Related Experiment Video
Updated: Aug 29, 2025

Comprehensive Autopsy Program for Individuals with Multiple Sclerosis
Published on: July 19, 2019
Relaxometry and brain myelin quantification with synthetic MRI in MS subtypes and their associations with spinal cord
Theodoros Ladopoulos1, Britta Matusche2, Barbara Bellenberg2
1Department of Neurology, St. Josef Hospital, Ruhr-University Bochum, Gudrunstr. 56, 44791 Bochum, Germany; Institute of Neuroradiology, St. Josef Hospital, Ruhr-University Bochum, Gudrunstr. 56, 44791 Bochum, Germany.
Abstract:
Immune-mediated demyelination and neurodegeneration are pathophysiological hallmarks of Multiple Sclerosis (MS) and main drivers of disease related disability. The principal method for evaluating qualitatively demyelinating events in the clinical context is contrast-weighted magnetic resonance imaging (MRI). Moreover, advanced MRI sequences provide reliable quantification of brain myelin offering new opportunities to study tissue pathology in vivo. Towards neurodegenerative aspects of the disease, spinal cord atrophy - besides brain atrophy - is a powerful and validated predictor of disease progression. The etiology of spinal cord volume loss is still a matter of research, as it remains unclear whether the impact of local lesion pathology or the interaction with supra- and infratentorial axonal degeneration and demyelination of the long descending and ascending fiber tracts are the determining factors. Quantitative synthetic MR using a multiecho acquisition of saturation recovery pulse sequence provides fast automatic brain tissue and myelin volumetry based on R1 and R2 relaxation rates and proton density quantification, making it a promising modality for application in the clinical routine. In this cross sectional study a total of 91 MS patients and 31 control subjects were included to investigate group differences of global and regional measures of brain myelin and relaxation rates, in different MS subtypes, using QRAPMASTER sequence and SyMRI postprocessing software. Furthermore, we examined associations between these quantitative brain parameters and spinal cord atrophy to draw conclusions about possible pathophysiological relationships. Intracranial myelin volume fraction of the global brain exhibited statistically significant differences between control subjects (10.4%) and MS patients (RRMS 9.4%, PMS 8.1%). In a LASSO regression analysis with total brain lesion load, intracranial myelin volume fraction and brain parenchymal fraction, the intracranial myelin volume fraction was the variable with the highest impact on spinal cord atrophy (standardized coefficient 4.52). Regional supratentorial MRI metrics showed altered average myelin volume fraction, R1, R2 and proton density in MS patients compared to controls most pronounced in PMS. Interestingly, quantitative MRI parameters in supratentorial regions showed strong associations with upper cord atrophy, suggesting an important role of brain diffuse demyelination on spinal cord pathology possibly in the context of global disease activity. R1, R2 or proton density of the thalamus, cerebellum and brainstem correlated with upper cervical cord atrophy, probably reflecting the direct functional connection between these brain structures and the spinal cord as well as the effects of retrograde and anterograde axonal degeneration. By using Synthetic MR-derived myelin volume fraction, we were able to effectively detect significant differences of myelination in relapsing and progressive MS subtypes. Total intracranial brain myelin volume fraction seemed to predict spinal cord volume loss better than brain atrophy or total lesion load. Furthermore, demyelination in highly myelinated supratentorial regions, as an indicator of diffuse disease activity, as well as alterations of relaxation parameters in adjacent infratentorial and midbrain areas were strongly associated with upper cervical cord atrophy.
Insights
Quantitative MRI reveals reduced brain myelin in Multiple Sclerosis (MS) patients, with myelin volume fraction predicting spinal cord atrophy better than brain atrophy. This highlights diffuse brain demyelination
Area of Science:
- Neuroimaging
- Neurology
- Biophysics
Background:
- Multiple Sclerosis (MS) is characterized by immune-mediated demyelination and neurodegeneration, leading to disability.
- Spinal cord atrophy is a key predictor of MS progression, but its causes (local lesions vs. diffuse degeneration) are debated.
- Advanced MRI techniques offer quantitative insights into brain myelin and tissue pathology in vivo.
Purpose of the Study:
- To investigate group differences in brain myelin and relaxation rates across MS subtypes using quantitative synthetic MRI (SyMRI).
- To examine the association between quantitative brain MRI parameters and spinal cord atrophy in MS.
- To explore the pathophysiological relationships between brain demyelination and spinal cord volume loss.
Main Methods:
- A cross-sectional study included 91 MS patients (RRMS, PMS) and 31 controls.
- Quantitative synthetic MRI (QRAPMASTER sequence) was used for automatic brain tissue and myelin volumetry.
- LASSO regression analysis assessed the impact of brain myelin, lesion load, and brain parenchymal fraction on spinal cord atrophy.
Main Results:
- Significantly lower global brain myelin volume fraction was observed in MS patients (9.4% RRMS, 8.1% PMS) compared to controls (10.4%).
- Intracranial myelin volume fraction was the strongest predictor of spinal cord atrophy (standardized coefficient 4.52).
- Altered supratentorial MRI metrics (myelin volume fraction, R1, R2, proton density) were found in MS patients, particularly PMS, and correlated with upper cord atrophy.
Conclusions:
- Synthetic MRI effectively detects myelination differences in MS subtypes.
- Brain myelin volume fraction is a superior predictor of spinal cord volume loss compared to brain atrophy or lesion load.
- Diffuse supratentorial demyelination and altered relaxation parameters in brain regions are strongly associated with upper cervical cord atrophy in MS.

