Department of Analytical Chemistry, Physical Chemistry and Chemical Engineering, University of Alcalá, Carretera Madrid-Barcelona, Km. 33,600, 28871, Alcalá de Henares, Madrid, Spain.
Chemical Research Institute "Andrés M. del Río" (IQAR), University of Alcalá, Carretera Madrid-Barcelona, Km. 33,600, Alcalá de Henares, 28871, Madrid, Spain.
Chemistry. 2018 May 17;24(28):7172-7176. doi: 10.1002/chem.201706095. Epub 2018 Apr 16.
Magnetic reduced graphene oxide/nickel/platinum nanoparticles (rGO/Ni/PtNPs) micromotors for mycotoxin analysis in food samples were developed for food-safety diagnosis. While the utilization of self-propelled micromotors in bioassays has led to a fundamentally new approach, mainly due to the greatly enhanced target-receptor contacts owing to their continuous movement around the sample and the associated mixing effect, herein the magnetic properties of rGO/Ni/PtNPs micromotors for mycotoxin analysis are additionally explored. The micromotor-based strategy for targeted mycotoxin biosensing focused on the accurate control of micromotor-based operations: 1) on-the-move capture of free aptamers by exploiting the adsorption (outer rGO layer) and catalytic (inner PtNPs layer) properties and 2) micromotor stopped flow in just 2 min by exploiting the magnetic properties (intermediate Ni layer). This strategy allowed fumonisin B1 determination with high sensitivity (limit of detection: 0.70 ng mL ) and excellent accuracy (error: 0.05 % in certified reference material and quantitative recoveries of 104±4 % in beer) even in the presence of concurrent ochratoxin A (105-108±8 % in wines). These results confirm the developed approach as an innovative and reliable analytical tool for food-safety monitoring, and confirm the role of micromotors as a new paradigm in analytical chemistry.
用于食品样品中真菌毒素分析的磁性还原氧化石墨烯/镍/铂纳米粒子(rGO/Ni/PtNPs)微马达被开发用于食品安全诊断。虽然自推进微马达在生物测定中的应用带来了一种全新的方法,主要是由于它们在样品周围的持续运动和相关的混合效应大大增强了目标受体的接触,但这里还探索了 rGO/Ni/PtNPs 微马达在真菌毒素分析中的磁性。基于微马达的靶向真菌毒素生物传感策略侧重于精确控制基于微马达的操作:1)利用吸附(外 rGO 层)和催化(内 PtNPs 层)特性在外层 rGO 层捕获游离适体,2)利用磁性(中间 Ni 层)在短短 2 分钟内使微马达停止流动。该策略允许使用高灵敏度(检测限:0.70ng/mL)和出色的准确性(在认证参考物质中误差为 0.05%,在啤酒中的定量回收率为 104±4%)来测定伏马菌素 B1,即使存在同时存在的赭曲霉毒素 A(葡萄酒中为 105-108±8%)也是如此。这些结果证实了所开发的方法作为食品安全监测的创新和可靠分析工具,并且证实了微马达作为分析化学新范例的作用。