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用于细胞冷冻电子断层扫描自动标注的卷积神经网络。

Convolutional neural networks for automated annotation of cellular cryo-electron tomograms.

作者信息

Chen Muyuan, Dai Wei, Sun Stella Y, Jonasch Darius, He Cynthia Y, Schmid Michael F, Chiu Wah, Ludtke Steven J

机构信息

Graduate Program in Structural and Computational Biology and Molecular Biophysics, Baylor College of Medicine, Houston, Texas, USA.

Verna Marrs and McLean Department of Biochemistry and Molecular Biology, Baylor College of Medicine, Houston, Texas, USA.

出版信息

Nat Methods. 2017 Oct;14(10):983-985. doi: 10.1038/nmeth.4405. Epub 2017 Aug 28.

Abstract

Cellular electron cryotomography offers researchers the ability to observe macromolecules frozen in action in situ, but a primary challenge with this technique is identifying molecular components within the crowded cellular environment. We introduce a method that uses neural networks to dramatically reduce the time and human effort required for subcellular annotation and feature extraction. Subsequent subtomogram classification and averaging yield in situ structures of molecular components of interest. The method is available in the EMAN2.2 software package.

摘要

细胞电子冷冻断层扫描技术使研究人员能够观察原位处于活动状态下的大分子,但该技术面临的一个主要挑战是在拥挤的细胞环境中识别分子成分。我们介绍了一种利用神经网络的方法,可大幅减少亚细胞注释和特征提取所需的时间和人力。随后的亚断层图分类和平均处理可生成感兴趣分子成分的原位结构。该方法可在EMAN2.2软件包中使用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/069c/5623144/b4c403ad1e47/nihms897808f1.jpg

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