Cell cycle-dependent regulation of kainate-induced inward currents in microglia

Jun Yamada1, Makoto Sawada, Hiroshi Nakanishi

  • 1Laboratory of Oral Aging Science, Faculty of Dental Sciences, Kyushu University, Fukuoka 812-8582, Japan.

Insights

Microglia exhibit kainate (KA) receptors, primarily GluR5 and GluR6 subunits. Their responsiveness to KA is cell cycle-dependent, increasing significantly during proliferation.

Area of Science:

  • Neuroscience
  • Immunology
  • Cell Biology

Background:

  • Microglia, the resident immune cells of the central nervous system, express alpha-amino-hydroxy-5-methyl-isoxazole-4-propionate/kainate (KA) receptors.
  • Previous studies indicated limited responsiveness (approx. 20%) of primary microglia to KA.

Purpose of the Study:

  • To investigate the regulatory mechanisms of KA receptor responsiveness in the GMIR1 rat microglial cell line.
  • To understand the role of cell cycle in modulating KA receptor expression and function in microglia.

Main Methods:

  • Utilized the GMIR1 rat microglial cell line cultured at varying densities to study proliferation and quiescence.
  • Electrophysiological recordings (inward currents) were performed to assess glutamate (Glu) and KA-induced responses.
  • Quantitative analysis of KA receptor subunit mRNA (GluR5, GluR6) and protein expression (GluR6/7 immunoreactivity) was conducted.
  • Pharmacological agents, including a selective KA receptor antagonist (UBP296) and agonist (ATPA), were used.

Main Results:

  • GMIR1 cells showed significantly higher KA and Glu responsiveness (approx. 80%) at the proliferation stage compared to the quiescent stage (approx. 22.5%).
  • Inward current amplitudes induced by KA and Glu were substantially larger during the proliferation stage.
  • KA-induced currents were inhibited by UBP296, confirming KA receptor involvement.
  • mRNA levels of KA receptor subunits GluR5 and GluR6 were significantly elevated during cell proliferation.
  • Increased GluR6/7 immunoreactivity was observed in activated microglia in the post-ischemic hippocampus.

Conclusions:

  • Microglia possess functional KA receptors, predominantly composed of GluR5 and GluR6 subunits.
  • The expression and function of these KA receptors are tightly regulated by the cell cycle, with enhanced activity during proliferation.
  • These findings highlight a novel mechanism for microglial activation and modulation in neurological conditions.