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Reflective imaging of myelin integrity in the human and mouse central nervous systems
Georgina A Craig1,2, Lucy Ryan2, Jessica Thapar3
1Keenan Research Centre for Biomedical Science, St. Michael's Hospital, Unity Health Toronto, Toronto, ON, Canada.
Abstract:
The structural integrity of myelin sheaths in the central nervous system (CNS) is crucial for the maintenance of its function. Electron microscopy (EM) is the gold standard for visualizing individual myelin sheaths. However, the tissue processing involved can induce artifacts such as shearing of myelin, which can be difficult to distinguish from true myelin abnormalities. Spectral confocal reflectance (SCoRe) microscopy is an imaging technique that leverages the differential refractive indices of compacted CNS myelin in comparison to surrounding parenchyma to detect individual compact myelin internodes with reflected light, positioning SCoRe as a possible complementary method to EM to assess myelin integrity. Whether SCoRe is sensitive enough to detect losses in myelin compaction when myelin quantity is otherwise unaffected has not yet been directly tested. Here, we assess the capacity of SCoRe to detect differences in myelin compaction in two mouse models that exhibit a loss of myelin compaction without demyelination: microglia-deficient mice (Csf1r-FIRE Δ/Δ) and wild-type mice fed with the CSF1R inhibitor PLX5622. In addition, we compare the ability to detect compact myelin sheaths using SCoRe in fixed-frozen versus paraffin-embedded mouse tissue. Finally, we show that SCoRe can successfully detect individual sheaths in aged human paraffin-embedded samples of deep white matter regions. As such, we find SCoRe to be an attractive technique to investigate myelin integrity, with sufficient sensitivity to detect myelin ultrastructural abnormalities and the ability to perform equally well in tissue preserved using different methods.
Insights
Spectral confocal reflectance (SCoRe) microscopy effectively detects myelin compaction loss without demyelination. This technique shows promise for assessing central nervous system myelin integrity across various tissue preservation methods.
Area of Science:
- Neuroscience
- Biomedical Imaging
- Cell Biology
Background:
- Myelin sheath integrity is vital for central nervous system (CNS) function.
- Electron microscopy (EM) is standard for myelin visualization but can cause artifacts.
- Spectral confocal reflectance (SCoRe) microscopy offers a potential complementary method to EM for assessing myelin integrity.
Purpose of the Study:
- To evaluate SCoRe microscopy's sensitivity in detecting myelin compaction loss without demyelination.
- To compare SCoRe's performance in fixed-frozen versus paraffin-embedded tissues.
- To assess SCoRe's utility in aged human white matter samples.
Main Methods:
- Utilized microglia-deficient mice (Csf1r-FIRE Δ/Δ) and PLX5622-treated wild-type mice, models exhibiting reduced myelin compaction.
- Applied SCoRe microscopy to analyze myelin integrity in these mouse models.
- Examined SCoRe's effectiveness on both fixed-frozen and paraffin-embedded mouse tissues, as well as aged human paraffin-embedded white matter.
Main Results:
- SCoRe microscopy successfully detected differences in myelin compaction in the studied mouse models.
- The technique demonstrated comparable performance in both fixed-frozen and paraffin-embedded tissues.
- SCoRe microscopy visualized individual myelin sheaths in aged human paraffin-embedded deep white matter samples.
Conclusions:
- SCoRe microscopy is sensitive to myelin ultrastructural abnormalities, specifically loss of compaction.
- SCoRe is a versatile technique applicable to various tissue preservation methods, including paraffin embedding.
- SCoRe microscopy presents an attractive, complementary tool for investigating CNS myelin integrity.

