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Application of a NMDA Receptor Conductance in Rat Midbrain Dopaminergic Neurons Using the Dynamic Clamp Technique
Published on: December 21, 2010
Ketamine inhibits LPS-mediated BV2 microglial inflammation via NMDA receptor blockage
Yaojun Lu1, Xiaonan Ding2, Xin Wu3,4
1Department of Anaesthesiology, The Obstetrics and Gynecology Hospital of Fudan University, No. 128 Shenyang road, Shanghai, 200090, China.
Abstract:
Microglial inflammation leads to the upregulation of proinflammatory cytokine and proinflammatory enzyme expression, resulting in inflammation-induced neuronal cell apoptosis. Ketamine, an anesthetic mostly used in critical patients, has been reported to possess neuroprotective effects. However, the potential mechanism is still not well understood. In the present study, we investigated how ketamine attenuates lipopolysaccharide (LPS)-mediated BV2 cell inflammation. LPS upregulated proinflammatory cytokine and proinflammatory enzyme expression, increased NF-κB phosphorylation and nuclear translocation, and augmented calcium (Ca2+ )/calmodulin-dependent protein kinase II (CaMK II) phosphorylation and Ca2+ levels in BV2 cells. Ketamine could reverse these LPS-induced effects. Furthermore, AP5, an inhibitor of NMDA receptors, inhibited LPS-induced inflammatory effects in BV2 cells, which was similar to the effects of ketamine. Moreover, these effects of ketamine against LPS-mediated inflammation in BV2 cells could be reversed by D-serine, an activator of NMDA receptors. The present study suggests that ketamine, by inhibiting NMDA receptors, attenuating Ca2+ levels, and inhibiting CaMK II phosphorylation, NF-κB phosphorylation and nuclear translocation, may ameliorate LPS-mediated inflammation in BV2 cells.
Insights
Ketamine reduces inflammation in brain cells by blocking NMDA receptors and decreasing calcium signaling. This neuroprotective effect may help prevent neuronal cell death caused by inflammation.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Microglial inflammation contributes to neuronal apoptosis via proinflammatory mediators.
- Ketamine exhibits neuroprotective effects, but its mechanism remains unclear.
- Understanding ketamine's anti-inflammatory actions is crucial for neuroprotection.
Purpose of the Study:
- To investigate the mechanism by which ketamine attenuates lipopolysaccharide (LPS)-induced inflammation in BV2 microglial cells.
- To explore the role of NMDA receptors and calcium signaling in ketamine's anti-inflammatory effects.
Main Methods:
- BV2 cells were treated with LPS to induce inflammation.
- The effects of ketamine on proinflammatory markers, NF-κB, Ca2+, and CaMK II were assessed.
- NMDA receptor involvement was examined using AP5 (inhibitor) and D-serine (activator).
Main Results:
- LPS upregulated proinflammatory cytokines, enzymes, NF-κB, Ca2+ levels, and CaMK II phosphorylation.
- Ketamine reversed these LPS-induced inflammatory changes.
- NMDA receptor inhibition mimicked ketamine's effects, while activation reversed them.
Conclusions:
- Ketamine ameliorates LPS-mediated microglial inflammation.
- The mechanism involves NMDA receptor inhibition, reduced Ca2+ levels, and suppressed CaMK II and NF-κB signaling.
- Ketamine's neuroprotective potential may stem from these anti-inflammatory actions.
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