High‐resolution 1H‐MRSI at 9.4 T by integrating relaxation enhancement and subspace imaging

Author:

Wang Yizun12,Saha Urbi3,Rubakhin Stanislav S.24,Roy Edward J.3,Smith Andrew M.15678,Sweedler Jonathan V.2346,Lam Fan12368

Affiliation:

1. Department of Bioengineering University of Illinois Urbana‐Champaign Urbana Illinois USA

2. Beckman Institute for Advanced Science and Technology University of Illinois Urbana‐Champaign Urbana Illinois USA

3. Neuroscience Program University of Illinois Urbana‐Champaign Urbana Illinois USA

4. Department of Chemistry University of Illinois Urbana‐Champaign Urbana Illinois USA

5. Holonyak Micro and Nanotechnology Laboratory University of Illinois Urbana‐Champaign Urbana Illinois USA

6. Carl R. Woese Institute for Genomic Biology University of Illinois Urbana‐Champaign Urbana Illinois USA

7. Department of Materials Science and Engineering University of Illinois Urbana‐Champaign Urbana Illinois USA

8. Carle Illinois College of Medicine Urbana Illinois USA

Abstract

AbstractAchieving high‐resolution and high signal‐to‐noise ratio (SNR) in vivo metabolic imaging via fast magnetic resonance spectroscopic imaging (MRSI) has been a longstanding challenge. This study combines the methods of relaxation enhancement (RE) and subspace imaging for the first time, enabling high‐resolution and high‐SNR in vivo MRSI of rodent brains at 9.4 T. Specifically, an RE‐based chemical shift imaging sequence, which combines a frequency‐selective pulse to excite only the metabolite frequencies with minimum perturbation of the water spins and a pair of adiabatic pulses to spatially localize the slice of interest, is designed and evaluated in vivo. This strategy effectively shortens the apparent T1 of metabolites, thereby increasing the SNR during relatively short repetition time ((TR) compared with acquisitions with only spatially selective wideband excitations, and does not require water suppression. The SNR was further enhanced via a state‐of‐the‐art subspace reconstruction method. A novel subspace learning strategy tailored for 9.4 T and RE acquisitions is developed. In vivo, high‐resolution (e.g., voxel size of 0.6 × 0.6 × 1.5 mm3) MRSI of both healthy mouse brains and a glioma‐bearing mouse brain in 12.5 min has been demonstrated.

Publisher

Wiley

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