State Key Laboratory of Food Science and Technology , Jiangnan University , Wuxi , 214122 , China.
School of Food Science and Technology , Jiangnan University , Wuxi , 214122 , China.
Anal Chem. 2019 Nov 5;91(21):14085-14092. doi: 10.1021/acs.analchem.9b03880. Epub 2019 Oct 17.
Mycotoxins posit serious threats to human and animal health, and numerous efforts have been performed to detect the multiple toxins by a single diagnostic approach. To best of our knowledge, for the first time, we synthesized an aptamer induced "turn on" fluorescence resonance energy transfer (FRET) biosensor using dual-color gold nanoclusters (AuNCs), l-proline, and BSA synthesized AuNCs (Lp-AuNCs and BSA-AuNCs), with WS nanosheet for simultaneous recognition of aflatoxinB (AFB) and zearalenone (ZEN) by single excitation. Here, AFB aptamer stabilized blue-emitting AuNCs (AFB-apt-Lp-AuNCs) (at 442 nm) and ZEN aptamer functionalized with red-colored AuNCs (ZEN-apt-BSA-AuNCs) (at 650 nm) were employed as an energy donor and WS nanosheet as a fluorescence quencher. With the addition of AFB and ZEN, the change in fluorescence intensity (F.I) was recorded at 442 and 650 nm and can be used for simultaneous recognition with a detection limit of 0.34 pg mL ( = 0.9931) and 0.53 pg mL ( = 0.9934), respectively. Most importantly, the semiquantitative determination of AFB and ZEN can also be realized through photovisualization. The current approach paves a new way to develop sensitive, selective, and convenient metal nanocluster-based fluorescent "switch-on" probes with potential applications in multipurpose biosensing.
真菌毒素对人类和动物的健康构成严重威胁,人们已经做出了许多努力,试图通过单一的诊断方法来检测多种毒素。据我们所知,我们首次合成了一种适体诱导的“开启”荧光共振能量转移(FRET)生物传感器,该传感器使用双色彩金纳米簇(AuNCs)、l-脯氨酸和 BSA 合成的 AuNCs(Lp-AuNCs 和 BSA-AuNCs),以及 WS 纳米片,通过单激发同时识别黄曲霉毒素 B(AFB)和玉米赤霉烯酮(ZEN)。在这里,AFB 适体稳定的蓝色发光 AuNCs(AFB-apt-Lp-AuNCs)(在 442nm 处)和 ZEN 适体功能化的红色 AuNCs(ZEN-apt-BSA-AuNCs)(在 650nm 处)被用作能量供体,WS 纳米片作为荧光猝灭剂。随着 AFB 和 ZEN 的加入,记录了在 442nm 和 650nm 处的荧光强度(F.I)变化,可用于同时识别,检测限分别为 0.34pg mL(=0.9931)和 0.53pg mL(=0.9934)。最重要的是,还可以通过光可视化实现 AFB 和 ZEN 的半定量测定。该方法为开发基于金属纳米簇的敏感、选择性和方便的荧光“开启”探针开辟了新途径,具有在多功能生物传感中的潜在应用。