Henan Province of Key Laboratory of New Optoelectronic Functional Materials, College of Chemistry and Chemical Engineering, Anyang Normal University, Anyang, Henan 455000, People's Republic of China.
Henan Province of Key Laboratory of New Optoelectronic Functional Materials, College of Chemistry and Chemical Engineering, Anyang Normal University, Anyang, Henan 455000, People's Republic of China; Henan Key Laboratory of Biomolecular Recognition and Sensing, Shangqiu Normal University, Shangqiu, Henan 476000, People's Republic of China.
Biosens Bioelectron. 2017 Aug 15;94:235-242. doi: 10.1016/j.bios.2017.02.041. Epub 2017 Feb 24.
This work presented a simple, sensitive and label-free electrochemical method for the detection of microRNAs (miRNAs). It is based on the boronate ester covalent interaction between 4-mercaptophenylboronic acid (MPBA) and cis-diol at the 3'-terminal of miRNAs and the MPBA-induced in situ formation of citrate-capped silver nanoparticles (AgNPs) aggregates as labels on the electrode surface. In this design, MPBA acted as the cross-linker of AgNPs assembly. Specifically, the thiolated hairpin-like DNA probe was assembled onto the gold nanoparticles (nano-Au) modified electrode surface through the Ag-S interaction. After hybridization with the target miRNAs, MPBA was anchored onto the 3'-terminal of miRNAs through the formation of a boronate ester bond and then captured AgNP via the Ag-S interaction. Meanwhile, free MPBA molecules in solution induced the in situ assembly of AgNPs on electrode surface through the covalent interactions between α-hydroxycarboxylate of citrate and boronate of MPBA and the formation of Ag-S bonds. The electrochemical signal was therefore amplified due to the formation of AgNPs network architecture. To demonstrate the feasibility and analytical performances of the method, miRNA-21 was determined as a model analyte. The detection limit was found to be 20 aM. The viability of our method for biological sample assays was demonstrated by measuring the miRNA-21 contents in three human serum samples. In contrast to other signal-amplified electrochemical strategies for miRNAs detection, our method requires simple detection principle and easy operation procedure and obviates the specific modification of nanoparticles and capture/detection probes.
本工作提出了一种简单、灵敏、无需标记的电化学方法用于检测 microRNAs(miRNAs)。该方法基于 4-巯基苯硼酸(MPBA)与 miRNA 3' 端顺式二醇之间的硼酸酯共价相互作用,以及 MPBA 诱导的在电极表面原位形成的柠檬酸酸化银纳米粒子(AgNPs)聚集体作为标记物。在这个设计中,MPBA 充当了 AgNPs 组装的交联剂。具体来说,硫代发夹状 DNA 探针通过 Ag-S 相互作用组装到纳米金(nano-Au)修饰电极表面。与靶 miRNA 杂交后,MPBA 通过形成硼酸酯键锚定到 miRNA 的 3' 端,然后通过 Ag-S 相互作用捕获 AgNP。同时,溶液中游离的 MPBA 分子通过柠檬酸酸基与 MPBA 硼酸酯之间的共价相互作用以及 Ag-S 键的形成,诱导 AgNPs 在电极表面原位组装。因此,由于 AgNPs 网络结构的形成,电化学信号得到了放大。为了验证该方法的可行性和分析性能,以 miRNA-21 作为模型分析物进行了测定。检测限为 20 aM。通过测量三种人血清样品中的 miRNA-21 含量,证明了我们的方法在生物样品分析中的可行性。与其他用于 miRNA 检测的信号放大电化学策略相比,我们的方法具有简单的检测原理和易于操作的程序,并且不需要纳米粒子和捕获/检测探针的特定修饰。