Prediction of malignant lymph nodes in NSCLC by machine-learning classifiers using EBUS-TBNA and PET/CT

被引:8
|
作者
Guberina, Maja [1 ,2 ]
Herrmann, Ken [2 ,3 ]
Poettgen, Christoph [1 ]
Guberina, Nika [1 ]
Hautzel, Hubertus [2 ,3 ]
Gauler, Thomas [1 ]
Ploenes, Till [4 ]
Umutlu, Lale [5 ]
Wetter, Axel [5 ]
Theegarten, Dirk [6 ]
Aigner, Clemens [4 ]
Eberhardt, Wilfried E. E. [7 ,8 ]
Metzenmacher, Martin [7 ,8 ]
Wiesweg, Marcel [7 ,8 ]
Schuler, Martin [2 ,7 ,8 ]
Karpf-Wissel, Ruediger [9 ]
Garcia, Alina Santiago [1 ]
Darwiche, Kaid [9 ]
Stuschke, Martin [1 ,2 ]
机构
[1] Univ Duisburg Essen, Univ Hosp Essen, West German Canc Ctr, Dept Radiotherapy, Hufelandstr 55, D-45147 Essen, Germany
[2] Partner Site Univ Hosp Essen, German Canc Consortium DKTK, Essen, Germany
[3] Univ Duisburg Essen, Univ Hosp Essen, West German Canc Ctr, Dept Nucl Med, Essen, Germany
[4] Univ Duisburg Essen, Dept Thorac Surg & Thorac Endoscopy, West German Canc Ctr, Univ Med Essen,Ruhrlandklin,Univ Hosp Essen, Essen, Germany
[5] Univ Duisburg Essen, Univ Hosp Essen, Inst Diagnost Intervent Radiol & Neuroradiol, Essen, Germany
[6] Univ Duisburg Essen, Univ Hosp Essen, West German Canc Ctr, Inst Pathol, Essen, Germany
[7] Univ Duisburg Essen, Univ Hosp Essen, West German Canc Ctr, Dept Med Oncol, Essen, Germany
[8] Univ Duisburg Essen, Ruhrlandklin, Univ Med Essen, Div Thorac Oncol,West German Canc Ctr, Essen, Germany
[9] Univ Duisburg Essen, West German Canc Ctr, Univ Med Essen, Dept Pulm Med,Sect Intervent Pneumol,Ruhrlandklin, Essen, Germany
关键词
TRANSBRONCHIAL NEEDLE ASPIRATION; CELL LUNG-CANCER; ENDOBRONCHIAL ULTRASOUND; TEST-PERFORMANCE; ROC CURVE; MULTICENTER;
D O I
10.1038/s41598-022-21637-y
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Accurate determination of lymph-node (LN) metastases is a prerequisite for high precision radiotherapy. The primary aim is to characterise the performance of PET/CT-based machine-learning classifiers to predict LN-involvement by endobronchial ultrasound-guided transbronchial needle aspiration (EBUS-TBNA) in stage-III NSCLC. Prediction models for LN-positivity based on [F-18]FDG-PET/CT features were built using logistic regression and machine-learning models random forest (RF) and multilayer perceptron neural network (MLP) for stage-III NSCLC before radiochemotherapy. A total of 675 LN-stations were sampled in 180 patients. The logistic and RF models identified SUVmax, the short-axis LN-diameter and the echelon of the considered LN among the most important parameters for EBUS-positivity. Adjusting the sensitivity of machine-learning classifiers to that of the expert-rater of 94.5%, MLP (P = 0.0061) and RF models (P = 0.038) showed lower misclassification rates (MCR) than the standard-report, weighting false positives and false negatives equally. Increasing the sensitivity of classifiers from 94.5 to 99.3% resulted in increase of MCR from 13.3/14.5 to 29.8/34.2% for MLP/RF, respectively. PET/CT-based machine-learning classifiers can achieve a high sensitivity (94.5%) to detect EBUS-positive LNs at a low misclassification rate. As the specificity decreases rapidly above that level, a combined test of a PET/CT-based MLP/RF classifier and EBUS-TBNA is recommended for radiation target volume definition.
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页数:13
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