Lv Yan, Sun Yuhan, Zhou You, Khan Imran Mahmood, Niazi Sobia, Yue Lin, Zhang Yin, Wang Zhouping
State Key Laboratory of Food Science and Technology, Jiangnan University, Wuxi, 214122, China.
School of Food Science and Technology, Jiangnan University, Wuxi, 214122, China.
Small. 2023 Apr;19(16):e2206105. doi: 10.1002/smll.202206105. Epub 2023 Jan 22.
Herein, for the first time, the CRISPR-Cas12a system is combined with aptamer, cascaded dynamic DNA network circuits, and Fe O @hollow-TiO @MoS nanochains (Fe O @h-TiO @MoS NCs) to construct an efficient sensing platform for tetracycline (TC) analysis. In this strategy, specific recognition of the target is transduced and amplified into H1-H2 duplexes containing the specific sequence of Cas12a-crRNA through an aptamer recognition module and the dual amplification dynamic DNA network. Subsequently, the obtained activated Cas12a protein non-specifically cleaves the adjacent reporter gene ssDNA-FAM to dissociate the FAM molecule from the quencher Fe O @h-TiO @MoS NCs, resulting in the recovery of the fluorescence signal and further signal amplification. Particularly, the synthesized multifunctional Fe O @h-TiO @MoS NCs composites also exhibit superb magnetic separability and photocatalytic degradation ability. Under optimal conditions, the aptasensor displays a distinct linear relationship with the logarithm of TC concentration, and the limit of detection is as low as 0.384 pg mL . Furthermore, the results of spiked recovery confirm the viability of the proposed aptasensor for TC quantification in real samples. This study extends the application of the CRISPR-Cas12a system in the field of analytical sensing and contributes new insights into the exploration of reliable tools for monitoring and treating hazards in food and environment.
在此,首次将CRISPR-Cas12a系统与适体、级联动态DNA网络电路以及Fe₃O₄@空心TiO₂@MoS₂纳米链(Fe₃O₄@h-TiO₂@MoS₂ NCs)相结合,构建了用于四环素(TC)分析的高效传感平台。在该策略中,通过适体识别模块和双扩增动态DNA网络,将目标物的特异性识别转化并放大为包含Cas12a-crRNA特定序列的H1-H2双链体。随后,获得的活化Cas12a蛋白非特异性切割相邻的报告基因单链DNA-FAM,使FAM分子与淬灭剂Fe₃O₄@h-TiO₂@MoS₂ NCs解离,导致荧光信号恢复并进一步信号放大。特别地,合成的多功能Fe₃O₄@h-TiO₂@MoS₂ NCs复合材料还表现出优异的磁分离性和光催化降解能力。在最佳条件下,该适体传感器与TC浓度的对数呈现出明显的线性关系,检测限低至0.384 pg mL⁻¹。此外,加标回收率结果证实了所提出的适体传感器用于实际样品中TC定量的可行性。本研究扩展了CRISPR-Cas12a系统在分析传感领域的应用,并为探索用于监测和处理食品和环境中危害的可靠工具提供了新的见解。