Simultaneous multi-slice spin- and gradient-echo dynamic susceptibility-contrast perfusion-weighted MRI of gliomas

Misung Han1, Baolian Yang2, Brice Fernandez3

  • 1Department of Radiology and Biomedical Imaging, University of California, San Francisco, San Francisco, California, USA.

NMR in Biomedicine
|August 27, 2020
PubMed

Insights

This study demonstrates that simultaneous multi-slice (SMS) excitation combined with blipped controlled aliasing in parallel imaging (CAIPI) in spin- and gradient-echo (SAGE) dynamic susceptibility-contrast (DSC) MRI enables whole-brain coverage with high temporal resolution for improved gliomas imaging.

Area of Science:

  • Medical Imaging
  • Neuroscience
  • Radiology

Background:

  • Combined spin- and gradient-echo (SAGE) dynamic susceptibility-contrast (DSC) MRI offers sensitive perfusion quantification but often has limited spatial coverage.
  • High temporal resolution is crucial for DSC quantification in neuroimaging.

Purpose of the Study:

  • To achieve whole-brain coverage with high temporal resolution in SAGE DSC MRI.
  • To evaluate the optimal scan parameters for clinical use in patients with treated gliomas.

Main Methods:

  • Combined SAGE echo-planar imaging (EPI) with simultaneous multi-slice (SMS) excitation and blipped controlled aliasing in parallel imaging (CAIPI) at 3 T.
  • Evaluated two multi-band (MB) acceleration factors (2 and 3) in 20 patients with treated gliomas.
  • Derived ΔR2 *(t) and ΔR2 (t) curves to calculate dSNR, rCBV, and mVD.

Main Results:

  • SAGE DSC images with MB acceleration factors of 3 and 2 showed similar image quality, distortion, and contrast.
  • No statistically significant differences in mean dSNR were observed between the two protocols.
  • ΔR2 *- and ΔR2 -rCBV maps and mVD maps revealed unique contrast and spatial heterogeneity within tumors.

Conclusions:

  • SMS and blipped CAIPI enable high temporal resolution and whole-brain coverage for SAGE DSC MRI.
  • MB acceleration factors of 2 and 3 are suitable for clinical evaluation in gliomas.
  • The developed technique provides valuable insights into tumor vascularity.

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