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首页> 外文期刊>Journal of biomedical nanotechnology >Antimicrobial Agent Based on Selenium Nanoparticles and Carboxymethyl Cellulose for the Treatment of Bacterial Infections
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Antimicrobial Agent Based on Selenium Nanoparticles and Carboxymethyl Cellulose for the Treatment of Bacterial Infections

机译:基于硒纳米粒子和羧甲基纤维素治疗细菌感染的抗微生物剂

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Our main objective was to analyse and study the effects of the synthesized composite based on selenium nanoparticles and carboxymethyl cellulose (Cekol), hereinafter denoted as SeNPs-Cekol. Firstly, physico-chemical properties of SeNPs-Cekol were characterized in greater detail (size of nanoparticles-from 50 to 150 nm; content of selenium-278 ppm; pH of composite-5.4-5.6; density-990-1010 kg/m(3)), together with assessment of its stability. In addition, the toxicity and mutagenicity on prokaryotic and eukaryotic cells was successfully evaluated. All of the tested bacterial strains were isolated from wound swabs of infectious patients (n = 300) and identified using matrix-assisted laser desorption/ionization time-of-flight mass spectrometry (MALDI-TOF MS). These strains were consequently exposed to SeNPs-Cekol composite. Almost all of the bacterial strains (n = 63) exhibited inhibition zones larger than 5 mm (limit for sensitivity to antibiotics) after the application of the SeNPs-Cekol (300 mu M). Furthermore, in some tested strains (n = 8 for gram positive (G(+)); n = 4 for gram negative (G(-))) even the inhibition zones larger than 12 mm (limit value for very sensitive bacteria to antibiotics) were observed. Overall, the effects of the composite were higher for the G(+) bacteria in comparison with G(-)bacteria, which are generally more resistant to antimicrobial agents, due to their cell wall structure. Further, we found that mutagenicity of the SeNPs-Cekol was found to be negligible. Even, non-target toxicity tests towards eukaryotic cells did not show any significant inhibition of the cells growth compared to the control. Therefore, it can be concluded that SeNPs-Cekol could be considered to have a potential in treatment of bacterial infections.
机译:我们的主要目标是分析和研究基于硒纳米粒子和羧甲基纤维素(CeKol)的合成复合材料的作用,下文称为SENPS-CEKOL。首先,更详细地表征了SENPS-CEKOL的物理化学性质(纳米颗粒的尺寸为50至150nm;硒-278ppm的含量; COPITE-5.4-5.6的pH;密度-990-1010kg / m( 3)),以及评估其稳定性。此外,成功评估了原核和真核细胞的毒性和致突变性。所有测试的细菌菌株从传染病(N = 300)的伤口拭子中分离,并使用基质辅助激光解吸/电离飞行时间质谱(MALDI-TOF MS)鉴定。因此,这些菌株将暴露于SENPS-CEKOL复合材料。在施用SENPS-CEKOL(300μm)后,几乎所有的细菌菌株(n = 63)表现出大于5mm的抑制区(对抗生素的敏感性限制)。此外,在一些测试的菌株中(n = 8用于克阳性(g(+));对于革兰(G( - )))甚至抑制区域甚至大于12mm的抑制区(极限值为抗生素的非常敏感的细菌)被观察到。总的来说,与G( - )细菌相比,G(+)细菌的效果较高,这与其细胞壁结构通常更抗微生物剂的细菌。此外,我们发现发现森塞尔-Tebol的致突变性可忽略不计。甚至,与对照相比,对真核细胞的非靶毒性测试没有显示细胞生长的任何显着抑制。因此,可以得出结论,塞普斯-Tekol可以被认为具有治疗细菌感染的潜力。

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