Ibuprofen and apigenin induce apoptosis and cell cycle arrest in activated microglia

Nahed S Elsisi1, Selina Darling-Reed, Eunsook Y Lee

  • 1College of Pharmacy and Pharmaceutical Sciences, Florida A&M University, Tallahaeess, FL 32307, USA.

Neuroscience Letters
|January 27, 2005
PubMed

Insights

Anti-inflammatory drugs like ibuprofen and apigenin can halt microglial cell proliferation by disrupting their cell cycle and triggering apoptosis. This suggests a potential therapeutic strategy for neuroinflammatory diseases.

Area of Science:

  • Neuroscience
  • Immunology
  • Pharmacology

Background:

  • Microglia, the immune cells of the brain, become activated and proliferate during injury or disease, contributing to neurotoxicity.
  • Hyperactivated microglia are implicated in neurodegenerative conditions like Alzheimer's and Parkinson's disease.
  • Gliosis, or the proliferation of glial cells, is a hallmark of pathological conditions in the central nervous system.

Purpose of the Study:

  • To investigate the effects of anti-inflammatory compounds on microglial cell cycle progression and apoptosis.
  • To test the hypothesis that anti-inflammatory agents can modulate microglial proliferation.
  • To explore the potential of ibuprofen and apigenin as modulators of activated microglia.

Main Methods:

  • Utilized the murine microglial cell line BV-2.
  • Assessed cell cycle progression using flow cytometry after treatment with ibuprofen and apigenin.
  • Quantified apoptosis using Annexin V-FITC/propidium iodide staining and TUNEL assay.

Main Results:

  • Apigenin induced cell cycle arrest predominantly in the G2/M phase.
  • Ibuprofen treatment resulted in S phase arrest.
  • Both apigenin (25 μM) and ibuprofen (250 μM) significantly induced apoptosis in BV-2 cells, confirmed by multiple assays.

Conclusions:

  • Anti-inflammatory compounds, specifically apigenin and ibuprofen, can inhibit microglial proliferation.
  • These compounds modulate cell cycle progression and induce apoptosis in activated microglia.
  • The findings suggest a potential therapeutic avenue for neuroinflammatory diseases by targeting microglial hyperactivation.

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