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Validating myelin water imaging with transmission electron microscopy in a rat spinal cord injury model
Henry Szu-Meng Chen1, Nathan Holmes2, Jie Liu3
1Department of Physics and Astronomy, University of British Columbia, Vancouver, Canada; University of British Columbia MRI Research Centre, Vancouver, Canada.
Abstract:
Myelin content is an important marker for neuropathology and MRI generated myelin water fraction (MWF) has been shown to correlate well with myelin content. However, because MWF is based on the amount of signal from myelin water, that is, the water trapped between the myelin lipid bilayers, the reading may depend heavily on myelin morphology. This is of special concern when there is a mix of intact myelin and myelin debris, as in the case of injury. To investigate what MWF measures in the presence of debris, we compared MWF to transmission electron microscopy (TEM) derived myelin fraction that measures the amount of compact appearing myelin. A rat spinal cord injury model was used with time points at normal (normal myelin), 3 weeks post-injury (myelin debris), and 8 weeks post-injury (myelin debris, partially cleared). The myelin period between normal and 3 or 8 weeks post-injury cords did not differ significantly, suggesting that as long as the bilayer structure is intact, myelin debris has the same water content as intact myelin. The MWF also correlated strongly with the TEM-derived myelin fraction, suggesting that MWF measures the amount of compact appearing myelin in both intact myelin and myelin debris. From the TEM images, it appears that as myelin degenerates, it tends to form large watery spaces within the myelin sheaths that are not classified as myelin water. The results presented in this study improve our understanding and allows for better interpretation of MWF in the presence of myelin debris.
Insights
Myelin water fraction (MWF) accurately measures compact myelin, even with debris present after spinal cord injury. This finding improves the interpretation of MWF in neuropathology research.
Area of Science:
- Neuroscience
- Biomedical Imaging
- Pathology
Background:
- Myelin content is crucial for diagnosing neuropathology.
- Myelin water fraction (MWF) from MRI correlates with myelin content.
- MWF's reliance on myelin water signal raises concerns regarding myelin morphology, especially with debris.
Purpose of the Study:
- To investigate how MWF reflects myelin content in the presence of myelin debris.
- To compare MWF with transmission electron microscopy (TEM) derived myelin fraction.
Main Methods:
- Utilized a rat spinal cord injury model.
- Collected data at normal, 3 weeks, and 8 weeks post-injury.
- Compared MRI-derived MWF with TEM-derived myelin fraction.
Main Results:
- Myelin period did not significantly differ between normal and injured spinal cords.
- MWF strongly correlated with TEM-derived myelin fraction in both intact myelin and debris.
- Degenerating myelin forms large watery spaces not classified as myelin water.
Conclusions:
- MWF effectively measures the amount of compact myelin, irrespective of debris presence.
- Myelin debris possesses similar water content to intact myelin as long as the bilayer structure remains.
- This study enhances the understanding and interpretation of MWF in neuropathological conditions involving myelin damage.