Shcheslavskiy V I, Shirmanova M V, Yashin K S, Rück A C, Skala M C, Becker W
Privolzhsky Research Medical University, Nizhny Novgorod, Russia.
Becker&Hickl GmbH, Berlin, Germany.
J Biophotonics. 2025 Feb 19:e202400450. doi: 10.1002/jbio.202400450.
This article gives an overview of the most frequently used fluorescence-lifetime imaging (FLIM) techniques, their capabilities, and typical applications. Starting from a general introduction to fluorescence and phosphorescence lifetime, we will show that the fluorescence lifetime or, more accurately, the fluorescence decay function of a fluorophore is a direct indicator of the interaction with its molecular environment. FLIM is therefore more than a simple contrast technique in microscopy-it is a technique of molecular imaging. FLIM techniques can be classified into time-domain and frequency-domain techniques, analogue and photon counting techniques, and scanning and wide-field techniques. Starting from an overview of these general technical principles we will describe the features and peculiarities of the different FLIM techniques in use. An extended section is dedicated to TCSPC FLIM, addressing unique capabilities that make the technique especially interesting to FLIM of biological systems.
本文概述了最常用的荧光寿命成像(FLIM)技术、其功能及典型应用。从荧光和磷光寿命的一般介绍开始,我们将表明荧光寿命,或者更准确地说,荧光团的荧光衰减函数是其与分子环境相互作用的直接指标。因此,FLIM不仅仅是显微镜中的一种简单对比技术——它是一种分子成像技术。FLIM技术可分为时域和频域技术、模拟和光子计数技术以及扫描和宽场技术。从这些一般技术原理的概述开始,我们将描述使用中的不同FLIM技术的特点和特性。一个扩展部分专门介绍时间相关单光子计数(TCSPC)FLIM,阐述使该技术对生物系统的FLIM特别有吸引力的独特功能。