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DNA 发夹和哑铃轮转变放大步行纳米机器用于超灵敏核酸检测

DNA Hairpins and Dumbbell-Wheel Transitions Amplified Walking Nanomachine for Ultrasensitive Nucleic Acid Detection

作者:Peng Miao;Hua Chai;Yuguo Tang;

关键词:circulating tumor DNA,SARS-CoV-2 RNA,DNA walker,strand displacement amplification,biosensors

DOI:https://doi.org/10.1021/acsnano.1c11582

发表时间:2022年

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摘要

核酸,包括循环肿瘤DNA(ctDNA)、微小RNA和病毒DNA/RNA,已被广泛用作早期临床诊断的潜在疾病生物标志物。在这项研究中,我们提出了用于构建 DNA 双足行走纳米机器的 DNA 纳米结构转变的概念,该纳米机器集成了用于直接核酸测定的双信号放大。 DNA发夹转换的开发是为了促进多个靶序列的生成;同时,控制随后的DNA哑铃轮转换以实现双足行走器,在电极表面周围切割多个轨道。通过链置换反应和消化循环的结合,可以设计电极界面处的DNA单层并实现靶标诱导的信号变化。此外,pH辅助的可拆卸分子间DNA三链体设计被用于电化学生物传感器的再生。验证了这项工作与标准定量聚合酶链反应之间的高度一致性。此外,该生物传感器检测临床样本中的 ctDNA 和 SARS-CoV-2 RNA 的可行性已得到证实,具有令人满意的准确性和可靠性。因此,所提出的方法对于基于核酸的临床诊断具有巨大的潜在应用。


Abstract

Nucleic acids, including circulating tumor DNA (ctDNA), microRNA, and virus DNA/RNA, have been widely applied as potential disease biomarkers for early clinical diagnosis. In this study, we present a concept of DNA nanostructures transitions for the construction of DNA bipedal walking nanomachine, which integrates dual signal amplification for direct nucleic acid assay. DNA hairpins transition is developed to facilitate the generation of multiple target sequences; meanwhile, the subsequent DNA dumbbell-wheel transition is controlled to achieve the bipedal walker, which cleaves multiple tracks around electrode surface. Through combination of strand displacement reaction and digestion cycles, DNA monolayer at the electrode interface could be engineered and target-induced signal variation is realized. In addition, pH-assisted detachable intermolecular DNA triplex design is utilized for the regeneration of electrochemical biosensor. The high consistency between this work and standard quantitative polymerase chain reaction is validated. Moreover, the feasibilities of this biosensor to detect ctDNA and SARS-CoV-2 RNA in clinical samples are demonstrated with satisfactory accuracy and reliability. Therefore, the proposed approach has great potential applications for nucleic acid based clinical diagnostics.