细胞迁移和生物膜形成的影响。银和石墨烯对银-石墨烯-TiO 纳米复合材料的协同作用,表现为其可见光灵敏度增加,可见光下抗菌活性增强,与母体衍生物相比。银-石墨烯-TiO 复合材料有效抑制了空肠弯曲菌的生长,并导致其细胞内蛋白质和 DNA 的泄漏。原子力显微镜用于确认细菌细胞的损伤。此外,它还降低了空肠弯曲菌的迁移性、疏水性和自聚集性,并表现出对生物膜形成的优异抑制作用。此外,在人细胞系中未观察到合成纳米粒子的明显细胞毒性。我们提出,银-石墨烯-TiO 复合材料可以用作有效的抗菌剂,通过防止细菌生长和生物膜形成来控制空肠弯曲菌的传播。