Department of Gynecological Oncology, 26 division, Wenzhou Central Hospital, Wenzhou, 325000, Zhejiang, China.
Ministry of Education Key Laboratory for Analytical Science of Food Safety and Biology, Fujian Provincial Key Laboratory of Analysis and Detection for Food Safety, College of Chemistry, Fuzhou University, Fuzhou, 350116, Fujian, China.
Anal Bioanal Chem. 2021 Jul;413(18):4681-4688. doi: 10.1007/s00216-020-03027-3. Epub 2020 Nov 13.
Infectious diseases are a long-standing and severe global public health problem. The rapid diagnosis of infectious diseases is an urgent need to solve this problem. MicroRNA (miRNA) plays an important role in the intervention of some infectious diseases and is expected to become a potential biomarker for the diagnosis and prognosis of infectious diseases. It is of great significance to develop rapid and sensitive methods for detecting miRNA for effective control of infectious diseases. In this study, a simple and highly sensitive homogeneous electrochemical method for microRNAs using enzyme-driven cascaded signal amplification has been developed. In the presence of target miRNA, the reaction system produced plenty of MB-labeled single-nucleotide fragments (MB-MF) containing a few negative charges, which can diffuse to the negative surface of the ITO electrode easily, so an obvious electrochemical signal enhancement was obtained. Without the target, MB-HP contains a relatively large amount of negative charges due to the phosphates on the DNA chain, which cannot be digested by the enzyme and cannot diffuse freely to the negatively charged ITO electrode, so only a small signal was detected. The enhanced electrochemical response has a linear relationship with the logarithm of miRNA concentration in the range of 10 fM to 10 nM and the limit of detection as low as 3.0 fM. Furthermore, the proposed strategy showed the capability of discriminating single-base mismatch and performed eligibly in the analysis of miRNA in cell lysates, exhibiting great potential for disease diagnosis and biomedical research. Graphical abstract.
传染病是一个长期存在且严重的全球公共卫生问题。快速诊断传染病是解决这一问题的迫切需要。MicroRNA(miRNA)在某些传染病的干预中起着重要作用,有望成为传染病诊断和预后的潜在生物标志物。因此,开发用于有效控制传染病的 miRNA 快速、灵敏检测方法具有重要意义。在本研究中,开发了一种基于酶促级联信号放大的简单、灵敏的用于 microRNA 的均相电化学方法。在靶 miRNA 的存在下,反应体系产生了大量含有少量负电荷的 MB 标记单核苷酸片段(MB-MF),这些片段可以很容易地扩散到 ITO 电极的负表面,从而获得明显的电化学信号增强。没有靶时,由于 DNA 链上的磷酸基团,MB-HP 含有相对大量的负电荷,不能被酶消化,不能自由扩散到带负电荷的 ITO 电极,因此只能检测到较小的信号。增强的电化学响应与 miRNA 浓度的对数呈线性关系,在 10 fM 至 10 nM 的范围内,检测限低至 3.0 fM。此外,该策略表现出区分单碱基错配的能力,并在细胞裂解物中 miRNA 的分析中表现出良好的性能,为疾病诊断和生物医学研究展示了巨大的潜力。