The microglial activation state regulates migration and roles of matrix-dissolving enzymes for invasion

Starlee Lively1, Lyanne C Schlichter

  • 1Toronto Western Research Institute, Room MC9-417, 399 Bathurst Street, Toronto, ON M5T 2S8, Canada.

Abstract

Insights

Microglia activation states significantly impact their ability to migrate and degrade the extracellular matrix. Understanding these differences is crucial for addressing central nervous system damage and disease.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Immunology

Background:

  • Microglial cells are crucial for central nervous system (CNS) health and disease.
  • Their migration through the extracellular matrix (ECM) is vital but challenging.
  • Microglial activation states (classical vs. alternative) influence their function, yet their impact on ECM interaction is unknown.

Purpose of the Study:

  • To investigate how classical and alternative microglial activation states affect their migration and ECM degradation capabilities.
  • To identify the specific enzymes involved in ECM degradation by different microglial activation states.

Main Methods:

  • Primary rat microglial cells were activated using lipopolysaccharide (LPS) for classical activation or IL4 for alternative activation.
  • Cell morphology, cytoskeleton, migration, and invasion (Matrigel™ assay) were analyzed using microscopy and assays.
  • The expression and contribution of ECM-degrading enzymes were assessed via inhibitors and qRT-PCR.

Main Results:

  • Alternative activation (IL4) enhanced microglial migration and invasion, unlike classical activation (LPS).
  • Microglia degraded fibronectin irrespective of activation state, but invasion efficiency differed.
  • Distinct patterns of ECM-degrading enzyme expression and usage were observed between activation states, with IL4-activated cells utilizing a broader range.

Conclusions:

  • Classically and alternatively activated microglia exhibit distinct morphological, cytoskeletal, migratory, and invasive properties.
  • The choice of ECM-degrading enzymes varies significantly with microglial activation state.
  • These findings have broad implications for understanding microglial roles in CNS development, damage, and disease.

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