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Isotropic Reconstruction for Electron Tomography with Deep Learning

Overview
Journal Nat Commun
Specialty Biology
Date 2022 Oct 30
PMID 36309499
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Abstract

Cryogenic electron tomography (cryoET) allows visualization of cellular structures in situ. However, anisotropic resolution arising from the intrinsic "missing-wedge" problem has presented major challenges in visualization and interpretation of tomograms. Here, we have developed IsoNet, a deep learning-based software package that iteratively reconstructs the missing-wedge information and increases signal-to-noise ratio, using the knowledge learned from raw tomograms. Without the need for sub-tomogram averaging, IsoNet generates tomograms with significantly reduced resolution anisotropy. Applications of IsoNet to three representative types of cryoET data demonstrate greatly improved structural interpretability: resolving lattice defects in immature HIV particles, establishing architecture of the paraflagellar rod in Eukaryotic flagella, and identifying heptagon-containing clathrin cages inside a neuronal synapse of cultured cells. Therefore, by overcoming two fundamental limitations of cryoET, IsoNet enables functional interpretation of cellular tomograms without sub-tomogram averaging. Its application to high-resolution cellular tomograms should also help identify differently oriented complexes of the same kind for sub-tomogram averaging.

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References
1.
Zhai X, Lei D, Zhang M, Liu J, Wu H, Yu Y . LoTToR: An Algorithm for Missing-Wedge Correction of the Low-Tilt Tomographic 3D Reconstruction of a Single-Molecule Structure. Sci Rep. 2020; 10(1):10489. PMC: 7320192. DOI: 10.1038/s41598-020-66793-1. View

2.
Rodal A, Littleton J . Synaptic endocytosis: illuminating the role of clathrin assembly. Curr Biol. 2008; 18(6):R259-61. DOI: 10.1016/j.cub.2008.02.014. View

3.
Imhof S, Zhang J, Wang H, Bui K, Nguyen H, Atanasov I . Cryo electron tomography with volta phase plate reveals novel structural foundations of the 96-nm axonemal repeat in the pathogen . Elife. 2019; 8. PMC: 6974359. DOI: 10.7554/eLife.52058. View

4.
Moebel E, Martinez-Sanchez A, Lamm L, Righetto R, Wietrzynski W, Albert S . Deep learning improves macromolecule identification in 3D cellular cryo-electron tomograms. Nat Methods. 2021; 18(11):1386-1394. DOI: 10.1038/s41592-021-01275-4. View

5.
Isensee F, Jaeger P, Kohl S, Petersen J, Maier-Hein K . nnU-Net: a self-configuring method for deep learning-based biomedical image segmentation. Nat Methods. 2020; 18(2):203-211. DOI: 10.1038/s41592-020-01008-z. View