Laboratory for Fluorescence Dynamics, Department of Biomedical Engineering, University of California, Irvine, California, USA.
Microsc Res Tech. 2013 Mar;76(3):282-9. doi: 10.1002/jemt.22165. Epub 2013 Jan 7.
Widefield frequency-domain fluorescence lifetime imaging microscopy (FD-FLIM) is a fast and accurate method to measure the fluorescence lifetime, especially in kinetic studies in biomedical researches. However, the small range of modulation frequencies available in commercial instruments makes this technique limited in its applications. Herein, we describe a practical implementation of multifrequency widefield FD-FLIM using a pulsed supercontinuum laser and a direct digital synthesizer. In this instrument we use a pulse to modulate the image intensifier rather than the more conventional sine-wave modulation. This allows parallel multifrequency FLIM measurement using the Fast Fourier Transform and the cross-correlation technique, which permits precise and simultaneous isolation of individual frequencies. In addition, the pulse modulation at the cathode of image intensifier restores the loss of optical resolution caused by the defocusing effect when the cathode is sinusoidally modulated. Furthermore, in our implementation of this technique, data can be graphically analyzed by the phasor method while data are acquired, which allows easy fit-free lifetime analysis of FLIM images. Here, our measurements of standard fluorescent samples and a Föster resonance energy transfer pair demonstrate that the widefield multifrequency FLIM system is a valuable and simple tool in fluorescence imaging studies.
宽场频域荧光寿命成像显微镜(FD-FLIM)是一种快速准确的测量荧光寿命的方法,尤其适用于生物医学研究中的动力学研究。然而,商业仪器中可用的调制频率范围较小,使得该技术在应用中受到限制。本文介绍了一种实用的多频宽场 FD-FLIM 实现方法,该方法使用脉冲超连续激光器和直接数字合成器。在该仪器中,我们使用脉冲调制像增强器,而不是更传统的正弦波调制。这允许使用快速傅里叶变换和互相关技术进行并行多频 FLIM 测量,从而可以精确且同时分离各个频率。此外,像增强器阴极的脉冲调制恢复了由于阴极正弦调制而引起的离焦效应导致的光分辨率损失。此外,在我们对该技术的实现中,可以通过相量法对数据进行图形分析,同时获取数据,从而可以轻松实现无拟合的 FLIM 图像寿命分析。在这里,我们对标准荧光样品和Förster 共振能量转移对的测量表明,宽场多频 FLIM 系统是荧光成像研究中一种有价值且简单的工具。