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DeepEMhancer: a deep learning solution for cryo-EM volume post-processing

Abstract:
Cryo-EM maps are valuable sources of information for protein structure modeling. However, due to the loss of contrast at high frequencies, they generally need to be post-processed to improve their interpretability. Most popular approaches, based on global B-factor correction, suffer from limitations. For instance, they ignore the heterogeneity in the map local quality that reconstructions tend to exhibit. Aiming to overcome these problems, we present DeepEMhancer, a deep learning approach designed to perform automatic post-processing of cryo-EM maps. Trained on a dataset of pairs of experimental maps and maps sharpened using their respective atomic models, DeepEMhancer has learned how to post-process experimental maps performing masking-like and sharpening-like operations in a single step. DeepEMhancer was evaluated on a testing set of 20 different experimental maps, showing its ability to reduce noise levels and obtain more detailed versions of the experimental maps. Additionally, we illustrated the benefits of DeepEMhancer on the structure of the SARS-CoV-2 RNA polymerase.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1038/s42003-021-02399-1

Authors

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Institution:
University of Oxford
Role:
Author
ORCID:
0000-0001-6156-3542
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Role:
Author
ORCID:
0000-0002-6168-3859
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Role:
Author
ORCID:
0000-0001-9414-503X
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Role:
Author
ORCID:
0000-0003-0788-8447
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Role:
Author
ORCID:
0000-0002-9473-283X


Publisher:
Nature Research
Journal:
Communications Biology More from this journal
Volume:
4
Issue:
1
Pages:
874-874
Article number:
874
Publication date:
2021-07-15
DOI:
EISSN:
2399-3642
ISSN:
2399-3642


Language:
English
Keywords:
Pubs id:
1188997
Local pid:
pubs:1188997
Source identifiers:
W3182767159
Deposit date:
2026-03-25
ARK identifier:
This ORA record was generated from metadata provided by an external service. It has not been edited by the ORA Team.

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