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金属氧化物和混合金属氧化物纳米颗粒对细菌细胞通透性的研究:分析纳米颗粒抗菌活性的影响因素。

Bacterial cell permeability study by metal oxide and mixed metal oxide nanoparticles: analysis of the factors contributing to the antibacterial activity of nanoparticles.

机构信息

Indian Institute of Technology Kharagpur, Kharagpur, West Bengal, 721302, India.

Indian Institute of Technology Guwahati, Guwahati, Assam, 781039, India.

出版信息

World J Microbiol Biotechnol. 2023 Aug 17;39(10):281. doi: 10.1007/s11274-023-03712-2.

Abstract

In this work, we investigate the nanoparticle-cell wall interaction by NiO and mixed metal oxide CuO-NiO nanoparticles. We have synthesized and characterized the nanoparticles using XRD, FESEM, EDS, UV vis. spectroscopy, FTIR, Zeta, and TEM analysis in our previous work. Furthermore, a preliminary antibacterial study showed that both the nanoparticles performed very well as antibacterial agents. In this extended work, we investigate the mechanism of interaction of NiO and CuO-NiO nanoparticles with S. aureus and E. coli cells as there are number of studies for antibacterial mechanism of CuO nanoparticles. The uptake of crystal violet dye in the outer bacterial membrane, the release of ß-galactosidase enzyme, and relative electric conductivity assay were used to investigate changes in the permeability and integrity of the cell membrane. Superoxide ions, which are produced intracellularly as ROS by nanoparticles, severely damage bacterial membranes. Zeta potential measurement, which resulted in surface charge neutralization, proved membrane instability. FTIR analysis was used to identify changes in the proteins, carbohydrates, and fatty acids that make up the chemical composition of cell surfaces. AFM imaging demonstrated extensive alteration of the nanomechanical and surface characteristics. Confocal microscopy examination supported the DNA fragmentation and nanoparticle-cell adhesion. Due to their enhanced antibacterial activity when compared to monometallic oxide nanoparticles, this study demonstrated that mixed metal oxides can be employed in the health and biomedical sectors.

摘要

在这项工作中,我们通过 NiO 和混合金属氧化物 CuO-NiO 纳米粒子研究了纳米粒子与细胞壁的相互作用。我们在之前的工作中使用 XRD、FESEM、EDS、UV-vis 光谱、FTIR、Zeta 和 TEM 分析对纳米粒子进行了合成和表征。此外,初步的抗菌研究表明,两种纳米粒子都作为抗菌剂表现得非常出色。在这项扩展工作中,我们研究了 NiO 和 CuO-NiO 纳米粒子与金黄色葡萄球菌和大肠杆菌细胞相互作用的机制,因为有许多关于 CuO 纳米粒子抗菌机制的研究。外细胞膜中结晶紫染料的摄取、ß-半乳糖苷酶的释放和相对电导率测定用于研究细胞膜通透性和完整性的变化。纳米粒子作为 ROS 在细胞内产生的超氧阴离子严重破坏细菌膜。zeta 电位测量导致表面电荷中和,证明了膜的不稳定性。FTIR 分析用于鉴定构成细胞表面化学成分的蛋白质、碳水化合物和脂肪酸的变化。原子力显微镜成像证明了纳米机械和表面特性的广泛改变。共聚焦显微镜检查支持 DNA 片段化和纳米颗粒与细胞的粘附。由于与单金属氧化物纳米粒子相比,混合金属氧化物具有增强的抗菌活性,因此这项研究表明,混合金属氧化物可用于健康和生物医学领域。

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