Key Laboratory of Luminescence Analysis and Molecular Sensing, School of Chemistry and Chemical Engineering, Southwest University, Tiansheng Road, BeiBei District, Chongqing 400715, P. R. China.
Anal Chem. 2021 May 25;93(20):7499-7507. doi: 10.1021/acs.analchem.1c00805. Epub 2021 May 13.
The development of a sensing platform with high sensitivity and specificity, especially programmability and universal applicability, for the detection of clinically relevant molecules is highly valuable for disease monitoring and confirmation but remains a challenge. Here, for the first time, we introduce the clustered regularly interspaced short palindromic repeats (CRISPR)/Cas system into an immobilization-free electrochemical biosensing platform for sensitively and specifically detecting the disease-related nucleic acids and small molecules. In this strategy, a modular rolling circle amplification (RCA) is designed to transform and amplify the target recognition event into the universal trigger DNA strand that is used as the trigger to activate the deoxyribonuclease activity of CRISPR/Cas12a for further signal amplification. The cleavage of the target-activated blocker probe allows the methylene blue-labeled reporter probes to be captured by the reduced graphene oxide-modified electrode, leading to an obviously increased electrochemical signal. We only need to simply tune the sequence for target recognition in RCA components, and this strategy can be flexibly applied to the highly sensitive and specific detection of microRNAs, Parvovirus B19 DNA, and adenosine-5'-triphosphate and the calculated limit of detection is 0.83 aM, 0.52 aM, and 0.46 pM, respectively. In addition, we construct DNA logic circuits (YES, NOT, OR, AND) of DNA inputs to experimentally demonstrate the modularity and programmability of the stimuli-responsive RCA-CRISPR/Cas12a system. This work broadens the application of the CRISPR/Cas12a system to the immobilization-free electrochemical biosensing platform and provides a new thinking for developing a robust tool for clinical diagnosis.
开发一种具有高灵敏度和特异性的传感平台,特别是可编程性和通用性,用于检测临床相关分子,对于疾病监测和确诊具有重要价值,但这仍然是一个挑战。在这里,我们首次将成簇规律间隔短回文重复(CRISPR)/Cas 系统引入到无固定化的电化学生物传感平台中,用于灵敏和特异性地检测与疾病相关的核酸和小分子。在该策略中,设计了一种模块化的滚环扩增(RCA),将靶标识别事件转化并放大为通用触发 DNA 链,该链可作为触发物激活 CRISPR/Cas12a 的脱氧核糖核酸酶活性,以进一步进行信号放大。靶标激活阻断探针的切割允许亚甲基蓝标记的报告探针被还原氧化石墨烯修饰电极捕获,导致电化学信号明显增加。我们只需要简单地调整 RCA 组件中靶标识别的序列,该策略就可以灵活地应用于 microRNA、细小病毒 B19 DNA 和三磷酸腺苷的高灵敏度和特异性检测,其计算检测限分别为 0.83 aM、0.52 aM 和 0.46 pM。此外,我们构建了 DNA 输入的 DNA 逻辑电路(YES、NOT、OR、AND),以实验证明了刺激响应 RCA-CRISPR/Cas12a 系统的模块化和可编程性。这项工作拓宽了 CRISPR/Cas12a 系统在无固定化电化学生物传感平台中的应用,并为开发用于临床诊断的强大工具提供了新的思路。