Literature DB >> 33385943

Ilepcimide inhibited sodium channel activity in mouse hippocampal neurons.

Yang Zeng1, Bing Qin2, Yi-Wu Shi3, Yue-Sheng Long3, Wei-Yi Deng3, Bing-Mei Li3, Bin Tang3, Qi-Hua Zhao3, Mei-Mei Gao3, Na He3, Wei-Ping Liao4.   

Abstract

Ilepcimide (ICM), a clinically effective antiepileptic drug, has been used in China for decades; however, its antiepileptic mechanism remains unclear. ICM is structurally similar to antiepileptic drug lamotrigine (LTG). LTG exerts its anticonvulsant effect by inhibiting voltage-gated Na+ channel (NaV) activity. Thus it is speculated that ICM also exert its antiepileptic activity by inhibiting sodium channel activity. We studied the inhibition of NaV activity by ICM in acutely isolated mouse hippocampal pyramidal neurons. We evaluated ICM-mediated tonic, concentration-dependent, and voltage-dependent inhibition of NaV, and the effects of ICM and LTG on NaV biophysical properties. Na+ currents in hippocampal pyramidal neurons were tonically inhibited by ICM in a concentration- and voltage-dependent manner. The half-maximal inhibitory concentration (IC50) of ICM at a holding potential (Vh) of -90 mV was higher than that at a Vh of -70 mV. Compared with the control groups, in the presence of 10 μM ICM, the current densities of Na+ channels were reduced, the half-maximal availability of the inactivation curve (V1/2) was shifted to more negative potentials, and the recovery from inactivation was delayed. These data can contribute to further investigation of the inhibitory effect of ICM on the sodium channel, suggesting that the main reason for the anticonvulsant effect of ICM is the small influx of sodium ions. ICM can prevent abnormal discharge of neurons, which may prevent epilepsy.
Copyright © 2020 Elsevier B.V. All rights reserved.

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Keywords:  Antiepileptic drug; Hippocampal pyramidal neuron; Ilepcimide; Patch-clamp recording; Sodium (Na(+)) channel

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Year:  2020        PMID: 33385943     DOI: 10.1016/j.eplepsyres.2020.106533

Source DB:  PubMed          Journal:  Epilepsy Res        ISSN: 0920-1211            Impact factor:   3.045


  1 in total

1.  Cobalt-catalyzed chemoselective dehydrogenation through radical translocation under visible light.

Authors:  Wan-Lei Yu; Zi-Gang Ren; Ke-Xing Ma; Hui-Qing Yang; Jun-Jie Yang; Haixue Zheng; Wangsuo Wu; Peng-Fei Xu
Journal:  Chem Sci       Date:  2022-06-15       Impact factor: 9.969

  1 in total

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