Chen Leng-Chun, Lloyd William R, Chang Ching-Wei, Sud Dhruv, Mycek Mary-Ann
Department of Biomedical Engineering, University of Michigan, Ann Arbor, Michigan, USA.
Methods Cell Biol. 2013;114:457-88. doi: 10.1016/B978-0-12-407761-4.00020-8.
Fluorescence lifetime imaging microscopy (FLIM) is a method for measuring fluorophore lifetimes with microscopic spatial resolution, providing a useful tool for cell biologists to detect, visualize, and investigate structure and function of biological systems. In this chapter, we begin by introducing the basic theory of fluorescence lifetime, including the characteristics of fluorophore decay, followed by a discussion of factors affecting fluorescence lifetimes and the potential advantages of fluorescence lifetime as a source of image contrast. Experimental methods for creating lifetime maps, including both time- and frequency-domain experimental approaches, are then introduced. Then, FLIM data analysis methods are discussed, including rapid lifetime determination, multiexponential fitting, Laguerre polynomial fitting, and phasor plot analysis. After, data analysis methods are introduced that improve lifetime precision of FLIM maps based upon optimal virtual gating and total variation denoising. The chapter concludes by highlighting several recent FLIM applications for quantitative biological imaging, including Förster resonance energy transfer-FLIM, fluorescence correlation spectroscopy-FLIM, multispectral-FLIM, and multiphoton-FLIM.
荧光寿命成像显微镜(FLIM)是一种用于以微观空间分辨率测量荧光团寿命的方法,为细胞生物学家检测、可视化和研究生物系统的结构与功能提供了一种有用的工具。在本章中,我们首先介绍荧光寿命的基本理论,包括荧光团衰减的特性,接着讨论影响荧光寿命的因素以及荧光寿命作为图像对比度来源的潜在优势。然后介绍创建寿命图谱的实验方法,包括时域和频域实验方法。之后,讨论FLIM数据分析方法,包括快速寿命测定、多指数拟合、拉盖尔多项式拟合和相量图分析。随后,介绍基于最优虚拟选通和全变差去噪提高FLIM图谱寿命精度的数据分析方法。本章最后重点介绍了几种用于定量生物成像的最新FLIM应用,包括福斯特共振能量转移 - FLIM、荧光相关光谱 - FLIM、多光谱 - FLIM和多光子 - FLIM。