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本文引用的文献

1
dCas9-Based Scn1a Gene Activation Restores Inhibitory Interneuron Excitability and Attenuates Seizures in Dravet Syndrome Mice.基于 dCas9 的 Scn1a 基因激活可恢复 Dravet 综合征小鼠抑制性中间神经元的兴奋性并减轻癫痫发作。
Mol Ther. 2020 Jan 8;28(1):235-253. doi: 10.1016/j.ymthe.2019.08.018. Epub 2019 Sep 3.
2
Epilepsy and neuropsychiatric comorbidities in mice carrying a recurrent Dravet syndrome SCN1A missense mutation.携带重复 Dravet 综合征 SCN1A 错义突变的小鼠的癫痫和神经精神共病。
Sci Rep. 2019 Oct 2;9(1):14172. doi: 10.1038/s41598-019-50627-w.
3
Donepezil increases resistance to induced seizures in a mouse model of Dravet syndrome.多奈哌齐可提高 Dravet 综合征小鼠模型对诱导性癫痫发作的抵抗力。
Ann Clin Transl Neurol. 2019 Aug;6(8):1566-1571. doi: 10.1002/acn3.50848. Epub 2019 Jul 23.
4
Dravet Syndrome: A Sodium Channel Interneuronopathy.德雷维特综合征:一种钠通道中间神经元病。
Curr Opin Physiol. 2018 Apr;2:42-50. doi: 10.1016/j.cophys.2017.12.007. Epub 2017 Dec 23.
5
A Transient Developmental Window of Fast-Spiking Interneuron Dysfunction in a Mouse Model of Dravet Syndrome.Dravet 综合征小鼠模型中快速棘突神经元功能障碍的短暂发育窗口。
J Neurosci. 2018 Sep 5;38(36):7912-7927. doi: 10.1523/JNEUROSCI.0193-18.2018. Epub 2018 Aug 13.
6
Selective Na1.1 activation rescues Dravet syndrome mice from seizures and premature death.选择性激活钠通道 Na1.1 可拯救 Dravet 综合征小鼠免于癫痫发作和过早死亡。
Proc Natl Acad Sci U S A. 2018 Aug 21;115(34):E8077-E8085. doi: 10.1073/pnas.1804764115. Epub 2018 Aug 3.
7
Engineering Point Mutant and Epitope-Tagged Alleles in Mice Using Cas9 RNA-Guided Nuclease.利用Cas9 RNA引导核酸酶构建小鼠的工程化点突变和表位标记等位基因
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A novel human induced pluripotent stem cell blood-brain barrier model: Applicability to study antibody-triggered receptor-mediated transcytosis.一种新型的人诱导多能干细胞血脑屏障模型:适用于研究抗体触发的受体介导的胞吞作用。
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Impairments in social novelty recognition and spatial memory in mice with conditional deletion of Scn1a in parvalbumin-expressing cells.条件性敲除表达钙结合蛋白 Parvalbumin 的神经元中的 Scn1a 基因导致小鼠社会新颖性识别和空间记忆损伤。
Neurobiol Dis. 2018 Apr;112:24-34. doi: 10.1016/j.nbd.2018.01.009. Epub 2018 Jan 11.
10
Screening of conventional anticonvulsants in a genetic mouse model of epilepsy.在癫痫基因小鼠模型中对传统抗惊厥药进行筛选。
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新型 Dravet 综合征小鼠模型中海马 CA1 区锥体神经元和中间神经元的电生理改变。

Electrophysiological Alterations of Pyramidal Cells and Interneurons of the CA1 Region of the Hippocampus in a Novel Mouse Model of Dravet Syndrome.

机构信息

Children's Hospital of Eastern Ontario Research Institute, University of Ottawa, K1H 8L1 Ontario, Canada

Department of Genetics, Children's Hospital of Eastern Ontario, Ottawa, K1H 8L1 Ontario, Canada.

出版信息

Genetics. 2020 Aug;215(4):1055-1066. doi: 10.1534/genetics.120.303399. Epub 2020 Jun 17.

DOI:10.1534/genetics.120.303399
PMID:32554600
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7404236/
Abstract

Dravet syndrome is a developmental epileptic encephalopathy caused by pathogenic variation in To characterize the pathogenic substitution (p.H939R) of a local individual with Dravet syndrome, fibroblast cells from the individual were reprogrammed to pluripotent stem cells and differentiated into neurons. Sodium currents of these neurons were compared with healthy control induced neurons. A novel mouse model was generated with the p.H939R substitution. Immunohistochemistry and electrophysiological experiments were performed on hippocampal slices of mice. We found that the sodium currents recorded in the proband-induced neurons were significantly smaller and slower compared to wild type (WT). The resting membrane potential and spike amplitude were significantly depolarized in the proband-induced neurons. Similar differences in resting membrane potential and spike amplitude were observed in the interneurons of the hippocampus of mice. The mice showed the characteristic features of a Dravet-like phenotype: increased mortality and both spontaneous and heat-induced seizures. Immunohistochemistry showed a reduction in amount of parvalbumin and vesicular acetylcholine transporter in the hippocampus of compared to WT mice. Overall, these results underline hyper-excitability of the hippocampal CA1 circuit of this novel mouse model of Dravet syndrome which, under certain conditions, such as temperature, can trigger seizure activity. This hyper-excitability is due to the altered electrophysiological properties of pyramidal neurons and interneurons which are caused by the dysfunction of the sodium channel bearing the p.H939R substitution. This novel Dravet syndrome model also highlights the reduction in acetylcholine and the contribution of pyramidal cells, in addition to interneurons, to network hyper-excitability.

摘要

德拉维特综合征是一种发育性癫痫性脑病,由致病性变异引起 为了描述个体中德拉维特综合征的致病替代(p.H939R),将个体的成纤维细胞重新编程为多能干细胞,并分化为神经元。比较了这些神经元的钠电流与健康对照诱导的神经元。用 p.H939R 取代物生成了一种新的 小鼠模型。对 小鼠海马切片进行免疫组织化学和电生理实验。我们发现,与野生型(WT)相比,在个体诱导的神经元中记录到的钠电流明显更小、更慢。个体诱导的神经元的静息膜电位和峰幅度明显去极化。在 小鼠海马的中间神经元中也观察到类似的静息膜电位和峰幅度差异。 小鼠表现出类似于德拉维特的表型特征:死亡率增加,自发性和热诱导性癫痫发作。免疫组织化学显示,与 WT 相比, 小鼠海马中的钙结合蛋白 parvalbumin 和囊泡乙酰胆碱转运蛋白减少。总的来说,这些结果强调了这种新型德拉维特综合征小鼠模型海马 CA1 回路的超兴奋性,在某些条件下,如体温升高,可能会引发癫痫发作。这种超兴奋性是由于携带 p.H939R 取代的钠通道的功能障碍导致的锥体神经元和中间神经元的电生理特性改变所致。这种新型德拉维特综合征模型还强调了除中间神经元外,锥体细胞对网络超兴奋性的贡献以及乙酰胆碱的减少。