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Published on: May 25, 2011
Antipsychotics, chlorpromazine and haloperidol inhibit voltage-gated proton currents in BV2 microglial cells
1Department of Pharmacology, College of Medicine, Chung-Ang University, 84 Heukseok-Ro, Dongjak-Gu, Seoul 156-756, Republic of Korea.
Abstract:
Microglial dysfunction and neuroinflammation are thought to contribute to the pathogenesis of schizophrenia. Some antipsychotic drugs have anti-inflammatory activity and can reduce the secretion of pro-inflammatory cytokines and reactive oxygen species from activated microglial cells. Voltage-gated proton channels on the microglial cells participate in the generation of reactive oxygen species and neuronal toxicity by supporting NADPH oxidase activity. In the present study, we examined the effects of two typical antipsychotics, chlorpromazine and haloperidol, on proton currents in microglial BV2 cells using the whole-cell patch clamp method. Chlorpromazine and haloperidol potently inhibited proton currents with IC50 values of 2.2 μM and 8.4 μM, respectively. Chlorpromazine and haloperidol are weak bases that can increase the intracellular pH, whereby they reduce the proton gradient and affect channel gating. Although the drugs caused a marginal positive shift of the activation voltage, they did not change the reversal potential. This suggested that proton current inhibition was not due to an alteration of the intracellular pH. Chlorpromazine and haloperidol are strong blockers of dopamine receptors. While dopamine itself did not affect proton currents, it also did not alter proton current inhibition by the two antipsychotics, indicating dopamine receptors are not likely to mediate the proton current inhibition. Given that proton channels are important for the production of reactive oxygen species and possibly pro-inflammatory cytokines, the anti-inflammatory and antipsychotic activities of chlorpromazine and haloperidol may be partly derived from their ability to inhibit microglial proton currents.
Insights
Two common antipsychotics, chlorpromazine and haloperidol, effectively inhibit microglial proton channels. This action may contribute to their anti-inflammatory effects in treating schizophrenia by reducing reactive oxygen species.
Area of Science:
- Neuroscience
- Pharmacology
- Cell Biology
Background:
- Microglial dysfunction and neuroinflammation are implicated in schizophrenia pathogenesis.
- Antipsychotic drugs can possess anti-inflammatory properties by modulating microglial activity.
- Voltage-gated proton channels in microglia support NADPH oxidase, contributing to reactive oxygen species and neurotoxicity.
Purpose of the Study:
- To investigate the effects of typical antipsychotics chlorpromazine and haloperidol on microglial proton currents.
- To determine if dopamine receptors mediate the interaction between antipsychotics and microglial proton channels.
Main Methods:
- Utilized the whole-cell patch clamp technique to measure proton currents in microglial BV2 cells.
- Administered chlorpromazine and haloperidol to assess their inhibitory effects and determine IC50 values.
- Examined the influence of dopamine and the impact of antipsychotics on proton currents in the presence of dopamine.
Main Results:
- Chlorpromazine and haloperidol demonstrated potent inhibition of microglial proton currents, with IC50 values of 2.2 μM and 8.4 μM, respectively.
- Inhibition was not attributed to altered intracellular pH or changes in reversal potential.
- Dopamine did not affect proton currents, nor did it influence the inhibitory action of the antipsychotics, suggesting dopamine receptors are not involved.
Conclusions:
- Chlorpromazine and haloperidol directly inhibit microglial voltage-gated proton channels.
- This inhibition of proton currents may represent a novel mechanism underlying the anti-inflammatory and antipsychotic effects of these drugs.
- Targeting microglial proton channels could be a therapeutic strategy for schizophrenia.
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