Related Experiment Video
Updated: May 10, 2026

Rapid and Refined CD11b Magnetic Isolation of Primary Microglia with Enhanced Purity and Versatility
Published on: April 13, 2017
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.
Background:
Microglial cells are highly mobile under many circumstances and, after central nervous system (CNS) damage, they must contend with the dense extracellular matrix (ECM) in order to reach their target sites. In response to damage or disease, microglia undergo complex activation processes that can be modulated by environmental cues and culminate in either detrimental or beneficial outcomes. Thus, there is considerable interest in comparing their pro-inflammatory ('classical' activation) and resolving 'alternative' activation states. Almost nothing is known about how these activation states affect the ability of microglia to migrate and degrade ECM, or the enzymes used for substrate degradation. This is the subject of the present study.
Methods:
Primary cultured rat microglial cells were exposed to lipopolysaccharide (LPS) to evoke classical activation or IL4 to evoke alternative activation. High-resolution microscopy was used to monitor changes in cell morphology and aspects of the cytoskeleton. We quantified migration in a scratch-wound assay and through open filter holes, and invasion through Matrigel™. A panel of inhibitors was used to analyze contributions of different matrix-degrading enzymes to migration and invasion, and quantitative real-time reverse transcriptase PCR (qRT-PCR) was used to assess changes in their expression.
Results:
Vinculin- and F-actin-rich lamellae were prominent in untreated and IL4-treated microglia (but not after LPS). IL4 increased the migratory capacity of microglia but eliminated the preferential anterior nuclear-centrosomal axis polarity and location of the microtubule organizing center (MTOC). Microglia degraded fibronectin, regardless of treatment, but LPS-treated cells were relatively immobile and IL4-treated cells invaded much more effectively through Matrigel™. For invasion, untreated microglia primarily used cysteine proteases, but IL4-treated cells used a wider range of enzymes (cysteine proteases, cathepsin S and K, heparanase, and matrix metalloproteases). Untreated microglia expressed MMP2, MMP12, heparanase, and four cathepsins (B, K, L1, and S). Each activation stimulus upregulated a different subset of enzymes. IL4 increased MMP2 and cathepsins S and K; whereas LPS increased MMP9, MMP12, MMP14 (MT1-MMP), heparanase, and cathepsin L1.
Conclusions:
Microglial cells migrate during CNS development and after CNS damage or disease. Thus, there are broad implications of the finding that classically and alternatively activated microglia differ in morphology, cytoskeleton, migratory and invasive capacity, and in the usage of ECM-degrading enzymes.
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.
Related Concept Videos
Role of Matrix Metalloproteases in Degradation of ECM
A...
Cancer Cell Migration through Invadopodia
Cell Migration
Cell Migration
Overview of Cell-Matrix Interactions
Activation of Integrins
In "outside-in signaling," external factors in the extracellular space bind to exposed ligand binding sites on integrins. This causes the inactive protein to undergo a conformational change to become active. Integrins are often clustered on the cell membrane. Repetitive and regularly spaced ligand binding events provide an effective stimulus.

