Antipsychotics, chlorpromazine and haloperidol inhibit voltage-gated proton currents in BV2 microglial cells

Hyewon Shin1, Jin-Ho Song1

  • 1Department of Pharmacology, College of Medicine, Chung-Ang University, 84 Heukseok-Ro, Dongjak-Gu, Seoul 156-756, Republic of Korea.

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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