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Updated: May 20, 2026

Multiple-mouse Neuroanatomical Magnetic Resonance Imaging
Published on: February 27, 2011
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
Abstract:
This work compares magnetization transfer (MT) MRI of living mice with contrast-enhanced MT MRI using intraventricular administration of gadopentetate dimeglumine (Gd-DTPA), systemic administration of MnCl2, and both. In MT MRI at 9.4 T, the contrast-to-noise ratio (CNR) between white matter (WM) and gray matter (GM) increased by 85% after Gd-DTPA injection into the lateral ventricle. When applied in conjunction with manganese-enhanced MT MRI (117 μm isotropic resolution, 6 min measuring time), Gd-DTPA boosted the CNR increase from +56% to +117%. Additional T1 measurements at 2.35 T revealed that intraventricular Gd-DTPA shortens the T1 of GM much more than that of WM, which corresponds to estimated extracellular spaces of 26% in GM and only 15% in WM. These results explain the additional MT contrast enhancement by Gd-DTPA and demonstrate that the T1 shortening by intracellular Mn2+ is well complemented by extracellular Gd-DTPA. The data suggest a high myelin and low water content to hinder access of hydrophilic paramagnetic agents, so that the resulting differential accumulation effectively reduces the MT saturation in water-rich tissues and thereby facilitates the mapping of myelin-rich tissues. Finally, a 156% CNR increase between GM and WM for contrast-enhanced MT MRI at 9.4T using both Gd-DTPA and manganese allowed for 60μm isotropic resolution (102 min measuring time), which delineated myelinated fibers and layers even within GM areas such as the thalamus and cerebellar cortex. Improved MT contrasts were also seen in the cervical spinal cord.
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.

