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Techniques for the Analysis of Extracellular Vesicles Using Flow Cytometry
Published on: March 17, 2015
Inflammation leads to distinct populations of extracellular vesicles from microglia
Yiyi Yang1, Antonio Boza-Serrano2, Christopher J R Dunning3
1Department of Experimental Medical Science, Experimental Neuroinflammation Laboratory, Lund University, Lund, Sweden. yiyi.yang@med.lu.se.
Background:
Activated microglia play an essential role in inflammatory responses elicited in the central nervous system (CNS). Microglia-derived extracellular vesicles (EVs) are suggested to be involved in propagation of inflammatory signals and in the modulation of cell-to-cell communication. However, there is a lack of knowledge on the regulation of EVs and how this in turn facilitates the communication between cells in the brain. Here, we characterized microglial EVs under inflammatory conditions and investigated the effects of inflammation on the EV size, quantity, and protein content.
Methods:
We have utilized western blot, nanoparticle tracking analysis (NTA), and mass spectrometry to characterize EVs and examine the alterations of secreted EVs from a microglial cell line (BV2) following lipopolysaccharide (LPS) and tumor necrosis factor (TNF) inhibitor (etanercept) treatments, or either alone. The inflammatory responses were measured with multiplex cytokine ELISA and western blot. We also subjected TNF knockout mice to experimental stroke (permanent middle cerebral artery occlusion) and validated the effect of TNF inhibition on EV release.
Results:
Our analysis of EVs originating from activated BV2 microglia revealed a significant increase in the intravesicular levels of TNF and interleukin (IL)-6. We also observed that the number of EVs released was reduced both in vitro and in vivo when inflammation was inhibited via the TNF pathway. Finally, via mass spectrometry, we identified 49 unique proteins in EVs released from LPS-activated microglia compared to control EVs (58 proteins in EVs released from LPS-activated microglia and 37 from control EVs). According to Gene Ontology (GO) analysis, we found a large increase of proteins related to translation and transcription in EVs from LPS. Importantly, we showed a distinct profile of proteins found in EVs released from LPS treated cells compared to control.
Conclusions:
We demonstrate altered EV production in BV2 microglial cells and altered cytokine levels and protein composition carried by EVs in response to LPS challenge. Our findings provide new insights into the potential roles of EVs that could be related to the pathogenesis in neuroinflammatory diseases.
Insights
Activated microglia release extracellular vesicles (EVs) that carry inflammatory signals. This study shows inflammation alters microglial EV content and release, impacting cell communication in the brain.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Activated microglia are key players in central nervous system (CNS) inflammation.
- Microglia-derived extracellular vesicles (EVs) are implicated in propagating inflammatory signals.
- Regulation and function of microglial EVs in brain communication remain incompletely understood.
Purpose of the Study:
- To characterize microglial EVs under inflammatory conditions.
- To investigate the impact of inflammation on EV size, quantity, and protein content.
- To explore the role of TNF signaling in microglial EV release.
Main Methods:
- Utilized western blot, nanoparticle tracking analysis (NTA), and mass spectrometry.
- Analyzed EVs from BV2 microglial cells treated with lipopolysaccharide (LPS) and etanercept (TNF inhibitor).
- Investigated EV release in TNF knockout mice subjected to experimental stroke.
Main Results:
- Increased intravesicular levels of TNF and IL-6 in EVs from activated microglia.
- Reduced EV release in vitro and in vivo upon inhibition of TNF signaling.
- Mass spectrometry identified distinct protein profiles in EVs from LPS-activated microglia, with enrichment in translation and transcription factors.
Conclusions:
- Inflammation significantly alters microglial EV production, cytokine content, and protein composition.
- These findings offer insights into the role of microglial EVs in neuroinflammatory disease pathogenesis.
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