Literature DB >> 17928236

Automatic curvilinear reformatting of three-dimensional MRI data of the cerebral cortex.

H-J Huppertz1, J Kassubek, D-M Altenmüller, T Breyer, S Fauser.   

Abstract

Curvilinear reformatting of three-dimensional (3D) MRI data of the cerebral cortex is a well-established tool which improves the display of the gyral structure, permits a precise localization of lesions, and helps to identify subtle abnormalities difficult to detect in planar slices due to the brain's complex convolutional pattern. However, the method is time consuming because it requires interactive manual delineation of the brain surface contour. Therefore, a novel technique for automatic curvilinear reformatting is presented. A T1-weighted MRI volume data set is normalized using SPM2. Due to the normalization to a common stereotactic space, predefined masks can be applied to cover skull and outer brain regions in different depths from the brain surface. Thereby, the outer brain regions are subsequently removed in 2-mm layers parallel to the brain surface like 'peeling an onion'. The serial convex planes enclosing the residual inner part of the brain are presented 3-dimensionally. If necessary (e.g., for intraoperative navigation), the normalized data can be transferred to native space by inverse normalization. Compared to cross-sectional images, curvilinear reformatting offers a markedly superior visualization of topographic relations between lesions and cortical structures, helps to detect subtle cortical malformations and to assess the spatial extent of lesions, thus allowing a better planning of neurosurgical procedures. Compared to alternative methods, it is largely based on freely available software and does not require observer-dependent manual input. In conclusion, we present a simple, easy-to-use and fully automated method for curvilinear reformatting of 3D MRI.

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Mesh:

Year:  2007        PMID: 17928236     DOI: 10.1016/j.neuroimage.2007.08.038

Source DB:  PubMed          Journal:  Neuroimage        ISSN: 1053-8119            Impact factor:   6.556


  7 in total

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2.  Voxel-based morphometric magnetic resonance imaging (MRI) postprocessing in MRI-negative epilepsies.

Authors:  Z Irene Wang; Stephen E Jones; Zeenat Jaisani; Imad M Najm; Richard A Prayson; Richard C Burgess; Balu Krishnan; Aleksandar Ristic; Chong H Wong; William Bingaman; Jorge A Gonzalez-Martinez; Andreas V Alexopoulos
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Review 3.  Advances in MRI for 'cryptogenic' epilepsies.

Authors:  Andrea Bernasconi; Neda Bernasconi; Boris C Bernhardt; Dewi Schrader
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4.  Linking MRI postprocessing with magnetic source imaging in MRI-negative epilepsy.

Authors:  Zhong I Wang; Andreas V Alexopoulos; Stephen E Jones; Imad M Najm; Aleksandar Ristic; Chong Wong; Richard Prayson; Felix Schneider; Yosuke Kakisaka; Shuang Wang; William Bingaman; Jorge A Gonzalez-Martinez; Richard C Burgess
Journal:  Ann Neurol       Date:  2014-05-16       Impact factor: 10.422

5.  Re-review of MRI with post-processing in nonlesional patients in whom epilepsy surgery has failed.

Authors:  Z Irene Wang; P Suwanpakdee; S E Jones; Z Jaisani; Ahsan N V Moosa; I M Najm; F von Podewils; R C Burgess; B Krishnan; R A Prayson; J A Gonzalez-Martinez; W Bingaman; A V Alexopoulos
Journal:  J Neurol       Date:  2016-06-13       Impact factor: 4.849

6.  Interactive patient-customized curvilinear reformatting for improving neurosurgical planning.

Authors:  Shin-Ting Wu; Wallace Souza Loos; Dayvid Leonardo de Castro Oliveira; Fernando Cendes; Clarissa L Yasuda; Enrico Ghizoni
Journal:  Int J Comput Assist Radiol Surg       Date:  2018-10-20       Impact factor: 2.924

7.  Pilot Study of Voxel-Based Morphometric MRI Post-processing in Patients With Non-lesional Operculoinsular Epilepsy.

Authors:  Wei Wang; Qilin Zhou; Xiating Zhang; Liping Li; Cuiping Xu; Yueshan Piao; Siqi Wu; Yajie Wang; Wei Du; Zhilian Zhao; Yicong Lin; Yuping Wang
Journal:  Front Neurol       Date:  2020-03-19       Impact factor: 4.003

  7 in total

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