Bao Yangyinchun, Sang Yidan, Yan Xuemei, Hu Mengyang, Wang Na, Dong Yafei, Wang Luhui
College of Life Science, Shaanxi Normal University Xi'an Shaanxi 710119 PR China
College of Computer Sciences, Shaanxi Normal University Xi'an Shaanxi 710119 PR China.
RSC Adv. 2024 Jun 13;14(27):19076-19082. doi: 10.1039/d4ra01703j. eCollection 2024 Jun 12.
In this work, we constructed a FAM fluorescence quenching biosensor based on an aptamer competition recognition and enzyme-free amplification strategy. We design a competing unit consisting of an aptamer chain and a complementary chain, and a catalytic hairpin self-assembly (CHA) unit consisting of two hairpins in which the complementary chain can trigger the catalytic hairpin self-assembly. In the initial state, the aptamer chain is combined with the complementary chain, the catalytic hairpin self-assembly unit is inhibited, the FAM fluorescence group was far away from the BHQ1 quenching group, and the fluorescence is turn-on. In the presence of kanamycin, the aptamer chain recognizes kanamycin and doesn't form double chains, resulting in the free complementary chain triggering hairpin 1 (H1), and then H1 triggering hairpin 2 (H2), FAM fluorophore is close to the BHQ1 quenching group, and the fluorescence is off-on. When H1 and H2 form a cyclic reaction, enzyme-free amplification is achieved and there is significant output of the fluorescence signal. Therefore, the biosensor has good performance in detecting kanamycin, the detection line is 54 nM, the linear range is 54 nM-0.9 μM, and it can achieve highly selective detection of kanamycin. Kanamycin residue may cause serious harm to human health. The high sensitivity detection of kanamycin is urgent, so this project has a great application potential for food detection.
在本工作中,我们构建了一种基于适体竞争识别和无酶扩增策略的FAM荧光猝灭生物传感器。我们设计了一个由适体链和互补链组成的竞争单元,以及一个由两个发夹组成的催化发夹自组装(CHA)单元,其中互补链可触发催化发夹自组装。在初始状态下,适体链与互补链结合,催化发夹自组装单元被抑制,FAM荧光基团远离BHQ1猝灭基团,荧光开启。在卡那霉素存在的情况下,适体链识别卡那霉素且不形成双链,导致游离的互补链触发发夹1(H1),然后H1触发发夹2(H2),FAM荧光团靠近BHQ1猝灭基团,荧光由开启变为关闭。当H1和H2形成循环反应时,实现了无酶扩增,且有显著的荧光信号输出。因此,该生物传感器在检测卡那霉素方面具有良好的性能,检测限为54 nM,线性范围为54 nM - 0.9 μM,并且能够实现对卡那霉素的高选择性检测。卡那霉素残留可能对人体健康造成严重危害。对卡那霉素进行高灵敏度检测迫在眉睫,所以该项目在食品检测方面具有巨大的应用潜力。