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使用紧凑型量子点-DNA 偶联物的双链特异性核酸酶扩增检测 microRNA。

Duplex-Specific Nuclease-Amplified Detection of MicroRNA Using Compact Quantum Dot-DNA Conjugates.

机构信息

Department of Materials, Department of Bioengineering, and Institute of Biomedical Engineering , Imperial College London , London SW7 2AZ , U.K.

出版信息

ACS Appl Mater Interfaces. 2018 Aug 29;10(34):28290-28300. doi: 10.1021/acsami.8b07250. Epub 2018 Aug 16.

Abstract

Advances in nanotechnology have provided new opportunities for the design of next-generation nucleic acid biosensors and diagnostics. Indeed, combining advances in functional nanoparticles, DNA nanotechnology, and nuclease-enzyme-based amplification can give rise to new assays with advantageous properties. In this work, we developed a microRNA (miRNA) assay using bright fluorescent quantum dots (QDs), simple DNA probes, and the enzyme duplex-specific nuclease. We employed an isothermal target-recycling mechanism, where a single miRNA target triggers the cleavage of many DNA signal probes. The incorporation of DNA-functionalized QDs enabled a quantitative fluorescent readout, mediated by Förster resonance energy transfer (FRET)-based interaction with the DNA signal probes. Our approach splits the reaction in two, performing the enzyme-mediated amplification and QD-based detection steps separately such that each reaction could be optimized for performance of the active components. Target recycling gave ca. 3 orders of magnitude amplification, yielding highly sensitive detection with a limit of 42 fM (or 1.2 amol) of miR-148, with excellent selectivity versus mismatched sequences and other miRNAs. Furthermore, we used an alternative target (miR-21) and FRET pair for direct and absolute quantification of miR-21 in RNA extracts from human cancer and normal cell lines.

摘要

纳米技术的进步为下一代核酸生物传感器和诊断技术的设计提供了新的机会。事实上,将功能纳米粒子、DNA 纳米技术和基于核酸酶的扩增技术的进步结合起来,可以产生具有优势特性的新分析方法。在这项工作中,我们使用明亮的荧光量子点 (QD)、简单的 DNA 探针和酶双链特异性核酸酶开发了一种 microRNA (miRNA) 分析方法。我们采用等温靶标循环机制,单个 miRNA 靶标触发许多 DNA 信号探针的切割。DNA 功能化 QD 的掺入使定量荧光读出成为可能,这是通过与 DNA 信号探针的基于Förster 共振能量转移 (FRET)的相互作用介导的。我们的方法将反应分为两步,分别进行酶介导的扩增和基于 QD 的检测步骤,使得每个反应都可以针对活性成分的性能进行优化。靶标循环提供了约 3 个数量级的扩增,对 miR-148 的检测限低至 42 fM(或 1.2 amol),对错配序列和其他 miRNAs 具有出色的选择性。此外,我们使用替代靶标 (miR-21) 和 FRET 对来自人类癌细胞和正常细胞系的 RNA 提取物中的 miR-21 进行直接和绝对定量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/370f/6141140/5be5426f5e79/am-2018-07250h_0003.jpg

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