Related Experiment Video
Updated: Nov 8, 2025

Preparation and Immunostaining of Myelinating Organotypic Cerebellar Slice Cultures
Published on: March 20, 2019
Agathisflavone Modifies Microglial Activation State and Myelination in Organotypic Cerebellar Slices Culture
Monique Marylin Alves de Almeida1,2,3, Francesca Pieropan2, Tim Footz3
1Department of Biochemistry and Biophysics, Institute of Health Sciences, Federal University of Bahia, Bahia, Brazil.
Abstract:
Oligodendrocytes produce the myelin that is critical for rapid neuronal transmission in the central nervous system (CNS). Disruption of myelin has devastating effects on CNS function, as in the demyelinating disease multiple sclerosis (MS). Microglia are the endogenous immune cells of the CNS and play a central role in demyelination and repair. There is a need for new potential therapies that regulate myelination and microglia to promote repair. Agathisflavone (FAB) is a non-toxic flavonoid that is known for its anti-inflammatory and neuroprotective properties. Here, we examined the effects of FAB (5-50 μM) on myelination and microglia in organotypic cerebellar slices prepared from P10-P12 Sox10-EGFP and Plp1-DsRed transgenic mice. Immunofluorescence labeling for myelin basic protein (MBP) and neurofilament (NF) demonstrates that FAB significantly increased the proportion of MBP + /NF + axons but did not affect the overall number of oligodendroglia or axons, or the expression of oligodendroglial proteins CNPase and MBP. FAB is known to be a phytoestrogen, but blockade of α- or β- estrogen receptors (ER) indicated the myelination promoting effects of FAB were not mediated by ER. Examination of microglial responses by Iba1 immunohistochemistry demonstrated that FAB markedly altered microglial morphology, characterized by smaller somata and reduced branching of their processes, consistent with a decreased state of activation, and increased Iba1 protein expression. The results provide evidence that FAB increases the extent of axonal coverage by MBP immunopositive oligodendroglial processes and has a modulatory effect upon microglial cells, which are important therapeutic strategies in multiple neuropathologies.
Insights
Agathisflavone (FAB) enhances myelin coverage on axons and reduces microglial activation in the central nervous system (CNS). This suggests FAB may be a therapeutic strategy for demyelinating diseases like multiple sclerosis (MS).
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Oligodendrocytes produce myelin, essential for rapid neuronal transmission in the central nervous system (CNS).
- Demyelinating diseases, such as multiple sclerosis (MS), result from myelin disruption.
- Microglia, the CNS immune cells, are involved in demyelination and repair, highlighting the need for therapies targeting myelination and microglia.
Purpose of the Study:
- To investigate the effects of Agathisflavone (FAB), a flavonoid with known anti-inflammatory and neuroprotective properties, on myelination and microglia.
- To explore FAB's potential as a therapeutic agent for promoting myelin repair and modulating microglial activity in the CNS.
Main Methods:
- Organotypic cerebellar slices from transgenic mice (Sox10-EGFP and Plp1-DsRed) were treated with varying concentrations of FAB (5-50 μM).
- Immunofluorescence labeling for myelin basic protein (MBP) and neurofilament (NF) was used to assess myelination.
- Iba1 immunohistochemistry was employed to examine microglial morphology and activation states.
Main Results:
- FAB significantly increased the proportion of axons covered by MBP-positive oligodendroglial processes, indicating enhanced myelination.
- FAB treatment altered microglial morphology, reducing their size and process branching, indicative of decreased activation.
- FAB's myelination-promoting effects were not mediated by estrogen receptors (ER), despite FAB being a known phytoestrogen.
Conclusions:
- Agathisflavone (FAB) promotes axonal myelination and modulates microglial activation in the CNS.
- FAB's effects on myelination and microglia suggest its therapeutic potential for neuropathologies involving demyelination and neuroinflammation.

