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利用碱基引发介导的内部控制来探测金属纳米颗粒和荧光团之间的近场相互作用。

Toehold-mediated internal control to probe the near-field interaction between the metallic nanoparticle and the fluorophore.

机构信息

Department of Chemical and Biomolecular Engineering, National University of Singapore, 10 Kent Ridge Crescent, Singapore 11920, Singapore.

出版信息

Nanoscale. 2014 Nov 7;6(21):12515-23. doi: 10.1039/c4nr03643c.

Abstract

Metallic nanoparticles (MNPs) are known to alter the emission of vicinal fluorophores through the near-field interaction, leading to either fluorescence quenching or enhancement. Much ambiguity remains in the experimental outcome of such a near-field interaction, particularly for bulk colloidal solution. It is hypothesized that the strong far-field interference from the inner filter effect of the MNPs could mask the true near-field MNP-fluorophore interaction significantly. Thus, in this work, a reliable internal control capable of decoupling the near-field interaction from far-field interference is established by the use of the DNA toehold concept to mediate the in situ assembly and disassembly of the MNP-fluorophore conjugate. A model gold nanoparticle (AuNP)-Cy3 system is used to investigate our proposed toehold-mediated internal control system. The maximum fluorescence enhancement is obtained for large-sized AuNP (58 nm) separated from Cy3 at an intermediate distance of 6.8 nm, while fluorescence quenching is observed for smaller-sized AuNP (11 nm and 23 nm), which is in agreement with the theoretical values reported in the literature. This work shows that the toehold-mediated internal control design can serve as a central system for evaluating the near-field interaction of other MNP-fluorophore combinations and facilitate the rational design of specific MNP-fluorophore systems for various applications.

摘要

金属纳米粒子(MNPs)通过近场相互作用已知会改变相邻荧光团的发射,导致荧光猝灭或增强。在这种近场相互作用的实验结果中仍然存在很大的不确定性,特别是对于体相胶体溶液。据推测,MNPs 的内滤效应产生的强远场干扰可能会显著掩盖真实的近场 MNP-荧光团相互作用。因此,在这项工作中,通过使用 DNA 引发子概念来介导 MNP-荧光团缀合物的原位组装和拆卸,建立了一种可靠的内部对照,能够将近场相互作用与远场干扰解耦。使用模型金纳米粒子(AuNP)-Cy3 系统来研究我们提出的引发子介导的内部控制系统。对于在 6.8nm 的中间距离处与 Cy3 分离的较大尺寸 AuNP(58nm),获得了最大的荧光增强,而对于较小尺寸的 AuNP(11nm 和 23nm),则观察到荧光猝灭,这与文献中报道的理论值一致。这项工作表明,引发子介导的内部控制设计可以作为评估其他 MNP-荧光团组合的近场相互作用的核心系统,并有助于为各种应用设计特定的 MNP-荧光团系统。

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