Development and Evaluation of MR-Based Radiogenomic Models to Differentiate Atypical Lipomatous Tumors from Lipomas

被引:6
|
作者
Foreman, Sarah C. [1 ]
Llorian-Salvador, Oscar [2 ,3 ,4 ]
David, Diana E. [3 ]
Roesner, Verena K. N. [1 ]
Rischewski, Jon F. [5 ]
Feuerriegel, Georg C. [1 ]
Kramp, Daniel W. [1 ]
Luiken, Ina [1 ]
Lohse, Ann-Kathrin [6 ]
Kiefer, Jurij [7 ]
Mogler, Carolin [8 ]
Knebel, Carolin [9 ]
Jung, Matthias [10 ]
Andrade-Navarro, Miguel A. [4 ]
Rost, Burkhard [3 ]
Combs, Stephanie E. [2 ]
Makowski, Marcus R. [1 ]
Woertler, Klaus [1 ]
Peeken, Jan C. [2 ,11 ,12 ]
Gersing, Alexandra S. [5 ]
机构
[1] Tech Univ Munich, Dept Radiol, Klinikum Rechts Isar, Ismaninger Str 22, D-81675 Munich, Germany
[2] Tech Univ Munich, Dept Radiat Oncol, Klinikum Rechts Isar, Ismaninger Str 22, D-81675 Munich, Germany
[3] Tech Univ Munich, Dept Informat Bioinformat & Computat Biol i12, Boltzmannstr 3, D-85748 Munich, Germany
[4] Johannes Gutenberg Univ Mainz, Inst Organism & Mol Evolut, Hanns Dieter Husch Weg 15, D-55128 Mainz, Germany
[5] Univ Hosp Munich LMU, Dept Diagnost & Intervent Neuroradiol, Marchioninistr 15, D-81377 Munich, Germany
[6] Univ Hosp Munich LMU, Dept Radiol, Marchioninistr 15, D-81377 Munich, Germany
[7] Univ Freiburg, Univ Hosp Freiburg, Dept Plast Surg, Hugstetterstr 55, D-79106 Freiburg, Germany
[8] Tech Univ Munich, Inst Pathol, Klinikum Rechts Isar, Ismaninger Str 22, D-81675 Munich, Germany
[9] Tech Univ Munich, Dept Orthoped & Sport Orthoped, Klinikum Rechts Isar, Ismaninger Str 22, D-81675 Munich, Germany
[10] Univ Freiburg, Univ Hosp Freiburg, Dept Radiol, Hugstetterstr 55, D-79106 Freiburg, Germany
[11] Deutsch Forschungszentrum Julich Umwelt & Gesundh, Inst Radiat Med Neuherberg, Helmholtz Zentrum Munchen, D-85764 Munich, Germany
[12] Deutsch Konsortium Translationale Krebsforschung, Partner Site Munich, D-69120 Heidelberg, Germany
关键词
radiomics; machine learning; soft-tissue sarcomas; radiology; MRI; SOFT-TISSUE TUMORS; LIPOSARCOMA; DIAGNOSIS; EXTREMITIES; MDM2; CLASSIFICATION; AMPLIFICATION; MANAGEMENT; FEATURES; UPDATE;
D O I
10.3390/cancers15072150
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Background: The aim of this study was to develop and validate radiogenomic models to predict the MDM2 gene amplification status and differentiate between ALTs and lipomas on preoperative MR images. Methods: MR images were obtained in 257 patients diagnosed with ALTs (n = 65) or lipomas (n = 192) using histology and the MDM2 gene analysis as a reference standard. The protocols included T2-, T1-, and fat-suppressed contrast-enhanced T1-weighted sequences. Additionally, 50 patients were obtained from a different hospital for external testing. Radiomic features were selected using mRMR. Using repeated nested cross-validation, the machine-learning models were trained on radiomic features and demographic information. For comparison, the external test set was evaluated by three radiology residents and one attending radiologist. Results: A LASSO classifier trained on radiomic features from all sequences performed best, with an AUC of 0.88, 70% sensitivity, 81% specificity, and 76% accuracy. In comparison, the radiology residents achieved 60-70% accuracy, 55-80% sensitivity, and 63-77% specificity, while the attending radiologist achieved 90% accuracy, 96% sensitivity, and 87% specificity. Conclusion: A radiogenomic model combining features from multiple MR sequences showed the best performance in predicting the MDM2 gene amplification status. The model showed a higher accuracy compared to the radiology residents, though lower compared to the attending radiologist.
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页数:14
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