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基于氧化石墨烯荧光开关平台的适体介导无酶扩增电路用于灵敏均相 miRNA 检测。

Toehold-mediated nonenzymatic amplification circuit on graphene oxide fluorescence switching platform for sensitive and homogeneous microRNA detection.

机构信息

MOE Key Laboratory of Laser Life Science & Institute of Laser Life Science, College of Biophotonics, South China Normal University, Guangzhou 510631, PR China.

MOE Key Laboratory of Laser Life Science & Institute of Laser Life Science, College of Biophotonics, South China Normal University, Guangzhou 510631, PR China.

出版信息

Anal Chim Acta. 2015 Aug 12;888:162-72. doi: 10.1016/j.aca.2015.07.041. Epub 2015 Aug 10.

Abstract

A novel graphene oxide (GO) fluorescence switch-based homogenous system has been developed to solve two problems that are commonly encountered in conventional GO-based biosensors. First, with the assistance of toehold-mediated nonenzymatic amplification (TMNA), the sensitivity of this system greatly surpasses that of previously described GO-based biosensors, which are always limited to the nM range due to the lack of efficient signal amplification. Second, without enzymatic participation in amplification, the unreliability of detection resulting from nonspecific desorption of DNA probes on the GO surface by enzymatic protein can be avoided. Moreover, the interaction mechanism of the double-stranded TMNA products contains several single-stranded toeholds at two ends and GO has also been explored with combinations of atomic force microscopy imaging, zeta potential detection, and fluorescence assays. It has been shown that the hybrids can be anchored to the surface of GO through the end with more unpaired bases, and that the other end, which has weaker interaction with GO, can escape GO adsorption due to the robustness of the central dsDNA structures. We verified this GO fluorescence switch-based detection system by detecting microRNA 21, an overexpressed non-encoding gene in a variety of malignant cells. Rational design of the probes allowed the isothermal nonenzymatic reaction to achieve more than 100-fold amplification efficiency. The detection results showed that our strategy has a detection limit of 10 pM and a detection range of four orders of magnitude.

摘要

一种基于新型氧化石墨烯(GO)的荧光开关均相体系已被开发出来,用以解决传统基于 GO 的生物传感器中常见的两个问题。首先,在引发链介导的无酶扩增(TMNA)的辅助下,该系统的灵敏度大大超过了以前描述的基于 GO 的生物传感器,由于缺乏有效的信号放大,这些生物传感器的灵敏度通常限于 nM 范围。其次,由于没有酶参与扩增,避免了由于酶蛋白对 GO 表面 DNA 探针的非特异性解吸而导致的检测不可靠性。此外,双链 TMNA 产物的相互作用机制在两端包含几个单链引发子,并且还结合原子力显微镜成像、zeta 电位检测和荧光分析对 GO 进行了研究。结果表明,杂交物可以通过具有更多未配对碱基的末端锚定在 GO 表面,而与 GO 相互作用较弱的另一端由于中心 dsDNA 结构的坚固性可以逃脱 GO 的吸附。我们通过检测多种恶性细胞中过表达的非编码基因 microRNA 21 来验证了这种基于 GO 荧光开关的检测系统。探针的合理设计允许等温非酶反应实现超过 100 倍的扩增效率。检测结果表明,我们的策略具有 10 pM 的检测限和四个数量级的检测范围。

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