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TRESK channel contributes to depolarization-induced shunting inhibition and modulates epileptic seizures

Authors :
Huang, Weiyuan
Ke, Yue
Zhu, Jianping
Liu, Shuai
Cong, Jin
Ye, Hailin
Guo, Yanwu
Wang, Kewan
Zhang, Zhenhai
Meng, Wenxiang
Gao, Tian-Ming
Luhmann, Heiko J.
Kilb, Werner
Chen, Rongqing
Source :
Cell Reports; July 2021, Vol. 36 Issue: 3
Publication Year :
2021

Abstract

Glutamatergic and GABAergic synaptic transmission controls excitation and inhibition of postsynaptic neurons, whereas activity of ion channels modulates neuronal intrinsic excitability. However, it is unclear how excessive neuronal excitation affects intrinsic inhibition to regain homeostatic stability under physiological or pathophysiological conditions. Here, we report that a seizure-like sustained depolarization can induce short-term inhibition of hippocampal CA3 neurons via a mechanism of membrane shunting. This depolarization-induced shunting inhibition (DShI) mediates a non-synaptic, but neuronal intrinsic, short-term plasticity that is able to suppress action potential generation and postsynaptic responses by activated ionotropic receptors. We demonstrate that the TRESK channel significantly contributes to DShI. Disruption of DShI by genetic knockout of TRESK exacerbates the sensitivity and severity of epileptic seizures of mice, whereas overexpression of TRESK attenuates seizures. In summary, these results uncover a type of homeostatic intrinsic plasticity and its underlying mechanism. TRESK might represent a therapeutic target for antiepileptic drugs.

Details

Language :
English
ISSN :
22111247
Volume :
36
Issue :
3
Database :
Supplemental Index
Journal :
Cell Reports
Publication Type :
Periodical
Accession number :
ejs57172701
Full Text :
https://doi.org/10.1016/j.celrep.2021.109404