Literature DB >> 34675434

Deep learning improves macromolecule identification in 3D cellular cryo-electron tomograms.

Emmanuel Moebel1, Antonio Martinez-Sanchez2,3,4, Lorenz Lamm5,6, Ricardo D Righetto5, Wojciech Wietrzynski5, Sahradha Albert7, Damien Larivière8, Eric Fourmentin8, Stefan Pfeffer7,9, Julio Ortiz7,10, Wolfgang Baumeister7, Tingying Peng6, Benjamin D Engel11,12, Charles Kervrann13.   

Abstract

Cryogenic electron tomography (cryo-ET) visualizes the 3D spatial distribution of macromolecules at nanometer resolution inside native cells. However, automated identification of macromolecules inside cellular tomograms is challenged by noise and reconstruction artifacts, as well as the presence of many molecular species in the crowded volumes. Here, we present DeepFinder, a computational procedure that uses artificial neural networks to simultaneously localize multiple classes of macromolecules. Once trained, the inference stage of DeepFinder is faster than template matching and performs better than other competitive deep learning methods at identifying macromolecules of various sizes in both synthetic and experimental datasets. On cellular cryo-ET data, DeepFinder localized membrane-bound and cytosolic ribosomes (roughly 3.2 MDa), ribulose 1,5-bisphosphate carboxylase-oxygenase (roughly 560 kDa soluble complex) and photosystem II (roughly 550 kDa membrane complex) with an accuracy comparable to expert-supervised ground truth annotations. DeepFinder is therefore a promising algorithm for the semiautomated analysis of a wide range of molecular targets in cellular tomograms.
© 2021. The Author(s), under exclusive licence to Springer Nature America, Inc.

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Year:  2021        PMID: 34675434     DOI: 10.1038/s41592-021-01275-4

Source DB:  PubMed          Journal:  Nat Methods        ISSN: 1548-7091            Impact factor:   28.547


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  4 in total

1.  Structure Detection in Three-Dimensional Cellular Cryoelectron Tomograms by Reconstructing Two-Dimensional Annotated Tilt Series.

Authors:  Xiangrui Zeng; Ziqian Lin; Mostofa Rafid Uddin; Bo Zhou; Chao Cheng; Jing Zhang; Zachary Freyberg; Min Xu
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2.  FSCC: Few-Shot Learning for Macromolecule Classification Based on Contrastive Learning and Distribution Calibration in Cryo-Electron Tomography.

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