A semi-automated measuring system of brain diffusion and perfusion magnetic resonance imaging abnormalities in patients with multiple sclerosis based on the integration of coregistration and tissue segmentation procedures

被引:3
作者
Revenaz, Alfredo [1 ]
Ruggeri, Massimiliano [2 ]
Lagana, Marcella [3 ]
Bergsland, Niels [3 ,4 ]
Groppo, Elisabetta [5 ]
Rovaris, Marco [6 ]
Fainardi, Enrico [1 ]
机构
[1] Azienda Osped Univ Ferrara, Dipartimento Neurosci & Riabilitaz, Unita Operat Neuroradiol, Arcispedale S Anna, I-44124 Ferrara, Italy
[2] CNR, I-44124 Ferrara, Italy
[3] IRCCS Don Gnocchi Fdn ONLUS, Res Lab, Milan, Italy
[4] SUNY Buffalo, Dept Neurol, Buffalo Neuroimaging Anal Ctr, Buffalo, NY 14260 USA
[5] Univ Ferrara, Sez Neurol, Dipartimento Sci Biomed & Chirurg Specialist, I-44100 Ferrara, Italy
[6] IRCCS S Maria Nascente, Fdn Don Gnocchi ONLUS, Unita Operat Sclerosi Multipla, I-20148 Milan, Italy
关键词
DPP Suite; Coregistration; Automatic segmentation; Automatic classification; DWI; PWI; APPEARING WHITE-MATTER; HEMODYNAMIC IMPAIRMENT; LESIONS; MRI; HYPOPERFUSION; REGISTRATION; ATROPHY; ROBUST; ECHO; TIME;
D O I
10.1186/s12880-016-0108-1
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Background: Diffusion-weighted imaging (DWI) and perfusion-weighted imaging (PWI) abnormalities in patients with multiple sclerosis (MS) are currently measured by a complex combination of separate procedures. Therefore, the purpose of this study was to provide a reliable method for reducing analysis complexity and obtaining reproducible results. Methods: We implemented a semi-automated measuring system in which different well-known software components for magnetic resonance imaging (MRI) analysis are integrated to obtain reliable measurements of DWI and PWI disturbances in MS. Results: We generated the Diffusion/Perfusion Project (DPP) Suite, in which a series of external software programs are managed and harmonically and hierarchically incorporated by in-house developed Matlab software to perform the following processes: 1) image pre-processing, including imaging data anonymization and conversion from DICOM to Nifti format; 2) co-registration of 2D and 3D non-enhanced and Gd-enhanced T1-weighted images in fluid-attenuated inversion recovery (FLAIR) space; 3) lesion segmentation and classification, in which FLAIR lesions are at first segmented and then categorized according to their presumed evolution; 4) co-registration of segmented FLAIR lesion in T1 space to obtain the FLAIR lesion mask in the T1 space; 5) normal appearing tissue segmentation, in which T1 lesion mask is used to segment basal ganglia/thalami, normal appearing grey matter (NAGM) and normal appearing white matter (NAWM); 6) DWI and PWI map generation; 7) co-registration of basal ganglia/thalami, NAGM, NAWM, DWI and PWI maps in previously segmented FLAIR space; 8) data analysis. All these steps are automatic, except for lesion segmentation and classification. Conclusion: We developed a promising method to limit misclassifications and user errors, providing clinical researchers with a practical and reproducible tool to measure DWI and PWI changes in MS.
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页数:16
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