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Research ArticlePediatric Neuroimaging

Identification of Multiclass Pediatric Low-Grade Neuroepithelial Tumor Molecular Subtype with ADC MR Imaging and Machine Learning

Matheus D. Soldatelli, Khashayar Namdar, Uri Tabori, Cynthia Hawkins, Kristen Yeom, Farzad Khalvati, Birgit B. Ertl-Wagner and Matthias W. Wagner
American Journal of Neuroradiology June 2024, 45 (6) 753-760; DOI: https://doi.org/10.3174/ajnr.A8199
Matheus D. Soldatelli
aFrom the Department Diagnostic Imaging (M.D.S., B.B.E.-W., M.W.W.), Division of Neuroradiology, The Hospital for Sick Children, Toronto, Ontario, Canada
bDepartment of Medical Imaging (M.D.S., K.N., F.K., B.B.E.-W., M.W.W.), University of Toronto, Toronto, Ontario, Canada
cInstitute of Medical Science (M.D.S., K.N., U.T., F.K., B.B.E.-W.), University of Toronto, Toronto, Ontario, Canada
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Khashayar Namdar
bDepartment of Medical Imaging (M.D.S., K.N., F.K., B.B.E.-W., M.W.W.), University of Toronto, Toronto, Ontario, Canada
cInstitute of Medical Science (M.D.S., K.N., U.T., F.K., B.B.E.-W.), University of Toronto, Toronto, Ontario, Canada
dVector Institute (K.N., F.K.), Toronto, Ontario, Canada
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Uri Tabori
cInstitute of Medical Science (M.D.S., K.N., U.T., F.K., B.B.E.-W.), University of Toronto, Toronto, Ontario, Canada
eThe Arthur and Sonia Labatt Brain Tumour Research Centre (U.T., C.H.), The Hospital for Sick Children, Toronto, Ontario, Canada
fProgram in Genetics and Genome Biology (U.T.) The Hospital for Sick Children, Toronto, Ontario, Canada
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Cynthia Hawkins
eThe Arthur and Sonia Labatt Brain Tumour Research Centre (U.T., C.H.), The Hospital for Sick Children, Toronto, Ontario, Canada
gDepartment of Laboratory Medicine and Pathobiology (C.H.), University of Toronto, Toronto, Ontario, Canada
hDivision of Pathology (C.H.), The Hospital for Sick Children, Toronto, Ontario, Canada
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Kristen Yeom
iDepartment of Radiology (K.Y.), Lucile Packard Children's Hospital, Stanford University School of Medicine, Stanford, California
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Farzad Khalvati
bDepartment of Medical Imaging (M.D.S., K.N., F.K., B.B.E.-W., M.W.W.), University of Toronto, Toronto, Ontario, Canada
cInstitute of Medical Science (M.D.S., K.N., U.T., F.K., B.B.E.-W.), University of Toronto, Toronto, Ontario, Canada
dVector Institute (K.N., F.K.), Toronto, Ontario, Canada
jDepartment of Computer Science (F.K.), University of Toronto, Toronto, Ontario, Canada
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Birgit B. Ertl-Wagner
aFrom the Department Diagnostic Imaging (M.D.S., B.B.E.-W., M.W.W.), Division of Neuroradiology, The Hospital for Sick Children, Toronto, Ontario, Canada
bDepartment of Medical Imaging (M.D.S., K.N., F.K., B.B.E.-W., M.W.W.), University of Toronto, Toronto, Ontario, Canada
cInstitute of Medical Science (M.D.S., K.N., U.T., F.K., B.B.E.-W.), University of Toronto, Toronto, Ontario, Canada
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Matthias W. Wagner
aFrom the Department Diagnostic Imaging (M.D.S., B.B.E.-W., M.W.W.), Division of Neuroradiology, The Hospital for Sick Children, Toronto, Ontario, Canada
bDepartment of Medical Imaging (M.D.S., K.N., F.K., B.B.E.-W., M.W.W.), University of Toronto, Toronto, Ontario, Canada
kDepartment of Diagnostic and Interventional Neuroradiology (M.W.W.), University Hospital Augsburg, Augsburg, Germany
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Abstract

BACKGROUND AND PURPOSE: Molecular biomarker identification increasingly influences the treatment planning of pediatric low-grade neuroepithelial tumors (PLGNTs). We aimed to develop and validate a radiomics-based ADC signature predictive of the molecular status of PLGNTs.

