Fiber Ball White Matter Modeling Reveals Microstructural Alterations in Healthy Brain Aging

Siddhartha Dhiman1, Stephanie Fountain-Zaragoza2,3, Jens H Jensen2,4,1

  • 1Department of Neuroscience, Medical University of South Carolina, Charleston, SC, USA.

Aging Brain
|November 3, 2022
PubMed

Insights

Advanced diffusion MRI modeling reveals myelin breakdown and axon loss in aging white matter. This technique provides new insights into microstructural changes in healthy aging, potentially detecting early neurodegenerative disease markers.

Area of Science:

  • Neuroimaging
  • White Matter Microstructure
  • Aging

Background:

  • Age-related white matter degeneration involves myelin and axon loss, particularly in late-myelinating regions.
  • Conventional diffusion MRI (dMRI) shows increased diffusivity with age but lacks tissue-specific detail.
  • Fiber Ball White Matter (FBWM) modeling estimates intra-axonal and extra-axonal properties for enhanced biological interpretation.

Purpose of the Study:

  • To investigate the microstructural mechanisms of white matter changes in healthy aging using FBWM.
  • To compare age-related microstructural alterations in late- vs. early-myelinating white matter regions.
  • To assess FBWM's potential for detecting early pathological changes.

Main Methods:

  • Utilized FBWM modeling on dMRI data from 63 healthy adults (ages 45-85).
  • Computed conventional dMRI and FBWM metrics in early- (splenium, projection tracts) and late-myelinating (genu, association tracts) regions.
  • Examined age associations with metrics, comparing late- vs. early-myelinating regions.

Main Results:

  • Conventional dMRI confirmed age-related diffusivity increases in late-myelinating regions.
  • FBWM revealed age-related intra- and extra-axonal changes, indicating myelin breakdown and smaller axon loss.
  • These microstructural changes were more pronounced in late-myelinating regions.

Conclusions:

  • FBWM modeling provides novel, microstructure-specific insights into healthy white matter aging.
  • FBWM findings corroborate histopathological studies of aged brains.
  • Advanced modeling techniques like FBWM show promise for early detection of neurodegenerative changes.