Dysmyelination revealed through MRI as increased radial (but unchanged axial) diffusion of water

Sheng-Kwei Song1, Shu-Wei Sun, Michael J Ramsbottom

  • 1Department of Chemistry, Washington University, St. Louis, Missouri 63110, USA. victor@wuchem.wustl.edu

Neuroimage
|November 5, 2002
PubMed

Insights

Magnetic resonance diffusion tensor imaging (DTI) can differentiate myelin loss from axonal injury in white matter. Changes in water diffusion perpendicular to, but not parallel with, nerve fibers indicate myelin damage.

Area of Science:

  • Neuroimaging
  • Biomarkers
  • White Matter Diseases

Background:

  • White matter injuries involve myelin loss and axonal damage, impacting patient disability.
  • Noninvasive biomarkers to distinguish between myelin and axonal injury are currently lacking.

Purpose of the Study:

  • To utilize magnetic resonance diffusion tensor imaging (DTI) to quantify dysmyelination effects on water diffusion in mouse brains.
  • To explore DTI's potential in differentiating myelin loss from axonal injury.

Main Methods:

  • In vivo DTI was used on shiverer mice and age-matched controls.
  • Principal diffusion eigenvalues (lambda parallel and lambda perpendicular) were measured in eight specific axonal fiber tracts.
  • Electron microscopy confirmed axonal integrity.

Main Results:

  • Water diffusivity perpendicular to axonal tracts (lambda perpendicular) was significantly higher in shiverer mice, indicating myelin loss.
  • Water diffusivity parallel to axonal tracts (lambda parallel) showed no significant difference, suggesting intact axons.
  • Dysmyelination alone did not affect lambda parallel.

Conclusions:

  • Altered lambda perpendicular and lambda parallel values may serve as potential biomarkers for differentiating myelin loss from axonal injury.
  • Further validation is required, but DTI shows promise for noninvasive assessment of white matter pathologies.