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Automated identification of filaments in cryoelectron microscopy images

机译:冷冻电子显微镜图像中细丝的自动识别

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摘要

Since the foundation for the three-dimensional image reconstruction of helical objects from electron micrographs was laid more than 30 years ago, there have been sustained developments in specimen preparation, data acquisition, image analysis, and interpretation of results. However, the boxing of filaments in large numbers of images one of the critical steps toward the reconstruction at high resolution-is still constrained by manual processing even though interactive interfaces have been built to aid the tedious and sometimes inaccurate boxing process. This article describes an accurate approach for automated detection of filamentous structures in low-contrast images acquired in defocus pairs using cryoelectron microscopy. The performance of the approach has been evaluated across various magnifications and at a series of defocus values using tobacco mosaic virus (TMV) preserved in vitreous ice as a test specimen. By integrating the proposed approach into our automated data acquisition and reconstruction system, we are now able to generate a three-dimensional map of TMV to approximately 10-Angstrom resolution within 24 h of inserting the specimen grid into the microscope.
机译:自从30多年来用电子显微照片重建螺旋形物体的三维图像奠定了基础以来,在标本制备,数据采集,图像分析和结果解释方面取得了持续发展。然而,即使已经建立了交互界面来帮助繁琐的,有时是不准确的装箱过程,在大量图像中对细丝进行装箱也是实现高分辨率的关键步骤之一,但仍然受到手动处理的限制。本文介绍了一种精确的方法,该方法可使用低温电子显微镜自动检测散焦对中获取的低对比度图像中的丝状结构。使用保存在玻璃冰中的烟草花叶病毒(TMV)作为测试样本,已在各种放大倍率和一系列散焦值下评估了该方法的性能。通过将提出的方法集成到我们的自动数据采集和重建系统中,我们现在能够在将标本网格插入显微镜后的24小时内生成TMV的三维地图,分辨率约为10埃。

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