Magnetic Resonance Imaging at 3.0 Tesla: Challenges and Advantages in Clinical Neurological Imaging
- 1 July 2003
- journal article
- Published by Wolters Kluwer Health in Investigative Radiology
- Vol. 38 (7), 385-402
- https://doi.org/10.1097/01.rli.0000073442.88269.c9
Abstract
MR imaging at very high field (3.0 T) is a significant new clinical tool in the modern neuroradiological armamentarium. In this report, we summarize our 40-month experience in performing clinical neuroradiological examinations at 3.0 T and review the relevant technical issues. We report on these issues and, where appropriate, their solutions. Issues examined include: increased SNR, larger chemical shifts, additional problems associated with installation of these scanners, challenges in designing and obtaining appropriate clinical imaging coils, greater acoustic noise, increased power deposition, changes in relaxation rates and susceptibility effects, and issues surrounding the safety and compatibility of implanted devices. Some of the these technical factors are advantageous (eg, increased signal-to-noise ratio), some are detrimental (eg, installation, coil design and development, acoustic noise, power deposition, device compatibility, and safety), and a few have both benefits and disadvantages (eg, changes in relaxation, chemical shift, and susceptibility). Fortunately solutions have been developed or are currently under development, by us and by others, for nearly all of these challenges. A short series of 1.5 T and 3.0 T patient images are also presented to illustrate the potential diagnostic benefits of scanning at higher field strengths. In summary, by paying appropriate attention to the discussed technical issues, high-quality neuro-imaging of patients is possible at 3.0 T.Keywords
This publication has 49 references indexed in Scilit:
- Diffusion-Tensor MR Imaging at 1.5 and 3.0 T: Initial ObservationsRadiology, 2001
- High‐resolution intracranial and cervical MRA at 3.0T: Technical considerations and initial experienceMagnetic Resonance in Medicine, 2001
- NMR relaxation times in the human brain at 3.0 teslaJournal of Magnetic Resonance Imaging, 1999
- Clinical Rationale for Very-High-Field (3.0 Tesla) Functional Magnetic Resonance ImagingTopics in Magnetic Resonance Imaging, 1999
- Simultaneous acquisition of spatial harmonics (SMASH): Fast imaging with radiofrequency coil arraysMagnetic Resonance in Medicine, 1997
- Magnetic Resonance Imaging Functional Activation of Left Frontal Cortex During Covert Word ProductionJournal of Neuroimaging, 1994
- Intrinsic signal changes accompanying sensory stimulation: functional brain mapping with magnetic resonance imaging.Proceedings of the National Academy of Sciences, 1992
- Whole-body MR imaging and spectroscopy with a 4-T system.Radiology, 1988
- Rapid31P spectroscopy on a 4‐T whole‐body systemMagnetic Resonance in Medicine, 1988
- Spectroscopy and imaging with a 4 tesla whole‐body mr systemNMR in Biomedicine, 1988