Deep learning identifies inflamed fat as a risk factor for lymph node metastasis in early colorectal cancer

被引:48
|
作者
Brockmoeller, Scarlet [1 ]
Echle, Amelie [2 ]
Laleh, Narmin Ghaffari [2 ]
Eiholm, Susanne [3 ]
Malmstrom, Marie Louise [4 ]
Kuhlmann, Tine Plato [5 ]
Levic, Katarina [6 ]
Grabsch, Heike Irmgard [1 ,7 ]
West, Nicholas P. [1 ]
Saldanha, Oliver Lester [2 ]
Kouvidi, Katerina [1 ]
Bono, Aurora [1 ]
Heij, Lara R. [7 ,8 ,9 ]
Brinker, Titus J. [10 ]
Gogenur, Ismayil [11 ,12 ]
Quirke, Philip [1 ]
Kather, Jakob Nikolas [1 ,2 ,13 ]
机构
[1] St Jamess Univ Leeds, Leeds Inst Med Res, Pathol & Data Analyt, Leeds LS9 7TF, W Yorkshire, England
[2] Univ Hosp RWTH Aachen, Dept Med 2, Aachen, Germany
[3] Univ Copenhagen, Zealand Univ Hosp, Dept Pathol, Roskilde, Denmark
[4] Nordsjllands Hosp, Dept Surg, Hillerod, Denmark
[5] Herlev Univ Hosp, Dept Pathol, Copenhagen, Denmark
[6] Herlev Univ Hosp, Dept Surg, Copenhagen, Denmark
[7] Maastricht Univ, Dept Pathol, GROW Sch Oncol & Dev Biol, Med Ctr, Maastricht, Netherlands
[8] Univ Hosp RWTH Aachen, Inst Pathol, Aachen, Germany
[9] Univ Hosp RWTH Aachen, Dept Surg & Transplantat, Aachen, Germany
[10] German Canc Res Ctr, Digital Biomarkers Oncol Grp, Natl Ctr Tumour Dis NCT, Heidelberg, Germany
[11] Univ Copenhagen, Dept Surg, Zealand Univ Hosp, Koge, Denmark
[12] Copenhagen Univ Hosp Hvidovre, Gastrounit, Surg Div, Ctr Surg Res, Copenhagen, Denmark
[13] Univ Hosp Heidelberg, Med Oncol, Natl Ctr Tumour Dis, Heidelberg, Germany
来源
JOURNAL OF PATHOLOGY | 2022年 / 256卷 / 03期
关键词
early colorectal cancer; AI; artificial intelligence; deep learning; prediction LNM; metastasis; inflamed adipose tissue; new predictive biomarker; digital pathology; pT1 and pT2 bowel cancer; MICROSATELLITE INSTABILITY; INTEROBSERVER VARIABILITY; PREDICTION; POLYPS; MODEL;
D O I
10.1002/path.5831
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
The spread of early-stage (T1 and T2) adenocarcinomas to locoregional lymph nodes is a key event in disease progression of colorectal cancer (CRC). The cellular mechanisms behind this event are not completely understood and existing predictive biomarkers are imperfect. Here, we used an end-to-end deep learning algorithm to identify risk factors for lymph node metastasis (LNM) status in digitized histopathology slides of the primary CRC and its surrounding tissue. In two large population-based cohorts, we show that this system can predict the presence of more than one LNM in pT2 CRC patients with an area under the receiver operating curve (AUROC) of 0.733 (0.67-0.758) and patients with any LNM with an AUROC of 0.711 (0.597-0.797). Similarly, in pT1 CRC patients, the presence of more than one LNM or any LNM was predictable with an AUROC of 0.733 (0.644-0.778) and 0.567 (0.542-0.597), respectively. Based on these findings, we used the deep learning system to guide human pathology experts towards highly predictive regions for LNM in the whole slide images. This hybrid human observer and deep learning approach identified inflamed adipose tissue as the highest predictive feature for LNM presence. Our study is a first proof of concept that artificial intelligence (AI) systems may be able to discover potentially new biological mechanisms in cancer progression. Our deep learning algorithm is publicly available and can be used for biomarker discovery in any disease setting. (c) 2021 The Pathological Society of Great Britain and Ireland.
引用
收藏
页码:269 / 281
页数:13
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