Nutrition Research Center, Tabriz University of Medical Sciences, Tabriz, Iran.
Pharmaceutical Analysis Research Center, Tabriz University of Medical Sciences, Tabriz, Iran.
Anal Methods. 2023 Sep 14;15(35):4506-4517. doi: 10.1039/d3ay01064c.
Illegal use of ractopamine (RAC) in the food industry has dire consequences for health which should be curbed by inexpensive on-site checks. In this study, four advanced nanostructures of AuNPs were examined for this purpose. For the first time, a novel cost-effective colorimetric opto-sensor based on gold nanoparticles in aqueous solution was developed and successfully utilized for the recognition of RAC in real samples. The colorimetric chemosensor based on AuNPs-CysA exhibited a linear range of 0.1 μM to 0.01 M with a limit of detection (LOD) of 0.001 μM. Also, using AuNPs-DDT as a photonic probe two ranges of linearity of 0.01 to 50 μM and 0.005 to 0.01 M were obtained (LOD = 1 nM). The outstanding features of the utilized nanostructures are the simple preparation, the suitable stability of AuNPs-CysA and the excellent selectivity of AuNPs-DDT toward RAC recognition. Finally, the engineered colorimetric systems were combined with a simple and inexpensive optimized microfluidic glass fiber-based device. This work paves the way for devising inexpensive and efficient on-site recognition devices for food safety checks.
非法将莱克多巴胺(RAC)应用于食品工业对健康造成严重后果,应通过廉价的现场检查加以遏制。为此目的,本研究检查了四种先进的金纳米粒子结构。本文首次开发了一种基于金纳米粒子在水溶液中的新型具有成本效益的比色光电传感器,并成功地用于实际样品中 RAC 的识别。基于金纳米粒子-CysA 的比色化学传感器表现出 0.1 μM 至 0.01 M 的线性范围,检测限(LOD)为 0.001 μM。此外,使用 AuNPs-DDT 作为光子探针,获得了 0.01 至 50 μM 和 0.005 至 0.01 M 的两个线性范围(LOD = 1 nM)。所利用的纳米结构的突出特点是简单的制备、AuNPs-CysA 的适当稳定性和 AuNPs-DDT 对 RAC 识别的优异选择性。最后,工程化的比色系统与简单且廉价的优化微流控玻璃纤维基器件相结合。这项工作为设计用于食品安全检查的廉价高效现场识别设备铺平了道路。