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Deep learning-based transformation of the H&E stain into special stains

转化(遗传学) 人工智能 模式识别(心理学) 染色 卷积神经网络
作者
Kevin de Haan,Yijie Zhang,Jonathan E. Zuckerman,Tairan Liu,Anthony Sisk,Miguel F. P. Diaz,Kuang-Yu Jen,Alexander Nobori,Sofia Liou,Sarah Zhang,Rana Riahi,Yair Rivenson,W. Dean Wallace,Aydogan Ozcan
出处
期刊:arXiv: Image and Video Processing 被引量:3
标识
DOI:10.1038/s41467-021-25221-2
摘要

Pathology is practiced by visual inspection of histochemically stained slides. Most commonly, the hematoxylin and eosin (H&E) stain is used in the diagnostic workflow and it is the gold standard for cancer diagnosis. However, in many cases, especially for non-neoplastic diseases, additional are used to provide different levels of contrast and color to tissue components and allow pathologists to get a clearer diagnostic picture. In this study, we demonstrate the utility of supervised learning-based computational stain transformation from H&E to different special stains (Masson's Trichrome, periodic acid-Schiff and Jones silver stain) using tissue sections from kidney needle core biopsies. Based on evaluation by three renal pathologists, followed by adjudication by a fourth renal pathologist, we show that the generation of virtual special stains from existing H&E images improves the diagnosis in several non-neoplastic kidney diseases sampled from 58 unique subjects. A second study performed by three pathologists found that the quality of the special stains generated by the stain transformation network was statistically equivalent to those generated through standard histochemical staining. As the transformation of H&E images into special stains can be achieved within 1 min or less per patient core specimen slide, this stain-to-stain transformation framework can improve the quality of the preliminary diagnosis when additional special stains are needed, along with significant savings in time and cost, reducing the burden on healthcare system and patients.
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