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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Microglia activation contributes to quinolinic acid-induced neuronal excitotoxicity through TNF-α
Abstract:
It has been reported that activation of NF-κB is involved in excitotoxicity; however, it is not fully understood how NF-κB contributes to excitotoxicity. The aim of this study is to investigate if NF-κB contributes to quinolinic acid (QA)-mediated excitotoxicity through activation of microglia. In the cultured primary cortical neurons and microglia BV-2 cells, the effects of QA on cell survival, NF-κB expression and cytokines production were investigated. The effects of BV-2-conditioned medium (BCM) on primary cortical neurons were examined. The effects of pyrrolidine dithiocarbamate (PDTC), an inhibitor of NF-κB, and minocycline (MC), an inhibitor of microglia activation, on QA-induced excitotoxicity were assessed. QA-induced NF-κB activation and TNF-α secretion, and the roles of TNF-α in excitotoxicity were studied. QA at the concentration below 1 mM had no apparent toxic effects on cultured primary neurons or BV-2 cells. However, addition of QA-primed BCM to primary neurons did aggravate QA-induced excitotoxicity. The exacerbation of QA-induced excitotoxicity by BCM was partially ameliorated by inhibiting NF-κB and microglia activation. QA induced activation of NF-κB and upregulation of TNF-α in BV-2 cells. Addition of recombinant TNF-α mimicked QA-induced excitotoxic effects on neurons, and neutralizing TNF-α with specific antibodies partially abolished exacerbation of QA-induced excitotoxicity by BCM. These studies suggested that QA activated microglia and upregulated TNF-α through NF-κB pathway in microglia. The microglia-mediated inflammatory pathway contributed, at least in part, to QA-induced excitotoxicity.
Insights
Quinolinic acid (QA) exacerbates excitotoxicity by activating microglia via the NF-κB pathway, leading to TNF-α release. Inhibiting NF-κB and microglia activation mitigates this neuroinflammation and neuronal damage.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Nuclear factor-kappa B (NF-κB) activation is implicated in excitotoxicity.
- The precise mechanisms by which NF-κB contributes to excitotoxicity remain unclear.
Purpose of the Study:
- To investigate the role of NF-κB in quinolinic acid (QA)-induced excitotoxicity.
- To determine if NF-κB activation in microglia mediates QA-induced neuroinflammation and neuronal damage.
Main Methods:
- Primary cortical neurons and BV-2 microglia cells were used.
- Effects of QA, QA-primed conditioned medium, NF-κB inhibitor (PDTC), and microglia inhibitor (minocycline) were assessed.
- Tumor necrosis factor-alpha (TNF-α) levels and role in excitotoxicity were analyzed.
Main Results:
- QA-primed microglia-conditioned medium aggravated QA-induced excitotoxicity in neurons.
- Inhibiting NF-κB or microglia activation partially reduced this exacerbation.
- QA activated NF-κB and upregulated TNF-α in microglia; recombinant TNF-α mimicked excitotoxic effects.
Conclusions:
- Quinolinic acid activates microglia through the NF-κB pathway, leading to TNF-α upregulation.
- Microglia-mediated inflammation, driven by NF-κB and TNF-α, contributes significantly to QA-induced excitotoxicity.

