2016
DOI: 10.1093/neuonc/now121
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Multimodal MRI features predict isocitrate dehydrogenase genotype in high-grade gliomas

Abstract: Background. High-grade gliomas with mutations in the isocitrate dehydrogenase (IDH) gene family confer longer overall survival relative to their IDH-wild-type counterparts. Accurate determination of the IDH genotype preoperatively may have both prognostic and diagnostic value. The current study used a machine-learning algorithm to generate a model predictive of IDH genotype in high-grade gliomas based on clinical variables and multimodal features extracted from conventional MRI. … Show more

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Cited by 233 publications
(197 citation statements)
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References 56 publications
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“…There is increasing evidence demonstrating the validity of advanced computational analysis of QIP features that has shown promise in predicting clinical outcome and molecular characteristics (Aerts, 2016; Bakas et al, 2017a, 2017c; Ellingson et al, 2017; Gevaert et al, 2017; Gill et al, 2014; Gutman et al, 2013; Itakura et al, 2015; Macyszyn et al, 2016; Zhang et al, 2017). In this study, examination of QIP features associated with the EGFR missense mutations helped to generate hypotheses for the negative survival impact of EGFR A289D/T/V .…”
Section: Discussionmentioning
confidence: 99%
“…There is increasing evidence demonstrating the validity of advanced computational analysis of QIP features that has shown promise in predicting clinical outcome and molecular characteristics (Aerts, 2016; Bakas et al, 2017a, 2017c; Ellingson et al, 2017; Gevaert et al, 2017; Gill et al, 2014; Gutman et al, 2013; Itakura et al, 2015; Macyszyn et al, 2016; Zhang et al, 2017). In this study, examination of QIP features associated with the EGFR missense mutations helped to generate hypotheses for the negative survival impact of EGFR A289D/T/V .…”
Section: Discussionmentioning
confidence: 99%
“…As listed in online Table E1, a total of 65 texture and histogram features were then extracted from the VOI of each sequence: 12 histogram‐based textures, 9 Gray‐Level Co‐occurrence Matrix (GLCM) features, 13 Gray‐Level Gradient Co‐occurrence Matrix (GLGCM) features, 13 Gray‐Level Run‐Length Matrix (GLRLM) features, 13 Gray‐Level Size Zone Matrix (GLSZM) features, and five Neighborhood Gray‐Tone Difference Matrix (NGTDM) features. Details of the definitions and calculations of these features have previously been given …”
Section: Methodsmentioning
confidence: 99%
“…Among these radiomic features, textural features are one of the most commonly used, which could quantify spatial variation of gray‐level intensity and characterize the underlying heterogeneity of the image under evaluation . Until recently, textural features, extracted from routine MR images, have successfully been associated with glioma grade, overall survival, and isocitrate dehydrogenase (IDH) genotype . However, dynamic contrast‐enhanced MRI (DCE‐MRI), which makes the heterogeneity of vascular physiology and structure quantifiable data and reveals dramatic imaging heterogeneity, was seldom analyzed by texture analysis.…”
mentioning
confidence: 99%