Literature DB >> 25652391

Neurite orientation dispersion and density imaging of the healthy cervical spinal cord in vivo.

Francesco Grussu1, Torben Schneider2, Hui Zhang3, Daniel C Alexander3, Claudia A M Wheeler-Kingshott2.   

Abstract

Here we present the application of neurite orientation dispersion and density imaging (NODDI) to the healthy spinal cord in vivo. NODDI provides maps such as the intra-neurite tissue volume fraction (vin), the orientation dispersion index (ODI) and the isotropic volume fraction (viso), and here we investigate their potential for spinal cord imaging. We scanned five healthy volunteers, four of whom twice, on a 3T MRI system with a ZOOM-EPI sequence. In accordance to the published NODDI protocol, multiple b-shells were acquired at cervical level and both NODDI and diffusion tensor imaging (DTI) metrics were obtained and analysed to: i) characterise differences in grey and white matter (GM/WM); ii) assess the scan-rescan reproducibility of NODDI; iii) investigate the relationship between NODDI and DTI; and iv) compare the quality of fit of NODDI and DTI. Our results demonstrated that: i) anatomical features can be identified in NODDI maps, such as clear contrast between GM and WM in ODI; ii) the variabilities of vin and ODI are comparable to that of DTI and are driven by biological differences between subjects for ODI, have similar contribution from measurement errors and biological variation for vin, whereas viso shows higher variability, driven by measurement errors; iii) NODDI identifies potential sources contributing to DTI indices, as in the brain; and iv) NODDI outperforms DTI in terms of quality of fit. In conclusion, this work shows that NODDI is a useful model for in vivo diffusion MRI of the spinal cord, providing metrics closely related to tissue microstructure, in line with findings in the brain.
Copyright © 2015. Published by Elsevier Inc.

Mesh:

Year:  2015        PMID: 25652391     DOI: 10.1016/j.neuroimage.2015.01.045

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


  38 in total

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4.  Cervical Spinal Cord DTI Is Improved by Reduced FOV with Specific Balance between the Number of Diffusion Gradient Directions and Averages.

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5.  In vivo mapping of human spinal cord microstructure at 300mT/m.

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6.  Design and validation of diffusion MRI models of white matter.

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7.  g-Ratio weighted imaging of the human spinal cord in vivo.

Authors:  T Duval; S Le Vy; N Stikov; J Campbell; A Mezer; T Witzel; B Keil; V Smith; L L Wald; E Klawiter; J Cohen-Adad
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8.  Neurite orientation dispersion and density imaging can detect presymptomatic axonal degeneration in the spinal cord of ALS mice.

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9.  Multi-compartmental diffusion characterization of the human cervical spinal cord in vivo using the spherical mean technique.

Authors:  Samantha By; Junzhong Xu; Bailey A Box; Francesca R Bagnato; Seth A Smith
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10.  Scan-rescan of axcaliber, macromolecular tissue volume, and g-ratio in the spinal cord.

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