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采用改良托伦氏法结合植物化学物质合成银纳米颗粒及其抗菌活性评估。

Synthesis of silver nanoparticles using a modified Tollens' method in conjunction with phytochemicals and assessment of their antimicrobial activity.

作者信息

AbuDalo Muna A, Al-Mheidat Ismaeel R, Al-Shurafat Alham W, Grinham Colleen, Oyanedel-Craver Vinka

机构信息

Chemistry Department, Faculty of Science and Arts, Jordan University of Science and Technology, Irbid, Jordan.

Department of Civil Engineering, Faculty of Engineering, Jordan University of Science and Technology, Irbid, Jordan.

出版信息

PeerJ. 2019 Feb 8;7:e6413. doi: 10.7717/peerj.6413. eCollection 2019.

Abstract

BACKGROUND

Silver nanoparticles (AgNPs) have attracted great attention due to their outstanding electrical, optical, magnetic, catalytic, and antimicrobial properties. However, there is a need for alternative production methods that use less toxic precursors and reduce their undesirable by-products. Phyto-extracts from the leaves of olive and rosemary plants can be used as reducing agents and (in conjunction with Tollens' reagent) can even enhance AgNP antimicrobial activity.

METHODS

Conditions for the proposed hybrid synthesis method were optimized for olive leaf extracts (OLEs) and rosemary leaf extracts (RLEs). The resultant AgNPs were characterized using UV-visible spectroscopy, an environmental scanning electron microscope, and Dynamic Light Scattering analysis. An atomic absorption spectrophotometer was used to measure AgNP concentration. Fourier transform infrared spectroscopy (FTIR) was used to determine the specific functional groups responsible for the reduction of both silver nitrate and capping agents in the leaf extract. Additionally, the antimicrobial properties of the synthesized AgNPs were assessed against Gram-negative bacteria ( and ) and Gram-positive bacteria (), by using both the Kirby-Bauer and broth microdilution methods on Mueller-Hinton (MH) agar plates.

RESULTS AND DISCUSSION

A simple, feasible, and rapid method has been successfully developed for silver nanoparticle synthesis by reducing Tollens' reagent using leaf extracts from olive and rosemary plants (widely available in Jordan). Scanning electron microscopy images showed that the method produces AgNPs with a spherical shape and average core sizes of 45 ± 2 and 38 ± 3 nm for OLE and RLE, respectively. A negative zeta potential (ζ) of -43.15 ± 3.65 mV for OLE-AgNPs and -33.65 ± 2.88mV for RLE-AgNPs proved the stability of silver nanoparticles. FTIR spectra for AgNPs and leaf extracts indicated that the compounds present in the leaf extracts play an important role in the coating/capping of synthesized nanoparticles. The manufactured AgNPs exhibited an antibacterial effect against coli and with minimum inhibitory concentrations (MIC) of 9.38 and 4.69 μl/ml for OLE-AgNPs and RLE-AgNPs, respectively. The MIC for were 18.75 μl/ml for both OLE-AgNPs and RLE-AgNPs. Furthermore, our results indicated that the RLE-AgNPs exhibited a stronger antibacterial effect than OLE-AgNPs against different bacteria species. These results contribute to the body of knowledge on nanoparticle production using plant-mediated synthesis and performance. They also offer insights into the potential for scaling up this production process for commercial implementation.

摘要

背景

银纳米颗粒(AgNPs)因其出色的电学、光学、磁性、催化和抗菌性能而备受关注。然而,需要替代生产方法,使用毒性较小的前体并减少其不良副产物。橄榄和迷迭香叶植物的植物提取物可用作还原剂,并且(与托伦试剂一起)甚至可以增强AgNP的抗菌活性。

方法

针对橄榄叶提取物(OLEs)和迷迭香叶提取物(RLEs),对所提出的混合合成方法的条件进行了优化。使用紫外可见光谱、环境扫描电子显微镜和动态光散射分析对所得的AgNPs进行表征。使用原子吸收分光光度计测量AgNP浓度。傅里叶变换红外光谱(FTIR)用于确定叶提取物中负责还原硝酸银和封端剂的特定官能团。此外,通过在穆勒-欣顿(MH)琼脂平板上使用 Kirby-Bauer 法和肉汤微量稀释法,评估合成的AgNPs对革兰氏阴性菌( 和 )和革兰氏阳性菌( )的抗菌性能。

结果与讨论

通过使用橄榄和迷迭香叶植物(在约旦广泛可得)的叶提取物还原托伦试剂,成功开发了一种简单、可行且快速的银纳米颗粒合成方法。扫描电子显微镜图像显示,该方法产生的AgNPs呈球形,OLE和RLE的平均核心尺寸分别为45±2和38±3nm。OLE-AgNPs的负zeta电位(ζ)为-43.15±3.65mV,RLE-AgNPs的负zeta电位为-33.65±2.88mV,证明了银纳米颗粒的稳定性。AgNPs和叶提取物的FTIR光谱表明,叶提取物中存在的化合物在合成纳米颗粒的包覆/封端中起重要作用。所制备的AgNPs对大肠杆菌和 表现出抗菌作用,OLE-AgNPs和RLE-AgNPs的最低抑菌浓度(MIC)分别为9.38和4.69μl/ml。两种OLE-AgNPs和RLE-AgNPs对 的MIC均为18.75μl/ml。此外,我们的结果表明,RLE-AgNPs对不同细菌种类的抗菌作用比OLE-AgNPs更强。这些结果有助于丰富关于使用植物介导合成纳米颗粒及其性能的知识体系。它们还为扩大该生产工艺以实现商业应用的潜力提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6adf/6369825/84a5522fd574/peerj-07-6413-g001.jpg

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