Department of Gastroenterology, Qilu Hospital of Shandong University, 107 Wenhuaxi Road, Jinan, Shandong, 250012, China; Cheeloo College of Medicine, Shandong University, No. 44 Wenhua West Road, Jinan, Shandong, 250012, China.
Key Laboratory of Optic-electric Sensing and Analytical Chemistry for Life Science, Ministry of Education, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China.
Anal Chim Acta. 2024 Sep 8;1321:343048. doi: 10.1016/j.aca.2024.343048. Epub 2024 Aug 2.
It is estimated that over 50 % of human cancers are caused by mutations in the p53 gene. Early sensitive and accurate detection of the p53 gene is important for diagnosis of cancers in the early stage. However, conventional detection techniques often suffer from strict reaction conditions, or unsatisfied sensitivity, so we need to develop a new strategy for accurate detection of p53 gene with smart designability, multiple signal amplification in mild reaction conditions.
In this study, CRISPR/Cas system is exploited in entropy-driven catalysis (EDC) and hybridization chain reaction (CHA) dual signal amplification sensing strategies. The products of both reactions can efficiently and separately activate CRISPR/Cas12a which greatly amplifies the fluorescent signal. The method has good linearity in p53 detection with the concentration ranged from 0.1 fM to 0.5 pM with ultra-low detection limit of 0.096 fM. It also showed good performance in serum, offering potentials for early disease detection.
The designed dual amplification dynamic DNA network system exhibits an ultra-sensitive fluorescence biosensing for p53 gene identification. The method is simple to operate and requires only one buffer for the experiment, and meanwhile shows smart designability which could be used for a wide range of markers. Thus, we believe the present work will provide a potential tool for the construction and development of sensitive fluorescent biosensors for diseases.
据估计,超过 50%的人类癌症是由 p53 基因突变引起的。早期敏感准确地检测 p53 基因对癌症的早期诊断很重要。然而,常规的检测技术往往受到严格的反应条件或不满足的灵敏度的限制,因此我们需要开发一种新的策略,通过智能设计,在温和的反应条件下进行多重信号放大,以实现 p53 基因的准确检测。
在这项研究中,CRISPR/Cas 系统被用于熵驱动催化(EDC)和杂交链式反应(CHA)双重信号放大传感策略。两种反应的产物都能有效地分别激活 CRISPR/Cas12a,从而大大放大荧光信号。该方法在 p53 检测中具有良好的线性关系,检测浓度范围为 0.1 fM 至 0.5 pM,检测限低至 0.096 fM。它在血清中也表现出良好的性能,为早期疾病检测提供了潜力。
设计的双重扩增动态 DNA 网络系统对 p53 基因的识别表现出超灵敏的荧光生物传感性能。该方法操作简单,实验只需一种缓冲液,同时具有智能设计性,可用于广泛的标记物。因此,我们相信本工作将为构建和开发用于疾病的灵敏荧光生物传感器提供一种潜在的工具。