State Key Laboratory of Food Science and Resources, Jiangnan University, Lihu Road 1800, Wuxi 214122, PR China.
School of Food Science and Technology, Jiangnan University, Lihu Road 1800, Wuxi 214122, PR China.
Anal Chem. 2024 May 14;96(19):7714-7722. doi: 10.1021/acs.analchem.4c00956. Epub 2024 Apr 30.
Currently, fluorescent "turn-on" lateral flow assay (FONLFA) has shown enhanced "naked eye" detection sensitivity for small molecules, while it is urgent to adopt biocompatible fluorescent nanomaterials and needs new strategies to simplify the preparation process. In this study, a highly effective method was proposed to produce FONLFA strips for the detection of small molecules. The gold-silver nanoclusters (AuAgNCs) were immobilized onto the nitrocellulose membrane of the strips by the self-assembly of poly(sodium 4-styrenesulfonate), antigen, and AuAgNCs. The immobilization process entails a straightforward mixing of the three components, taking merely 1 min, thereby bypassing the necessity for chemical modification of fluorescent nanomaterials. The strategy offers a significantly simplified process, which substantially enhances the efficiency of the strip fabrication. Utilizing this method, a FONLFA was developed for carbendazim with a visual limit of detection (vLOD) reduced by 40-fold compared with the conventional colorimetric lateral flow assay (LFA). Furthermore, the approach demonstrates versatility by enabling the immobilization of AuAgNCs and streptavidin, which facilitates the development of aptamer-based FONLFAs. The designed aptamer-based FONLFA for kanamycin exhibited a 50-fold reduction in the vLOD compared with conventional colorimetric LFAs. Therefore, FONLFA holds promising potential for widespread applications in the analysis of small molecules.
目前,荧光“开启”侧向流动分析(FONLFA)已经显示出对小分子增强的“肉眼”检测灵敏度,而采用生物相容性荧光纳米材料并需要新的策略来简化制备过程是当务之急。在这项研究中,提出了一种生产用于小分子检测的 FONLFA 条带的高效方法。通过聚(4-苯乙烯磺酸钠)、抗原和 AuAgNCs 的自组装,将金-银纳米团簇(AuAgNCs)固定在条带的硝酸纤维素膜上。固定化过程只需将这三种成分简单混合 1 分钟,从而避免了对荧光纳米材料进行化学修饰的需要。该策略提供了一个显著简化的过程,大大提高了条带制造的效率。利用这种方法,开发了一种用于多菌灵的 FONLFA,与传统比色侧向流动分析(LFA)相比,视觉检测限(vLOD)降低了 40 倍。此外,该方法通过固定 AuAgNCs 和链霉亲和素展示了多功能性,这为基于适配体的 FONLFAs 的开发提供了便利。设计的基于适体的 FONLFA 用于卡那霉素,与传统比色 LFAs 相比,vLOD 降低了 50 倍。因此,FONLFA 在小分子分析中具有广泛应用的潜力。