Magnolol inhibits sodium currents in freshly isolated mouse dorsal root ganglion neurons
Jie Qiu, Lulu Zhang, Jiangru Hong, Xiao Ni, Jun Li, Guang Li, Guangqin Zhang
Abstract
Jie Qiu, Lulu Zhang, Jiangru Hong, Xiao Ni, Jun Li, Guang Li, Guangqin Zhang
Abstract
Abstract The voltage‐gated sodium channel (VGSC) currents in dorsal root ganglion (DRG) neurons contain mainly TTX‐sensitive (TTX‐S) and TTX‐resistant (TTX‐R) Na + currents. Magnolol (Mag), a hydroxylated biphenyl compound isolated from the bark of Magnolia officinalis , has been well documented to exhibit analgesic effects, but its mechanism is not yet fully understood. The aim of the present study was to investigate whether the antinociceptive effects of Mag is through inhibition of Na + currents. Na + currents in freshly isolated mouse DRG neurons were recorded with the whole cell patch clamp technique. Results showed that Mag inhibited TTX‐S and TTX‐R Na + currents in a concentration‐dependent manner. The IC 50 values for block of TTX‐S and TTX‐R Na + currents were 9.4 and 7.0 μmol/L, respectively. Therefore, TTX‐R Na + current was more susceptible to Mag than TTX‐S Na + current. For TTX‐S Na + channel, 10 μmol/L Mag shifted the steady state inactivation curve toward more negative by 9.8 mV, without affecting the activation curve. For TTX‐R Na + channel, 7 μmol/L Mag shifted the steady state activation and inactivation curves toward more positive and negative potentials by 6.5 and 11.7 mV, respectively. In addition, Mag significantly postponed recovery of TTX‐S and TTX‐R Na + currents from inactivation, and produced frequency dependent blocks of both subtypes of Na + currents. These results suggest that the inhibitory effects of Mag on Na + channels may contribute to its analgesic effect.
OpenAlex reports 5 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
Abstract The voltage‐gated sodium channel (VGSC) currents in dorsal root ganglion (DRG) neurons contain mainly TTX‐sensitive (TTX‐S) and TTX‐resistant (TTX‐R) Na + currents. Magnolol (Mag), a hydroxylated biphenyl compound isolated from the bark of Magnolia officinalis , has been well documented to exhibit analgesic effects, but its mechanism is not yet fully understood. The aim of the present study was to investigate whether the antinociceptive effects of Mag is through inhibition of Na + currents. Na + currents in freshly isolated mouse DRG neurons were recorded with the whole cell patch clamp technique. Results showed that Mag inhibited TTX‐S and TTX‐R Na + currents in a concentration‐dependent manner. The IC 50 values for block of TTX‐S and TTX‐R Na + currents were 9.4 and 7.0 μmol/L, respectively. Therefore, TTX‐R Na + current was more susceptible to Mag than TTX‐S Na + current. For TTX‐S Na + channel, 10 μmol/L Mag shifted the steady state inactivation curve toward more negative by 9.8 mV, without affecting the activation curve. For TTX‐R Na + channel, 7 μmol/L Mag shifted the steady state activation and inactivation curves toward more positive and negative potentials by 6.5 and 11.7 mV, respectively. In addition, Mag significantly postponed recovery of TTX‐S and TTX‐R Na + currents from inactivation, and produced frequency dependent blocks of both subtypes of Na + currents. These results suggest that the inhibitory effects of Mag on Na + channels may contribute to its analgesic effect.
Key concepts: Dorsal root ganglion, Chemistry, Sodium channel, Biophysics, Patch clamp, Sodium, Inhibitory postsynaptic potential, Dorsum