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用于镧系元素编码悬浮阵列的微秒级实时解码发光寿命

On-the-fly decoding luminescence lifetimes in the microsecond region for lanthanide-encoded suspension arrays.

作者信息

Lu Yiqing, Lu Jie, Zhao Jiangbo, Cusido Janet, Raymo Françisco M, Yuan Jingli, Yang Sean, Leif Robert C, Huo Yujing, Piper James A, Paul Robinson J, Goldys Ewa M, Jin Dayong

机构信息

Advanced Cytometry Laboratories, ARC Centre of Excellence for Nanoscale BioPhotonics (CNBP), Macquarie University, Sydney, New South Wales 2109, Australia.

Laboratory for Molecular Photonics, University of Miami, 1301 Memorial Drive, Coral Gables, Florida 33146-0431, USA.

出版信息

Nat Commun. 2014 May 6;5:3741. doi: 10.1038/ncomms4741.

Abstract

Significant multiplexing capacity of optical time-domain coding has been recently demonstrated by tuning luminescence lifetimes of the upconversion nanoparticles called 'τ-Dots'. It provides a large dynamic range of lifetimes from microseconds to milliseconds, which allows creating large libraries of nanotags/microcarriers. However, a robust approach is required to rapidly and accurately measure the luminescence lifetimes from the relatively slow-decaying signals. Here we show a fast algorithm suitable for the microsecond region with precision closely approaching the theoretical limit and compatible with the rapid scanning cytometry technique. We exploit this approach to further extend optical time-domain multiplexing to the downconversion luminescence, using luminescence microspheres wherein lifetimes are tuned through luminescence resonance energy transfer. We demonstrate real-time discrimination of these microspheres in the rapid scanning cytometry, and apply them to the multiplexed probing of pathogen DNA strands. Our results indicate that tunable luminescence lifetimes have considerable potential in high-throughput analytical sciences.

摘要

最近,通过调节被称为“τ点”的上转换纳米粒子的发光寿命,光学时域编码的显著复用能力得到了证明。它提供了从微秒到毫秒的大范围寿命,这使得能够创建大型的纳米标签/微载体库。然而,需要一种稳健的方法来快速准确地测量来自相对缓慢衰减信号的发光寿命。在这里,我们展示了一种适用于微秒区域的快速算法,其精度接近理论极限,并且与快速扫描细胞术技术兼容。我们利用这种方法,通过发光微球将光学时域复用进一步扩展到下转换发光,其中通过发光共振能量转移来调节寿命。我们在快速扫描细胞术中展示了对这些微球的实时鉴别,并将它们应用于病原体DNA链的多重探测。我们的结果表明,可调谐发光寿命在高通量分析科学中具有相当大的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7c07/4024748/f1d1c1154fd4/ncomms4741-f1.jpg

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