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Improving fluorescent DNAzyme biosensors by combining inter- and intramolecular quenchers

机译:通过结合分子间和分子内淬灭剂来改善荧光DNAzyme生物传感器

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A previously reported DNAzyme-based biosensor for Pb2+ has shown high sensitivity and selectivity at 4degreesC. In the system, the substrate and the enzyme strand of the DNAzyme are labeled with a fluorophore and a quencher, respectively. In the presence of Pb2+, the substrate strand is cleaved by the enzyme strand, and the release of the cleaved fragment results in significant fluorescence increase. However, the performance of the sensor decreases considerably if the temperature is raised to room temperature because of high background fluorescence. A careful analysis of the sensor system, including measurement of the melting curve and fluorescence resonance energy-transfer (FRET) study of the free substrate, suggests that a fraction of the fluorophore-labeled substrate strand is dissociated from the enzyme strand, resulting in elevated background fluorescence signals at room temperature. To overcome this problem, we designed a new sensor system by introducing both inter- and intramolecular quenchers. The design was aided by the FRET study that showed the dissociated substrate maintained a random coil conformation with an end-to-end distance of similar to39 Angstrom, which is much shorter than that of the fully extended DNA. With this new design, the background fluorescence was significantly suppressed, with 660% increase of fluorescence intensity as compared to 60% increase for the previous design. This suppression of background fluorescence signals was achieved without losing selectivity of the sensor. The new design makes it possible to use the sensor for practical applications in a wide temperature range. The design principle presented here should be applicable to other nucleic acid-based biosensors to decrease background fluorescence. [References: 50]
机译:先前报道的基于Pb2 +的基于DNAzyme的生物传感器在4℃下显示出高灵敏度和选择性。在该系统中,DNAzyme的底物和酶链分别用荧光团和淬灭剂标记。在Pb2 +存在下,底物链被酶链切割,切割片段的释放导致荧光显着增加。但是,由于背景荧光较高,如果将温度升至室温,则传感器的性能会大大降低。仔细分析传感器系统,包括测量熔解曲线和对游离底物进行荧光共振能量转移(FRET)研究,结果表明,荧光团标记的底物链中有一部分与酶链解离,导致酶链升高。室温下的背景荧光信号。为了克服这个问题,我们通过引入分子间和分子内淬灭剂设计了一种新的传感器系统。 FRET研究协助了该设计,该研究表明,解离的底物保持无规卷曲构象,其端对端距离接近39埃,比完全延伸的DNA短得多。通过这种新设计,背景荧光得到了显着抑制,荧光强度增加了660%,而以前的设计增加了60%。在不损失传感器选择性的情况下实现了对背景荧光信号的抑制。新设计使该传感器可以在宽温度范围内用于实际应用。此处介绍的设计原理应适用于其他基于核酸的生物传感器,以减少背景荧光。 [参考:50]

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