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采用双频超连续激光源的激发发射荧光寿命光谱仪。

An excitation emission fluorescence lifetime spectrometer using a frequency doubled supercontinuum laser source.

机构信息

Nanoscale Biophotonics Laboratory, School of Chemistry, National University of Ireland, Galway, Ireland.

出版信息

Methods Appl Fluoresc. 2018 Sep 3;6(4):045007. doi: 10.1088/2050-6120/aad9ae.

Abstract

The accurate fluorescence analysis of complex, multi-fluorophore containing proteins requires the use of multi-dimensional measurement techniques. For the measurement of intrinsic fluorescence from tyrosine (Tyr) and tryptophan (Trp) one needs tuneable UV excitation and for steady-state measurements like Excitation Emission Matrix (EEM) simple pulsed Xe lamps are commonly used. Unfortunately, simultaneous multi-dimensional wavelength and time resolved measurement of intrinsic protein fluorescence in the 260 to 400 nm spectral range are challenging and typically required the use of very complex tuneable laser systems or multiple single excitation wavelength sources. Here we have assembled and validated a novel Excitation Emission Fluorescence Lifetime Spectrometer (EEFLS) using a pulsed, frequency doubled, Super-Continuum Laser (SCL) source coupled with a 16 channel multi-anode Time Correlated Single Photon Counting (TCSPC) measurement system. This EEFLS enabled the collection of near complete lifetime and intensity maps over the most important intrinsic protein fluorescence spectral range (λ  = 260-350/λ  = 300-500 nm). The 4-dimensional (λ /λ /I/τ) Excitation Emission Fluorescence Lifetime Matrix (EEFLM) data produced can be used to better characterize the complex intrinsic emission from proteins. The system was capable of measuring fluorescence emission data with high spectral (1-2 nm) resolution and had an Instrument Response Function (IRF) of ∼650 ps for accurate measurement of nanosecond lifetimes. UV power output was stable after a warm up period, with variations of <2% over 9 hours and reproducible (relative standard deviation RSD < 1.5%). This enabled the collection of accurate EEFLM data at low resolution (∼12 nm in excitation and emission) in 1-2 hours or high resolution (4 nm) in ∼17 hours. EEFLS performance in the UV was compared with a conventional commercial TCSPC system using pulsed LED excitation and validated using solutions of p-terphenyl and tryptophan.

摘要

准确的荧光分析复杂的、多荧光团的蛋白质需要使用多维测量技术。对于酪氨酸(Tyr)和色氨酸(Trp)的固有荧光的测量,需要可调谐的紫外激发,对于稳态测量,如激发发射矩阵(EEM),通常使用简单的脉冲氙灯。不幸的是,在 260 到 400nm 光谱范围内同时进行多维波长和时间分辨的固有蛋白质荧光的测量具有挑战性,通常需要使用非常复杂的可调谐激光系统或多个单一激发波长源。在这里,我们使用脉冲、倍频的超连续激光(SCL)源和 16 通道多阳极时间相关单光子计数(TCSPC)测量系统组装并验证了一种新型的激发发射荧光寿命光谱仪(EEFLS)。该 EEFLS 能够在最重要的固有蛋白质荧光光谱范围内(λ=260-350/λ=300-500nm)收集近乎完整的寿命和强度图谱。产生的 4 维(λ/λ/ I/τ)激发发射荧光寿命矩阵(EEFLM)数据可用于更好地描述蛋白质复杂的固有发射特性。该系统能够以高光谱(1-2nm)分辨率测量荧光发射数据,仪器响应函数(IRF)约为 650ps,可用于准确测量纳秒寿命。在预热后,UV 功率输出稳定,9 小时内变化小于 2%,重复性好(相对标准偏差 RSD<1.5%)。这使得能够在低分辨率(激发和发射约 12nm)下 1-2 小时或高分辨率(4nm)下约 17 小时收集准确的 EEFLM 数据。在紫外区,EEFLS 的性能与使用脉冲 LED 激发的传统商业 TCSPC 系统进行了比较,并使用对三联苯和色氨酸的溶液进行了验证。

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