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Updated: Jul 13, 2026

Two-photon Imaging of Cellular Dynamics in the Mouse Spinal Cord
Published on: February 22, 2015
Microglia-derived APOE2 improves remyelination even in the presence of endogenous APOE4
Georgia L Nolt1, Lesley R Golden1,2,3, Shealee P Thorpe1
1Department of Physiology, University of Kentucky, Lexington, United States.
Abstract:
Demyelination occurs with aging and is exacerbated in neurodegenerative diseases. During demyelination, microglia upregulate expression of APOE, the gene encoding for the brain's primary lipid transport protein apolipoprotein E (ApoE), which also mediates microglial engulfment and elimination of myelin debris. Compared to the E3 allele of APOE, the E2 allele decreases risk for Alzheimer's disease (AD), while the E4 allele increases AD risk and is associated with an increased severity and progression of multiple sclerosis. Previous work shows that mice expressing E2 exhibit improved microglial function and remyelination compared to mice expressing E4. However, whether microglial-derived APOE is responsible for driving these differences following demyelination, and if microglia-selective expression of E2 is sufficient to provide protection, is unknown. We sought to determine if microglia-specific replacement of the E4 allele with E2 can rescue myelin loss and promote remyelination, even in the presence of continued E4 expression by other central nervous system (CNS) cells. Using a novel APOE allelic "switch" model in which we can induce a replacement of E4 with E2 exclusively in microglia, we characterize the glial cell response and lipid profile of mice that underwent either lysophosphatidylcholine (LPC) or cuprizone (CPZ)-induced demyelination and subsequent remyelination. We found that although alterations to the brain lipid profile were subtle, microglial E2 replacement significantly improved remyelination, lessened microgliosis, and decreased astrocytic lipid droplet load following CPZ-remyelination. Our results indicate that microglia-specific E2 expression, in the presence of continued E4 expression, may provide protection against myelin loss via both cell-autonomous and non-autonomous immunometabolic mechanisms.
Insights
Microglia-specific APOE E2 expression improves myelin repair after demyelination, even with E4 present elsewhere. This suggests E2 in microglia offers protection against myelin loss through cell-autonomous and non-autonomous pathways.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Demyelination, common in aging and neurodegenerative diseases, involves microglia upregulating apolipoprotein E (APOE).
- APOE's E2 allele is protective against Alzheimer's disease, while E4 increases risk and worsens multiple sclerosis.
- Previous studies indicate APOE E2 improves microglial function and remyelination compared to E4.
Purpose of the Study:
- To investigate if microglia-specific APOE E2 expression can rescue myelin loss and promote remyelination.
- To determine if E2 expression solely within microglia provides protection, even with E4 present in other central nervous system cells.
Main Methods:
- Utilized a novel APOE allelic "switch" mouse model to induce E4 to E2 replacement exclusively in microglia.
- Induced demyelination using lysophosphatidylcholine (LPC) or cuprizone (CPZ) models, followed by remyelination.
- Characterized glial cell responses and brain lipid profiles.
Main Results:
- Microglial E2 replacement significantly enhanced remyelination following cuprizone-induced demyelination.
- Reduced microgliosis and decreased astrocytic lipid droplet accumulation were observed with microglial E2.
- Alterations in the overall brain lipid profile were subtle.
Conclusions:
- Microglia-specific APOE E2 expression can promote myelin repair and offer protection against myelin loss.
- These protective effects may operate through both cell-autonomous and non-autonomous immunometabolic mechanisms.
- Targeting microglial APOE genotype could be a therapeutic strategy for demyelinating diseases.
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