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Updated: Dec 31, 2025

Magnetic Resonance Imaging of Multiple Sclerosis at 7.0 Tesla
Published on: February 19, 2021
Amide Proton Transfer Weighted Imaging Shows Differences in Multiple Sclerosis Lesions and White Matter
Elisabeth Sartoretti1, Thomas Sartoretti2, Michael Wyss1,3
1Institute of Radiology, Kantonsspital Winterthur, Winterthur, Switzerland.
Abstract:
Objectives: To assess the ability of 3D amide proton transfer weighted (APTw) imaging based on magnetization transfer analysis to discriminate between multiple sclerosis lesions (MSL) and white matter hyperintensities of presumed vascular origin (WMH) and to compare APTw signal intensity of healthy white matter (healthy WM) with APTw signal intensity of MSL and WHM. Materials and Methods: A total of 27 patients (16 female, 11 males, mean age 39.6 years) with multiple sclerosis, 35 patients (17 females, 18 males, mean age 66.6 years) with small vessel disease (SVD) and 20 healthy young volunteers (9 females, 11 males, mean age 29 years) were included in the MSL, the WMH, and the healthy WM group. MSL and WMH were segmented on fluid attenuated inversion recovery (FLAIR) images underlaid onto APTw images. Histogram parameters (mean, median, 10th, 25th, 75th, 90th percentile) were calculated. Mean APTw signal intensity values in healthy WM were defined by "Region of interest" (ROI) measurements. Wilcoxon rank sum tests and receiver operating characteristics (ROC) curve analyses of clustered data were applied. Results: All histogram parameters except the 75 and 90th percentile were significantly different between MSL and WMH (p = 0.018-p = 0.034). MSL presented with higher median values in all parameters. The histogram parameters offered only low diagnostic performance in discriminating between MSL and WMH. The 10th percentile yielded the highest diagnostic performance with an AUC of 0.6245 (95% CI: [0.532, 0.717]). Mean APTw signal intensity values of MSL were significantly higher than mean values of healthy WM (p = 0.005). The mean values of WMH did not differ significantly from the values of healthy WM (p = 0.345). Conclusions: We found significant differences in APTw signal intensity, based on straightforward magnetization transfer analysis, between MSL and WMH and between MSL and healthy WM. Low AUC values from ROC analyses, however, suggest that it may be challenging to determine type of lesion with APTw imaging. More advanced analysis of the APT CEST signal may be helpful for further differentiation of MSL and WMH.
Insights
3D amide proton transfer weighted (APTw) imaging shows differences in signal intensity between multiple sclerosis lesions (MSL) and white matter hyperintensities (WMH). While MSL differs from healthy white matter, distinguishing MSL from WMH using APTw imaging remains challenging.
Area of Science:
- Neuroimaging
- Biomedical Engineering
- Radiology
Background:
- Multiple sclerosis lesions (MSL) and white matter hyperintensities (WMH) can be difficult to differentiate using conventional MRI.
- Amide proton transfer weighted (APTw) imaging offers potential for improved tissue characterization.
Purpose of the Study:
- To evaluate the efficacy of 3D APTw imaging in distinguishing MSL from WMH.
- To compare APTw signal intensity in MSL, WMH, and healthy white matter (WM).
Main Methods:
- APTw imaging and fluid-attenuated inversion recovery (FLAIR) were used in patients with MS, small vessel disease (SVD), and healthy volunteers.
- Lesions were segmented, and histogram parameters of APTw signal intensity were calculated.
- Statistical analyses included Wilcoxon rank sum tests and receiver operating characteristic (ROC) curve analyses.
Main Results:
- Significant differences in APTw signal intensity were found between MSL and WMH, with MSL showing higher median values.
- APTw signal intensity in MSL was significantly higher than in healthy WM, but WMH did not differ significantly from healthy WM.
- The diagnostic performance for differentiating MSL from WMH using histogram parameters was low, with the 10th percentile yielding the highest AUC (0.6245).
Conclusions:
- 3D APTw imaging reveals significant differences in signal intensity between MSL and WMH, and between MSL and healthy WM.
- Current APTw imaging analysis shows limited ability to reliably differentiate between MSL and WMH.
- Advanced analysis of APT CEST signals may be necessary for improved differentiation of these lesion types.
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