Visualizing the entire cortical myelination pattern in marmosets with magnetic resonance imaging

Nicholas A Bock1, Ara Kocharyan, Junjie V Liu

  • 1Cerebral Microcirculation Unit, Laboratory of Functional and Molecular Imaging, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, MD 20892-1065, USA. bockn@mcmaster.ca

Insights

This study demonstrates in vivo magnetic resonance imaging (MRI) to visualize the brain's myeloarchitecture in marmosets. The technique maps myelin density across the entire cortex, aiding neuroscience research.

Area of Science:

  • Neuroscience
  • Neuroimaging
  • Primate Brain Anatomy

Background:

  • Myeloarchitecture, the pattern of myelin density, defines cortical areas and is traditionally studied via histology.
  • Human 2D MRI visualizes myeloarchitecture in specific regions, but in vivo whole-cortex mapping remains challenging.

Purpose of the Study:

  • To investigate longitudinal relaxation time (T1) MRI contrast for in vivo whole-cortex myeloarchitecture visualization in common marmosets.
  • To optimize MRI sequences for enhanced contrast of cortical myelination patterns.

Main Methods:

  • Quantitative T1 mapping at 7 Tesla was used to measure myelin content differences.
  • A magnetization-prepared rapidly acquired gradient echo (MP-RAGE) sequence was optimized for T1 contrast.
  • In vivo 3D T1-weighted images were acquired and compared with myelin-stained histological sections.

Main Results:

  • A 15% T1 difference was observed between high and low myelin regions.
  • Six major myelinated cortical areas were identified in vivo.
  • The technique revealed subtle myeloarchitectural features, confirming its sensitivity.

Conclusions:

  • In vivo T1-weighted MRI effectively visualizes whole-cortex myeloarchitecture in marmosets.
  • This method offers a sensitive tool for studying cortical development, plasticity, and functional measurements.