MATERIALS AND METHODS: In this retrospective bi-institutional study, we searched the PACS for baseline brain MRIs from children with PLGNTs. Semiautomated tumor segmentation on ADC maps was performed using the semiautomated level tracing effect tool with 3D Slicer. Clinical variables, including age, sex, and tumor location, were collected from chart review. The molecular status of tumors was derived from biopsy. Multiclass random forests were used to predict the molecular status and fine-tuned using a grid search on the validation sets. Models were evaluated using independent and unseen test sets based on the combined data, and the area under the receiver operating characteristic curve (AUC) was calculated for the prediction of 3 classes: KIAA1549-BRAF fusion, BRAF V600E mutation, and non-BRAF cohorts. Experiments were repeated 100 times using different random data splits and model initializations to ensure reproducible results.

RESULTS: Two hundred ninety-nine children from the first institution and 23 children from the second institution were included (53.6% male; mean, age 8.01 years; 51.8% supratentorial; 52.2% with KIAA1549-BRAF fusion). For the 3-class prediction using radiomics features only, the average test AUC was 0.74 (95% CI, 0.73–0.75), and using clinical features only, the average test AUC was 0.67 (95% CI, 0.66–0.68). The combination of both radiomics and clinical features improved the AUC to 0.77 (95% CI, 0.75–0.77). The diagnostic performance of the per-class test AUC was higher in identifying KIAA1549-BRAF fusion tumors among the other subgroups (AUC = 0.81 for the combined radiomics and clinical features versus 0.75 and 0.74 for BRAF V600E mutation and non-BRAF, respectively).

CONCLUSIONS: ADC values of tumor segmentations have differentiative signals that can be used for training machine learning classifiers for molecular biomarker identification of PLGNTs. ADC-based pretherapeutic differentiation of the BRAF status of PLGNTs has the potential to avoid invasive tumor biopsy and enable earlier initiation of targeted therapy.

ABBREVIATIONS:

AUC
area under the receiver operating characteristic curve
FGFR
fibroblast growth factors receptor
GG
ganglioglioma
GLMD
gray-level dependence matrix
ML
machine learning
NF1
neurofibromatosis 1
NPV
negative predictive value
OvR
one versus the rest
PA
pilocytic astrocytoma
pLGG
pediatric low-grade glioma
PLGNT
pediatric low-grade neuroepithelial tumor
RF
random forests
WHO
World Health Organization
  • © 2024 by American Journal of Neuroradiology
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American Journal of Neuroradiology: 45 (6)
American Journal of Neuroradiology
Vol. 45, Issue 6
1 Jun 2024
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Cite this article
Matheus D. Soldatelli, Khashayar Namdar, Uri Tabori, Cynthia Hawkins, Kristen Yeom, Farzad Khalvati, Birgit B. Ertl-Wagner, Matthias W. Wagner
Identification of Multiclass Pediatric Low-Grade Neuroepithelial Tumor Molecular Subtype with ADC MR Imaging and Machine Learning
American Journal of Neuroradiology Jun 2024, 45 (6) 753-760; DOI: 10.3174/ajnr.A8199

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PEDS Low-Grade Neuroepithelial Tumor Subtypes
Matheus D. Soldatelli, Khashayar Namdar, Uri Tabori, Cynthia Hawkins, Kristen Yeom, Farzad Khalvati, Birgit B. Ertl-Wagner, Matthias W. Wagner
American Journal of Neuroradiology Jun 2024, 45 (6) 753-760; DOI: 10.3174/ajnr.A8199
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