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首页> 外文期刊>Journal of nanomaterials >Antibacterial Effects of Green-Synthesized Silver Nanoparticles Using Ferula asafoetida against Acinetobacter baumannii Isolated from the Hospital Environment and Assessment of Their Cytotoxicity on the Human Cell Lines
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Antibacterial Effects of Green-Synthesized Silver Nanoparticles Using Ferula asafoetida against Acinetobacter baumannii Isolated from the Hospital Environment and Assessment of Their Cytotoxicity on the Human Cell Lines

机译:绿色合成银纳米粒子使用Ferula Asafoetida对医院环境中分离的肺杆菌的抗菌作用及其细胞毒性评估

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Acinetobacter baumannii ( A. baumannii ) is a dangerous nosocomial pathogen in intensive care units, causing fatal clinical challenges and mortality. In this study, the green synthesis of silver nanoparticles (AgNPs) using the extract of Ferula asafetida and the chemical synthesis of AgNPs were carried out to evaluate their effects on A. baumannii bacterial strain and a human adenocarcinoma cell line. The NPs were characterized using several techniques, including field emission-scanning electron microscopy, X-ray diffraction, energy-dispersive X-ray spectrometry, UV-visible spectroscopy, and Fourier-transform infrared spectroscopy. After synthesis, the arrangement of AgNPs was confirmed based on the maximum absorption peak at 450?nm. The results showed that the AgNPs had a hexagonal structure. The antimicrobial activity of biogenic NPs significantly increased and reached a minimum inhibitory concentration of 2? μ g/mL. The nanomaterials did not exhibit any toxic effects on the human cell line at certain concentrations and showed improvements compared to chemically synthesized AgNPs. However, at higher concentrations (100? μ g/mL), the cytotoxicity increased. Finally, it was concluded that biosynthesized AgNPs had significant antimicrobial effects on A. baumannii isolated from intensive care units.
机译:AcineTobacter Baumannii(A.Baumannii)是一种密集护理单位的危险医院病原体,导致致命的临床挑战和死亡率。在该研究中,使用Ferula Asafetida提取物和AgNP的化学合成的银纳米颗粒(AgNP)的绿色合成,以评估它们对A.Baumannii细菌菌株和人腺癌细胞系的影响。使用几种技术表征NPS,包括场发射扫描电子显微镜,X射线衍射,能量分散X射线光谱,UV可见光谱和傅立叶变换红外光谱。合成后,基于450μm的最大吸收峰确认AgNP的排列。结果表明,AgNP具有六边形结构。生物NPS的抗菌活性显着增加,达到了2的最小抑制浓度? μg/ ml。纳米材料对某些浓度的人体细胞对人细胞系具有任何毒性作用,与化学合成的agnps相比显示出改善。然而,在较高的浓度(100Ωμg/ ml),细胞毒性增加。最后,得出结论,生物合成的agnps对从重症监护单位中分离的A.Baumannii具有显着的抗微生物作用。

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