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Time-resolved confocal fluorescence microscopy: novel technical features and applications for FLIM, FRET and FCS using a sophisticated data acquisition concept in TCSPC

机译:时间分辨的共聚焦荧光显微镜:使用TCSPC中使用复杂的数据采集概念的FRIM,FRET和FCS的新颖技术特征和应用

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In recent years time-resolved fluorescence measurement and analysis techniques became a standard in single molecule microscopy. However, considering the equipment and experimental implementation they are typically still an add-on and offer only limited possibilities to study the mutual dependencies with common intensity and spectral information. In contrast, we are using a specially designed instrument with an unrestricted photon data acquisition approach which allows to store spatial, temporal, spectral and intensity information in a generalized format preserving the full experimental information. This format allows us not only to easily study dependencies between various fluorescence parameters but also to use, for example, the photon arrival time for sorting and weighting the detected photons to improve the significance in common FCS and FRET analysis schemes. The power of this approach will be demonstrated for different techniques: In FCS experiments the concentration determination accuracy can be easily improved by a simple time-gated photon analysis to suppress the fast decaying background signal. A more detailed analysis of the arrival times allows even to separate FCS curves for species which differ in their fluorescence lifetime but, for example, cannot be distinguished spectrally. In multichromophoric systems like a photonic wire which undergoes unidirectional multistep FRET the lifetime information complements significantly the intensity based analysis and helps to assign the respective FRET partners. Moreover, together with pulsed excitation the time-correlated analysis enables directly to take advantage of alternating multi-colour laser excitation. This pulsed interleaved excitation (PIE) can be used to identify and rule out inactive FRET molecules which cause interfering artefacts in standard FRET efficiency analysis. We used a piezo scanner based confocal microscope with compact picosecond diode lasers as excitation sources. The timing performance can be significantly increased by using new SPAD detectors which enable, in conjunction with new TCSPC electronics, an overall IRF width of less than 120 ps maintaining single molecule sensitivity.
机译:近几年时间分辨荧光测量和分析技术,成为了单分子显微镜的标准。然而,考虑到设备和实验实现它们通常还是一个附加的和只提供有限的可能性,研究共同的强度和光谱信息的相互依存关系。与此相反,我们使用的是专门设计的仪器与不受限制的光子数据采集的方法,其允许存储空间,时间,光谱和强度中的一般化格式保留了全部实验信息的信息。这个格式允许我们不仅对各种荧光参数之间容易研究依赖关系也能使用,例如,光子到达时间进行排序和加权所检测到的光子,以改善普通FCS和FRET分析方案的意义。这种方法的功率将被证实了不同的技术:在FCS的实验浓度测定的精度可以通过简单的时间选通光子分析来容易地提高以抑制快速衰减的背景信号。的到达时间的更详细的分析允许甚至针对其在他们的荧光寿命不同,但是,例如,不能进行光谱区分物种分开FCS曲线。在像其经历单向多步FRET寿命信息互补显著的强度为基础的分析,并有助于分配相应FRET伙伴光子丝多发系统。此外,加上脉冲激励的时间相关分析使得能够直接利用交替的多色激光激发的。此脉冲交错激发(PIE)可以用于识别和排除非活动FRET分子引起在标准FRET效率分析干扰伪影。我们使用了紧凑皮秒二极管激光器作为激发源的压电扫描仪的基于共焦显微镜。定时性能可以增加显著通过使用新SPAD探测器,使在与新TCSPC电子,小于120皮秒保持单分子灵敏度的整体宽度IRF结合。

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