EBSCO Logo
Connecting you to content on EBSCOhost
Results
Title

Accelerated J‐resolved <sup>1</sup>H‐MRSI with limited and sparse sampling of (k,t1,t2‐space.

Authors

Tang, Lihong; Zhao, Yibo; Li, Yudu; Guo, Rong; Clifford, Bryan; El Fakhri, Georges; Ma, Chao; Liang, Zhi‐Pei; Luo, Jie

Abstract

Purpose: To accelerate the acquisition of J‐resolved proton magnetic resonance spectroscopic imaging (1H‐MRSI) data for high‐resolution mapping of brain metabolites and neurotransmitters. Methods: The proposed method used a subspace model to represent multidimensional spatiospectral functions, which significantly reduced the number of parameters to be determined from J‐resolved 1H‐MRSI data. A semi‐LASER–based (Localization by Adiabatic SElective Refocusing) echo‐planar spectroscopic imaging (EPSI) sequence was used for data acquisition. The proposed data acquisition scheme sampled k,t1,t2‐space in variable density, where t1 and t2 specify the J‐coupling and chemical‐shift encoding times, respectively. Selection of the J‐coupling encoding times (or, echo time values) was based on a Cramer‐Rao lower bound analysis, which were optimized for gamma‐aminobutyric acid (GABA) detection. In image reconstruction, parameters of the subspace‐based spatiospectral model were determined by solving a constrained optimization problem. Results: Feasibility of the proposed method was evaluated using both simulated and experimental data from a spectroscopic phantom. The phantom experimental results showed that the proposed method, with a factor of 12 acceleration in data acquisition, could determine the distribution of J‐coupled molecules with expected accuracy. In vivo study with healthy human subjects also showed that 3D maps of brain metabolites and neurotransmitters can be obtained with a nominal spatial resolution of 3.0 × 3.0 × 4.8 mm3 from J‐resolved 1H‐MRSI data acquired in 19.4 min. Conclusions: This work demonstrated the feasibility of highly accelerated J‐resolved 1H‐MRSI using limited and sparse sampling of k,t1,t2‐space and subspace modeling. With further development, the proposed method may enable high‐resolution mapping of brain metabolites and neurotransmitters in clinical applications.

Subjects

PROTON magnetic resonance; BRAIN mapping; ECHO-planar imaging; GABA; ACQUISITION of data

Publication

Magnetic Resonance in Medicine, 2021, Vol 85, Issue 1, p30

ISSN

0740-3194

Publication type

Academic Journal

DOI

10.1002/mrm.28413

EBSCO Connect | Privacy policy | Terms of use | Copyright | Manage my cookies
Journals | Subjects | Sitemap
© 2025 EBSCO Industries, Inc. All rights reserved