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Quantum Dots as Simultaneous Acceptors and Donors in Time-Gated Forster Resonance Energy Transfer Relays: Characterization and Biosensing

机译:时控福斯特共振能量转移继电器中同时受主和供体的量子点:表征和生物传感

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摘要

The unique photophysical properties of semiconductor quantum dot (QD) bioconjugates offer many advantages for active sensing, imaging, and optical diagnostics. In particular, QDs have been widely adopted as either donors or acceptors in Forster resonance energy transfer (FRET)-based assays and biosensors. Here, we expand their utility by demonstrating that QDs can function in a simultaneous role as acceptors and donors within time-gated FRET relays. To achieve this configuration, the QD was used as a central nanoplatform and coassembled with peptides or oligonucleotides that were labeled with either a long lifetime luminescent terbium(III) complex (Tb) or a fluorescent dye, Alexa Fluor 647 (A647). Within the FRET relay, the QD served as a critical intermediary where (l) an excited-state Tb donor transferred energy to the ground-state QD following a suitable microsecond delay and (2) the QD subsequently transferred that energy to an A647 acceptor. A detailed photophysical analysis was undertaken for each step of the FRET relay. The assembly of increasing ratios of Tb/QD was found to linearly increase the magnitude of the FRET-sensitized time-gated QD photoluminescence intensity. Importantly, the Tb was found to sensitize the subsequent QD-A647 donor-acceptor FRET pair without significantly affecting the intrinsic energy transfer efficiency within the second step in the relay. The utility of incorporating QDs into this type of time-gated energy transfer configuration was demonstrated in prototypical bioassays for monitoring protease activity and nucleic acid hybridization; the latter included a dual target format where each orthogonal FRET step transduced a separate binding event. Potential benefits of this time-gated FRET approach include: eliminating background fluorescence, accessing two approximately independent FRET mechanisms in a single QD-bioconjugate, and multiplexed biosensing based on spectrotemporal resolution of QD-FRET without requiring multiple colors of QD.
机译:半导体量子点(QD)生物共轭物的独特光物理性质为主动传感,成像和光学诊断提供了许多优势。特别地,在基于Forster共振能量转移(FRET)的测定法和生物传感器中,量子点已被广泛用作供体或受体。在这里,我们通过证明QD可以在时间门控FRET继电器中同时充当受体和供体来扩展其效用。为了实现此配置,将QD用作中央纳米平台,并与用长寿命的发光ter(III)络合物(Tb)或荧光染料Alexa Fluor 647(A647)标记的肽或寡核苷酸共组装。在FRET继电器中,QD充当了关键中介,其中(1)激发态的Tb供体在适当的微秒延迟后将能量转移到基态QD,(2)QD随后将该能量转移到A647受体。对FRET继电器的每个步骤进行了详细的光物理分析。发现增加的Tb / QD比率的组合线性增加了FRET敏化的时间门控QD光致发光强度的大小。重要的是,发现Tb使随后的QD-A647供体-受体FRET对敏感,而没有显着影响继电器第二步内的固有能量传递效率。在用于监测蛋白酶活性和核酸杂交的典型生物测定法中证明了将QD纳入这种类型的时间门控能量转移构型的实用性。后者包括双重靶标格式,其中每个正交FRET步骤都转导了单独的结合事件。这种时间门控FRET方法的潜在优势包括:消除背景荧光,在单个QD-生物共轭物中获得两种近似独立的FRET机制,以及基于QD-FRET光谱时分辨率的多重生物传感,而无需使用多种QD颜色。

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  • 来源
    《Journal of the American Chemical Society》 |2012年第3期|p.1876-1891|共16页
  • 作者单位

    Center for Bio/Molecular Science and Engineering, Code 6900, U.S. Naval Research Laboratory, Washington DC 20375, United States,College of Science, George Mason University, Fairfax, Virginia 22030, United States;

    Institut d'Electronique Fondamentale, Universite Paris-Sud, 91405 Orsay Cedex, France;

    Optical Sciences Division, Code 5611, U.S. Naval Research Laboratory, Washington DC 20375, United States;

    Departments of Chemistry and Cell Biology, The Scripps Research Institute La Jolla, California 92037, United States;

    Optical Sciences Division, Code 5611, U.S. Naval Research Laboratory, Washington DC 20375, United States;

    Optical Sciences Division, Code 5611, U.S. Naval Research Laboratory, Washington DC 20375, United States,Sotera Defense Solutions, Crofton, Maryland 21114, United States;

    Departments of Chemistry and Cell Biology, The Scripps Research Institute La Jolla, California 92037, United States;

    Institut d'Electronique Fondamentale, Universite Paris-Sud, 91405 Orsay Cedex, France;

    Center for Bio/Molecular Science and Engineering, Code 6900, U.S. Naval Research Laboratory, Washington DC 20375, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 03:13:20

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