色氨酸配位银纳米粒子对大肠杆菌的抗菌功效:细菌细胞死亡的光谱和显微评估

IF 2.6 4区 化学 Q2 BIOCHEMICAL RESEARCH METHODS
Rafaqat Ali Khan, Shahzad Anwar, Hina Ali, Uzma Aziz, Bisma Khanam, Muhammad Zakria, Muhammad Raffi
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引用次数: 0

摘要

本研究评估了传统荧光光谱法和直角同步荧光光谱法(SFS)的能力,以量化化学合成的色氨酸配位银纳米粒子(Ag-TrpNPs)的抗菌潜力。银纳米粒子因其在纳米尺度范围内的多样化组装及其强大的抗菌活性而成为一种备受关注的材料。但由于银纳米粒子的毒性,迫切需要将这些材料与一些生物相容性和可生物降解的分子相协调。本研究的重点是基于色氨酸分子与银纳米粒子(Ag-TrpNPs)的功能性荧光纳米材料的化学合成。由于 Ag-TrpNPs 具有可调谐性、生物相容性和生物利用度等功能特性,因此我们对其在细菌中的抗菌活性进行了评估。我们采用了紫外可见光谱、动态光散射(DLS)、扫描电子显微镜(SEM)、傅立叶变换红外光谱(FTIR)、荧光光谱和共聚焦显微镜等光学表征技术,以确保颗粒在水悬浮液中的形成。DLS 分析证实纳米颗粒的水动力尺寸约为 100 nm。扫描电镜图像显示了 Ag-TrpNPs 的球形形态和粒度分布。利用荧光光谱和成像技术,用大肠杆菌菌株评估 Ag-TrpNPs 的抗菌效果。首先采用琼脂孔板法评估 Ag-TrpNPs 的抗菌活性。在 500 微克/毫升和 15.5 微克/毫升的条件下,抑制区分别为 37 毫米和 27 毫米,这表明 Ag-TrpNPs 从高浓度到低浓度都具有高效性。常规和同步荧光光谱提供了水悬浮液中细菌细胞死亡的证据,以确保 Ag-TrpNPs 在不同时间和浓度下与大肠杆菌的相互作用。扫描电子显微镜用于研究 Ag-TrpNPs 与细菌细胞之间的相互作用机制。图像显示细胞壁破裂,导致细胞内容物渗出,最终导致细胞死亡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Antibacterial Efficacy of Tryptophan Coordinated Silver Nanoparticles Against E. coli: Spectroscopic and Microscopic Evaluation of Bacterial Cell Death.

The capability of conventional fluorescence spectroscopy and right-angled synchronous fluorescence spectroscopy (SFS) was evaluated to quantify the antibacterial potential of chemically synthesized Tryptophan coordinated silver nanoparticles (Ag-TrpNPs). Silver nanoparticles have gained significant importance as a material of interest due to their diverse assemblies in the nanoscale range and their potent antibacterial activity. But due to toxicity of silver nanoparticles there is a dire need to coordinate these materials with some biocompatible and biodegradable molecules. The study has been focused on chemical synthesis of functional fluorescence nanomaterials based on Tryptophan molecules coordinated with silver nanoparticles (Ag-TrpNPs). The antibacterial activity of Ag-TrpNPs was assessed in bacteria due to their functional characteristics such as tuneability, biocompatibility, and bioavailability. We employed optical characterization techniques such as Ultraviolet-visible spectroscopy, dynamic light scattering (DLS), scanning electron microscopy (SEM), Fourier-transform infrared spectroscopy (FTIR), fluorescence spectroscopy, and confocal microscopy to ensure the particles formation in aqueous suspension. DLS analysis confirmed the hydrodynamic size of the nanoparticles of approximately 100 nm. SEM images revealed the spherical morphology and size distribution of the Ag-TrpNPs. Escherichia coli bacterial strains were used to assess the antibacterial efficacy of the Ag-TrpNPs using fluorescence spectroscopy and imaging. Initially, the agar well plate method was employed to evaluate the antimicrobial activity of the Ag-TrpNPs. The significant zones of inhibition of size 37 mm at 500 µg/mL and 27 mm at 15.5 µg/mL were reported which indicated the efficiency of Ag-TrpNPs from higher to lower concentration. Conventional and synchronous fluorescence spectra provided evidence of bacterial cell death in aqueous suspensions to ensure the interaction of Ag-TrpNPs with E. coli bacteria at different times and concentrations. SEM was employed to investigate the interaction mechanism between Ag-TrpNPs and bacterial cells. The images revealed cell wall disintegration, leading to the leakage of cellular contents, and eventually cell death occurred.

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来源期刊
Journal of Fluorescence
Journal of Fluorescence 化学-分析化学
CiteScore
4.60
自引率
7.40%
发文量
203
审稿时长
5.4 months
期刊介绍: Journal of Fluorescence is an international forum for the publication of peer-reviewed original articles that advance the practice of this established spectroscopic technique. Topics covered include advances in theory/and or data analysis, studies of the photophysics of aromatic molecules, solvent, and environmental effects, development of stationary or time-resolved measurements, advances in fluorescence microscopy, imaging, photobleaching/recovery measurements, and/or phosphorescence for studies of cell biology, chemical biology and the advanced uses of fluorescence in flow cytometry/analysis, immunology, high throughput screening/drug discovery, DNA sequencing/arrays, genomics and proteomics. Typical applications might include studies of macromolecular dynamics and conformation, intracellular chemistry, and gene expression. The journal also publishes papers that describe the synthesis and characterization of new fluorophores, particularly those displaying unique sensitivities and/or optical properties. In addition to original articles, the Journal also publishes reviews, rapid communications, short communications, letters to the editor, topical news articles, and technical and design notes.
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