Related Experiment Video
Updated: Feb 28, 2026

Characterization of Immune Cell-derived Extracellular Vesicles and Studying Functional Impact on Cell Environment
Published on: June 2, 2020
Activated Microglia-Derived Extracellular Vesicles Elicit a Pro-Inflammatory Astrocytic Response via Cargo-Dependent
Miriam Scheld1, Nadine Jülich1, Katharina Vöhringer1
1Institute of Neuroanatomy, RWTH University Hospital Aachen, 52074 Aachen, Germany.
Abstract:
Neuroinflammation plays a dual role in brain health supporting defense and repair, but causes neurotoxicity when persistent. Microglia and astrocytes coordinate these responses through cytokine signaling and extracellular vesicles (EVs), though their vesicle-mediated communication remains unclear. This study investigated whether EVs from activated microglia (ABEVs) influence astrocyte polarization and inflammatory signaling. BV-2 microglial cells were activated with lipopolysaccharide (LPS), and microvesicle (ABMVs) and exosome (ABEXs) EVs were isolated via sequential ultracentrifugation. Primary mouse astrocytes were treated with LPS, ABMVs, or ABEXs, and expression of reactive astrocyte markers (C3, Serpina3n, S100a10, Sphk1) and inflammatory mediators (Lcn2, Il-1β, Ccl2, Ccl5, Cxcl10) was quantified, and EV protein cargo was analyzed by mass spectrometry and proteomics. LPS-treated astrocytes exhibited increased C3 and Serpina3n and decreased S100a10, consistent with reactive polarization. ABEXs mimicked this effect, significantly inducing C3, Serpina3n, and Sphk1, whereas ABMVs had a weaker influence. ABEXs also upregulated Lcn2 and Il-1β, partially reproducing microglial inflammatory effects. Proteomic profiling revealed marked cargo differences: ABEXs exhibited 16 upregulated proteins linked to NOD-like receptor signaling compared to non-activated BEXs, and 165 proteins associated with ribosome biogenesis and spliceosome pathways compared to ABMVs, indicating subtype-specific signaling potential. Collectively, our findings demonstrate that microglia-derived EVs modulate astrocytic polarization and cytokine profiles in a cargo-dependent manner, emphasizing their importance in interglial communication and revealing novel targets for neuroinflammatory modulation.
Insights
Extracellular vesicles (EVs) from activated microglia influence astrocyte behavior. Microglia-derived exosomes (ABEXs) significantly alter astrocyte polarization and inflammatory signaling, highlighting their role in neuroinflammation.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Neuroinflammation involves microglia and astrocytes coordinating responses via cytokines and extracellular vesicles (EVs).
- The precise mechanisms of EV-mediated communication between these glial cells in neuroinflammation remain unclear.
Purpose of the Study:
- To investigate how EVs derived from activated microglia (ABEVs) affect astrocyte polarization and inflammatory signaling.
- To analyze the protein cargo of different EV subtypes (microvesicles and exosomes) to understand their functional roles.
Main Methods:
- Activated BV-2 microglial cells were used to isolate microvesicles (ABMVs) and exosomes (ABEXs).
- Primary mouse astrocytes were treated with lipopolysaccharide (LPS), ABMVs, or ABEXs.
- Gene expression of astrocyte markers and inflammatory mediators was quantified.
- EV protein cargo was analyzed using mass spectrometry and proteomics.
Main Results:
- Activated microglia-derived exosomes (ABEXs) mimicked LPS-induced astrocyte reactivity, upregulating markers like C3 and Serpina3n.
- ABEXs also increased inflammatory mediators (Lcn2, Il-1β) in astrocytes, partially replicating microglial inflammatory effects.
- Proteomic analysis revealed distinct cargo profiles, with ABEXs enriched in proteins related to NOD-like receptor signaling and ribosome biogenesis compared to ABMVs.
Conclusions:
- Microglia-derived EVs modulate astrocyte polarization and cytokine profiles in a cargo-dependent manner.
- Exosomes play a more significant role than microvesicles in mediating these microglial-astrocyte communication effects.
- These findings identify novel targets for modulating neuroinflammation through EV-based mechanisms.

