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Updated: Jul 13, 2026

Real-time Analysis of Gut-brain Neural Communication: Cortex wide Calcium Dynamics in Response to Intestinal Glucose Stimulation
Published on: December 29, 2023
High glucose stimulates GRO secretion from rat microglia via ROS, PKC, and NF-kappaB pathways
Yi Quan1, Jianhai Du, Xian Wang
1Department of Physiology and Pathophysiology, School of Basic Medical Sciences, Peking University, Beijing, People's Republic of China.
Abstract:
Hyperglycemia causes direct neuronal damage in diabetic encephalopathy. Microglia have been found to be activated in diabetic encephalopathy, presumably mediating and amplifying neuron degeneration. Chemokine IL-8 plays an important role in the pathogenesis of encephalopathy. Therefore, we investigated whether high glucose could activate microglia and stimulate IL-8 secretion and if so, the possible mechanisms that were involved. ELISA results showed that treatment with high glucose (35 mM) compared with treatment with low glucose (10 mM) time-dependently elevated secretion of GRO (the rat ortholog of human IL-8) in primary cultured rat microglia. Real-time PCR results showed GRO mRNA expression also increased in response to high glucose in a time-dependent manner. These effects were specific to high glucose because the osmolality control had no such effect. High-glucose treatment stimulated the formation of ROS, as seen in the DCF fluorescence assay, increased phosphorylation of PKC, as seen in the Western blot analysis, and activated NF-kappaB, as seen in the luciferase reporter assay. In addition, treatment with the ROS scavenger NAC (2 mM) significantly reduced the high glucose-induced phosphorylation of PKC and GRO secretion. Treatment with the PKC activator PMA (10-50 nM) stimulated GRO secretion, and the PKC inhibitors calphostin C (300 nM) or chelerythrine (1 microM) attenuated the high glucose-induced GRO secretion. Furthermore, the NF-kappaB inhibitors MG132 (10 microM) or PDTC (5 microM) completely blocked the high glucose-induced GRO secretion. In conclusion, high glucose induces GRO secretion and mRNA expression in activated rat microglia, which is mediated by the ROS, PKC, and NF-kappaB pathways. High glucose-induced IL-8 production by microglia may contribute to diabetic encephalopathy.
Insights
High glucose activates microglia, increasing the secretion of GRO (a form of IL-8) which may contribute to diabetic encephalopathy. This process involves reactive oxygen species, protein kinase C, and NF-kappaB signaling pathways.
Area of Science:
- Neuroscience
- Immunology
- Endocrinology
Background:
- Hyperglycemia in diabetic encephalopathy causes neuronal damage.
- Activated microglia are implicated in diabetic encephalopathy pathogenesis.
- Chemokine IL-8 (Interleukin-8) plays a role in encephalopathy.
Purpose of the Study:
- To investigate if high glucose activates microglia and stimulates IL-8 secretion.
- To elucidate the underlying molecular mechanisms involved in high glucose-induced microglial activation and IL-8 production.
Main Methods:
- Primary rat microglia were treated with high glucose (35 mM) or low glucose (10 mM).
- ELISA and real-time PCR were used to measure GRO (rat IL-8 ortholog) secretion and mRNA expression.
- Assays for reactive oxygen species (ROS), Western blot for PKC phosphorylation, and luciferase assay for NF-kappaB activation were performed. Inhibitors and activators of these pathways were used.
Main Results:
- High glucose time-dependently increased GRO secretion and mRNA expression in microglia, an effect specific to glucose concentration.
- High glucose stimulated ROS formation, increased PKC phosphorylation, and activated NF-kappaB.
- ROS scavenger NAC, PKC inhibitors (calphostin C, chelerythrine), and NF-kappaB inhibitors (MG132, PDTC) attenuated or blocked high glucose-induced GRO secretion.
Conclusions:
- High glucose activates rat microglia, leading to increased GRO (IL-8) secretion and mRNA expression.
- This activation is mediated by a signaling cascade involving ROS, PKC, and NF-kappaB.
- Microglial IL-8 production induced by high glucose may contribute to the neurodegeneration seen in diabetic encephalopathy.
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