Myelin mapping in the central nervous system of living mice using contrast-enhanced magnetization transfer MRI

Takashi Watanabe1, Jens Frahm, Thomas Michaelis

  • 1Biomedizinische NMR Forschungs GmbH am Max-Planck-Institut für biophysikalische Chemie, Göttingen, Germany. twatana@gwdg.de

Neuroimage
|July 17, 2012
PubMed

Insights

Contrast-enhanced magnetization transfer MRI using Gd-DTPA and manganese improves white and gray matter contrast in mice. This technique enhances visualization of myelinated tissues and spinal cord structures.

Area of Science:

  • Neuroimaging
  • Biophysics
  • Magnetic Resonance Imaging

Background:

  • Magnetization transfer (MT) MRI is sensitive to macromolecular protons.
  • Contrast agents can enhance MT MRI signals.
  • Understanding tissue composition requires advanced MRI techniques.

Purpose of the Study:

  • To compare contrast-enhanced MT MRI techniques in living mice.
  • To evaluate the effects of intraventricular Gd-DTPA and systemic MnCl2 on MT contrast.
  • To improve the resolution and visualization of brain and spinal cord structures.

Main Methods:

  • MT MRI at 9.4 T with intraventricular Gd-DTPA and/or systemic MnCl2.
  • T1 measurements at 2.35 T.
  • High-resolution (60 μm isotropic) imaging.

Main Results:

  • Intraventricular Gd-DTPA increased white matter/gray matter CNR by 85%.
  • Combined Gd-DTPA and MnCl2 boosted CNR increase to 117% at 117 μm resolution.
  • Gd-DTPA preferentially shortened T1 in gray matter, indicating larger extracellular space.
  • High-resolution imaging (60 μm) delineated myelinated structures within gray matter.

Conclusions:

  • Extracellular Gd-DTPA complements intracellular Mn2+ for enhanced MT contrast.
  • Differential accumulation of contrast agents in tissues with varying myelin and water content facilitates mapping of myelin-rich tissues.
  • Contrast-enhanced MT MRI enables unprecedented visualization of fine neuroanatomical details.