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通过直接波形记录实现的高性能时间分辨荧光。

High-performance time-resolved fluorescence by direct waveform recording.

作者信息

Muretta Joseph M, Kyrychenko Alexander, Ladokhin Alexey S, Kast David J, Gillispie Gregory D, Thomas David D

机构信息

Department of Biochemistry, Molecular Biology and Biophysics, University of Minnesota, Minneapolis, Minnesota 55455, USA.

出版信息

Rev Sci Instrum. 2010 Oct;81(10):103101. doi: 10.1063/1.3480647.

Abstract

We describe a high-performance time-resolved fluorescence (HPTRF) spectrometer that dramatically increases the rate at which precise and accurate subnanosecond-resolved fluorescence emission waveforms can be acquired in response to pulsed excitation. The key features of this instrument are an intense (1 μJ/pulse), high-repetition rate (10 kHz), and short (1 ns full width at half maximum) laser excitation source and a transient digitizer (0.125 ns per time point) that records a complete and accurate fluorescence decay curve for every laser pulse. For a typical fluorescent sample containing a few nanomoles of dye, a waveform with a signal/noise of about 100 can be acquired in response to a single laser pulse every 0.1 ms, at least 10(5) times faster than the conventional method of time-correlated single photon counting, with equal accuracy and precision in lifetime determination for lifetimes as short as 100 ps. Using standard single-lifetime samples, the detected signals are extremely reproducible, with waveform precision and linearity to within 1% error for single-pulse experiments. Waveforms acquired in 0.1 s (1000 pulses) with the HPTRF instrument were of sufficient precision to analyze two samples having different lifetimes, resolving minor components with high accuracy with respect to both lifetime and mole fraction. The instrument makes possible a new class of high-throughput time-resolved fluorescence experiments that should be especially powerful for biological applications, including transient kinetics, multidimensional fluorescence, and microplate formats.

摘要

我们描述了一种高性能时间分辨荧光(HPTRF)光谱仪,它能显著提高响应脉冲激发时获取精确且准确的亚纳秒分辨荧光发射波形的速率。该仪器的关键特性包括一个高强度(1 μJ/脉冲)、高重复率(10 kHz)且脉宽短(半高宽为1 ns)的激光激发源,以及一个瞬态数字化仪(每个时间点0.125 ns),它能为每个激光脉冲记录完整且准确的荧光衰减曲线。对于一个含有几纳摩尔染料的典型荧光样品,每0.1 ms响应单个激光脉冲就能获取一个信噪比约为100的波形,这比传统的时间相关单光子计数方法至少快10⁵倍,在确定短至100 ps的寿命时具有同等的准确性和精度。使用标准单寿命样品时,检测到的信号具有极高的可重复性,在单脉冲实验中波形精度和线性度误差在1%以内。用HPTRF仪器在0.1 s(1000个脉冲)内获取的波形精度足以分析两个具有不同寿命的样品,能高精度地分辨出寿命和摩尔分数方面的次要成分。该仪器使一类新的高通量时间分辨荧光实验成为可能,这对于包括瞬态动力学、多维荧光和微孔板形式在内的生物应用应该特别有效。

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