Department of Combustion Physics, Lund University, 22363, Lund, Sweden.
Department of Physical Chemistry, Lund University, 22100, Lund, Sweden.
Sci Rep. 2021 Oct 14;11(1):20454. doi: 10.1038/s41598-021-99670-6.
Fluorescence-based multispectral imaging of rapidly moving or dynamic samples requires both fast two-dimensional data acquisition as well as sufficient spectral sensitivity for species separation. As the number of fluorophores in the experiment increases, meeting both these requirements becomes technically challenging. Although several solutions for fast imaging of multiple fluorophores exist, they all have one main restriction; they rely solely on spectrally resolving either the excitation- or the emission characteristics of the fluorophores. This inability directly limits how many fluorophores existing methods can simultaneously distinguish. Here we present a snapshot multispectral imaging approach that not only senses the excitation and emission characteristics of the probed fluorophores but also all cross term combinations of excitation and emission. To the best of the authors' knowledge, this is the only snapshot multispectral imaging method that has this ability, allowing us to even sense and differentiate between light of equal wavelengths emitted from the same fluorescing species but where the signal components stem from different excitation sources. The current implementation of the technique allows us to simultaneously gather 24 different spectral images on a single detector, from which we demonstrate the ability to visualize and distinguish up to nine fluorophores within the visible wavelength range.
快速运动或动态样本的基于荧光的多光谱成像是需要快速二维数据采集以及足够的光谱灵敏度来进行物种分离的。随着实验中荧光团数量的增加,满足这两个要求在技术上变得具有挑战性。尽管存在几种用于快速成像多个荧光团的解决方案,但它们都有一个主要限制;它们仅依赖于光谱解析荧光团的激发或发射特性。这种能力的直接限制了现有方法可以同时区分的荧光团数量。在这里,我们提出了一种快照多光谱成像方法,该方法不仅可以感知被探测荧光团的激发和发射特性,还可以感知激发和发射的所有交叉项组合。据作者所知,这是唯一具有这种能力的快照多光谱成像方法,使我们甚至可以感知和区分来自同一荧光物质但信号成分来自不同激发源的相同波长的光。该技术的当前实现允许我们在单个探测器上同时收集 24 个不同的光谱图像,从中我们展示了在可见波长范围内可视化和区分多达 9 个荧光团的能力。