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高速随机存取荧光显微镜:I. 使用电压敏感染料和离子指示剂的高分辨率光学记录

High-speed, random-access fluorescence microscopy: I. High-resolution optical recording with voltage-sensitive dyes and ion indicators.

作者信息

Bullen A, Patel S S, Saggau P

机构信息

Division of Neuroscience, Baylor College of Medicine, Houston, Texas 77030, USA.

出版信息

Biophys J. 1997 Jul;73(1):477-91. doi: 10.1016/S0006-3495(97)78086-X.

Abstract

The design and implementation of a high-speed, random-access, laser-scanning fluorescence microscope configured to record fast physiological signals from small neuronal structures with high spatiotemporal resolution is presented. The laser-scanning capability of this nonimaging microscope is provided by two orthogonal acousto-optic deflectors under computer control. Each scanning point can be randomly accessed and has a positioning time of 3-5 microseconds. Sampling time is also computer-controlled and can be varied to maximize the signal-to-noise ratio. Acquisition rates up to 200k samples/s at 16-bit digitizing resolution are possible. The spatial resolution of this instrument is determined by the minimal spot size at the level of the preparation (i.e., 2-7 microns). Scanning points are selected interactively from a reference image collected with differential interference contrast optics and a video camera. Frame rates up to 5 kHz are easily attainable. Intrinsic variations in laser light intensity and scanning spot brightness are overcome by an on-line signal-processing scheme. Representative records obtained with this instrument by using voltage-sensitive dyes and calcium indicators demonstrate the ability to make fast, high-fidelity measurements of membrane potential and intracellular calcium at high spatial resolution (2 microns) without any temporal averaging.

摘要

本文介绍了一种高速、随机访问、激光扫描荧光显微镜的设计与实现,该显微镜能够以高时空分辨率记录来自小型神经元结构的快速生理信号。这种非成像显微镜的激光扫描功能由两个在计算机控制下的正交声光偏转器提供。每个扫描点都可以随机访问,定位时间为3 - 5微秒。采样时间也由计算机控制,可以变化以最大化信噪比。在16位数字化分辨率下,采集速率可达200k样本/秒。该仪器的空间分辨率由标本水平的最小光斑尺寸决定(即2 - 7微米)。扫描点是从用微分干涉对比光学器件和摄像机收集的参考图像中交互式选择的。帧速率轻松可达5kHz。通过在线信号处理方案克服了激光光强和扫描光斑亮度的固有变化。使用该仪器通过电压敏感染料和钙指示剂获得的代表性记录表明,能够在高空间分辨率(2微米)下对膜电位和细胞内钙进行快速、高保真测量,而无需任何时间平均。

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