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Corrosion Resistance and Antimicrobial Activityof Extra- and Intracellular Fe(II) NanoparticlesBiosynthesized Via Aspergillus foetidus ATCC 14916

机译:通过烟曲霉ATCC 14916生物合成的胞外和胞内Fe(II)纳米颗粒的耐蚀性和抗菌活性

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This study aims to synthesizing Fe (II) nanoparticles with green synthesis method. For this purpose fungal isolate was chosen from the most potent four isolates and its metallotolerance ability towards Fe (II) was studied. Extracellular and intracellular biosynthesis of the nanoparticles was achieved. The nanoparticles were characterized using atomic absorption spectrophotometer (AAS), dynamic light scattering (DLS) and transmission electron microscope (TEM). The shape of metal nanoparticles mostly was spherical. The size of the particles ranges from 80 nm to 370 nm & from 31.53 nm to 61.94 nm for extra- and intracellular particles respectively. The isolate was identified based on morphological and physiological and genetic characteristics and it was found to be closely related to Aspergillus foetidus strain ATCC 14916 with 99% similarity. The antimicrobial activity of the produced intracellular and extracellular nanoparticles was done. The samples have shown antimicrobial activity against some of the used test organisms with different results and different diameter of the inhibition zones among each other.? In addition, the corrosion inhibition efficiency of the extracellular nanoparticles was studied. The inhibition efficiency of the inhibitor by polarization curves exhibited the maximum inhibition efficiency 93.877% at the highest concentration of 907.2 ppm.
机译:本研究旨在通过绿色合成方法合成Fe(II)纳米粒子。为此目的,从最有效的四种分离物中选择了真菌分离物,并研究了其对Fe(II)的金属致毒能力。实现了纳米颗粒的细胞外和细胞内生物合成。使用原子吸收分光光度计(AAS),动态光散射(DLS)和透射电子显微镜(TEM)对纳米颗粒进行表征。金属纳米颗粒的形状大部分为球形。对于细胞外和细胞内颗粒,颗粒的尺寸分别为80nm至370nm和31.53nm至61.94nm。根据形态,生理和遗传特征鉴定出该分离物,发现该分离物与烟曲霉ATCC 14916菌株具有99%的相似性。完成了所产生的细胞内和细胞外纳米颗粒的抗菌活性。样品显示出对某些使用过的测试生物的抗菌活性,结果不同,抑制区的直径也不同。另外,研究了细胞外纳米颗粒的腐蚀抑制效率。极化曲线对抑制剂的抑制效率在最高浓度为907.2 ppm时显示最大抑制效率93.877%。

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