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bioRxiv · 10.1101/2025.04.27.649481

Normal breast tissue classifiers assess large-scale tissue compartments with high accuracy

Abstract

Cancer research emphasises early detection, yet quantitative methods for normal tissue analysis remain limited. Digitised haematoxylin and eosin (H&E)-stained slides enable computational histopathology, but artificial intelligence (AI)-based analysis of normal breast tissue (NBT) in whole slide images (WSIs) remains scarce. We curated 70 WSIs of NBTs from multiple sources and cohorts with pathologist-guided manual annotations of epithelium, stroma, and adipocytes (https://github.com/cancerbioinformatics/OASIS). We developed robust convolutional neural network (CNN)-based, patch-level classification models, named NBT-Classifiers, to tessellate and classify NBTs at different scales. Across three external cohorts, NBT-Classifiers trained on 128{square}x{square}128{square}{micro}m and 256{square}x{square}256{square}{micro}m patches achieved AUCs of 0.98-1.00. The model learned independent normal features different from those of precancerous and cancerous epithelium, which were further visualised using two explainable AI techniques. When integrated into an end-to-end preprocessing pipeline, NBT-Classifiers facilitate efficient downstream analysis within peri-lobular regions. NBT-Classifiers provide robust compartment-specific analytical tools and enhance our understanding of NBT appearances, which serve as valuable reference points for identifying premalignant changes and guiding early breast cancer prevention strategies.

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BibTeXRIS

Chen, S., Parreno-Centeno, M., Booker, G., Verghese, G., Mohamed, F. S., Arslan, S., Pandya, P., Oozeer, A., D'Angelo, M., Barrow, R., Nelan, R., Sobral-Leite, M., Martino, F. d., Brisken, C., Smalley, M. J., Lips, E., Gillett, C., Jones, L. J., Banerji, C. R. S., Pinder, S. E., Grigoriadis, A.. 2025-04-30. Normal breast tissue classifiers assess large-scale tissue compartments with high accuracy. https://doi.org/10.1101/2025.04.27.649481

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