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.

Glia
|April 22, 2009
PubMed

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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