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用于多重分析的具有无荧光共振能量转移空间分离量子点层的光学编码微珠工程

Engineering of Optically Encoded Microbeads with FRET-Free Spatially Separated Quantum-Dot Layers for Multiplexed Assays.

作者信息

Bilan Regina S, Krivenkov Victor A, Berestovoy Mikhail A, Efimov Anton E, Agapov Igor I, Samokhvalov Pavel S, Nabiev Igor, Sukhanova Alyona

机构信息

Laboratory of Nano-Bioengineering, National Research Nuclear University, MEPhI (Moscow Engineering Physics Institute), 31 Kashirskoe sh., 115409, Moscow, Russia.

Laboratory of Bionanotechnology, V.I. Shumakov Federal Research Center of Transplantology and Artificial Organs, 123182, Moscow, Russia.

出版信息

Chemphyschem. 2017 Apr 19;18(8):970-979. doi: 10.1002/cphc.201601274. Epub 2017 Mar 6.

Abstract

Quantum dot (QD) encoded microbeads are emerging for multiplexed analysis of biological markers. The quantitative encoding of microbeads prepared with different concentrations of QDs of different colors suffers from resonance energy transfer from the QDs fluorescing at shorter wavelengths to the QDs fluorescing at longer wavelengths. Here, we used the layer-by-layer deposition technique to spatially separate QDs of different colors with several polymer layers so that the distance between them would be larger than the Förster energy transfer radius. We performed fluorescence lifetime measurements to investigate and determine the conditions excluding significant resonance energy transfer between QDs within QD-encoded microbeads. Additionally, the number of QDs adsorbed onto microbeads was systematically established and multilayer structures of the QD-encoded microbead shells were characterized by scanning probe nanotomography. Finally, we prepared eight populations of FRET-free microbeads encoded with QDs of three colors at two intensity levels and demonstrated that all the optical codes are excitable at a single wavelength and may be clearly identified in three channels of a flow cytometer. The developed approach for engineering QD-encoded microbeads that are free from optical artefacts related to inter-QD resonance energy transfer paves the way to quantitative QD-based multiplexed assays.

摘要

量子点(QD)编码微珠正逐渐用于生物标志物的多重分析。用不同颜色、不同浓度的量子点制备的微珠进行定量编码时,会受到从较短波长荧光的量子点到较长波长荧光的量子点的共振能量转移的影响。在此,我们使用层层沉积技术,通过几个聚合物层在空间上分离不同颜色的量子点,使它们之间的距离大于福斯特能量转移半径。我们进行了荧光寿命测量,以研究和确定排除量子点编码微珠内量子点之间显著共振能量转移的条件。此外,系统地确定了吸附在微珠上的量子点数量,并通过扫描探针纳米断层扫描对量子点编码微珠壳的多层结构进行了表征。最后,我们制备了八组由三种颜色的量子点在两个强度水平编码的无荧光共振能量转移(FRET)微珠,并证明所有光学编码都可在单一波长下激发,且可在流式细胞仪的三个通道中清晰识别。所开发的用于构建无量子点间共振能量转移相关光学假象的量子点编码微珠的方法,为基于量子点的定量多重分析铺平了道路。

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