| Literature DB >> 24201013 |
Wolfgang Bogner1, Aaron T Hess2, Borjan Gagoski3, M Dylan Tisdall4, Andre J W van der Kouwe4, Siegfried Trattnig5, Bruce Rosen4, Ovidiu C Andronesi6.
Abstract
The full potential of magnetic resonance spectroscopic imaging (MRSI) is often limited by localization artifacts, motion-related artifacts, scanner instabilities, and long measurement times. Localized adiabatic selective refocusing (LASER) provides accurate B1-insensitive spatial excitation even at high magnetic fields. Spiral encoding accelerates MRSI acquisition, and thus, enables 3D-coverage without compromising spatial resolution. Real-time position- and shim/frequency-tracking using MR navigators correct motion- and scanner instability-related artifacts. Each of these three advanced MRI techniques provides superior MRSI data compared to commonly used methods. In this work, we integrated in a single pulse sequence these three promising approaches. Real-time correction of motion, shim, and frequency-drifts using volumetric dual-contrast echo planar imaging-based navigators were implemented in an MRSI sequence that uses low-power gradient modulated short-echo time LASER localization and time efficient spiral readouts, in order to provide fast and robust 3D-MRSI in the human brain at 3T. The proposed sequence was demonstrated to be insensitive to motion- and scanner drift-related degradations of MRSI data in both phantoms and volunteers. Motion and scanner drift artifacts were eliminated and excellent spectral quality was recovered in the presence of strong movement. Our results confirm the expected benefits of combining a spiral 3D-LASER-MRSI sequence with real-time correction. The new sequence provides accurate, fast, and robust 3D metabolic imaging of the human brain at 3T. This will further facilitate the use of 3D-MRSI for neuroscience and clinical applications.Entities:
Keywords: Frequency drift correction; LASER localization; Magnetic resonance spectroscopy; Prospective motion correction; Real-time correction; Spiral acceleration
Mesh:
Year: 2013 PMID: 24201013 PMCID: PMC4010560 DOI: 10.1016/j.neuroimage.2013.09.034
Source DB: PubMed Journal: Neuroimage ISSN: 1053-8119 Impact factor: 6.556