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基于 DNA 折纸平台上的同分子Förster 共振能量转移实现的定向光子导

Directional Photonic Wire Mediated by Homo-Förster Resonance Energy Transfer on a DNA Origami Platform.

机构信息

Department of Physics and Center for Nanoscience and ‡Department of Chemistry and Biochemistry and Center for Nanoscience, Ludwig-Maximilians-Universität , 80539 Munich, Germany.

出版信息

ACS Nano. 2017 Nov 28;11(11):11264-11272. doi: 10.1021/acsnano.7b05631. Epub 2017 Nov 1.

Abstract

Elaborating efficient strategies and deepening the understanding of light transport at the nanoscale is of great importance for future designs of artificial light-harvesting assemblies and dye-based photonic circuits. In this work, we focus on studying the phenomenon of Förster resonance energy transfer (FRET) among fluorophores of the same kind (homo-FRET) and its implications for energy cascades containing two or three different dye molecules. Utilizing the spatial programmability of DNA origami, we arranged a chain of cyanine 3 (Cy3) dyes flanked at one end with a dye of lower excitation energy, cyanine 5 (Cy5), with or without an additional dye of higher excitation energy, Alexa488, at the other end. We characterized the response of our fluorophore assemblies with bulk and single-molecule spectroscopy and support our measurements by Monte Carlo modeling of energy transfer within the system. We find that, depending on the arrangement of the fluorophores, homo-FRET between the Cy3 dyes can lead to an overall enhanced energy transfer to the acceptor fluorophore. Furthermore, we systematically analyzed the homo-FRET system by addressing the fluorescence lifetime and anisotropy. Finally, we built a homo-FRET-mediated photonic wire capable of transferring energy through the homo-FRET system from the blue donor dye (Alexa488) to the red acceptor fluorophore (Cy5) across a total distance of 16 nm.

摘要

详细阐述纳米尺度下的高效光传输策略并加深对其的理解,对于未来人工光捕获组件和基于染料的光子电路的设计具有重要意义。在这项工作中,我们专注于研究同类型荧光团之间Förster 共振能量转移(FRET)现象(同型 FRET)及其对包含两个或三个不同染料分子的能量级联的影响。利用 DNA 折纸术的空间可编程性,我们将一端带有较低激发能染料菁染料 3(Cy3)的染料链排列在一侧,而在另一侧则带有或不带有更高激发能染料 Alexa488 的染料。我们使用体相和单分子光谱学对我们的荧光团组件的响应进行了表征,并通过对系统内能量转移的蒙特卡罗建模来支持我们的测量。我们发现,根据荧光团的排列方式,Cy3 染料之间的同型 FRET 可以导致整体上增强到受体荧光团的能量转移。此外,我们通过处理荧光寿命和各向异性来系统地分析同型 FRET 系统。最后,我们构建了一个同型 FRET 介导的光子线,能够通过同型 FRET 系统从蓝色供体染料(Alexa488)到红色受体荧光团(Cy5)传递能量,总距离为 16nm。

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