College of Chemistry and Chemical Engineering, Anyang Normal University, Anyang, Henan 455000, People's Republic of China.
Biosens Bioelectron. 2014 Mar 15;53:399-405. doi: 10.1016/j.bios.2013.10.026. Epub 2013 Oct 23.
MicroRNAs (miRNAs) are believed to be important for cancer diagnosis and prognosis, serving as reliable molecular biomarkers. In this work, we presented a label-free and highly sensitive electrochemical genosensor for miRNAs detection with the triple signal amplification of gold nanoparticles (AuNPs), alkaline phosphatase (ALP) and p-aminophenol (p-AP) redox cycling. The label-free strategy is based on the difference in the structures of RNA and DNA. Specifically, miRNAs were first captured by the pre-immobilized DNA probes on a gold electrode. Next, the cis-diol group of ribose sugar at the end of the miRNAs chain allowed 3-aminophenylboronic acid (APBA)/biotin-modified multifunctional AuNPs (denoted as APBA-biotin-AuNPs) to be attached through the formation of a boronate ester covalent bond, which facilitated the capture of streptavidin-conjugated alkaline phosphatase (SA-ALP) via the biotin-streptavidin interaction. After the addition of the 4-aminophenylphosphate (p-APP) substrate, the enzymatic conversion from p-APP to p-AP occurred. The resulting p-AP could be cycled by a chemical reducing reagent after its electro-oxidization on the electrode (known as p-AP redox cycling), thus enabling an increase in the anodic current. As a result, the current increased linearly with the miRNAs concentration over a range of 10 fM-5 pM, and a detection limit of 3 fM was achieved. We believe that this work will be valuable for the design of new types of label-free and sensitive electrochemical biosensors.
miRNAs(miRNA)被认为对癌症的诊断和预后很重要,可作为可靠的分子生物标志物。在这项工作中,我们提出了一种无标记的高灵敏度电化学基因传感器,用于检测 miRNA,其检测方法基于金纳米粒子(AuNPs)、碱性磷酸酶(ALP)和对氨基苯酚(p-AP)的氧化还原循环的三重信号放大。无标记策略基于 RNA 和 DNA 结构的差异。具体来说,miRNA 首先被固定在金电极上的预固定 DNA 探针捕获。接下来,miRNA 链末端核糖糖的顺式二醇基团允许 3-氨基苯硼酸(APBA)/生物素修饰的多功能 AuNPs(表示为 APBA-生物素-AuNPs)通过形成硼酸酯共价键连接,从而促进通过生物素-链霉亲和素相互作用捕获结合了链霉亲和素的碱性磷酸酶(SA-ALP)。在添加 4-氨基苯膦酸(p-APP)底物后,p-APP 发生酶促转化为 p-AP。生成的 p-AP 可以在电极上电氧化后通过化学还原剂循环(称为 p-AP 氧化还原循环),从而增加阳极电流。结果,电流与 miRNA 浓度在 10 fM-5 pM 范围内呈线性增加,检测限达到 3 fM。我们相信,这项工作对于设计新型无标记和敏感的电化学生物传感器将具有重要价值。