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具有成串脉冲激发的三重态弛豫显微镜术。

Triplet-relaxation microscopy with bunched pulsed excitation.

作者信息

Donnert Gerald, Eggeling Christian, Hell Stefan W

机构信息

Max Planck Institute for Biophysical Chemistry, Department of NanoBiophotonics, Am Fassberg 11, 37077 Göttingen, Germany.

出版信息

Photochem Photobiol Sci. 2009 Apr;8(4):481-5. doi: 10.1039/b903357m. Epub 2009 Mar 9.

Abstract

Obtaining high signal levels in fluorescence microscopy is usually spoiled by the concomitant population of the dark (triplet) state of the marker, which is often followed by photobleaching. Recently, we introduced the triplet relaxation (T-Rex) modality in fluorescence microscopy which led to a major increase in total signal and dye photostability. The idea behind T-Rex is to avoid the illumination of fluorophores in the triplet state, e.g. by using pulsed excitation with interpulse time distances that are long enough for the triplet state to relax between two pulses. While our previous implementation came at the expense of extended recording, here we investigate pulsed excitation patterns for T-Rex illumination implying shorter total recording times. In particular, we balance signal enhancement and imaging speed by exciting with bunches of quickly succeeding pulses that are separated by dark periods for triplet relaxation. Taking the green fluorescent protein and the organic dye Atto532 as examples, we observe the dependence of photobleaching and total fluorescence gain on the number of pulses within a bunch. Reaching almost T-Rex conditions this excitation scheme mimics fast scanning of the illumination beam and has the potential to improve a whole range of analytical tools that suffer from photobleaching and low signal levels.

摘要

在荧光显微镜中获得高信号水平通常会因标记物伴随的暗(三重态)状态的存在而受到影响,随后往往会发生光漂白。最近,我们在荧光显微镜中引入了三重态弛豫(T-Rex)模式,这使得总信号和染料光稳定性大幅提高。T-Rex背后的理念是避免对处于三重态的荧光团进行照明,例如通过使用脉冲激发,脉冲之间的时间间隔足够长,以使三重态在两个脉冲之间弛豫。虽然我们之前的实现方式是以延长记录时间为代价的,但在这里我们研究了用于T-Rex照明的脉冲激发模式,这意味着总记录时间更短。特别是,我们通过用一连串快速相继的脉冲进行激发来平衡信号增强和成像速度,这些脉冲之间由用于三重态弛豫的暗期隔开。以绿色荧光蛋白和有机染料Atto532为例,我们观察到光漂白和总荧光增益对一束脉冲内脉冲数量的依赖性。这种激发方案几乎达到了T-Rex条件,它模拟了照明光束的快速扫描,并且有潜力改进一系列受光漂白和低信号水平困扰的分析工具。

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