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Cortical neuronal hypertrophy and mTOR pathway activation in CAN regions in SUDEP
Smriti Patodia1, Yau Mun Lim2, Freda Chung1
1Department of Clinical and Experimental Epilepsy, UCL Queen Square Institute of Neurology, London, UK.
Objectives:
Dysfunctional connectivity and preexisting structural abnormalities of central autonomic network (CAN) regions have been shown on magnetic resonance imaging (MRI) in sudden unexpected death in epilepsy (SUDEP) and may be mechanistically relevant. In a previous postmortem study we reported increased microglia in CAN regions, including the superior temporal gyrus (STG) in SUDEP. In this current study we investigated mammalian target of rapamycin (mTOR) pathway activation and neuronal c-Fos activation in CAN regions in SUDEP compared to control groups.
Methods:
In a series of 59 postmortem cases (SUDEP, n = 26; epilepsy controls [EPCs], n = 14; and nonepilepsy controls [NECs], n = 19), we quantified pS6-240/4, pS6-235/6 (markers of mTOR activation) and c-Fos neuronal densities and labeling index in the STG, anterior cingulate, insula, frontobasal, and pulvinar regions using immunohistochemistry with whole-slide automated image analysis.
Results:
Significantly more pS6-positive neurons were present in the STG in cases with a history of recent seizures prior to death and also in SUDEP compared to other cause of death groups. No differences were noted for c-Fos neuronal labeling in any region between cause of death groups. Cortical neuronal hypertrophy in the STG was observed in some SUDEP cases and associated with pS6-240/4 expression. pS6-235/6 highlighted neuronal intranuclear inclusions, mainly in SUDEP cases and in the STG region.
Significance:
Neuronal labeling for pS6 in the STG correlated with both seizure activity in the period prior to death and SUDEP. Further investigations are required to explore the significance of this region in terms of autonomic network dysfunction that may increase the vulnerability for SUDEP.
Insights
Sudden unexpected death in epilepsy (SUDEP) shows increased mTOR pathway activation in the superior temporal gyrus (STG), linked to recent seizures. This suggests the STG
Area of Science:
- Neuroscience
- Epilepsy Research
- Autonomic Nervous System
Background:
- Dysfunctional connectivity and structural abnormalities in central autonomic network (CAN) regions are implicated in sudden unexpected death in epilepsy (SUDEP).
- Previous studies noted increased microglia in CAN regions, including the superior temporal gyrus (STG), in SUDEP cases.
Purpose of the Study:
- To investigate mammalian target of rapamycin (mTOR) pathway activation and neuronal c-Fos activation in CAN regions in SUDEP.
- To compare these markers between SUDEP cases, epilepsy controls (EPCs), and nonepilepsy controls (NECs).
Main Methods:
- Postmortem analysis of 59 cases (26 SUDEP, 14 EPCs, 19 NECs).
- Immunohistochemistry quantified pS6 (mTOR activation marker) and c-Fos neuronal densities in STG, anterior cingulate, insula, frontobasal, and pulvinar regions.
- Whole-slide automated image analysis was employed.
Main Results:
- Significantly higher pS6-positive neurons were found in the STG in SUDEP cases and those with recent seizures prior to death.
- Neuronal hypertrophy in the STG was observed in some SUDEP cases, associated with pS6-240/4 expression.
- pS6-235/6 highlighted neuronal intranuclear inclusions, predominantly in SUDEP cases within the STG.
Conclusions:
- Neuronal pS6 labeling in the STG correlates with seizure activity and SUDEP.
- These findings highlight the STG's potential role in autonomic network dysfunction contributing to SUDEP vulnerability.
- Further research is needed to elucidate the STG's significance in SUDEP pathogenesis.
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