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人类癫痫患者大脑皮层的树突病理、棘突缺失和突触重组。

Dendritic pathology, spine loss and synaptic reorganization in human cortex from epilepsy patients.

机构信息

Epilepsy Unit, Fondazione IRCCS Istituto Neurologico Carlo Besta, Milano, Italy.

Department of Neurosciences, Biomedicine and Movement Sciences, University of Verona, Italy.

出版信息

Brain. 2021 Feb 12;144(1):251-265. doi: 10.1093/brain/awaa387.


DOI:10.1093/brain/awaa387
PMID:33221837
Abstract

Neuronal dendritic arborizations and dendritic spines are crucial for a normal synaptic transmission and may be critically involved in the pathophysiology of epilepsy. Alterations in dendritic morphology and spine loss mainly in hippocampal neurons have been reported both in epilepsy animal models and in human brain tissues from patients with epilepsy. However, it is still unclear whether these dendritic abnormalities relate to the cause of epilepsy or are generated by seizure recurrence. We investigated fine neuronal structures at the level of dendritic and spine organization using Golgi impregnation, and analysed synaptic networks with immunohistochemical markers of glutamatergic (vGLUT1) and GABAergic (vGAT) axon terminals in human cerebral cortices derived from epilepsy surgery. Specimens were obtained from 28 patients with different neuropathologically defined aetiologies: type Ia and type II focal cortical dysplasia, cryptogenic (no lesion) and temporal lobe epilepsy with hippocampal sclerosis. Autoptic tissues were used for comparison. Three-dimensional reconstructions of Golgi-impregnated neurons revealed severe dendritic reshaping and spine alteration in the core of the type II focal cortical dysplasia. Dysmorphic neurons showed increased dendritic complexity, reduction of dendritic spines and occasional filopodia-like protrusions emerging from the soma. Surprisingly, the intermingled normal-looking pyramidal neurons also showed severe spine loss and simplified dendritic arborization. No changes were observed outside the dysplasia (perilesional tissue) or in neocortical postsurgical tissue obtained in the other patient groups. Immunoreactivities of vGLUT1 and vGAT showed synaptic reorganization in the core of type II dysplasia characterized by the presence of abnormal perisomatic baskets around dysmorphic neurons, in particular those with filopodia-like protrusions, and changes in vGLUT1/vGAT expression. Ultrastructural data in type II dysplasia highlighted the presence of altered neuropil engulfed by glial processes. Our data indicate that the fine morphological aspect of neurons and dendritic spines are normal in epileptogenic neocortex, with the exception of type II dysplastic lesions. The findings suggest that the mechanisms leading to this severe form of cortical malformation interfere with the normal dendritic arborization and synaptic network organization. The data argue against the concept that long-lasting epilepsy and seizure recurrence per se unavoidably produce a dendritic pathology.

摘要

神经元树突分支和树突棘对于正常的突触传递至关重要,并且可能在癫痫的病理生理学中起着关键作用。在癫痫动物模型和癫痫患者的人脑组织中,均报道了海马神经元中树突形态的改变和树突棘的丧失。然而,目前尚不清楚这些树突异常是否与癫痫的病因有关,还是由癫痫发作复发引起的。我们使用高尔基染色研究了神经元的精细结构,包括树突和棘突的组织,并用谷氨酸能(vGLUT1)和 GABA 能(vGAT)轴突末梢的免疫组织化学标志物分析了人类大脑皮质中的突触网络,这些标本来自于癫痫手术的 28 名患者,这些患者的神经病理学病因不同:Ia 型和 II 型局灶性皮质发育不良、隐源性(无病变)和颞叶癫痫伴海马硬化。使用尸检组织进行了比较。高尔基染色神经元的三维重建显示,II 型局灶性皮质发育不良的核心区域存在严重的树突重塑和棘突改变。形态异常的神经元表现出树突复杂性增加、树突棘减少和偶尔从体细胞出现的丝状伪足样突起。令人惊讶的是,混杂的正常锥体神经元也表现出严重的棘突丧失和简化的树突分支。在发育不良之外(病变周围组织)或在其他患者组获得的新皮质手术后组织中均未观察到变化。II 型发育不良核心区域的 vGLUT1 和 vGAT 免疫反应性显示出突触重组的特征,表现为异常的体细胞周围篮状结构,特别是那些具有丝状伪足样突起的结构,以及 vGLUT1/vGAT 表达的变化。II 型发育不良的超微结构数据突出了异常神经胶的存在。我们的数据表明,除了 II 型发育不良病变外,致痫性新皮质神经元和树突棘的精细形态是正常的。这些发现表明,导致这种严重皮质畸形的机制干扰了正常的树突分支和突触网络组织。这些数据反驳了这样一种概念,即长期的癫痫和癫痫发作复发本身不可避免地会导致树突病理。

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Dendritic pathology, spine loss and synaptic reorganization in human cortex from epilepsy patients.

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[7]
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[8]
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[10]
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