Department of Oncology, Shengli Clinical Medical College, Fujian Medical University, Fujian Provincial Hospital, Fuzhou 350001, China.
Department of Clinical Laboratory, School of Medical Technology and Engineering, Fujian Medical University, Fuzhou 350004, China.
Biosensors (Basel). 2022 Jul 15;12(7):528. doi: 10.3390/bios12070528.
Target-induced differences in the electrostatic interactions between methylene blue (MB) and indium tin oxide (ITO) electrode surface was firstly employed to develop a homogeneous electrochemical biosensor for flap endonuclease 1 (FEN1) detection. In the absence of FEN1, the positively charged methylene blue (MB) is free in the solution and can diffuse onto the negatively charged ITO electrode surface easily, resulting in an obvious electrochemical signal. Conversely, with the presence of FEN1, a 5'-flap is cleaved from the well-designed flapped dumbbell DNA probe (FDP). The remained DNA fragment forms a closed dumbbell DNA probe to trigger hyperbranched rolling circle amplification (HRCA) reaction, generating plentiful dsDNA sequences. A large amount of MB could be inserted into the produced dsDNA sequences to form MB-dsDNA complexes, which contain a large number of negative charges. Due to the strong electrostatic repulsion between MB-dsDNA complexes and the ITO electrode surface, a significant signal drop occurs. The signal change (Δ) shows a linear relationship with the logarithm of FEN1 concentration from 0.04 to 80.0 U/L with a low detection limit of 0.003 U/L (S/N = 3). This study provides a label-free and homogeneous electrochemical platform for evaluating FEN1 activity.
目标诱导的亚甲蓝(MB)与氧化铟锡(ITO)电极表面之间的静电相互作用的差异,首次被用于开发一种用于核酸外切酶 1(FEN1)检测的均相电化学生物传感器。在没有 FEN1 的情况下,带正电荷的亚甲蓝(MB)在溶液中是自由的,可以很容易地扩散到带负电荷的 ITO 电极表面,从而产生明显的电化学信号。相反,在存在 FEN1 的情况下,从精心设计的带瓣哑铃 DNA 探针(FDP)上切割出 5'-瓣。剩余的 DNA 片段形成闭合的哑铃 DNA 探针,触发超支化滚环扩增(HRCA)反应,产生大量 dsDNA 序列。大量的 MB 可以插入到产生的 dsDNA 序列中,形成 MB-dsDNA 复合物,其中含有大量的负电荷。由于 MB-dsDNA 复合物与 ITO 电极表面之间的强静电排斥,信号发生显著下降。信号变化(Δ)与 FEN1 浓度的对数呈线性关系,从 0.04 到 80.0 U/L,检测限低至 0.003 U/L(S/N = 3)。本研究为评估 FEN1 活性提供了一种无标记的均相电化学平台。