This title appears in the Scientific Report :
2020
Please use the identifier:
http://hdl.handle.net/2128/24542 in citations.
Please use the identifier: http://dx.doi.org/10.1002/nbm.4210 in citations.
Dedicated diffusion phantoms for the investigation of free water elimination and mapping: insights into the influence of T 2 relaxation properties
Dedicated diffusion phantoms for the investigation of free water elimination and mapping: insights into the influence of T 2 relaxation properties
Conventional diffusion‐weighted (DW) MRI suffers from free water contamination due to the finite voxel size. The most common case of free water contamination occurs with cerebrospinal fluid (CSF) in voxels located at the CSF‐tissue interface, such as at the ventricles in the human brain. Another cas...
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Personal Name(s): | Farrher, Ezequiel (Corresponding author) |
---|---|
Grinberg, Farida / Kuo, Li‐Wei / Cho, Kuan‐Hung / Buschbeck, Richard P. / Chen, Ming‐Jye / Chiang, Husan‐Han / Choi, Chang‐Hoon / Shah, N. J. | |
Contributing Institute: |
Physik der Medizinischen Bildgebung; INM-4 JARA-BRAIN; JARA-BRAIN Jara-Institut Quantum Information; INM-11 |
Published in: | NMR in biomedicine, 33 (2020) 4, S. e4210 |
Imprint: |
New York, NY
Wiley
2020
|
PubMed ID: |
31926122 |
DOI: |
10.1002/nbm.4210 |
Document Type: |
Journal Article |
Research Program: |
Neuroimaging |
Link: |
OpenAccess OpenAccess |
Publikationsportal JuSER |
Please use the identifier: http://dx.doi.org/10.1002/nbm.4210 in citations.
Conventional diffusion‐weighted (DW) MRI suffers from free water contamination due to the finite voxel size. The most common case of free water contamination occurs with cerebrospinal fluid (CSF) in voxels located at the CSF‐tissue interface, such as at the ventricles in the human brain. Another case refers to intra‐tissue free water as in vasogenic oedema. In order to avoid the bias in diffusion metrics, several multi‐compartment methods have been introduced, which explicitly model the presence of a free water compartment. However, fitting multi‐compartment models in DW MRI represents a well known ill conditioned problem. Although during the last decade great effort has been devoted to mitigating this estimation problem, the research field remains active.The aim of this work is to introduce the design, characterise the NMR properties and demonstrate the use of two dedicated anisotropic diffusion fibre phantoms, useful for the study of free water elimination (FWE) and mapping models. In particular, we investigate the recently proposed FWE diffusion tensor imaging approach, which takes explicit account of differences in the transverse relaxation times between the free water and tissue compartments. |