首页> 外文期刊>Journal of Neuroscience Methods >Fast scanning and efficient photodetection in a simple two-photon microscope.
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Fast scanning and efficient photodetection in a simple two-photon microscope.

机译:简单的两光子显微镜中的快速扫描和高效的光检测。

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摘要

Two-photon laser scan microscopy carries many advantages for work on brain slices and bulk tissue. However, it has very low signal levels compared to conventional fluorescence microscopy. This is disadvantageous in fast imaging applications when photon shot noise is limiting. Working on brain slices with excitation powers of 8-10 mW at the specimen plane, the resting signal from cerebellar Purkinje cell somas loaded with 10 microM Oregon Green 488 BAPTA-1 averaged 4 detected photons/micros; axons of interneurons loaded with 200 microM of this indicator yielded about 1 photon/micros. To obtain satisfactory images at high time resolution, long pixel dwell times are required and data collection should be restricted to as few pixels as necessary. Furthermore, a large proportion of total measurement time (duty cycle) should be available for data collection. We therefore developed a method for scanning small regions of interest with line repetition rates two to four times higher than conventional ones and a duty cycle of 70%. We also compared the performance of several photodetectors and found the optimum choice to depend strongly on the photon flux during a given application. For fluxes smaller than 5 photons/micros, the photon counting avalanche photodiode shows the best signal to noise ratio. At larger fluxes, photomultipliers or intensified photodiodes are superior.
机译:两光子激光扫描显微镜在处理脑切片和大块组织时具有许多优势。但是,与常规荧光显微镜相比,它的信号水平非常低。当光子散粒噪声受到限制时,这在快速成像应用中是不利的。在标本平面上的激发功率为8-10 mW的脑片上工作时,小脑Purkinje细胞体的静息信号装载了10 microM Oregon Green 488 BAPTA-1,平均检测到4个光子/微米。装有200 microM此指示剂的中间神经元轴突产生约1光子/微米。为了在高时间分辨率下获得满意的图像,需要较长的像素停留时间,并且数据收集应限制为必要的像素数。此外,应将总测量时间(占空比)的很大一部分用于数据收集。因此,我们开发了一种扫描感兴趣的小区域的方法,其线重复率是传统方法的两倍至四倍,占空比为70%。我们还比较了几种光电探测器的性能,发现在给定应用中,最佳选择主要取决于光子通量。对于小于5个光子/微米的通量,光子计数雪崩光电二极管显示出最佳的信噪比。在较大的通量下,光电倍增管或增强型光电二极管更为出色。

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