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Universal Aptameric System for Highly Sensitive Detection of Protein Based on Structure-Switching-Triggered Rolling Circle Amplification

机译:基于结构切换触发滚环扩增的蛋白质高度灵敏通用检测系统

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A universal approach is proposed in this study for the development of an aptameric assay system for proteins based on aptamer structure-switching-triggered ligation-rolling circle amplification (L-RCA) upon target binding. The strategy chiefly depends on the competition for binding the aptamer probe between target protein and a complementary single-stranded DNA (CDNA) that can induce the circularization of the padlock probe. Introduction of target protein into the assay system inhibits the hybridization of the CDNA with the aptamer probe because of the formation of the target/aptamer duplex. The free CDNA can only hybridize with the padlock probe. With the assistance of DNA ligase, the padlock probe is circularized, and the subsequent RCA process can be accomplished by Phi 29 DNA polymerase. Each RCA product containing thousands of repeated sequences might hybridize with a large number of molecular beacons (detection probes), resulting in an enhanced fluorescence signal. In contrast, in the absence of target protein, no obvious change in the fluorescence intensity of the detection probe is observed. This signaling mode for target recognition and transduction events is based on the combination of aptamer recognition elements and L-RCA technology with high specificity and sensitivity. The proposed assay system not only exhibits excellent analytical characteristics (e.g., the detection limit on attomolar scale and a linear dynamic range of more than 3 orders of magnitude) but also possesses significant advantages over existing aptameric assays. The proposed strategy is universal since the sequences of aptamer probe, CDNA, and padlock probe could be easily designed to be compatible with the L-RCA based detection of other proteins without other conditions.
机译:在这项研究中提出了一种通用的方法,用于开发基于靶标结合后的适体结构切换触发的连接滚动环扩增(L-RCA)的蛋白质适体分析系统。该策略主要取决于在靶蛋白和可诱导挂锁探针环化的互补单链DNA(CDNA)之间结合适体探针的竞争。由于靶/适体双链体的形成,将靶蛋白引入测定系统抑制了CDNA与适体探针的杂交。游离的CDNA只能与挂锁探针杂交。借助DNA连接酶,使挂锁探针环化,随后的RCA过程可通过Phi 29 DNA聚合酶完成。每个包含数千个重复序列的RCA产物都可能与大量分子信标(检测探针)杂交,从而导致荧光信号增强。相反,在没有靶蛋白的情况下,未观察到检测探针的荧光强度的明显变化。用于目标识别和转导事件的这种信号模式基于适体识别元件和具有高特异性和灵敏度的L-RCA技术的结合。所提出的测定系统不仅展现出优异的分析特性(例如,在摩尔摩尔水平上的检测极限和大于3个数量级的线性动态范围),而且还具有优于现有适体测定的显着优势。由于适体探针,CDNA和挂锁探针的序列可以轻松设计为与基于L-RCA的其他蛋白质检测方法兼容,而无需其他条件,因此该方法具有通用性。

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