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

Brain ◽  
2020 ◽  
Author(s):  
Laura Rossini ◽  
Dalia De Santis ◽  
Roberta Rosa Mauceri ◽  
Chiara Tesoriero ◽  
Marina Bentivoglio ◽  
...  

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.

2021 ◽  
Vol 132 (3) ◽  
pp. 782-792 ◽  
Author(s):  
Stefan Rampp ◽  
Karl Rössler ◽  
Hajo Hamer ◽  
Margit Illek ◽  
Michael Buchfelder ◽  
...  

2021 ◽  
Vol 14 (1) ◽  
Author(s):  
Arpna Srivastava ◽  
Krishan Kumar ◽  
Jyotirmoy Banerjee ◽  
Manjari Tripathi ◽  
Vivek Dubey ◽  
...  

AbstractFocal cortical dysplasia (FCD) is a malformation of the cerebral cortex with poorly-defined epileptogenic zones (EZs), and poor surgical outcome in FCD is associated with inaccurate localization of the EZ. Hence, identifying novel epileptogenic markers to aid in the localization of EZ in patients with FCD is very much needed. High-throughput gene expression studies of FCD samples have the potential to uncover molecular changes underlying the epileptogenic process and identify novel markers for delineating the EZ. For this purpose, we, for the first time performed RNA sequencing of surgically resected paired tissue samples obtained from electrocorticographically graded high (MAX) and low spiking (MIN) regions of FCD type II patients and autopsy controls. We identified significant changes in the MAX samples of the FCD type II patients when compared to non-epileptic controls, but not in the case of MIN samples. We found significant enrichment for myelination, oligodendrocyte development and differentiation, neuronal and axon ensheathment, phospholipid metabolism, cell adhesion and cytoskeleton, semaphorins, and ion channels in the MAX region. Through the integration of both MAX vs non-epileptic control and MAX vs MIN RNA sequencing (RNA Seq) data, PLP1, PLLP, UGT8, KLK6, SOX10, MOG, MAG, MOBP, ANLN, ERMN, SPP1, CLDN11, TNC, GPR37, SLC12A2, ABCA2, ABCA8, ASPA, P2RX7, CERS2, MAP4K4, TF, CTGF, Semaphorins, Opalin, FGFs, CALB2, and TNC were identified as potential key regulators of multiple pathways related to FCD type II pathology. We have identified novel epileptogenic marker elements that may contribute to epileptogenicity in patients with FCD and could be possible markers for the localization of EZ.


2018 ◽  
Vol 8 (1) ◽  
Author(s):  
Aparna Banerjee Dixit ◽  
Devina Sharma ◽  
Manjari Tripathi ◽  
Arpna Srivastava ◽  
Debasmita Paul ◽  
...  

2016 ◽  
Vol 33 (3) ◽  
pp. 672-682
Author(s):  
Azusa Tabata ◽  
Keiko Hara ◽  
Motoki Inaji ◽  
Natsumi Tamada ◽  
Reina Kawanami ◽  
...  

2019 ◽  
Vol 10 ◽  
Author(s):  
Chao Zhang ◽  
Bao-tian Zhao ◽  
Aileen McGonigal ◽  
Wen-han Hu ◽  
Xiu Wang ◽  
...  

Epilepsia ◽  
2020 ◽  
Vol 61 (4) ◽  
pp. 667-678
Author(s):  
Zhongbin Zhang ◽  
Kai Gao ◽  
Qingzhu Liu ◽  
Jiapeng Zhou ◽  
Xiyuan Li ◽  
...  

Epilepsia ◽  
2012 ◽  
Vol 53 (2) ◽  
pp. 349-358 ◽  
Author(s):  
Francine Chassoux ◽  
Elisabeth Landré ◽  
Charles Mellerio ◽  
Baris Turak ◽  
Michael W. Mann ◽  
...  

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