Related Experiment Video
Updated: Jul 20, 2026

Excitotoxic Stimulation of Brain Microslices as an In vitro Model of Stroke
Published on: February 4, 2014
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.
Abstract:
Microglia are reported to have alpha-amino-hydroxy-5-methyl-isoxazole-4-propionate/kainate (KA) types. However, only small population of primary cultured rat microglia (approximately 20%) responded to KA. In the present study, we have attempted to elucidate the regulatory mechanism of responsiveness to KA in GMIR1 rat microglial cell line. When the GMIR1 cells were plated at a low density in the presence of granulocyte macrophage colony-stimulating factor, the proliferation rate increased and reached the peak after 2 days in culture and then gradually decreased because of density-dependent inhibition. At cell proliferation stage, approximately 80% of the GMIR1 cells exhibited glutamate (Glu)- and KA-induced inward currents at cell proliferation stage, whereas only 22.5% of the cells showed responsiveness to Glu and KA at cell quiescent stage. Furthermore, the mean amplitudes of inward currents induced by Glu and KA at cell proliferation stage (13.8+/-3.0 and 8.4+/-0.6 pA) were significantly larger than those obtained at cell quiescent stage (4.7+/-0.8 and 6.2+/-1.2 pA). In the GMIR1 cells, KA-induced inward currents were markedly inhibited by (RS)-3-(2-carboxybenzyl) willardiine (UBP296), a selective antagonist for KA receptors. The KA-responsive cells also responded to (RS)-2-amino-3-(3-hydroxy-5-tert-butylisoxazol-4-yl) propanoic acid (ATPA), a selective agonist for GluR5, in both GMIR1 cells and primary cultured rat microglia. Furthermore, mRNA levels of the KA receptor subunits, GluR5 and GluR6, at the cell proliferation stage were significantly higher than those at the cell quiescent stage. Furthermore, the immunoreactivity for GluR6/7 was found to increase in activated microglia in the post-ischemic hippocampus. These results strongly suggest that microglia have functional KA receptors mainly consisting of GluR5 and GluR6, and the expression levels of these subunits are closely regulated by the cell cycle mechanism.
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.
