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Zinc Oxide Nanocomposites—Extracellular Synthesis Physicochemical Characterization and Antibacterial Potential

机译:氧化锌纳米复合材料 - 细胞外合成物理化学表征和抗菌潜力

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摘要

This research presents, for the first time, the potential of the Lactobacillus paracasei LC20 isolated from sweet whey as a novel, effective and accessible source for post-cultured ZnO nanocomposites synthesis. The obtained nanocomposites were subjected to comprehensive characterization by a broad spectrum of instrumental techniques. Results of spectroscopic and microscopic analysis confirmed the hexagonal crystalline structure of ZnO in the nanometer size. The dispersion stability of the obtained nanocomposites was determined based on the zeta potential (ZP) measurements—the average ZP value was found to be −29.15 ± 1.05 mV in the 7–9 pH range. The ZnO nanocomposites (NCs) demonstrated thermal stability up to 130 °C based on the results of thermogravimetric TGA/DTG) analysis. The organic deposit on the nanoparticle surface was recorded by spectroscopic analysis in the infrared range (FT-IR). Results of the spectrometric study exhibited nanostructure-assisted laser desorption/ionization effects and also pointed out the presence of organic deposits and, what is more, allowed us to identify the specific amino acids and peptides present on the ZnO NCs surfaces. In this context, mass spectrometry (MS) data confirmed the nano-ZnO formation mechanism. Moreover, fluorescence data showed an increase in fluorescence signal in the presence of nanocomposites designed for potential use as, e.g., biosensors. Despite ZnO NCs’ luminescent properties, they can also act as promising antiseptic agents against clinically relevant pathogens. Therefore, a pilot study on the antibacterial activity of biologically synthesized ZnO NCs was carried out against four strains (Escherichia coli, Staphylococcus aureus, Klebsiella pneumoniae and Pseudomonas aeruginosa) by using MIC (minimal inhibitory concentration). Additionally, the colony forming units (CFU) assay was performed and quantified for all bacterial cells as the percentage of viable cells in comparison to a control sample (untreated culture) The nanocomposites were effective among three pathogens with MIC values in the range of 86.25–172.5 μg/mL and showed potential as a new type of, e.g., medical path or ointment formulation.
机译:这项研究首次出现了从甜乳清中分离的乳酸杆菌帕拉沙萨氏菌LC20作为新型,有效和可访问的源于培养的ZnO纳米复合材料的合成。通过广谱的仪器技术进行所得纳米复合材料进行综合表征。光谱和微观分析结果证实了纳米尺寸ZnO的六方晶体结构。基于Zeta电位(ZP)测量测定所得纳米复合材料的分散稳定性 - 在7-9个pH范围内发现平均ZP值为-29.15±1.05mV。 ZnO纳米复合材料(NCS)基于热重GRIMETRICTRIC型TGA / DTG)分析的结果显示出高达130℃的热稳定性。通过红外范围(FT-IR)的光谱分析记录纳米颗粒表面上的有机沉积物。光谱研究的结果表明纳米结构辅助激光解吸/电离效果,并且还指出了有机沉积物的存在,并且允许我们鉴定ZnO NCS表面上存在的特定氨基酸和肽。在这种情况下,质谱法(MS)数据证实了纳米ZnO形成机制。此外,荧光数据显示纳米复合材料存在的荧光信号的增加,该纳米复合材料是潜在用途,例如生物传感器。尽管ZnO NCS的发光特性,但它们也可以作为对临床相关病原体的有前途的防腐剂。因此,通过使用MIC(最小抑制浓度)对四种菌株(大肠杆菌,金黄色葡萄球菌,Klebsiella肺炎金黄色葡萄球菌,Klebsiella Pneumonae和Pseudomonasa)进行导频研究。另外,对于所有细菌细胞进行菌落形成单元(CFU)测定,因为与对照样品(未处理的培养)相比,活细胞的百分比,纳米复合材料在3个病原体中有效,MIC值在86.25的范围内。 172.5μg/ ml,并显示出新型,例如医用路径或软膏配方。

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