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Fluorescence Resonance Energy Transfer between Quantum Dots and Graphene Oxide for Sensing Biomolecules

机译:量子点和氧化石墨烯之间的荧光共振能量转移,用于传感生物分子

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This work designed a novel platform for effective sensing of biomolecules by fluorescence resonance energy transfer (FRET) from quantum dots (QDs) to graphene oxide (GO). The QDs were first modified with a molecular beacon (MB) as a probe to recognize the target analyte. The strong interaction between MB and GO led to the fluorescent quenching of QDs. Upon the recognition of the target, the distance between the QDs and GO increased, and the interaction between target-bound MB and GO became weaker, which significantly hindered the FRET and, thus, increased the fluorescence of QDs. The change in fluorescent intensity produced a novel method for detection of the target The GO-quenching approach could be used for detection of DNA sequences, with advantages such as less labor for synthesis of the MB-based fluorescent probe, high quenching efficiency and sensitivity, and good specificity. By substituting the MB with aptamer, this strategy could be conveniently extended for detection of other biomolecules, which had been demonstrated by the interaction between aptamer and protein. To the best of our knowledge, this is the first application of the FRET between QDs and GO and opens new opportunities for sensitive detection of biorecognition events.
机译:这项工作设计了一个新型平台,可通过从量子点(QD)到氧化石墨烯(GO)的荧光共振能量转移(FRET)有效感测生物分子。首先用分子信标(MB)修饰QD,以识别目标分析物。 MB和GO之间的强相互作用导致QD的荧光猝灭。识别目标后,QD与GO之间的距离增加,目标结合的MB与GO之间的相互作用变弱,这严重阻碍了FRET,从而增加了QD的荧光。荧光强度的变化产生了一种检测靶标的新方法。GO猝灭法可用于检测DNA序列,具有以下优势:合成基于MB的荧光探针所需的劳动更少,淬灭效率和灵敏度高,和良好的特异性。通过用适体替代MB,可以将该策略方便地扩展到检测其他生物分子,这已经通过适体和蛋白质之间的相互作用得到了证明。据我们所知,这是FRET在QD和GO之间的首次应用,并为敏感识别生物识别事件提供了新的机会。

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