Mechanisms of T2 * anisotropy and gradient echo myelin water imaging

Jongho Lee1, Yoonho Nam2, Joon Yul Choi1

  • 1Laboratory for Imaging Science and Technology, Department of Electrical and Computer Engineering, Seoul National University, Seoul, Korea.

NMR in Biomedicine
|April 11, 2016
PubMed

Insights

Gradient echo myelin water imaging (GRE-MWI) leverages T2* anisotropy in white matter to reveal microstructural details. This technique offers sensitive biomarkers for detecting brain tissue changes.

Area of Science:

  • Neuroimaging
  • Biophysics
  • Magnetic Resonance Imaging

Background:

  • Structural organization in white matter causes signal variations in MRI dependent on orientation.
  • Signal anisotropy offers insights into microstructural organization beyond typical MRI resolution.

Purpose of the Study:

  • To review T2* anisotropy in white matter and its application in gradient echo myelin water imaging (GRE-MWI).
  • To explore how GRE-MWI utilizes T2* anisotropy for detailed white matter microstructural analysis.

Main Methods:

  • Investigating T2* anisotropy attributed to myelin susceptibility and white matter microstructure.
  • Utilizing multi-component signal decay and phase evolution in GRE-MWI.
  • Implementing signal compensation techniques, including physiological noise compensation.

Main Results:

  • T2* anisotropy arises from myelin's magnetic susceptibility and the compartmentalized microstructure of white matter.
  • GRE-MWI resolves signal fractions from multiple white matter compartments.
  • Improved GRE-MWI methods enhance microstructural information acquisition.

Conclusions:

  • T2* anisotropy and GRE-MWI provide voxel-level microstructural information, including fiber orientation and tissue composition.
  • These methods can serve as sensitive biomarkers for detecting microstructural alterations in the brain.