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生物成因钴和铜纳米粒子对病原菌分离株的抗菌功效。

Antimicrobial Efficacy of Biogenic Cobalt and Copper Nanoparticles against Pathogenic Isolates.

机构信息

Microbiology Lab, Department of Zoology, Government College University.

Department of Botany, Government College University.

出版信息

J Oleo Sci. 2022;71(11):1669-1677. doi: 10.5650/jos.ess22197.

Abstract

Biogenic synthesis of cobalt (Co) and copper (Cu) nanoparticles (NPs) was performed using the bacterial strains Escherichia coli and Bacillus subtilis. Prepared NPs were confirmed by a color change to maroon for CoNPs and green for CuNPs. The NPs characterization using FTIR showed the presence of functional groups, i.e., phenols, acids, protein, and aromatics present in the Co and CuNPs. UV-vis spectroscopy of E. coli and B. subtilis CuNPs showed peaks at 550 and 625 nm, respectively. For E. coli and B. subtilis CoNPs, peaks were observed at 300 nm and 350 nm, respectively. Antibacterial and antifungal activity of B. subtilis and E. coli Co and CuNPs was determined at 100 mg/mL concentration against two bacterial strains at 5, 2.5, and 1.5 mg/mL against fungal two strains F. oxysporum and T. viridi, respectively. B. subtilis CuNPs showed significantly higher inhibition zones (ZOI=25.7-29.7 mm) against E. coli and B. subtilis compared to other biogenic NPs. Likewise, B. Subtilis CuNPs showed lower MIC (4.3 ± 6.3) and MBC (5.3 mg/mL) values against both tested isolates. Antifungal activity of B. subtilis and E. coli CuNPs and CoNPs showed a concentration-dependent decrease in ZOI. Among all biogenic NPs, B. subtilis CoNPs showed the highest ZOI (25-30 mm) against F. oxysporum followed by E. coli CuNPs with maximum ZOI (20-27 mm) against T. viridi. Again, B. subtilis CoNPs and E. coli CuNPs showed lowest MIC and MFC values against both fungal isolates. In conclusion, the current study showed that biogenically synthesized B. subtilis Cu or CoNPs can be used as effective antimicrobial agents due to their potential antibacterial and antifungal potential.

摘要

采用大肠杆菌和枯草芽孢杆菌两种细菌菌株进行钴(Co)和铜(Cu)纳米粒子(NPs)的生物合成。CoNPs 制备完成后颜色变为红棕色,CuNPs 制备完成后颜色变为绿色,以此来验证 NPs 的存在。利用傅里叶变换红外光谱(FTIR)对 NPs 进行特性分析,结果表明 Co 和 CuNPs 中存在酚类、酸类、蛋白质和芳烃等功能团。大肠杆菌和枯草芽孢杆菌 CuNPs 的紫外-可见光谱在 550nm 和 625nm 处分别出现峰值。大肠杆菌和枯草芽孢杆菌 CoNPs 的峰值分别出现在 300nm 和 350nm 处。在 100mg/mL 浓度下,枯草芽孢杆菌和大肠杆菌 Co 和 CuNPs 对两种细菌菌株的抑菌和抗真菌活性,以及对两种真菌菌株尖孢镰刀菌和绿色木霉的抑菌和抗真菌活性,分别在 5mg/mL、2.5mg/mL 和 1.5mg/mL 时进行了测定。枯草芽孢杆菌 CuNPs 对大肠杆菌和枯草芽孢杆菌的抑制带宽度(ZOI=25.7-29.7mm)显著高于其他生物合成的 NPs。同样,枯草芽孢杆菌 CuNPs 对两种测试分离物的最低抑菌浓度(MIC)和最低杀菌浓度(MBC)值(4.3±6.3μg/mL 和 5.3mg/mL)也较低。枯草芽孢杆菌和大肠杆菌 CuNPs 和 CoNPs 的抗真菌活性表现出随着 ZOI 的浓度依赖性降低。在所有生物合成的 NPs 中,枯草芽孢杆菌 CoNPs 对尖孢镰刀菌的 ZOI 最高(25-30mm),其次是大肠杆菌 CuNPs 对绿色木霉的 ZOI 最高(20-27mm)。同样,枯草芽孢杆菌 CoNPs 和大肠杆菌 CuNPs 对两种真菌分离物的 MIC 和 MFC 值最低。综上所述,本研究表明,生物合成的枯草芽孢杆菌 Cu 或 CoNPs 可作为有效的抗菌剂,因为它们具有潜在的抗菌和抗真菌作用。

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