Shi Kai, Luo Wenjie, Cheng Ying, Li Honglei, Peng Liai, Luo Xiangrui, Hu Yu, Zhang Jiaheng, Chen Jiaxuan
College of New Energy Materials and Chemistry, Leshan Normal University, Leshan Sichuan 614000, P. R. China.
Leshan West Silicon Materials Photovoltaic and New Energy Industry Technology Research Institute, Leshan Sichuan 614000, P. R. China.
Anal Chem. 2025 May 6;97(17):9361-9366. doi: 10.1021/acs.analchem.5c00140. Epub 2025 Apr 24.
CRISPR/Cas12a-powered biosensors with guanine (G)-rich sequence reporters (e.g., G-quadruplex and G-triplex) are widely used in detection applications due to their simplicity and sensitivity. However, when these biosensors are employed for molecular detection in complex samples, they may encounter difficulties such as high background signal and susceptibility to interference because of the "turn-off" signal output. Herein, we explore, for the first time, a set of phosphorothioate (ps)-modified G-quadruplex (G4) and G-triplex (G3) sequences that can bind with thioflavin T (ThT) in an active split CRISPR/Cas12a system (SCas12a) to generate a "turn-on" fluorescent signal. To apply this new phenomenon, we develop a universal SCas12a-powered biosensor for "turn-on" fluorescent detection of nucleic acid (miRNA-21) and non-nucleic acid (kanamycin) targets by using ps-modified hairpin G3 as a reporter (SCas12a/psHG3). Target recognition activates SCas12a's -cleavage activity, leading to cleavage at the loop region of the psHG3 reporter. The released prelocked psG3 DNA binds ThT to produce a strong fluorescence signal. Without preamplification, this strategy can detect miRNA-21 with a detection limit of 100 fM. Moreover, the SCas12a/psHG3 system was further utilized for detecting kanamycin by incorporating its aptamers, enabling the detection of kanamycin at concentrations as low as 100 pM. This work is the first to develop a "turn-on" SCas12a/psHG3 system, showcasing its improved performance and wide range of applications in synthetic biology-based sensing technology.
具有富含鸟嘌呤(G)序列报告基因(如G-四链体和G-三链体)的CRISPR/Cas12a驱动的生物传感器,因其简单性和灵敏度而被广泛应用于检测领域。然而,当这些生物传感器用于复杂样品中的分子检测时,由于其“关闭”信号输出,可能会遇到诸如高背景信号和易受干扰等问题。在此,我们首次探索了一组硫代磷酸酯(ps)修饰的G-四链体(G4)和G-三链体(G3)序列,它们可在活性分裂CRISPR/Cas12a系统(SCas12a)中与硫黄素T(ThT)结合,以产生“开启”荧光信号。为了应用这一新现象,我们开发了一种通用的SCas12a驱动的生物传感器,通过使用ps修饰的发夹G3作为报告基因(SCas12a/psHG3),对核酸(miRNA-21)和非核酸(卡那霉素)靶标进行“开启”荧光检测。靶标识别激活SCas12a的切割活性,导致在psHG3报告基因的环区域发生切割。释放的预锁定psG3 DNA与ThT结合,产生强烈的荧光信号。无需预扩增,该策略可检测miRNA-21,检测限为100 fM。此外,通过整合其适体,SCas12a/psHG3系统进一步用于检测卡那霉素,能够检测低至100 pM浓度的卡那霉素。这项工作首次开发了“开启”的SCas12a/psHG3系统,展示了其在基于合成生物学的传感技术中改进的性能和广泛的应用。