Department of Agricultural Microbiology, Faculty of Agricultural Sciences, Aligarh Muslim University, Aligarh 202002, U.P., India.
Department of Agricultural Microbiology, Faculty of Agricultural Sciences, Aligarh Muslim University, Aligarh 202002, U.P., India.
Microb Pathog. 2017 Oct;111:375-387. doi: 10.1016/j.micpath.2017.09.019. Epub 2017 Sep 12.
Nanotechnology based therapeutics has emerged as a promising approach for augmenting the activity of existing antimicrobials due to the unique physical and chemical properties of nanoparticles (NPs). Nickel oxide nanoparticles (NiO-NPs) have been suggested as prospective antibacterial and antitumor agent. In this study, NiO-NPs have been synthesized by a green approach using Eucalyptus globulus leaf extract and assessed for their bactericidal activity. The morphology and purity of synthesized NiO-NPs determined through various spectroscopic techniques like UV-Visible, FT-IR, XRD, EDX and electron microscopy differed considerably. The synthesized NiO-NPs were pleomorphic varying in size between 10 and 20 nm. The XRD analysis revealed the average size of NiO-NPs as 19 nm. The UV-Vis spectroscopic data showed a strong SPR of NiO-NPs with a characteristic spectral peak at 396 nm. The FTIR data revealed various functional moieties like C=C, C-N, C-H and O-H which elucidate the role of leaf biomolecules in capping and dispersal of NiO-NPs. The bioactivity assay revealed the antibacterial and anti-biofilm activity of NiO-NPs against ESβL (+) E. coli, P. aeruginosa, methicillin sensitive and resistant S. aureus. Growth inhibition assay demonstrated time and NiO-NPs concentration dependent decrease in the viability of treated cells. NiO-NPs induced biofilm inhibition was revealed by a sharp increase in characteristic red fluorescence of PI, while SEM images of NiO-NPs treated cells were irregular shrink and distorted with obvious depressions/indentations. The results suggested significant antibacterial and antibiofilm activity of NiO-NPs which may play an important role in the management of infectious diseases affecting human health.
基于纳米技术的治疗方法因其纳米粒子(NPs)的独特物理和化学性质而成为增强现有抗菌剂活性的有前途的方法。氧化镍纳米粒子(NiO-NPs)已被提议作为有前途的抗菌和抗肿瘤剂。在这项研究中,使用桉树叶提取物通过绿色方法合成了 NiO-NPs,并评估了它们的杀菌活性。通过各种光谱技术(如 UV-可见,FT-IR,XRD,EDX 和电子显微镜)确定的合成 NiO-NPs 的形貌和纯度有很大差异。合成的 NiO-NPs 为多形性,尺寸在 10 至 20nm 之间变化。XRD 分析表明 NiO-NPs 的平均尺寸为 19nm。紫外可见光谱数据显示 NiO-NPs 的强 SPR,特征光谱峰在 396nm 处。FTIR 数据显示了各种功能团,如 C=C,C-N,C-H 和 O-H,这些功能团说明了叶生物分子在 NiO-NPs 的覆盖和分散中的作用。生物活性测定表明 NiO-NPs 对 ESβL(+)大肠杆菌,铜绿假单胞菌,耐甲氧西林敏感和耐甲氧西林金黄色葡萄球菌具有抗菌和抗生物膜活性。生长抑制测定表明,NiO-NPs 浓度和处理时间依赖性地降低了处理细胞的活力。PI 的特征红色荧光的急剧增加揭示了 NiO-NPs 诱导的生物膜抑制,而 NiO-NPs 处理细胞的 SEM 图像不规则收缩且变形,明显凹陷/凹陷。结果表明 NiO-NPs 具有显著的抗菌和抗生物膜活性,这可能在管理影响人类健康的传染病方面发挥重要作用。