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活细胞的实时多波长荧光成像

Real-time multi-wavelength fluorescence imaging of living cells.

作者信息

Morris S J

机构信息

University of Missouri, Kansas City.

出版信息

Biotechniques. 1990 Mar;8(3):296-308.

PMID:2331370
Abstract

We describe a new real-time fluorescence video microscope design for capturing intensified images of cells containing dual wavelength "ratio" dyes or multiple dyes. The microscope will perform real-time capture of two separate fluorescence emission images simultaneously, improving the time resolution of spatial distribution of fluorescence to video frame rates (30 frames/s or faster). Each emission wavelength is imaged simultaneously by one of two cameras, then digitized, background corrected and appropriately combined at standard video frame rates to be stored at high resolution on tape or digital video disk for further off-line analysis. Use of low noise, high sensitivity image intensifiers, coupled to CCD cameras produce stable, high contrast images using ultra low light levels with little persistence or bloom. The design has no moving parts in its optical train, which overcomes a number of technical difficulties encountered in the present filter wheel designs for multiple imaging. Coupled to compatible image processing software utilizing PC-AT computers, the new design can be built for a significantly lower cost than many presently available commercial machines. The system is ideal for ratio imaging applications; the software can calculate the ratio of fluorescence intensities pixel by pixel and provide the information to generate false-color images of the intensity data as well as other calculations based on the two images. Thus, it provides a powerful, inexpensive tool for studying the real-time kinetics of changes in living cells. Examples are presented for the kinetics of rapidly changing intracellular calcium detected by the calcium indicator probe indo-1 and the redistribution kinetics of multiple vital dyes placed in cells undergoing cell fusion.

摘要

我们描述了一种新型实时荧光视频显微镜设计,用于捕获含有双波长“比率”染料或多种染料的细胞的增强图像。该显微镜将同时实时捕获两个单独的荧光发射图像,将荧光空间分布的时间分辨率提高到视频帧率(30帧/秒或更快)。每个发射波长由两个相机之一同时成像,然后数字化、进行背景校正,并以标准视频帧率进行适当组合,以高分辨率存储在磁带或数字视频磁盘上,以便进一步离线分析。使用低噪声、高灵敏度的图像增强器,并与CCD相机相结合,可在超低光水平下产生稳定、高对比度的图像,几乎没有余辉或光晕。该设计在其光学系统中没有移动部件,克服了当前用于多重成像的滤光轮设计中遇到的许多技术难题。与利用PC-AT计算机的兼容图像处理软件相结合,新设计的制造成本可比许多现有的商用机器低得多。该系统非常适合比率成像应用;软件可以逐像素计算荧光强度的比率,并提供信息以生成强度数据的伪彩色图像以及基于这两个图像的其他计算。因此,它为研究活细胞变化的实时动力学提供了一个强大且廉价的工具。文中给出了通过钙指示剂探针indo-1检测到的快速变化的细胞内钙动力学以及置于正在进行细胞融合的细胞中的多种活性染料的重新分布动力学的示例。

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