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基于交叉催化发夹组装的指数信号放大用于具有低背景噪声的 CRET 测定。

Cross-catalytic hairpin assembly-based exponential signal amplification for CRET assay with low background noise.

机构信息

Collaborative Innovation Center for Marine Biomass Fiber, Materials and Textiles of Shandong Province, College of Chemistry and Chemical Engineering, Shandong Sino-Japanese Center for Collaborative Research of Carbon Nanomaterials, Laboratory of Fiber Materials and Modern Textiles, the Growing Base for State Key Laboratory, Qingdao University, Qingdao 266071, PR China.

Key Laboratory of Sensor Analysis of Tumor Marker, Ministry of Education, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao 266042, PR China.

出版信息

Biosens Bioelectron. 2017 Aug 15;94:671-676. doi: 10.1016/j.bios.2017.03.071. Epub 2017 Apr 4.

Abstract

A toehold-mediated strand displacement (TMSD)-based cross-catalytic hairpin assembly (C-CHA) is demonstrated in this study, achieving exponential amplification of nucleic acids. Functionally, this system consists of four hairpins (H1, H2, H3 and H4) and one single-stranded initiator (I). Upon the introduction of I, the first CHA reaction (CHA1) is triggered, leading to the self-assembly of hybrid H1·H2 that then initiates the second CHA reaction (CHA2) to obtain the hybrid H3·H4. Since the single-stranded region in H3·H4 is identical to I, a new CHA1 is initiated, which thus achieves cross operation of CHA1 and CHA2 and exponential growth kinetics. Interestingly, because the C-CHA performs in a cascade manner, this system can be considered as multi-level molecular logic circuits with feedback mechanism. Moreover, through incorporating G-quadruplex subunits and fluorescein isothiocyanate (FITC) in the product of H1·H2, this C-CHA is readily utilized to fabricate a chemiluminescence resonance energy transfer (CRET) biosensing platform, achieving sensitive and selective detection of DNA and microRNA in real samples. Since the high background signal induced by FITC in the absence of initiator is greatly reduced through labeling quencher in H1, the signal-to-noise ratio and detection sensitivity are improved significantly. Therefore, our proposed C-CHA protocol holds a great potential for further applications in not only building complex autonomous systems but also the development of biosensing platforms and DNA nanotechnology.

摘要

本文展示了一种基于链置换的脚趾介导的交叉发夹组装(C-CHA),实现了核酸的指数级扩增。在功能上,该系统由四个发夹(H1、H2、H3 和 H4)和一个单链启动子(I)组成。在引入 I 后,触发第一个 CHA 反应(CHA1),导致杂交 H1·H2 的自组装,然后引发第二个 CHA 反应(CHA2)以获得杂交 H3·H4。由于 H3·H4 中的单链区域与 I 相同,因此会引发新的 CHA1,从而实现 CHA1 和 CHA2 的交叉操作和指数增长动力学。有趣的是,由于 C-CHA 以级联方式进行,因此该系统可以被视为具有反馈机制的多级分子逻辑电路。此外,通过在 H1·H2 的产物中掺入 G-四链体亚基和荧光素异硫氰酸酯(FITC),该 C-CHA 可用于构建化学发光共振能量转移(CRET)生物传感平台,实现对真实样品中 DNA 和 microRNA 的灵敏和选择性检测。由于在没有启动子的情况下 FITC 引起的高背景信号通过在 H1 中标记淬灭剂而大大降低,因此信号与噪声比和检测灵敏度得到了显著提高。因此,我们提出的 C-CHA 方案不仅在构建复杂的自主系统方面具有很大的应用潜力,而且在生物传感平台和 DNA 纳米技术的发展方面也具有很大的应用潜力。

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