4.4 Article

High spatial resolution BOLD fMRI using simultaneous multislice excitation with echo-shifting gradient echo at 7 Tesla

期刊

MAGNETIC RESONANCE IMAGING
卷 66, 期 -, 页码 86-92

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.mri.2018.08.019

关键词

fMRI; High spatial resolution; SMS; Echo-shifting

资金

  1. National Key Research and Development Program of China [2016YFC0100302]
  2. Natural Science Foundation of Shenzhen [GJHZ20150316143320494, KQCX2015033117354154, JCYJ20160429191938883, JCYJ201603311 85933583, JCYJ20160531174850658, JCYJ20170413161314734]
  3. National Basic Research Program of China [2015CB755503]
  4. National Natural Science Foundation of China [81571669, 61201442, 81401481]
  5. Natural Science Foundation of Guangdong [2017A050501026, 2014B030301013, 2014A030312006, 2014A030313691]
  6. Strategic Priority Research Program Grants of Chinese Academy of Sciences [XDB02010001, XDB02050001]
  7. Excellent Youth Scholars of SLAT [Y5G003]

向作者/读者索取更多资源

We introduce an accelerated gradient echo (GRE) sequence combining simultaneous multislice excitation (SMS) with echo-shifting technique for high spatial resolution blood oxygen level dependent (BOLD) functional MRI (fMRI). The simulation was conducted to optimize scan parameters. To validate the feasibility of the proposed technique, the visual and motor task experiments were performed at 7.0 Tesla (T). The single-shot EPI sequence was also applied in comparison with the proposed technique. The simulation results showed that an optimized flip angle of 9 degrees provided maximal BOLD contrast for our scanning scheme, allowing low power deposition and SMS acceleration factor of 5. Additionally, parallel acquisition imaging with acceleration factor of 2 was utilized, which allowed a total acceleration factor of 10 in volunteer study. The experiment results showed that geometric distortion-free BOLD images with voxel size of 1.0 x 1.0 x 2.5 mm(3) were obtained. Significant brain activation was identified in both visual and motor task experiments, which were in accordance with previous investigations. The proposed technique has potential for high spatial resolution fMRI at ultra-high field because of its sufficient BOLD sensitivity as well as improved acquisition speed over conventional GRE-based techniques.

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