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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Liver X receptor-dependent inhibition of microglial nitric oxide synthase 2
Julie R Secor McVoy1, Hanadi Ajam Oughli2, Unsong Oh3
1Department of Neurology, Virginia Commonwealth University School of Medicine, PO Box 980599, VA, 23298, Richmond, USA. jrmcvoy@vcu.edu.
Background:
The nuclear receptor liver X receptor (LXR) exerts transcriptional control over lipid metabolism and inflammatory response in cells of the myeloid lineage, suggesting that LXR may be a potential target in a number of chronic neuroinflammatory and neurodegenerative diseases where persistent microglial activation has been implicated in the pathogenesis.
Methods:
The effect of LXR activation on microglia and central nervous system (CNS) inflammation was studied using a synthetic LXR agonist in cultured microglia, a microglial cell line and experimental allergic encephalomyelitis (EAE), an animal model of CNS inflammation.
Results:
LXR activation inhibited nitric oxide synthase 2, inducible (Nos2) expression and nitric oxide production in lipopolysaccharide (LPS)-stimulated microglia. Inhibition of microglial activation in response to interferon-γ was less reliable. In LPS-stimulated cells, LXR activation did not inhibit nuclear translocation of NF-kappaB1 p50. Instead, LXR-dependent Nos2 repression was associated with inhibition of histone 4 acetylation and inhibition of NF-kappaB1 p50 binding at the Nos2 promoter. Histone acetylation and NF-kappaB1 p50 binding were mechanistically linked, and histone deacetylase (HDAC) activity appeared to be important for LXR-dependent transcriptional repression of Nos2. Analysis of CNS gene expression in animals undergoing EAE showed that the expressions of Lxr and LXR-dependent genes were downregulated during CNS inflammation. Nevertheless, administration of LXR agonist GW3965 during the effector phase of EAE delayed the onset of clinical disease and reversed the diminished expression of LXR-dependent reverse cholesterol transport genes. However, the CNS expressions of Nos2 and other inflammatory genes were not significantly inhibited by LXR activation in EAE, and clinical disease severity was comparable to vehicle controls at later time points in LXR agonist treated animals.
Conclusions:
LXR can be targeted to modulate microglial activation. LXR-dependent repression of inflammatory genes may be stimulus-dependent and impaired by HDAC inhibition. Endogenous LXR activity does not appear to modulate CNS inflammation, but LXR activity can be partially restored in the CNS by administration of exogenous LXR agonist with an impact on clinical disease severity at early, but not late, time points in EAE.
Insights
Liver X receptor (LXR) activation modulates microglial inflammatory responses, but its effectiveness in central nervous system (CNS) inflammation is stimulus-dependent. Exogenous LXR agonists show early therapeutic potential in models like EAE but not at later stages.
Area of Science:
- Neuroimmunology
- Molecular Biology
- Pharmacology
Background:
- The nuclear receptor liver X receptor (LXR) regulates lipid metabolism and inflammation in myeloid cells.
- Microglial activation is implicated in chronic neuroinflammatory and neurodegenerative diseases.
Purpose of the Study:
- To investigate the effect of LXR activation on microglia and central nervous system (CNS) inflammation.
- To explore LXR as a potential therapeutic target for neuroinflammatory conditions.
Main Methods:
- Utilized a synthetic LXR agonist in cultured microglia, a microglial cell line, and the experimental allergic encephalomyelitis (EAE) model.
- Assessed inflammatory gene expression (Nos2), nitric oxide production, NF-kappaB1 p50 translocation, and histone acetylation.
- Administered LXR agonist GW3965 during the effector phase of EAE.
Main Results:
- LXR activation inhibited Nos2 expression and nitric oxide production in LPS-stimulated microglia, linked to reduced histone acetylation and NF-kappaB1 p50 binding at the Nos2 promoter.
- LXR agonist treatment in EAE delayed disease onset and reversed downregulation of cholesterol transport genes.
- However, LXR activation did not significantly inhibit Nos2 or other inflammatory genes in the EAE CNS, and clinical outcomes were comparable to controls at later time points.
Conclusions:
- LXR can modulate microglial activation, with repression of inflammatory genes being stimulus-dependent and potentially affected by HDAC inhibition.
- Endogenous LXR activity may not significantly impact CNS inflammation, but exogenous LXR agonists can partially restore LXR activity.
- Exogenous LXR agonists demonstrate early, but not late, therapeutic impact on clinical disease severity in the EAE model.
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