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首页> 外文期刊>The Journal of Physiology >Mechanisms by which a CACNA1H mutation in epilepsy patients increases seizure susceptibility
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Mechanisms by which a CACNA1H mutation in epilepsy patients increases seizure susceptibility

机译:癫痫患者中CACNA1H突变增加癫痫发作易感性的机制

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T-type calcium channels play essential roles in regulating neuronal excitability and network oscillations in the brain. Mutations in the gene encoding Cav3.2 T-type Ca2+ channels, CACNA1H, have been found in association with various forms of idiopathic generalized epilepsy. We and others have found that these mutations may influence neuronal excitability either by altering the biophysical properties of the channels or by increasing their surface expression. The goals of the present study were to investigate the excitability of neurons expressing Cav3.2 with the epilepsy mutation, C456S, and to elucidate the mechanisms by which it influences neuronal properties. We found that expression of the recombinant C456S channels substantially increased the excitability of cultured neurons by increasing the spontaneous firing rate and reducing the threshold for rebound burst firing. Additionally, we found that molecular determinants in the I-II loop (the region in which most childhood absence epilepsy-associated mutations are found) substantially increase the surface expression of T-channels but do not alter the relative distribution of channels into dendrites of cultured hippocampal neurons. Finally, we discovered that expression of C456S channels promoted dendritic growth and arborization. These effects were reversed to normal by either the absence epilepsy drug ethosuximide or a novel T-channel blocker, TTA-P2. As Ca2+-regulated transcription factors also increase dendritic development, we tested a transactivator trap assay and found that the C456S variant can induce changes in gene transcription. Taken together, our findings suggest that gain-of-function mutations in Cav3.2 T-type Ca2+ channels increase seizure susceptibility by directly altering neuronal electrical properties and indirectly by changing gene expression.
机译:T型钙通道在调节神经元兴奋性和大脑网络振荡方面起着至关重要的作用。已发现与各种形式的特发性全身性癫痫相关的编码Cav3.2 T型Ca2 +通道的基因突变CACNA1H。我们和其他人发现,这些突变可能通过改变通道的生物物理特性或通过增加其表面表达来影响神经元兴奋性。本研究的目的是调查表达具有癫痫突变C456S的Cav3.2的神经元的兴奋性,并阐明其影响神经元特性的机制。我们发现重组C456S通道的表达通过增加自发放电速率和降低反弹爆发速率的阈值,大大增加了培养神经元的兴奋性。此外,我们发现I-II回路中的分子决定簇(发现了大多数与童年期缺席的癫痫相关突变的区域)大大增加了T通道的表面表达,但并未改变通道在培养的树突中的相对分布。海马神经元。最后,我们发现C456S通道的表达促进了树突状生长和乔木化。通过不使用癫痫药物ethosuximide或新型T通道阻滞剂TTA-P2,这些作用可逆转为正常。由于Ca2 +调节的转录因子也增加了树突状细胞的发育,我们测试了反式激活器陷阱测定法,发现C456S变体可以诱导基因转录的变化。综上所述,我们的发现表明,Cav3.2 T型Ca2 +通道中的功能获得性突变可通过直接改变神经元电特性并通过改变基因表达间接增加癫痫发作的易感性。

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