Computer-assisted mitotic count using a deep learning-based algorithm improves interobserver reproducibility and accuracy.

artificial intelligence automated image analysis canine cutaneous mast cell tumors computer assistance deep learning digital pathology mitotic count mitotic figures

Journal

Veterinary pathology
ISSN: 1544-2217
Titre abrégé: Vet Pathol
Pays: United States
ID NLM: 0312020

Informations de publication

Date de publication:
03 2022
Historique:
pubmed: 31 12 2021
medline: 19 4 2022
entrez: 30 12 2021
Statut: ppublish

Résumé

The mitotic count (MC) is an important histological parameter for prognostication of malignant neoplasms. However, it has inter- and intraobserver discrepancies due to difficulties in selecting the region of interest (MC-ROI) and in identifying or classifying mitotic figures (MFs). Recent progress in the field of artificial intelligence has allowed the development of high-performance algorithms that may improve standardization of the MC. As algorithmic predictions are not flawless, computer-assisted review by pathologists may ensure reliability. In the present study, we compared partial (MC-ROI preselection) and full (additional visualization of MF candidates and display of algorithmic confidence values) computer-assisted MC analysis to the routine (unaided) MC analysis by 23 pathologists for whole-slide images of 50 canine cutaneous mast cell tumors (ccMCTs). Algorithmic predictions aimed to assist pathologists in detecting mitotic hotspot locations, reducing omission of MFs, and improving classification against imposters. The interobserver consistency for the MC significantly increased with computer assistance (interobserver correlation coefficient, ICC = 0.92) compared to the unaided approach (ICC = 0.70). Classification into prognostic stratifications had a higher accuracy with computer assistance. The algorithmically preselected hotspot MC-ROIs had a consistently higher MCs than the manually selected MC-ROIs. Compared to a ground truth (developed with immunohistochemistry for phosphohistone H3), pathologist performance in detecting individual MF was augmented when using computer assistance (F1-score of 0.68 increased to 0.79) with a reduction in false negatives by 38%. The results of this study demonstrate that computer assistance may lead to more reproducible and accurate MCs in ccMCTs.

Identifiants

pubmed: 34965805
doi: 10.1177/03009858211067478
pmc: PMC8928234
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

211-226

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Auteurs

Christof A Bertram (CA)

University of Veterinary Medicine, Vienna, Austria.
Freie Universität Berlin, Berlin, Germany.

Marc Aubreville (M)

Technische Hochschule Ingolstadt, Ingolstadt, Germany.

Taryn A Donovan (TA)

Animal Medical Center, New York, NY, USA.

Alexander Bartel (A)

Freie Universität Berlin, Berlin, Germany.

Frauke Wilm (F)

Friedrich-Alexander-Universität Erlangen-Nürnberg, Erlangen, Germany.

Christian Marzahl (C)

Friedrich-Alexander-Universität Erlangen-Nürnberg, Erlangen, Germany.

Charles-Antoine Assenmacher (CA)

University of Pennsylvania, Philadelphia, PA, USA.

Kathrin Becker (K)

University of Veterinary Medicine, Hannover, Germany.

Mark Bennett (M)

Synlab's VPG Histology, Bristol, UK.

Sarah Corner (S)

Michigan State University, Lansing, MI, USA.

Brieuc Cossic (B)

Idorsia Pharmaceuticals Ltd, Allschwil, Switzerland.

Daniela Denk (D)

Ludwig Maximilians University, Munich, Germany.

Martina Dettwiler (M)

University of Bern, Bern, Switzerland.

Beatriz Garcia Gonzalez (BG)

Synlab's VPG Histology, Bristol, UK.

Corinne Gurtner (C)

University of Bern, Bern, Switzerland.

Ann-Kathrin Haverkamp (AK)

University of Veterinary Medicine, Hannover, Germany.

Annabelle Heier (A)

IDEXX Vet Med Labor GmbH, Kornwestheim, Germany.

Annika Lehmbecker (A)

IDEXX Vet Med Labor GmbH, Kornwestheim, Germany.

Sophie Merz (S)

IDEXX Vet Med Labor GmbH, Kornwestheim, Germany.

Erica L Noland (EL)

Michigan State University, Lansing, MI, USA.

Stephanie Plog (S)

Synlab's VPG Histology, Bristol, UK.

Anja Schmidt (A)

IDEXX Vet Med Labor GmbH, Kornwestheim, Germany.

Franziska Sebastian (F)

IDEXX Vet Med Labor GmbH, Kornwestheim, Germany.

Dodd G Sledge (DG)

Michigan State University, Lansing, MI, USA.

Rebecca C Smedley (RC)

Michigan State University, Lansing, MI, USA.

Marco Tecilla (M)

Roche Pharmaceutical Research and Early Development (pRED), Basel, Switzerland.

Tuddow Thaiwong (T)

Michigan State University, Lansing, MI, USA.

Andrea Fuchs-Baumgartinger (A)

University of Veterinary Medicine, Vienna, Austria.

Donald J Meuten (DJ)

North Carolina State University, Raleigh, NC, USA.

Katharina Breininger (K)

Friedrich-Alexander-Universität Erlangen-Nürnberg, Erlangen, Germany.

Matti Kiupel (M)

Michigan State University, Lansing, MI, USA.

Andreas Maier (A)

Friedrich-Alexander-Universität Erlangen-Nürnberg, Erlangen, Germany.

Robert Klopfleisch (R)

Freie Universität Berlin, Berlin, Germany.

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