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Published on: June 9, 2018
Clinical Applications of Quantitative 3-Dimensional MRI Analysis for Pediatric Embryonal Brain Tumors
Jared H Hara1, Ashley Wu1, Javier E Villanueva-Meyer2
1Department of Radiation Oncology, University of California, San Francisco, San Francisco, California.
Insights
Quantitative MRI radiomics can predict outcomes in pediatric embryonal brain tumors. This analysis identifies key features associated with patient age, tumor type, metastasis, and recurrence risk.
Area of Science:
- Oncology
- Radiology
- Medical Imaging
Background:
- Pediatric embryonal brain tumors are a significant cause of mortality and morbidity in children.
- Accurate prognostic markers are crucial for tailoring treatment and improving outcomes.
- Current prognostic tools may not fully capture the complexity of tumor biology.
Purpose of the Study:
- To evaluate the prognostic value of quantitative 3D MRI radiomic analysis in pediatric embryonal brain tumors.
- To correlate radiomic features with patient demographics, tumor histology, and clinical outcomes.
- To identify potential imaging biomarkers for risk stratification.
Main Methods:
- Retrospective analysis of 34 pediatric patients with embryonal brain tumors.
- Extraction of radiomic features from T1-weighted postcontrast (T1PG) and FLAIR MRI sequences.
- Statistical analysis using logistic regression, linear regression, and ROC curves to assess relationships between radiomic features and outcomes.
Main Results:
- Tumor size and heterogeneity on MRI correlated with patient age and tumor histology.
- Specific radiomic features delineated different embryonal tumor types.
- Decreased tumor heterogeneity predicted neuraxis metastases and was associated with increased recurrence risk.
Conclusions:
- Quantitative 3D MRI radiomic analysis shows promise in predicting outcomes for pediatric embryonal brain tumors.
- Radiomic features are associated with patient age, histology, metastasis, and recurrence.
- This approach may help identify high-risk patients for targeted therapies.
Purpose:
To investigate the prognostic utility of quantitative 3-dimensional magnetic resonance imaging radiomic analysis for primary pediatric embryonal brain tumors.
Methods And Materials:
Thirty-four pediatric patients with embryonal brain tumor with concurrent preoperative T1-weighted postcontrast (T1PG) and T2-weighted fluid-attenuated inversion recovery (FLAIR) magnetic resonance images were identified from an institutional database. The median follow-up period was 5.2 years. Radiomic features were extracted from axial T1PG and FLAIR contours using MATLAB, and 15 features were selected for analysis based on qualitative radiographic features with prognostic significance for pediatric embryonal brain tumors. Logistic regression, linear regression, receiver operating characteristic curves, the Harrell C index, and the Somer D index were used to test the relationships between radiomic features and demographic variables, as well as clinical outcomes.
Results:
Pediatric embryonal brain tumors in older patients had an increased normalized mean tumor intensity (P = .05, T1PG), decreased tumor volume (P = .02, T1PG), and increased markers of heterogeneity (P ≤ .01, T1PG and FLAIR) relative to those in younger patients. We identified 10 quantitative radiomic features that delineated medulloblastoma, pineoblastoma, and supratentorial primitive neuroectodermal tumor, including size and heterogeneity (P ≤ .05, T1PG and FLAIR). Decreased markers of tumor heterogeneity were predictive of neuraxis metastases and trended toward significance (P = .1, FLAIR). Tumors with an increased size (area under the curve = 0.7, FLAIR) and decreased heterogeneity (area under the curve = 0.7, FLAIR) at diagnosis were more likely to recur.
Conclusions:
Quantitative radiomic features are associated with pediatric embryonal brain tumor patient age, histology, neuraxis metastases, and recurrence. These data suggest that quantitative 3-dimensional magnetic resonance imaging radiomic analysis has the potential to identify radiomic risk features for pediatric patients with embryonal brain tumors.
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