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Published on: December 18, 2016
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.
Abstract:
In MRI, structurally aligned molecular or micro-organization (e.g. axonal fibers) can be a source of substantial signal variations that depend on the structural orientation and the applied magnetic field. This signal anisotropy gives us a unique opportunity to explore information that exists at a resolution several orders of magnitude smaller than that of typical MRI. In this review, one of the signal anisotropies, T2 * anisotropy in white matter, and a related imaging method, gradient echo myelin water imaging (GRE-MWI), are explored. The T2 * anisotropy has been attributed to isotropic and anisotropic magnetic susceptibility of myelin and compartmentalized microstructure of white matter fibers (i.e. axonal, myelin, and extracellular space). The susceptibility and microstructure create magnetic frequency shifts that change with the relative orientation of the fiber and the main magnetic field, generating the T2 * anisotropy. The resulting multi-component magnitude decay and nonlinear phase evolution have been utilized for GRE-MWI, assisting in resolving the signal fraction of the multiple compartments in white matter. The GRE-MWI method has been further improved by signal compensation techniques including physiological noise compensation schemes. The T2 * anisotropy and GRE-MWI provide microstructural information on a voxel (e.g. fiber orientation and tissue composition), and may serve as sensitive biomarkers for microstructural changes in the brain. Copyright © 2016 John Wiley & Sons, Ltd.
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.
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