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Experimental Demyelination and Remyelination of Murine Spinal Cord by Focal Injection of Lysolecithin
Published on: March 26, 2015
Apolipoprotein D Expression Dynamics During Cuprizone-Induced Demyelination and Remyelination in a Mouse Model of
Eva Martínez-Pinilla1,2,3, Nuria Rubio-Sardón1, Gemma Fernández-García3,4,5
1Department of Morphology and Cell Biology, University of Oviedo, 33006 Oviedo, Spain.
Abstract:
Multiple sclerosis (MS) is a chronic, immune-mediated disease of the central nervous system (CNS) characterized by oligodendrocyte (OLG) degeneration, myelin loss, and impaired remyelination. Apolipoprotein D (Apo D), a glia-derived lipocalin, has emerged in recent decades as a neuroprotective molecule involved in lipid transport, oxidative stress regulation, and inflammation control during aging and neurodegenerative diseases like MS. However, its role in demyelination/remyelination dynamics remains poorly defined. In this study, we used the cuprizone (CPZ)-induced demyelination model in C57BL/6 mice to analyze Apo D expression patterns in the corpus callosum during de- and remyelination. We also assessed whether the atypical antipsychotic clozapine (CLO), previously shown to upregulate Apo D in vivo, could modulate its expression and influence myelin recovery in this pathological context. Using a combination of magnetic resonance imaging, Luxol fast blue staining, and double immunohistochemistry, we demonstrated that CPZ treatment for 3 or 6 weeks led to significant demyelination, hydrocephalus, and reduced motor cortex thickness, which were partially reversed after treatment cessation. Apo D expression in OLGs was significantly reduced by CPZ exposure, both at the protein level and in terms of immunoreactive cell counts, but was restored following treatment withdrawal. Notably, co-administration of CLO prevented the CPZ-induced reduction in Apo D expression in OLGs, although it did not attenuate myelin loss. In this way, our results reveal a strong correlation between Apo D expression and OLG/myelin integrity in vivo. While CLO did not exert remyelinating effects, it preserved Apo D levels under demyelinating conditions, suggesting a potential indirect neuroprotective mechanism. These findings support the relevance of Apo D in CNS myelin homeostasis and highlight its potential as a molecular target for therapeutic intervention in demyelinating diseases such as MS.
Insights
Apolipoprotein D (Apo D) levels decrease during demyelination in mice, but clozapine preserves Apo D. This suggests Apo D is vital for myelin integrity and may offer neuroprotection in multiple sclerosis (MS).
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Multiple sclerosis (MS) is a chronic CNS disease involving oligodendrocyte (OLG) damage and myelin loss.
- Apolipoprotein D (Apo D) is a neuroprotective lipocalin implicated in lipid transport and oxidative stress, but its role in MS demyelination/remyelination is unclear.
Purpose of the Study:
- To investigate Apo D expression patterns during demyelination and remyelination in a mouse model.
- To determine if clozapine (CLO) modulates Apo D expression and myelin recovery in this context.
Main Methods:
- Cuprizone (CPZ)-induced demyelination model in C57BL/6 mice.
- Magnetic resonance imaging (MRI), Luxol fast blue staining, and double immunohistochemistry were employed.
- Analysis of Apo D expression in oligodendrocytes (OLGs) and myelin integrity.
Main Results:
- CPZ treatment caused significant demyelination, hydrocephalus, and reduced motor cortex thickness, with partial reversal upon withdrawal.
- Apo D expression in OLGs was significantly reduced by CPZ but restored after treatment cessation.
- Clozapine (CLO) prevented CPZ-induced Apo D reduction in OLGs but did not attenuate myelin loss.
Conclusions:
- Apo D expression strongly correlates with OLG and myelin integrity in vivo.
- CLO preserves Apo D levels under demyelinating conditions, suggesting a potential indirect neuroprotective role.
- Apo D is relevant to CNS myelin homeostasis and a potential therapeutic target for demyelinating diseases like MS.

