Literature DB >> 20512851

Dual-band water and lipid suppression for MR spectroscopic imaging at 3 Tesla.

He Zhu1, Ronald Ouwerkerk, Peter B Barker.   

Abstract

A dual-band water and lipid suppression sequence was developed for multislice sensitivity-encoded proton MR spectroscopic imaging of the human brain. The presaturation scheme consisted of five dual-band frequency-modulated radiofrequency pulses based on hypergeometric functions integrated with eight outer volume suppression (OVS) pulses. The flip angles of the dual-band pulses were optimized through computer simulations to maximize suppression factors over a range of transmitter amplitude of radiofrequency field and water and lipid T(1) values. The resulting hypergeometric dual band with OVS (HGDB + OVS) sequence was implemented at 3 T in a multislice sensitivity-encoded proton MR spectroscopic imaging experiment and compared to a conventional water suppression scheme (variable pulse power and optimized relaxation delays (VAPOR)) with OVS. The HGDB sequence was significantly shorter than the VAPOR sequence (230 versus 728 msec). Both HGDB + OVS and VAPOR + OVS produced good water suppression, while lipid suppression with the HGDB + OVS sequence was far superior. In sensitivity-encoded proton MR spectroscopic imaging data, artifacts from extracranial lipid signals were significantly lower with HGDB + OVS. The shorter duration of HGDB compared to VAPOR also allows reduced pulse repetition time values in the multislice acquisition. (c) 2010 Wiley-Liss, Inc.

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Year:  2010        PMID: 20512851      PMCID: PMC3056057          DOI: 10.1002/mrm.22324

Source DB:  PubMed          Journal:  Magn Reson Med        ISSN: 0740-3194            Impact factor:   4.668


  21 in total

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  16 in total

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7.  High resolution spectroscopic imaging of GABA at 3 Tesla.

Authors:  He Zhu; Richard A E Edden; Ronald Ouwerkerk; Peter B Barker
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Review 8.  Strategies for rapid in vivo 1H and hyperpolarized 13C MR spectroscopic imaging.

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10.  Whole-slice mapping of GABA and GABA+ at 7T via adiabatic MEGA-editing, real-time instability correction, and concentric circle readout.

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