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Updated: Jun 23, 2026

Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Microglia processes block the spread of damage in the brain and require functional chloride channels
Dustin J Hines1, Rochelle M Hines, Sean J Mulligan
1Department of Psychiatry, Brain Research Centre, Faculty of Medicine, University of British Columbia, Vancouver, British Columbia Canada.
Abstract:
Microglia cells exhibit two forms of motility, constant movement of filopodia probing surrounding brain tissue, and outgrowth of larger processes in response to nearby damage. The mechanisms and functions of filopodia sensing and process outgrowth are not well characterized but are likely critical for normal immune function in the brain. Using two photon laser scanning microscopy we investigated microglia process outgrowth in response to damage, and explored the relationship between process outgrowth and filopodia movement. Further, we examined the roles of Cl(-) or K(+) channel activation, as well as actin polymerization in these two distinct processes, because mechanistic understanding could provide a strategy to modulate microglia function. We found that volume sensitive Cl(-) channel blockers (NPPB, tamoxifen, DIDS) prevented the rapid process outgrowth of microglia observed in response to damage. In contrast, filopodia extension during sensing was resistant to Cl(-) channel inhibitors, indicating that these motile processes have different cellular mechanisms. However, both filopodia sensing and rapid process outgrowth were blocked by inhibition of actin polymerization. Following lesion formation under control conditions, rapidly outgrowing processes contacted the damaged area and this was associated with a 37% decrease in lesion volume. Inhibition of process outgrowth by Cl(-) channel block, prevention of actin polymerization, or by selectively ablating microglia all allowed lesion volume to increase and spread into the surrounding tissue. Therefore, process outgrowth in response to focal brain damage is beneficial by preventing lesion expansion and suggests microglia represent a front line defence against damage in the brain.
Insights
Microglia cells
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia, the brain's immune cells, have two motility forms: filopodia sensing and process outgrowth during damage.
- The mechanisms and functions of these motile processes are not well understood but are crucial for brain immune function.
Purpose of the Study:
- To investigate microglia process outgrowth in response to brain damage.
- To explore the relationship between process outgrowth and filopodia movement.
- To examine the roles of ion channels and actin polymerization in microglia motility.
Main Methods:
- Two-photon laser scanning microscopy was used to observe microglia behavior in response to induced damage.
- Pharmacological inhibitors were employed to block specific cellular pathways, including Cl(-) channels and actin polymerization.
- Microglia ablation was performed to assess their role in lesion development.
Main Results:
- Volume-sensitive Cl(-) channel blockers inhibited rapid microglia process outgrowth towards damage.
- Filopodia extension during sensing was unaffected by Cl(-) channel inhibitors, suggesting distinct mechanisms.
- Inhibition of actin polymerization blocked both filopodia sensing and process outgrowth.
- In control conditions, microglia process outgrowth reduced lesion volume by 37%.
- Inhibition of process outgrowth or microglia ablation led to increased lesion volume and spread.
Conclusions:
- Microglia process outgrowth is a critical, actin-dependent mechanism for limiting brain lesion expansion.
- Volume-sensitive Cl(-) channels play a key role in mediating rapid microglia process outgrowth.
- Microglia act as a frontline defense against focal brain damage, with their motility being essential for this protective function.
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