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无标签真菌毒素拉曼识别的高性能等离子体垂直碳纳米结构。

Label-Free Mycotoxin Raman Identification by High-Performing Plasmonic Vertical Carbon Nanostructures.

机构信息

Department of Gaseous Electronics, Jožef Stefan Institute, Jamova cesta 39, Ljubljana, SI-1000, Slovenia.

Jožef Stefan International Postgraduate School, Jamova cesta 39, Ljubljana, SI-1000, Slovenia.

出版信息

Small. 2021 Dec;17(49):e2103677. doi: 10.1002/smll.202103677. Epub 2021 Oct 11.

Abstract

Mycotoxins are widespread chemical entities in the agriculture and food industries that can induce cancer growth and immune deficiency, posing a serious health threat for humankind. These hazardous compounds are produced naturally by various molds (fungi) that contaminate different food products and can be detected in cereals, nuts, spices, and other food products. However, their detection, especially at minimally harmful concentrations, remains a serious analytical challenge. This research shows that high-performing plasmonic substrates (analytical enhancement factor = 5 × 10 ) based on plasma-grown vertical hollow carbon nanotubes can be applied for immediate detection of the most toxic mycotoxins. Due to excellent sensitivity allowing operation at ppb concentrations, it is possible to collect vibrational fingerprints of aflatoxin B , zearalenone, alternariol, and fumonisin B , highlighting the key spectral differences between them using principal component analysis. Regarding time-consuming conventional methods, including thin-layer chromatography, gas chromatography, high-performance liquid chromatography, and enzyme-linked immunosorbent assay, the designed surface-enhanced Raman spectroscopy substrates provide a clear roadmap to reducing the detection time-scale of mycotoxins down to seconds.

摘要

真菌毒素是农业和食品工业中广泛存在的化学物质,可诱导癌症生长和免疫缺陷,对人类健康构成严重威胁。这些有害化合物是由各种霉菌(真菌)自然产生的,它们污染了不同的食品,并可以在谷物、坚果、香料和其他食品中检测到。然而,对其进行检测,特别是在最低有害浓度下进行检测,仍然是一个严峻的分析挑战。本研究表明,基于等离子体生长的垂直空心碳纳米管的高性能等离子体基衬底(分析增强因子=5×10)可用于即时检测最毒的真菌毒素。由于具有允许在 ppb 浓度下运行的优异灵敏度,因此可以收集黄曲霉毒素 B、玉米赤霉烯酮、交链孢酚和伏马菌素 B 的振动指纹图谱,并使用主成分分析突出它们之间的关键光谱差异。与包括薄层色谱法、气相色谱法、高效液相色谱法和酶联免疫吸附测定法在内的耗时传统方法相比,设计的表面增强拉曼光谱衬底为将真菌毒素的检测时间缩短到秒级提供了明确的路线图。

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