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超敏实时滚环扩增检测增强的缺口诱导串联作用聚合酶。

Ultrasensitive Real-Time Rolling Circle Amplification Detection Enhanced by Nicking-Induced Tandem-Acting Polymerases.

机构信息

Department of Health Technology , Technical University of Denmark , DTU Health Tech, Building 345C , DK-2800 Kongens Lyngby , Denmark.

Blusense Diagnostics ApS , Fruebjergvej 3 , DK-2100 Copenhagen , Denmark.

出版信息

Anal Chem. 2019 Aug 6;91(15):10102-10109. doi: 10.1021/acs.analchem.9b02073. Epub 2019 Jul 10.

Abstract

Padlock probe ligation-based rolling circle amplification (RCA) can distinguish single-nucleotide variants, which is promising for the detection of drug-resistance mutations in, e.g., (). However, the clinical application of conventional linear RCA is restricted by its unsatisfactory picomolar-level limit of detection (LOD). Herein, we demonstrate the mechanism of a nicking-enhanced RCA (NickRCA) strategy that allows several polymerases to act simultaneously on the same looped template, generating single-stranded amplicon monomers. Limiting factors of NickRCA are investigated and controlled for higher amplification efficiency. Thereafter, we describe a NickRCA-based magnetic nanoparticle (MNP) dimer formation strategy combined with a real-time optomagnetic sensor monitoring MNP dimers. The proposed methodology is applied for the detection of a common rifampicin-resistance mutation, 531 (TCG/TTG). Without additional operation steps, an LOD of 15 fM target DNA is achieved with a total assay time of . 100 min. Moreover, the proposed biosensor holds the advantages of single-nucleotide mutation discrimination and the robustness to quantify targets in 10% serum samples. NickRCA produces short single-stranded monomers instead of the DNA coils produced in conventional RCA, which makes it more convenient for downstream operation, immobilization or detection, thus being applicable with different molecular tools and biosensors.

摘要

基于锁式探针连接的滚环扩增(RCA)可以区分单核苷酸变异,这对于检测,例如()中的耐药突变很有前景。然而,传统线性 RCA 的临床应用受到其不理想的皮摩尔级检测限(LOD)的限制。在此,我们展示了一种切口增强 RCA(NickRCA)策略的机制,该策略允许多个聚合酶同时在同一闭环模板上作用,产生单链扩增单体。我们研究了 NickRCA 的限制因素,并进行了控制以提高扩增效率。此后,我们描述了一种基于 NickRCA 的磁纳米粒子(MNP)二聚体形成策略,结合实时光磁传感器监测 MNP 二聚体。该方法用于检测常见的利福平耐药突变 531(TCG/TTG)。无需额外的操作步骤,即可在 15 fM 目标 DNA 的检测限下实现 100 分钟的总检测时间。此外,该生物传感器具有单核苷酸突变区分的优点,并且能够在 10%的血清样本中定量目标,具有较强的稳健性。NickRCA 产生短的单链单体,而不是传统 RCA 中产生的 DNA 线圈,这使其更便于下游操作、固定或检测,从而适用于不同的分子工具和生物传感器。

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