Oil Crops Research Institute of the Chinese Academy of Agricultural Sciences, Wuhan 430062, PR China; Key Laboratory of Biology and Genetic Improvement of Oil Crops, Ministry of Agriculture and Rural Affairs, Wuhan 430062, PR China; Key Laboratory of Detection for Mycotoxins, Ministry of Agriculture and Rural Affairs, Wuhan 430062, PR China.
Oil Crops Research Institute of the Chinese Academy of Agricultural Sciences, Wuhan 430062, PR China; Key Laboratory of Biology and Genetic Improvement of Oil Crops, Ministry of Agriculture and Rural Affairs, Wuhan 430062, PR China; Key Laboratory of Detection for Mycotoxins, Ministry of Agriculture and Rural Affairs, Wuhan 430062, PR China; Laboratory of Quality and Safety Risk Assessment for Oilseeds Products (Wuhan), Ministry of Agriculture and Rural Affairs, Wuhan 430062, PR China; Quality Inspection and Test Center for Oilseeds Products, Ministry of Agriculture and Rural Affairs, Wuhan 430062, PR China.
J Hazard Mater. 2023 Jan 5;441:129853. doi: 10.1016/j.jhazmat.2022.129853. Epub 2022 Sep 1.
Sensitive, on-site and multiple detection of mycotoxins is a vital early-warning tool to minimize food losses and protect human health and the environment. Although paper-based lateral flow immunoassay (LFIA) has been extensively applied in mycotoxins monitoring, low-cost, portable, ultrasensitive and quantitative detection is still a formidable challenge. Herein, a series of Fe-N-C single-atom nanozymes (SAzymes) were synthesized and systematic characterized. The optimal Fe-N-C SAzyme with highly efficient catalytic performance was successfully used as both label and catalyst in lateral flow immunoassays for mycotoxin detection. By taking advantage of the catalytic amplified system, the qualitative and quantitative detection can be easily and flexibly done via observing the test lines by naked eyes or a smartphone, with the limit of detections (LODs) of 2.8 and 13.9 pg mL for AFB and FB, which were respectively over 700- and 71,000-fold lower than the maximum limit set by the European Union. Besides, underlying catalytic mechanisms and the active sites of the Fe-N-C SAzyme are also investigated by DFT simulation. This work not only provides a promising detection strategy for the application of advanced SAzymes but also offers experimental and theoretical guidelines to understand the active centers of Fe-N-C SAzymes and the catalytic process.
灵敏、现场和多种霉菌毒素检测是最大限度减少食物损失、保护人类健康和环境的重要预警工具。尽管基于纸的侧向流动免疫分析(LFIA)已广泛应用于霉菌毒素监测,但低成本、便携式、超灵敏和定量检测仍然是一个艰巨的挑战。在此,合成并系统地表征了一系列 Fe-N-C 单原子纳米酶(SAzymes)。具有高效催化性能的最佳 Fe-N-C SAzyme 成功用作侧向流动免疫分析中霉菌毒素检测的标记物和催化剂。利用催化放大系统,通过肉眼或智能手机观察测试线,可轻松灵活地进行定性和定量检测,对 AFB 和 FB 的检出限(LOD)分别低至 2.8 和 13.9 pg/mL,分别比欧盟设定的最大值低 700 倍和 71,000 倍以上。此外,还通过 DFT 模拟研究了潜在的催化机制和 Fe-N-C SAzyme 的活性中心。这项工作不仅为先进的 SAzyme 的应用提供了一种有前途的检测策略,而且为理解 Fe-N-C SAzyme 的活性中心和催化过程提供了实验和理论指导。