利用同一希瓦氏菌MR-1菌株生物合成纳米银。增加生物源纳米材料制备形式的生产和创造的技术途径

IF 0.8 Q3 Engineering Nanotechnologies in Russia Pub Date : 2023-09-19 DOI:10.1134/S263516762370026X
O. A. Zhuravliova, T. A. Voeikova, A. Yu. Vlasova, S. N. Malakhov, T. D. Patsaev, A. L. Vasiliev, N. V. Bulushova, V. G. Debabov
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引用次数: 0

摘要

本文报道了利用金属还原希瓦氏菌MR-1菌株和硝酸银盐在液体培养基中合成细胞外银纳米颗粒(Ag NPs)的结果。通过扫描透射电子显微镜确定银纳米粒子的形状接近球形;超过50%的银纳米粒子的尺寸在10到15纳米之间。能量色散x射线微分析表明,所有生物源银NPs样品中都存在银峰。Ag NPs晶体的面间距离为2.71 Å。傅里叶变换红外光谱(IR)证实了纳米材料表面存在蛋白质性质的含氮有机化合物。采用动态光散射和荧光光谱法测定了银纳米粒子的水动力直径、ζ电位和光学参数。结果表明,银杏MR-1细胞在生物合成过程中,表面存在大量的Ag NPs。提出了一种利用超声处理细胞,然后分离银纳米粒子来提高纳米材料产量的技术方法。结果表明,标准方法获得的银NPs与超声处理后细胞表面分离的银NPs中蛋白冠的组成以及银NPs的大小存在一定差异。提出了一种利用银纳米粒子和含银纳米粒子的细胞生物质水悬浮液进行冻干制备纳米粒子粉末状制剂的技术方法。以水悬浮液的形式恢复制备的可能性,而没有纳米颗粒的团聚和沉淀。所有形式的纳米材料都具有很高的生物杀灭活性,作为抗革兰氏阳性和革兰氏阴性细菌和微观真菌(包括酵母和植物致病霉菌真菌)的广谱活性抗菌剂,可以用于制造具有不同性质的具有抗菌性能的聚合物纳米复合材料。
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Biosynthesis of Silver Nanoparticles Using the Shewanella oneidensis MR-1 Strain. Technological Approaches to Increasing the Production and Creating of Preparative Forms of Biogenic Nanomaterial

The results of the microbial synthesis of extracellular silver nanoparticles (Ag NPs) in a liquid medium using the metal-reducing Shewanella oneidensis MR-1 strain and silver-nitrate salts are presented. The shape of the Ag NPs is determined by scanning transmission electron microscopy as close to spherical; more than 50% of Ag NPs have dimensions from 10 to 15 nm. The spectra of energy-dispersive X-ray microanalysis show the presence of Ag peaks in all samples of biogenic Ag NPs. The interplanar distances in the crystals of Ag NPs are 2.71 Å. Fourier-transform infrared (IR) spectroscopy confirms the presence of nitrogen-containing organic compounds of protein nature on the surface of the nanomaterial. The values of the hydrodynamic diameter, zeta-potential, and optical parameters of Ag NPs are determined by dynamic light scattering and spectrofluorimetry. It is shown that a large amount of Ag NPs is present on the surface of S. oneidensis MR-1 cells during biosynthesis. A technological approach is proposed to increase the yield of nanomaterial using the ultrasound treatment of cells, followed by the isolation of Ag NPs. It is shown that the compositions of the protein corona in Ag NPs obtained by the standard method and isolated from the cell surface after ultrasound treatment, as well as the size of Ag NPs, have some differences. A technological method for producing powdered preparations of nanomaterial by lyophilization (freeze drying) of aqueous suspensions of Ag NPs and cellular biomass containing Ag NPs is developed. The possibility of restoring preparations in the form of aqueous suspensions without the agglomeration and sedimentation of nanoparticles is shown. A high biocidal activity of all forms of the nanomaterial as antimicrobial agents of a wide spectrum of activity against gram-positive and gram-negative bacteria and microscopic fungi, including yeasts and phytopathogenic mold fungi, is established, which can be used to create polymer nanocomposites of varying nature with antibacterial properties.

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来源期刊
Nanotechnologies in Russia
Nanotechnologies in Russia NANOSCIENCE & NANOTECHNOLOGY-
CiteScore
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期刊介绍: Nanobiotechnology Reports publishes interdisciplinary research articles on fundamental aspects of the structure and properties of nanoscale objects and nanomaterials, polymeric and bioorganic molecules, and supramolecular and biohybrid complexes, as well as articles that discuss technologies for their preparation and processing, and practical implementation of products, devices, and nature-like systems based on them. The journal publishes original articles and reviews that meet the highest scientific quality standards in the following areas of science and technology studies: self-organizing structures and nanoassemblies; nanostructures, including nanotubes; functional and structural nanomaterials; polymeric, bioorganic, and hybrid nanomaterials; devices and products based on nanomaterials and nanotechnology; nanobiology and genetics, and omics technologies; nanobiomedicine and nanopharmaceutics; nanoelectronics and neuromorphic computing systems; neurocognitive systems and technologies; nanophotonics; natural science methods in a study of cultural heritage items; metrology, standardization, and monitoring in nanotechnology.
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