2017
DOI: 10.1002/mrm.26987
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Density‐weighted concentric circle trajectories for high resolution brain magnetic resonance spectroscopic imaging at 7T

Abstract: PurposeFull‐slice magnetic resonance spectroscopic imaging at ≥7 T is especially vulnerable to lipid contaminations arising from regions close to the skull. This contamination can be mitigated by improving the point spread function via higher spatial resolution sampling and k‐space filtering, but this prolongs scan times and reduces the signal‐to‐noise ratio (SNR) efficiency. Currently applied parallel imaging methods accelerate magnetic resonance spectroscopic imaging scans at 7T, but increase lipid artifact… Show more

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Cited by 40 publications
(94 citation statements)
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“…Thus, our results show that neither extracranial lipids nor MM contributions significantly reduced reproducibility compared to other reports, although both are enhanced in FID‐MRSI, especially when highly accelerated by parallel imaging. A further reduction of lipid artifacts via dedicated lipid removal hardware or spatial‐spectral encoding is expected to further improve the reproducibility.…”
Section: Discussionmentioning
confidence: 99%
“…Thus, our results show that neither extracranial lipids nor MM contributions significantly reduced reproducibility compared to other reports, although both are enhanced in FID‐MRSI, especially when highly accelerated by parallel imaging. A further reduction of lipid artifacts via dedicated lipid removal hardware or spatial‐spectral encoding is expected to further improve the reproducibility.…”
Section: Discussionmentioning
confidence: 99%
“…Spatial‐spectral encoding and echo planar schemes have been shown to be fast and efficient for acquiring whole brain MRSI data in 3D, but at the cost of a lower SNR and longer TE . Recent developments in FID‐MRSI acquisitions at ultra high fields combined with acceleration techniques are particularly promising due to the high SNR and resolution of the resulting metabolite maps . The method presented in this article is an adaptation of the FID‐MRSI approach for lower field strength.…”
Section: Discussionmentioning
confidence: 99%
“…The post‐processing pipeline included a modified Pipe‐Menon pre‐gridding density compensation, an off‐resonance correction, convolution gridding using a Kaiser‐Bessel kernel (width 3), coil‐wise L 2 ‐lipid regularization and iMUSICAL coil combination . Detailed steps have been described previously . LCModel 6.3 was used to fit in vivo spectra in the spectral range of 1.8–4.2 ppm.…”
Section: Methodsmentioning
confidence: 99%
“…The benefits include negligible signal losses caused by T 2 ‐relaxation or J‐modulation, low specific absorption rates, low chemical‐shift displacement errors, and reduced sensitivity to B1+errors. At 7T, FID‐MRSI sequences have been accelerated by non‐Cartesian k‐space sampling based on concentric‐ring trajectories (CRTs) . For high spectral bandwidths, the self‐rewinding and constant‐angular velocity properties of CRTs render them more SNR‐efficient, faster, and less susceptible to gradient imperfections than other spatial‐spectral encoding approaches.…”
Section: Introductionmentioning
confidence: 99%