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通过图像偏移预校准实现自动化高通量电子断层扫描

Automated high-throughput electron tomography by pre-calibration of image shifts.

作者信息

Ziese U, Janssen A H, Murk J-L, Geerts W J C, Van der Krift T, Verkleij A J, Koster A J

机构信息

Molecular Cell Biology, Utrecht University, 3584 CH Utrecht, The Netherlands.

出版信息

J Microsc. 2002 Feb;205(Pt 2):187-200. doi: 10.1046/j.0022-2720.2001.00987.x.

Abstract

Electron tomography is a versatile method for obtaining three-dimensional (3D) images with transmission electron microscopy. The technique is suitable to investigate cell organelles and tissue sections (100-500 nm thick) with 4-20 nm resolution. 3D reconstructions are obtained by processing a series of images acquired with the samples tilted over different angles. While tilting the sample, image shifts and defocus changes of several microm can occur. The current generation of automated acquisition software detects and corrects for these changes with a procedure that incorporates switching the electron optical magnification. We developed a novel method for data collection based on the measurement of shifts prior to data acquisition, which results in a five-fold increase in speed, enabling the acquisition of 151 images in less than 20 min. The method will enhance the quality of a tilt series by minimizing the amount of required focus-change compensation by aligning the optical axis to the tilt axis of the specimen stage. The alignment is achieved by invoking an amount of image shift as deduced from the mathematical model describing the effect of specimen tilt. As examples for application in biological and materials sciences 3D reconstructions of a mitochondrion and a zeolite crystal are presented.

摘要

电子断层扫描是一种利用透射电子显微镜获取三维(3D)图像的通用方法。该技术适用于研究细胞器和厚度为100 - 500纳米的组织切片,分辨率为4 - 20纳米。通过处理一系列在不同角度倾斜样品时获取的图像来获得3D重建。在倾斜样品时,可能会出现几微米的图像偏移和散焦变化。当前一代的自动采集软件通过包含切换电子光学放大倍数的程序来检测并校正这些变化。我们基于在数据采集之前测量偏移量开发了一种新颖的数据收集方法,该方法使速度提高了五倍,能够在不到20分钟的时间内采集151张图像。该方法通过将光轴与样品台的倾斜轴对齐,最大限度地减少所需的聚焦变化补偿量,从而提高倾斜系列的质量。通过调用从描述样品倾斜效应的数学模型推导得出的一定量的图像偏移来实现对齐。作为在生物和材料科学中的应用示例,展示了线粒体和沸石晶体的3D重建。

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