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Published on: January 7, 2019
TNF-α-sensitive brain pericytes activate microglia by releasing IL-6 through cooperation between IκB-NFκB and
Junichi Matsumoto1, Shinya Dohgu1, Fuyuko Takata1
1Department of Pharmaceutical Care and Health Sciences, Faculty of Pharmaceutical Sciences, Fukuoka University, Fukuoka, Japan.
Abstract:
Interleukin (IL)-6 is an important mediator of neurovascular dysfunction, neurodegeneration and/or neuroinflammation. We previously reported that brain pericytes released higher levels of IL-6 than did glial cells (astrocytes and microglia) in response to tumor necrosis factor (TNF)-α. Moreover, pericytes stimulated with TNF-α enhanced activation of BV-2 microglia. In this study, we investigated the mechanisms of TNF-α mediated induction of IL-6 release from brain pericytes and astrocytes and whether pericyte-derived IL-6 would facilitate activation of BV-2 microglia. Using rat brain pericyte and astrocyte primary cultures and pharmacological inhibitors, we found that, TNF-α induced the highest levels of IL-6 release from pericytes by activating the inhibitor kappa B (IκB)-nuclear factor kappa-light-chain-enhancer of activated B cells (NFκB) and Janus family of tyrosine kinase (JAK)-signal transducer and activator of transcription (STAT)3 pathways. STAT3 contributed to TNF-α induced nuclear translocation of phospho-NFκB in pericytes. TNF-α-induced IL-6 release in astrocytes was mediated by NFκB but not by STAT3. The presence of pericytes amplified TNF-α-induced iNOS mRNA expression in BV-2 microglia. This effect was blocked by a neutralizing antibody for IL-6. These findings indicated that crosstalk between the IκB-NFκB and JAK-STAT3 pathways is a pericyte specific mechanism, not occurring in astrocytes, for TNF-α-induced IL-6 release. IL-6 derived from pericytes enhanced microglial activation. Our findings increase understanding of the role of pericyte-microglia crosstalk in the brain under neuroinflammatory conditions and suggest a potentially attractive therapeutic target for brain inflammation.
Insights
Brain pericytes release Interleukin-6 (IL-6) via unique pathways involving NFκB and STAT3, which then activates microglia. This pericyte-microglia crosstalk is key in brain inflammation.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Interleukin-6 (IL-6) is implicated in neuroinflammation and neurodegeneration.
- Brain pericytes release more IL-6 than glial cells in response to tumor necrosis factor-alpha (TNF-α).
- Pericytes stimulated by TNF-α can enhance microglial activation.
Purpose of the Study:
- Investigate mechanisms of TNF-α-induced IL-6 release from pericytes and astrocytes.
- Determine if pericyte-derived IL-6 activates microglia.
Main Methods:
- Primary cultures of rat brain pericytes and astrocytes.
- Pharmacological inhibitors targeting specific signaling pathways (IκB-NFκB, JAK-STAT3).
- Measurement of IL-6 release and microglial activation markers (iNOS mRNA).
Main Results:
- TNF-α induced IL-6 release from pericytes via IκB-NFκB and JAK-STAT3 pathways; STAT3 influenced NFκB activation.
- TNF-α induced IL-6 release from astrocytes via NFκB only.
- Pericyte-derived IL-6 amplified TNF-α-induced microglial activation, which was blocked by IL-6 neutralization.
Conclusions:
- A pericyte-specific crosstalk between IκB-NFκB and JAK-STAT3 pathways mediates TNF-α-induced IL-6 release.
- Pericyte-derived IL-6 enhances microglial activation, contributing to neuroinflammation.
- This highlights a therapeutic target for brain inflammation.
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