State Key Laboratory of Chemo/Biosensing and Chemometrics, College of Biology, College of Chemistry and Chemical Engineering , Hunan University, Key Laboratory for Bio-Nanotechnology and Molecule Engineering of Hunan Province , Changsha 410082 , China.
Anal Chem. 2019 Aug 20;91(16):10672-10678. doi: 10.1021/acs.analchem.9b01947. Epub 2019 Aug 8.
In this work, based on mesoporous silica containers (MSNs) with the programmed enzyme-free DNA assembly amplification of catalytic hairpin assembly (CHA) and hybridization chain reaction (HCR), an ultrasensitive electrochemical sensing platform with low background is developed for the detection of microRNA (miRNA). Herein, the electrochemical reporter methylene blue (MB) was sealed in the pores of MSNs by the double-stranded DNA (dsDNA) gate of hairpin DNA H1 and anchor DNA. In the absence of target, neither the CHA nor the HCR process happened, which enabled a low background. After target was added, DNA H1 was displaced from the MSNs surface and participated in the CHA process with the assistance of hairpin DNA H2, which accelerated the release of MB from the MSNs pore. Meanwhile, the CHA products H1-H2 were hybridized with the capture probes (SH-CP) on the electrode surface, which further initiated the HCR process. The released MB from the MSNs will effectively intercalate into long dsDNA polymers of HCR products, resulting in a significant electrochemical response. Taking miRNA-21 as the model target, the proposed sensing platform achieves a satisfactory detection limit down to 0.037 fM, which is lower than that of electrochemical assay with amplification methods. In addition, the strategy shows good selectivity against other miRNAs and is capable in practical analytes. Benefitting from the features of being label-free and enzyme-free and having low background, high sensitivity, and selectivity, this strategy shows great potential in bioanalysis and clinical diagnostics.
在这项工作中,基于具有可编程无酶 DNA 组装扩增催化发夹组装(CHA)和杂交链式反应(HCR)的介孔硅容器(MSNs),开发了一种具有低背景的超灵敏电化学生物传感平台,用于检测 microRNA(miRNA)。在此,电化学报告分子亚甲蓝(MB)通过发夹 DNA H1 和锚定 DNA 的双链 DNA(dsDNA)门被密封在 MSNs 的孔中。在不存在靶标时,既没有 CHA 也没有 HCR 过程发生,从而产生了低背景。加入靶标后,DNA H1 从 MSNs 表面被置换出来,并在发夹 DNA H2 的协助下参与 CHA 过程,从而加速了 MB 从 MSNs 孔中的释放。同时,CHA 产物 H1-H2 与电极表面上的捕获探针(SH-CP)杂交,进一步引发 HCR 过程。从 MSNs 释放的 MB 将有效地插入 HCR 产物的长双链 DNA 聚合物中,从而产生显著的电化学响应。以 miRNA-21 为模型靶标,所提出的传感平台实现了令人满意的检测下限低至 0.037 fM,低于具有放大方法的电化学生物分析。此外,该策略对其他 miRNA 表现出良好的选择性,并且能够在实际分析物中进行。受益于无标记和无酶且背景低、灵敏度高和选择性好的特点,该策略在生物分析和临床诊断中显示出巨大的潜力。