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利用传统和单分子特性对杂交链式反应的功能化和信号效率进行研究。

Study on the Functionalization and Signaling Efficiency of the Hybridization Chain Reaction Using Traditional and Single Molecular Characterizations.

机构信息

State Key Lab of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin 130022, People's Republic of China.

Department of Chemistry, University of Science and Technology of China, Hefei, Anhui 230026, People's Republic of China.

出版信息

ACS Appl Bio Mater. 2021 Apr 19;4(4):3649-3657. doi: 10.1021/acsabm.1c00136. Epub 2021 Mar 30.

Abstract

As an important enzyme-free amplifier, the hybridization chain reaction (HCR) uses an ssDNA to trigger cycled displacement interactions between substrate hairpins and finally form elongated dsDNA concatamer mixtures. In many cases, to provide a signal probe or advanced function, additional oligonucleotides (named hairpin tails) have to be extended upon classic HCR hairpin substrates, but by doing so the HCR assembly efficiency and signal-to-noise ratio (SNR) may get seriously reduced. In this Article, a rational and general model that may guide the study on HCR functionalization and signaling efficiency is provided. We rationally design a four-hairpin model HCR system (4H-HCR) in which one or more hairpin substrates are appended with additional tails as a signaling probe. After HCR assembly, two adjacent tails are supposedly integrating into a full G-quadruplex structure to provide the evidence or signal for the assembly. A systematic study has been applied to reveal the relationship between the "tail-design" with assembly efficiency and SNR. A clear design rule-set guiding the optimized assembly and signal has been provided for traditional electrophoresis and G-quadruplex-enhanced fluorescence signal. Importantly, solid-state nanopore single molecular detection has been innovatively introduced and recommended as an "antirisk" and "mutual benefit" readout to traditional G-quadruplex signaling. Nanopore detection can provide a clear signal distinguished before and after the HCR reaction, especially when the traditional G-quadruplex-enhanced signal only provides low SNR. The G-quadruplex, in turn, may enhance the nanopore signal amplitude via increasing the diameter of the HCR products.

摘要

作为一种重要的无酶扩增剂,杂交链式反应(HCR)利用单链 DNA 触发底物发夹之间的循环置换相互作用,最终形成伸长的 dsDNA 串混合物。在许多情况下,为了提供信号探针或高级功能,必须在经典 HCR 发夹底物上扩展额外的寡核苷酸(称为发夹尾巴),但这样做会严重降低 HCR 组装效率和信噪比(SNR)。在本文中,提供了一个合理且通用的模型,可指导 HCR 功能化和信号效率的研究。我们合理设计了一个四发夹模型 HCR 系统(4H-HCR),其中一个或多个发夹底物附有额外的尾巴作为信号探针。HCR 组装后,两个相邻的尾巴据称会整合成全 G-四链体结构,为组装提供证据或信号。已经进行了系统研究,以揭示“尾巴设计”与组装效率和 SNR 之间的关系。为传统电泳和 G-四链体增强荧光信号提供了一套清晰的指导优化组装和信号的设计规则集。重要的是,创新性地引入并推荐固态纳米孔单分子检测作为传统 G-四链体信号的“避险”和“互利”读出。纳米孔检测可以在 HCR 反应前后提供清晰的信号区分,尤其是当传统 G-四链体增强信号仅提供低 SNR 时。反过来,G-四链体可以通过增加 HCR 产物的直径来增强纳米孔信号幅度。

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