Antibacterial activity and mechanism of Ag–ZnO nanocomposite on S. aureus and GFP-expressing antibiotic resistant E. coli

纳米复合材料 抗菌活性 透射电子显微镜 核化学 扫描电子显微镜 最低杀菌浓度 最小抑制浓度 材料科学 荧光 化学 纳米技术 细菌 抗菌剂 有机化学 生物 复合材料 物理 量子力学 遗传学
作者
Ishita Matai,Abhay Sachdev,Poornima Dubey,Uday Kumar Sukumar,Bharat Bhushan,P. Gopinath
出处
期刊:Colloids and Surfaces B: Biointerfaces [Elsevier BV]
卷期号:115: 359-367 被引量:267
标识
DOI:10.1016/j.colsurfb.2013.12.005
摘要

Emergence of multi-resistant organisms (MROs) leads to ineffective treatment with the currently available medications which pose a great threat to public health and food technology sectors. In this regard, there is an urgent need to strengthen the present therapies or to look over for other potential alternatives like use of “metal nanocomposites”. Thus, the present study focuses on synthesis of silver–zinc oxide (Ag–ZnO) nanocomposites which will have a broad-spectrum antibacterial activity against Gram-positive and Gram-negative bacteria. Ag–ZnO nanocomposites of varied molar ratios were synthesized by simple microwave assisted reactions in the absence of surfactants. The crystalline behavior, composition and morphological analysis of the prepared powders were evaluated by X-ray diffraction, infrared spectroscopy, field emission scanning electron microscopy (FE-SEM) and atomic absorption spectrophotometry (AAS). Particle size measurements were carried out by transmission electron microscopy (TEM). Staphylococcus aureus and recombinant green fluorescent protein (GFP) expressing antibiotic resistant Escherichia coli were selected as Gram-positive and Gram-negative model systems respectively and the bactericidal activity of Ag–ZnO nanocomposite was studied. The minimum inhibitory concentration (MIC) and minimum killing concentration (MKC) of the nanocomposite against the model systems were determined by visual turbidity analysis and optical density analysis. Qualitative and quantitative assessments of its antibacterial effects were performed by fluorescent microscopy, fluorescent spectroscopy and Gram staining measurements. Changes in cellular morphology were examined by atomic force microscopy (AFM), FE-SEM and TEM. Finally, on the basis of the present investigation and previously published reports, a plausible antibacterial mechanism of Ag–ZnO nanocomposites was proposed.

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