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Applicability of mitotic figure counting by deep learning: a development and pan‐cancer validation study

Abstract:
Mitotic figure counting is an established measure of cell proliferation that is included in grading systems. We developed a deep learning method for mitotic figure counting and evaluated its prognostic impact in multiple external validation datasets. The deep learning method was trained in whole slide images of tissue sections stained with haematoxylin and eosin from a publicly available breast cancer dataset where mitotic figures have been annotated by expert pathologists. The final model was externally validated according to a protocol with predefined analyses of 14 571 patient samples from 13 patient cohorts from seven different cancer types. The predefined primary analysis was univariable Cox survival analysis of the number of mitotic figures detected per mm2. Automatic mitotic figure counting correlated well with known proliferation rates, and patients with more mitotic figures per mm2 had significantly worse patient outcome in all the studied cancer types except colorectal cancer. This study demonstrates the practical potential of automated, deep learning‐based mitotic figure counting, both by automating pathology work and by suggesting expanded use in more cancer types, such as prostate cancer.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1002/2211-5463.70210

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Role:
Author
ORCID:
0000-0002-8370-5289


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Funder identifier:
10.13039/501100005416
Grant:
259204
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Funder identifier:
https://ror.org/00epmv149


Publisher:
Wiley
Journal:
FEBS Open Bio More from this journal
Article number:
2211-5463.70210
Publication date:
2026-02-12
Acceptance date:
2026-01-30
DOI:
EISSN:
2211-5463
ISSN:
2211-5463


Language:
English
Keywords:
Source identifiers:
3752547
Deposit date:
2026-02-13
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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