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Target-Catalyzed Dynamic Assembly-Based Pyrene Excimer Switching for Enzyme-Free Nucleic Acid Amplified Detection

机译:基于目标催化的基于动态组装的P准分子开关用于无酶核酸扩增检测

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摘要

Because of the intrinsic importance of nucleic acid as biotargets, the simple and sensitive detection of nucleic acid is very essential for biological studies and medical diagnostics. Herein, a new strategy for enzyme-free nucleic acid amplified detection has been opened up by combining the signal-amplification capability of target-catalyzed dynamic assembly with the spatially sensitive fluorescent signal of the pyrene excimer. In this strategy, three metastable pyrenelabeled hairpin DNA probes were designed as assembly components, which were kinetically handicapped from cross-opening in the absence of the target DNA. However, in the presence of the target, the dynamic assembly of branched junctions was circularly catalyzed and accompanied by the switching of the pyrene excimer which emits at ~488 nm. Thus, the target DNA could be detected by this simple mix-and-detect amplification method, without expensive and perishable protein enzymes. A good detection capability exhibited with a detectable minimum target concentration of 10 pM, which was comparable to or even better than some reported enzyme-dependent amplification methods, and the potential for the target detection from complex fluids was verified. In addition, as a novel transformation of dynamic DNA assembly technology into enzyme-free signal-amplification analytical application, we infer that the proposed strategy will hold promising potential for application in a wider range of fields, including aptamer-based non-nucleic acid target sensing, biomedicine, and bioimaging.
机译:由于核酸作为生物靶标的内在重要性,因此简单而灵敏的核酸检测对于生物学研究和医学诊断非常重要。在此,通过结合靶标催化的动态组装的信号放大能力与with准分子的空间敏感荧光信号,开辟了一种新的无酶核酸扩增检测策略。在此策略中,将三个亚稳态的pyr标记的发夹DNA探针设计为装配组件,在没有目标DNA的情况下,由于交叉开放而受到动力学阻碍。然而,在存在靶标的情况下,分支结的动态组装被循环催化,并伴有在〜488 nm发射的pyr准分子的转换。因此,可以通过这种简单的混合检测扩增方法检测目标DNA,而无需昂贵且易腐烂的蛋白质酶。具有良好的检测能力,可检测到的最低目标浓度为10 pM,与某些报道的酶依赖性扩增方法相当甚至更好,并验证了从复杂液体中进行目标检测的潜力。此外,作为一种动态DNA组装技术向无酶信号放大分析应用的新型转化,我们推断该策略将具有广阔的应用前景,包括基于适体的非核酸靶标传感,生物医学和生物成像。

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