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Expanding the potential of standard flow cytometry by extracting fluorescence lifetimes from cytometric pulse shifts

机译:通过从细胞计数脉冲移位中提取荧光寿命来扩展标准流式细胞术的潜力

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摘要

Fluorescence lifetime measurements provide information about the fluorescence relaxation, or intensity decay, of organic fluorophores, fluorescent proteins, and other inorganic molecules that fluoresce. The fluorescence lifetime is emerging in flow cytometry and is helpful in a variety of multiparametric, single cell measurements because it is not impacted by nonlinearity that can occur with fluorescence intensity measurements. Yet time-resolved cytometry systems rely on major hardware modifications making the methodology difficult to reproduce. The motivation of this work is, by taking advantage of the dynamic nature of flow cytometry sample detection and applying digital signal processing methods, to measure fluorescence lifetimes using an unmodified flow cytometer. We collect a new lifetime-dependent parameter, referred to herein as the fluorescence-pulse-delay (FPD), and prove it is a valid representation of the average fluorescence lifetime. To verify we generated cytometric pulses in simulation, with light emitting diode (LED) pulsation, and with true fluorescence measurements of cells and microspheres. Each pulse is digitized and used in algorithms to extract an average fluorescence lifetime inherent in the signal. A range of fluorescence lifetimes is measurable with this approach including standard organic fluorophore lifetimes (∼1 to 22 ns) as well as small, simulated shifts (0.1 ns) under standard conditions (reported herein). This contribution demonstrates how digital data acquisition and signal processing can reveal time-dependent information foreshadowing the exploitation of full waveform analysis for quantification of similar photo-physical events within single cells. © 2014 The Authors. Published by Wiley Periodicals, Inc.
机译:荧光寿命测量可提供有关有机荧光团,荧光蛋白和其他发出荧光的无机分子的荧光弛豫或强度衰减的信息。荧光寿命正在流式细胞仪中出现,并有助于进行多种多参数,单细胞测量,因为它不受荧光强度测量可能发生的非线性影响。然而,时间分辨的细胞计数系统依赖于主要的硬件修改,使得该方法难以再现。这项工作的目的是通过利用流式细胞仪样品检测的动态特性并应用数字信号处理方法,使用未经修改的流式细胞仪测量荧光寿命。我们收集了一个新的寿命相关参数,在此称为荧光脉冲延迟(FPD),并证明它是平均荧光寿命的有效表示。为了验证我们在仿真中生成的细胞计数脉冲,具有发光二极管(LED)脉冲,以及细胞和微球体的真实荧光测量结果。每个脉冲均被数字化并用于算法中,以提取信号固有的平均荧光寿命。用这种方法可以测量一系列荧光寿命,包括标准有机荧光团寿命(约1至22 ns)以及在标准条件下的小的模拟位移(0.1 ns)(本文报道)。这一贡献证明了数字数据采集和信号处理如何能够揭示与时间有关的信息,从而预示了利用全波形分析来量化单个细胞内类似光物理事件的可能性。 ©2014作者。由Wiley Periodicals,Inc.发布

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