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Updated: Jun 22, 2026

Assessing Microglial Phagocytosis of Myelin Debris in vitro Under Repeated Magnetic Stimulation
Published on: June 17, 2025
Engulfment of axon debris by microglia requires p38 MAPK activity
Tatsuhide Tanaka1, Masaki Ueno, Toshihide Yamashita
1Department of Molecular Neuroscience, Graduate School of Medicine, Osaka University, Suita, Osaka 565-0871, Japan.
Abstract:
The clearance of debris after injuries to the nervous system is a critical step for restoration of the injured neural network. Microglia are thought to be involved in elimination of degenerating neurons and axons in the central nervous system (CNS), presumably restoring a favorable environment after CNS injuries. However, the mechanism underlying debris clearance remains elusive. Here, we establish an in vitro assay system to estimate phagocytosis of axon debris. We employed a Wallerian degeneration model by cutting axons of the cortical explants. The cortical explants were co-cultured with primary microglia or the MG5 microglial cell line. The cortical neurites were then transected. MG5 cells efficiently phagocytosed the debris, whereas primary microglia showed phagocytic activity only when they were activated by lipopolysaccharide or interferon-beta. When MG5 cells or primary microglia were co-cultured with degenerated axons, p38 mitogen-activated protein kinase (MAPK) was activated in these cells. Engulfment of axon debris was blocked by the p38 MAPK inhibitor SB203580, indicating that p38 MAPK is required for phagocytic activity. Receptors that recognize dying cells appeared not to be involved in the process of phagocytosis of the axon debris. In addition, the axons undergoing Wallerian degeneration did not release lactate dehydrogenase, suggesting that degeneration of the severed axons and apoptosis may represent two distinct self-destruction programs. We observed regrowth of the severed neurites after axon debris was removed. This finding suggests that axon debris, in addition to myelin debris, is an inhibitory factor for axon regeneration.
Insights
Microglia clear nervous system axon debris via p38 MAPK signaling. Removing this debris promotes axon regeneration, suggesting debris itself inhibits recovery after central nervous system injury.
Area of Science:
- Neuroscience
- Cell Biology
- Regenerative Medicine
Background:
- Nervous system injury necessitates efficient debris clearance for neural network restoration.
- Microglia are implicated in clearing degenerating neural components in the central nervous system (CNS).
- The precise mechanisms of axon debris clearance remain incompletely understood.
Purpose of the Study:
- To investigate the mechanisms of axon debris phagocytosis by microglia.
- To determine the role of specific signaling pathways, like p38 MAPK, in this process.
- To assess the impact of axon debris on subsequent axon regeneration.
Main Methods:
- Established an in vitro assay using a Wallerian degeneration model of cortical explants.
- Co-cultured explants with primary microglia or the MG5 microglial cell line.
- Utilized p38 MAPK inhibitors and assessed phagocytic activity and neurite regrowth.
Main Results:
- MG5 microglial cells demonstrated efficient phagocytosis of axon debris.
- Primary microglia required activation (LPS or IFN-β) for significant phagocytic activity.
- p38 MAPK activation was essential for debris engulfment, and inhibition blocked the process.
- Receptors for dying cells were not involved in axon debris phagocytosis.
- Severed axons undergoing Wallerian degeneration did not release lactate dehydrogenase, distinguishing it from apoptosis.
- Removal of axon debris facilitated neurite regrowth.
Conclusions:
- p38 MAPK signaling is a critical pathway for microglial phagocytosis of axon debris.
- Axon debris, similar to myelin debris, acts as an inhibitory factor for axon regeneration.
- Understanding these mechanisms is crucial for developing strategies to enhance recovery after CNS injury.
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