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Updated: May 26, 2026

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Published on: August 15, 2012
Inhibition of voltage-gated proton channels by local anaesthetics in GMI-R1 rat microglia
Tadashi Matsuura1, Takashi Mori, Megumi Hasaka
1Department of Anaesthesiology, Osaka City University Graduate School of Medicine, 1-5-7 Asahimachi, Abeno-ku, Osaka 545-8586, Japan.
Abstract:
Voltage-gated proton channels play crucial roles during the respiratory burst in phagocytes, such as microglia. As local anaesthetics have a variety of anti-inflammatory properties, including inhibition of phagocytosis, they may act on the proton channels. Most local anaesthetics are tertiary amines and may affect proton channels through modification of pH(i) as weak bases. To test these hypotheses, the effects of lidocaine and bupivacaine on proton channels were examined in a rat microglial cell line (GMI-R1) as a function of pH(o) and pH(i). Both lidocaine and bupivacaine reversibly decreased the current, with IC(50) values of ∼1.2 and ∼0.5 mM, respectively, at pH(o)/pH(i) 7.3/5.5. The inhibition was enhanced with either pH(o) increase or pH(i) decrease, suggesting that the protonation of the base forms inside the cell contributed to the inhibitory effects. Both local anaesthetics shifted the reversal potentials to more positive voltages, indicating increases in pH(i). The potencies of inhibition were correlated well with the degree of increase in pH(i). The lidocaine-induced inhibition was eliminated when the pH(i) increases were cancelled by co-application of a weak acid, butyrate. The cytosolic alkalizations by lidocaine and bupivacaine were confirmed using a pH-sensitive fluorescent dye, BCECF, in non-voltage-clamped cells. Furthermore, chemiluminescence measurement proved that both anaesthetics inhibited production of reactive oxygen species by the cells. In conclusion, lidocaine and bupivacaine inhibit proton channels primarily by the weak base mechanism via an increase in pH(i). This is a novel mechanism underlying actions of local anaesthtics.
Insights
Local anesthetics like lidocaine and bupivacaine inhibit crucial voltage-gated proton channels in microglia. They act as weak bases, increasing intracellular pH and reducing respiratory burst activity, offering a novel anti-inflammatory mechanism.
Area of Science:
- Cellular Physiology
- Neuroinflammation
- Pharmacology
Background:
- Voltage-gated proton channels are vital for microglial respiratory burst.
- Local anesthetics possess anti-inflammatory properties, potentially affecting these channels.
- Tertiary amine anesthetics may influence proton channels by altering intracellular pH (pH(i)) via weak base mechanisms.
Purpose of the Study:
- To investigate the effects of lidocaine and bupivacaine on proton channels in a rat microglial cell line.
- To determine if local anesthetics inhibit proton channels through a weak base mechanism by increasing intracellular pH.
Main Methods:
- Examined the effects of lidocaine and bupivacaine on proton channels in GMI-R1 cells under varying extracellular pH (pH(o)) and pH(i).
- Measured changes in current, reversal potentials, and intracellular pH using a pH-sensitive fluorescent dye (BCECF).
- Assessed the impact on reactive oxygen species production via chemiluminescence and confirmed inhibition by co-applying butyrate.
Main Results:
- Lidocaine and bupivacaine inhibited proton channel currents reversibly, with IC(50) values of ~1.2 mM and ~0.5 mM, respectively.
- Inhibition was potentiated by increased pH(o) or decreased pH(i), consistent with a weak base mechanism.
- Both anesthetics increased intracellular pH, which correlated with inhibitory potency and was reversed by butyrate; they also reduced reactive oxygen species production.
Conclusions:
- Lidocaine and bupivacaine inhibit voltage-gated proton channels in microglia.
- The primary mechanism involves acting as weak bases, increasing intracellular pH.
- This represents a novel mechanism for the anti-inflammatory actions of local anesthetics.
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