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Tunable PIE and synchronized gating detections by FastFLIM for quantitative microscopy measurements of fast dynamics of single molecules

机译:FastFLIM可调PIE和同步门控检测,用于定量显微镜测量单个分子的快速动力学

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The crosstalk between two fluorescent species causes problems in fluorescence microscopy imaging, especially for quantitative measurements such as co-localization, Forster resonance energy transfer (FRET), fluorescence cross correlation spectroscopy (FCCS). In laser scanning confocal microscopy, the lasers can be switched on and off by acousto-optic tunable filters (AOTF) in the microsecond scale for alternative line scanning in order to avoid the crosstalk while minimizing the time delay between two lasers on the same pixel location. In contrast, the pulsed interleaved excitation (PIE) technique synchronizes two pulsed lasers of different wavelengths in the nanosecond scale to enable measuring superfast dynamics of two fluorescent species simultaneously and yet quantitatively without the crosstalk contamination. This feature is critical for many cell biology applications, e.g. accurate determination of stoichiometry in FRET measurements for studying protein-protein interactions or cell signal events, detection of weaker bindings in FCCS by eliminating the false cross correlation due to the crosstalk. The PIE has been used with the time correlated single photon counting (TCSPC) electronics. Here, we describe a novel PIE development using the digital frequency domain (DFD) technique - FastFLIM, which provides tunable PIE setups and synchronized gating detections, tailored and optimized to specific applications. A few PIE setups by FastFLIM and measurement examples are described. Combined with the sensitivity of Alba and Q2 systems, the PIE allowed us to quantitatively measure the fast dynamics of single molecules.
机译:两种荧光物质之间的串扰会在荧光显微镜成像中引起问题,特别是对于定量测量,例如共定位,福斯特共振能量转移(FRET),荧光互相关光谱(FCCS)。在激光扫描共聚焦显微镜中,可以通过微秒级的声光可调滤光片(AOTF)打开和关闭激光,以进行交替线扫描,从而避免串扰,同时最大程度地减少同一像素位置上两个激光之间的时间延迟。相反,脉冲交错激发(PIE)技术使纳秒级不同波长的两个脉冲激光同步,从而能够同时且定量地测量两种荧光物质的超快动力学,而不会受到串扰的污染。此功能对于许多细胞生物学应用至关重要,例如FRET测量中的化学计量的准确测定,用于研究蛋白质-蛋白质相互作用或细胞信号事件,通过消除因串扰引起的假互相关来检测FCCS中较弱的结合。 PIE已与时间相关单光子计数(TCSPC)电子设备一起使用。在这里,我们描述了一种使用数字频域(DFD)技术的新颖PIE开发-FastFLIM,该技术提供了可调谐的PIE设置和同步的门控检测,并针对特定应用进行了优化。描述了FastFLIM的一些PIE设置和测量示例。结合Alba和Q2系统的灵敏度,PIE允许我们定量测量单个分子的快速动力学。

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