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Development and Experimental Testing of an Optical Micro-Spectroscopic Technique Incorporating True Line-Scan Excitation

机译:结合真线扫描激发的光学显微技术的开发和实验测试

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摘要

Multiphoton micro-spectroscopy, employing diffraction optics and electron-multiplying CCD (EMCCD) cameras, is a suitable method for determining protein complex stoichiometry, quaternary structure, and spatial distribution in living cells using Förster resonance energy transfer (FRET) imaging. The method provides highly resolved spectra of molecules or molecular complexes at each image pixel, and it does so on a timescale shorter than that of molecular diffusion, which scrambles the spectral information. Acquisition of an entire spectrally resolved image, however, is slower than that of broad-bandwidth microscopes because it takes longer times to collect the same number of photons at each emission wavelength as in a broad bandwidth. Here, we demonstrate an optical micro-spectroscopic scheme that employs a laser beam shaped into a line to excite in parallel multiple sample voxels. The method presents dramatically increased sensitivity and/or acquisition speed and, at the same time, has excellent spatial and spectral resolution, similar to point-scan configurations. When applied to FRET imaging using an oligomeric FRET construct expressed in living cells and consisting of a FRET acceptor linked to three donors, the technique based on line-shaped excitation provides higher accuracy compared to the point-scan approach, and it reduces artifacts caused by photobleaching and other undesired photophysical effects.
机译:使用衍射光学和电子倍增CCD(EMCCD)相机的多光子显微光谱法是一种适合的方法,该方法使用Förster共振能量转移(FRET)成像来确定活细胞中蛋白质的复杂化学计量,四级结构和空间分布。该方法在每个图像像素处提供了分子或分子配合物的高度分辨的光谱,并且它的时间尺度比分子扩散的时间尺度短,从而扰乱了光谱信息。但是,获取整个光谱分辨图像的速度比宽带显微镜要慢,因为在每个发射波长收集与在宽带宽中相同数量的光子需要更长的时间。在这里,我们演示了一种光学显微光谱方案,该方案采用成形为一条线的激光束来并行激发多个样本体素。该方法显着提高了灵敏度和/或采集速度,同时具有出色的空间和光谱分辨率,类似于点扫描配置。当应用于使用在活细胞中表达的寡聚FRET构建物并由与三个供体连接的FRET受体组成的FRET成像时,基于线形激发的技术与点扫描方法相比,具有更高的准确性,并且可以减少由光漂白和其他不良的光物理效应。

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