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Updated: Jan 11, 2026

Magnetic Resonance Imaging of Multiple Sclerosis at 7.0 Tesla
Published on: February 19, 2021
Magnetisation Transfer 3D-Radial Zero Echo Time MR Imaging at 7T
Mark Symms1, Paulina Kozioł2, Catarina Rua3
1Independent Researcher, Gerrards Cross, Buckinghamshire SL9 0RJ, UK.
Abstract:
Background/Objectives: Magnetisation Transfer (MT) MRI is used for neuro-degenerative disorders, including Multiple Sclerosis (MS), providing an indirect measure of large biomolecular MR signal sources which cannot be observed directly because their typical T2 is usually much shorter than the echo time (TE) of conventional MR sequences. We investigated a 3D-radial Zero Time of Echo (ZTE) MT-weighted sequence with potentially enhanced sensitivity to short-T2 MR signals indirectly (via MT weighting) and directly (due to the short TE). Methods: The sequence runs on a human 7T MR scanner, producing whole-brain MT-weighted images with isotropic 0.8 mm resolution in 6.5 minutes. One RF pulse is used to suppress the fat signal and generate MT weighting, reducing RF power deposition to moderate levels. The small excitation pulses and the "quasi-adiabatic" MT pulse mitigate the negative effects of inhomogeneous transmit RF fields observed at 7T in the human head, facilitating the generation of uniform Magnetisation Transfer Ratio (MTR) maps. Results: Results from a biologic phantom, a healthy volunteer, and an MS patient illustrate important imaging features of the "SilentMT" sequence. When the MS patient images were compared with Fluid Attenuated Inversion Recovery (FLAIR) images taken on the same patient at 1.5T and 7T, SilentMT was able to detect all the MS lesions observed on the "reference truth" 1.5T FLAIR; 7T FLAIR, however, failed to detect some lesions in the temporal lobe and brain stem. SilentMT detected a lesion which was not immediately apparent on either FLAIR image. Increased MTR was observed in some regions of the brain of the MS patient, notably the left temporal lobe. Conclusions: This initial investigation of an MT-weighted ZTE sequence shows evidence that it may be more sensitive to pathology in a patient with MS.
Insights
A new Magnetisation Transfer (MT) MRI sequence called SilentMT shows promise for detecting Multiple Sclerosis (MS) lesions. This advanced technique may offer greater sensitivity to neurological pathology than conventional MRI methods.
Area of Science:
- Medical Imaging
- Neuroscience
- Biophysics
Background:
- Magnetisation Transfer (MT) MRI aids in diagnosing neuro-degenerative disorders like Multiple Sclerosis (MS).
- Conventional MRI sequences struggle to detect short T2 MR signals due to long echo times.
- Investigating a 3D-radial Zero Time of Echo (ZTE) MT-weighted sequence for improved sensitivity.
Purpose of the Study:
- To evaluate a novel 3D-radial ZTE MT-weighted sequence for enhanced detection of short T2 MR signals.
- To assess the sequence's performance in visualizing Multiple Sclerosis (MS) pathology.
- To compare the sensitivity of the new sequence against conventional MRI techniques.
Main Methods:
- A 3D-radial ZTE MT-weighted sequence was implemented on a 7T MRI scanner.
- The sequence achieved whole-brain coverage with 0.8 mm isotropic resolution in 6.5 minutes.
- RF pulses were optimized for fat suppression, MT weighting, and mitigation of transmit field inhomogeneities.
Main Results:
- The SilentMT sequence successfully detected all MS lesions visible on 1.5T FLAIR in an MS patient.
- SilentMT identified lesions missed by both 1.5T and 7T FLAIR, including one not initially apparent.
- Increased Magnetisation Transfer Ratio (MTR) was observed in specific brain regions of the MS patient.
Conclusions:
- The MT-weighted ZTE sequence (SilentMT) demonstrates potential for increased sensitivity in MS imaging.
- This novel sequence may improve the detection of subtle or previously undetected MS lesions.
- SilentMT shows promise as an advanced tool for neuroimaging in Multiple Sclerosis.
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