| Literature DB >> 35235180 |
Yijie Shao1,2, Qianqian Ge1, Jiachao Yang1, Mi Wang1, Yu Zhou1, Jin-Xin Guo3, Mengyue Zhu1, Jiachen Shi1, Yiqi Hu1, Li Shen3,4,5, Zhong Chen6,7, Xiao-Ming Li8,9, Jun-Ming Zhu2, Jianmin Zhang10, Shumin Duan11, Jiadong Chen12.
Abstract
Focal cortical dysplasia (FCD) is one of the most common causes of drug-resistant epilepsy. Dysmorphic neurons are the major histopathological feature of type II FCD, but their role in seizure genesis in FCD is unclear. Here we performed whole-cell patch-clamp recording and morphological reconstruction of cortical principal neurons in postsurgical brain tissue from drug-resistant epilepsy patients. Quantitative analyses revealed distinct morphological and electrophysiological characteristics of the upper layer dysmorphic neurons in type II FCD, including an enlarged soma, aberrant dendritic arbors, increased current injection for rheobase action potential firing, and reduced action potential firing frequency. Intriguingly, the upper layer dysmorphic neurons received decreased glutamatergic and increased GABAergic synaptic inputs that were coupled with upregulation of the Na+-K+-Cl- cotransporter. In addition, we found a depolarizing shift of the GABA reversal potential in the CamKII-cre::PTENflox/flox mouse model of drug-resistant epilepsy, suggesting that enhanced GABAergic inputs might depolarize dysmorphic neurons. Thus, imbalance of synaptic excitation and inhibition of dysmorphic neurons may contribute to seizure genesis in type II FCD.Entities:
Keywords: Dysmorphic neuron; Excitation-inhibition balance; Focal cortical dysplasia; Morphological reconstruction; Whole-cell patch-clamp recording
Mesh:
Year: 2022 PMID: 35235180 PMCID: PMC9468210 DOI: 10.1007/s12264-022-00828-7
Source DB: PubMed Journal: Neurosci Bull ISSN: 1995-8218 Impact factor: 5.271