Literature DB >> 33580909

Magnetization-prepared GRASP MRI for rapid 3D T1 mapping and fat/water-separated T1 mapping.

Li Feng1, Fang Liu2, Georgios Soultanidis1, Chenyu Liu1, Thomas Benkert3, Kai Tobias Block3,4, Zahi A Fayad1, Yang Yang1.   

Abstract

PURPOSE: This study aimed to (i) develop Magnetization-Prepared Golden-angle RAdial Sparse Parallel (MP-GRASP) MRI using a stack-of-stars trajectory for rapid free-breathing T1 mapping and (ii) extend MP-GRASP to multi-echo acquisition (MP-Dixon-GRASP) for fat/water-separated (water-specific) T1 mapping.
METHODS: An adiabatic non-selective 180° inversion-recovery pulse was added to a gradient-echo-based golden-angle stack-of-stars sequence for magnetization-prepared 3D single-echo or 3D multi-echo acquisition. In combination with subspace-based GRASP-Pro reconstruction, the sequence allows for standard T1 mapping (MP-GRASP) or fat/water-separated T1 mapping (MP-Dixon-GRASP), respectively. The accuracy of T1 mapping using MP-GRASP was evaluated in a phantom and volunteers (brain and liver) against clinically accepted reference methods. The repeatability of T1 estimation was also assessed in the phantom and volunteers. The performance of MP-Dixon-GRASP for water-specific T1 mapping was evaluated in a fat/water phantom and volunteers (brain and liver).
RESULTS: ROI-based mean T1 values are correlated between the references and MP-GRASP in the phantom (R2 = 1.0), brain (R2 = 0.96), and liver (R2 = 0.73). MP-GRASP achieved good repeatability of T1 estimation in the phantom (R2 = 1.0), brain (R2 = 0.99), and liver (R2 = 0.82). Water-specific T1 is different from in-phase and out-of-phase composite T1 (composite T1 when fat and water signal are mixed in phase or out of phase) both in the phantom and volunteers.
CONCLUSION: This work demonstrated the initial performance of MP-GRASP and MP-Dixon-GRASP MRI for rapid 3D T1 mapping and 3D fat/water-separated T1 mapping in the brain (without motion) and in the liver (during free breathing). With fat/water-separated T1 estimation, MP-Dixon-GRASP could be potentially useful for imaging patients with fatty-liver diseases.
© 2021 International Society for Magnetic Resonance in Medicine.

Entities:  

Keywords:  MP-Dixon-GRASP; MP-GRASP; T1 mapping; fat/water separation; free-breathing; golden-angle radial

Mesh:

Substances:

Year:  2021        PMID: 33580909     DOI: 10.1002/mrm.28679

Source DB:  PubMed          Journal:  Magn Reson Med        ISSN: 0740-3194            Impact factor:   4.668


  3 in total

1.  Data-Consistent non-Cartesian deep subspace learning for efficient dynamic MR image reconstruction.

Authors:  Zihao Chen; Yuhua Chen; Yibin Xie; Debiao Li; Anthony G Christodoulou
Journal:  Proc IEEE Int Symp Biomed Imaging       Date:  2022-04-26

Review 2.  Golden-Angle Radial MRI: Basics, Advances, and Applications.

Authors:  Li Feng
Journal:  J Magn Reson Imaging       Date:  2022-04-09       Impact factor: 5.119

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Authors:  Aurélien J Trotier; Bixente Dilharreguy; Serge Anandra; Nadège Corbin; William Lefrançois; Valery Ozenne; Sylvain Miraux; Emeline J Ribot
Journal:  Invest Radiol       Date:  2022-01-14       Impact factor: 10.065

  3 in total

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