Vitis vinifera Assisted Silver Nanoparticles with Antibacterial and Antiproliferative Activity against Ehrlich Ascites Carcinoma Cells

A. Asaduzzaman, B. Chun, S. Kabir
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引用次数: 15

Abstract

Vitis vinifera extract assisted silver nanoparticles (AgNPs) were biosynthesized that was confirmed primarily by color change and a sharp plasmon absorption band was found at 449 nm. Biosynthesized AgNPs shape was spherical and the particle size of 17 nm in average was confirmed by transmission electron microscopy (TEM) images. Functional groups of AgNPs were identified by Fourier transform infrared spectroscopy (FTIR). Streptococcus aureus was the most sensitive bacteria towards the assisted V. vinifera AgNPs as their growth was 90% inhibited at 100 μg/mL concentration. That was also confirmed by the zone of inhibition study. Up to 96 h, no biofilm was observed for K. pneumoniae at 40 μg/mL of AgNPs. Although AgNPs showed a mild toxicity against brine shrimp nauplii, it showed a remarkable level of antiproliferative activity against Ehrlich ascites carcinoma (EAC) cells.
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葡萄辅助银纳米颗粒对埃利希腹水癌细胞具有抗菌和抗增殖活性
研究了葡萄提取物辅助银纳米粒子(AgNPs)的生物合成,并通过颜色变化和在449 nm处发现了一个尖锐的等离子体吸收带。生物合成的AgNPs形状为球形,透射电镜(TEM)图像证实其平均粒径为17 nm。利用傅里叶变换红外光谱(FTIR)鉴定了AgNPs的官能团。金黄色链球菌对辅助葡萄弧菌AgNPs最敏感,在100 μg/mL浓度下,其生长被抑制90%。抑制区研究也证实了这一点。40 μg/mL AgNPs作用至96 h,未见肺炎克雷伯菌生物膜形成。AgNPs对盐水对虾nauplii的毒性较弱,但对Ehrlich腹水癌(EAC)细胞具有显著的抗增殖活性。
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