Key Laboratory of Sensor Analysis of Tumor Marker, Ministry of Education, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, No. 53, Rd. Zhengzhou, Qingdao, Shandong 266042, China.
Key Laboratory of Sensor Analysis of Tumor Marker, Ministry of Education, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, No. 53, Rd. Zhengzhou, Qingdao, Shandong 266042, China.
Biosens Bioelectron. 2018 Aug 15;113:1-8. doi: 10.1016/j.bios.2018.04.046. Epub 2018 Apr 23.
Herein, an autocatalytic strand displacement amplification (ASDA) strategy was proposed for the first time, which was further ingeniously coupled with hybridization chain reaction (HCR) event for the isothermal, label-free and multiple amplification toward nucleic acid detection. During the ASDA module, the target recognition opens the immobilized hairpin probe (IP) and initiates the annealing of the auxiliary DNA strand (AS) with the opened IP for the successive polymerization and nicking reaction in the presence of DNA polymerase and nicking endonuclease. This induces the target recycling and generation of a large amount of intermediate DNA sequences, which can be used as target analogy to execute the autocatalytic strand displacement amplification. Simultaneously, the introduced AS strand can propagate the HCR between two hairpins (H1 and H2) to form a linear DNA concatamer with cytosine (C)-rich loop region, which can facilitate the in-situ synthesis of silver nanoclusters (AgNCs) as electrochemical tags for further amplification toward target responses. With current cascade ASDA and HCR strategy, the detection of target DNA could be achieved with a low detection limit of about 0.16 fM and a good selectivity. The developed biosensor also exhibits the distinct advantages of flexibility and simplicity in probe design and biosensor fabrication, and label-free electrochemical detection, thus opens a promising avenue for the detection of nucleic acid with low abundance in bioanalysis and clinical biomedicine.
本文首次提出了自动催化链位移扩增(ASDA)策略,该策略进一步巧妙地与杂交链式反应(HCR)事件相结合,实现了核酸检测的等温、无标记和多重扩增。在 ASDA 模块中,目标识别打开固定化发夹探针(IP),并在 DNA 聚合酶和核酸内切酶存在下,使辅助 DNA 链(AS)与打开的 IP 退火,从而引发连续聚合和缺口反应。这导致目标循环和大量中间 DNA 序列的产生,这些序列可以作为目标类似物来执行自动催化链位移扩增。同时,引入的 AS 链可以在两个发夹(H1 和 H2)之间传播 HCR,形成具有富含胞嘧啶(C)的环区的线性 DNA 连接体,这有利于银纳米簇(AgNCs)的原位合成,作为电化学标签,进一步放大目标反应。通过当前级联 ASDA 和 HCR 策略,可以实现对目标 DNA 的低检测限约为 0.16 fM 和良好的选择性检测。所开发的生物传感器还具有探针设计和生物传感器制造灵活简单、无标记电化学检测的明显优势,因此为生物分析和临床生物医学中低丰度核酸的检测开辟了一条有前途的途径。