Hashimoto Koji, Inada Mika, Ito Keiko
Toshiba Corporation, 1, Komukai-Toshiba-cho, Saiwai-ku, Kawasaki 212-8582, Japan.
Toshiba Corporation, 1, Komukai-Toshiba-cho, Saiwai-ku, Kawasaki 212-8582, Japan.
Anal Biochem. 2017 Dec 15;539:113-117. doi: 10.1016/j.ab.2017.10.019. Epub 2017 Oct 24.
We have developed a novel voltammetric DNA chip for real-time electrochemical detection of targeted nucleic acid sequences using loop-mediated isothermal amplification (LAMP) and ruthenium hexaamine (RuHex) as the intercalative redox compound. A GspSSD DNA polymerase was used for LAMP owing to its tolerance of the intercalative redox compound. The electrochemical reaction of 1 mM RuHex in the LAMP solution was measured continuously by linear sweep voltammetry at 65 °C using an electrochemical DNA chip. According to the LAMP reaction of the positive sample, the cathodic peak current of RuHex increased and the cathodic peak potential of RuHex shifted to negative voltage. The initial number of copies of the targeted nucleic acid was correlated with both the time when the cathodic current began to increase and the time when the cathodic potential began to shift rapidly. 10 to 10 copies/50 μL of the targeted nucleic acid were detected quantitatively and the detection limit was 10 copies within an hour. We expect these results to lead to the realization of simple and stable electrochemical real-time monitoring of targeted nucleic acids while also facilitating the implementation of electrochemical DNA chips in molecular testing.
我们开发了一种新型伏安法DNA芯片,用于使用环介导等温扩增(LAMP)和六氨合钌(RuHex)作为插入式氧化还原化合物实时电化学检测靶向核酸序列。由于GspSSD DNA聚合酶对插入式氧化还原化合物具有耐受性,因此被用于LAMP反应。使用电化学DNA芯片,通过线性扫描伏安法在65°C下连续测量LAMP溶液中1 mM RuHex的电化学反应。根据阳性样品的LAMP反应,RuHex的阴极峰电流增加,且RuHex的阴极峰电位向负电压移动。靶向核酸的初始拷贝数与阴极电流开始增加的时间以及阴极电位开始快速移动的时间均相关。在一小时内可对10至10拷贝/50μL的靶向核酸进行定量检测,检测限为10拷贝。我们期望这些结果能够实现对靶向核酸的简单且稳定的电化学实时监测,同时也有助于电化学DNA芯片在分子检测中的应用。