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Neuroimaging characterization of multiple sclerosis lesions in pediatric patients: an exploratory radiomics approach

Authors :
Ricardo Faustino
Cristina Lopes
Afonso Jantarada
Ana Mendonça
Rafael Raposo
Cristina Ferrão
Joana Freitas
Constança Mateus
Ana Pinto
Ellen Almeida
Nuno Gomes
Liliana Marques
Filipe Palavra
Source :
Frontiers in Neuroscience, Vol 18 (2024)
Publication Year :
2024
Publisher :
Frontiers Media S.A., 2024.

Abstract

IntroductionMultiple sclerosis (MS), a chronic inflammatory immune-mediated disease of the central nervous system (CNS), is a common condition in young adults, but it can also affect children. The aim of this study was to construct radiomic models of lesions based on magnetic resonance imaging (MRI, T2-weighted-Fluid-Attenuated Inversion Recovery), to understand the correlation between extracted radiomic features, brain and lesion volumetry, demographic, clinical and laboratorial data.MethodsThe neuroimaging data extracted from eleven scans of pediatric MS patients were analyzed. A total of 60 radiomic features based on MR T2-FLAIR images were extracted and used to calculate gray level co-occurrence matrix (GLCM). The principal component analysis and ROC analysis were performed to select the radiomic features, respectively. The realized classification task by the logistic regression models was performed according to these radiomic features.ResultsTen most relevant features were selected from data extracted. The logistic regression applied to T2-FLAIR radiomic features revealed significant predictor for multiple sclerosis (MS) lesion detection. Only the variable “contrast” was statistically significant, indicating that only this variable played a significant role in the model. This approach enhances the classification of lesions from normal tissue.Discussion and conclusionOur exploratory results suggest that the radiomic models based on MR imaging (T2-FLAIR) may have a potential contribution to characterization of brain tissues and classification of lesions in pediatric MS.

Details

Language :
English
ISSN :
1662453X
Volume :
18
Database :
Directory of Open Access Journals
Journal :
Frontiers in Neuroscience
Publication Type :
Academic Journal
Accession number :
edsdoj.f8c642c918b64ebdb14a56c66d47b08a
Document Type :
article
Full Text :
https://doi.org/10.3389/fnins.2024.1294574