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Updated: May 2, 2026

Diffusion Tensor Magnetic Resonance Imaging in Chronic Spinal Cord Compression
Published on: May 7, 2019
Rapid, high-resolution quantitative magnetization transfer MRI of the human spinal cord
Alex K Smith1, Richard D Dortch2, Lindsey M Dethrage3
1Department of Biomedical Engineering, Vanderbilt University, USA; Vanderbilt University Institute of Imaging Science, Vanderbilt University, USA.
Abstract:
Quantitative magnetization transfer (qMT) imaging can provide indices describing the interactions between free water protons and immobile macromolecular protons. These indices include the macromolecular proton fraction (MPF), which has been shown to correlate with myelin content in white matter. Because of the long scan times required for high-resolution spinal cord imaging, qMT studies of the human spinal cord have not found wide-spread application. Herein, we investigated whether these limitations could be overcome by utilizing only a single MT-weighted acquisition and a reference measurement, as was recently proposed in the brain. High-resolution, in vivo qMT data were obtained at 3.0T in the spinal cords of healthy volunteers and patients with relapsing remitting multiple sclerosis (MS). Low- and high-resolution acquisitions (low/high resolution=1×1×5mm(3)/0.65×0.65×5mm(3)) with clinically acceptable scan times (12min/7min) were evaluated. We also evaluated the reliability over time and the sensitivity of the model to the assumptions made in the single-point method, both in disease and healthy tissues. Our findings suggest that the single point qMT technique can provide maps of the MPF in the spinal cord in vivo with excellent grey/white matter contrast, can be reliably obtained within reasonable scan times, and are sensitive to MS pathology. Consistent with previous qMT studies in the brain, the observed MPF values were higher in healthy white matter (0.16±0.01) than in grey matter (0.13±0.01) and in MS lesions (0.09±0.01). The single point qMT technique applied at high resolution provides an improved method for obtaining qMT in the human spinal cord and may offer a reliable outcome measure for evaluating spinal cord disease.
Insights
Quantitative magnetization transfer (qMT) imaging now offers faster, reliable spinal cord myelin mapping. This technique accurately detects multiple sclerosis (MS) pathology in vivo, improving diagnostic potential.
Area of Science:
- Neuroimaging
- Biophysics
- Medical Physics
Background:
- Quantitative magnetization transfer (qMT) imaging measures interactions between water and macromolecular protons.
- The macromolecular proton fraction (MPF) derived from qMT correlates with myelin content.
- Previous qMT studies in the spinal cord were limited by long scan times.
Purpose of the Study:
- To investigate a single-point qMT technique for high-resolution human spinal cord imaging.
- To assess the feasibility of reduced scan times for in vivo qMT of the spinal cord.
- To evaluate the reliability and sensitivity of the single-point qMT method in healthy and diseased spinal cords.
Main Methods:
- Acquired in vivo qMT data at 3.0T in healthy volunteers and MS patients.
- Utilized single-point qMT with low (1x1x5mm3) and high (0.65x0.65x5mm3) resolution acquisitions.
- Evaluated scan times of 12 minutes (low) and 7 minutes (high), assessing reliability and sensitivity to model assumptions.
Main Results:
- Single-point qMT successfully generated MPF maps of the spinal cord with excellent grey/white matter contrast.
- High-resolution qMT was achievable within clinically acceptable scan times (7 minutes).
- MPF values were lower in MS lesions (0.09±0.01) compared to grey matter (0.13±0.01) and white matter (0.16±0.01).
Conclusions:
- The single-point qMT technique is a reliable and efficient method for in vivo human spinal cord imaging.
- This technique provides valuable contrast and is sensitive to MS pathology.
- High-resolution single-point qMT offers an improved approach for spinal cord qMT and may serve as a reliable outcome measure for disease evaluation.

