Differential Cortical Layer Engagement During Seizure Initiation and Spread in Humans.

Nature communications(2024)

引用 0|浏览18
暂无评分
摘要
Despite decades of research, we still do not understand how spontaneous human seizures start and spread - especially at the level of neuronal microcircuits. In this study, we used laminar arrays of micro-electrodes to simultaneously record the local field potentials and multi-unit neural activities across the six layers of the neocortex during focal seizures in humans. We found that, within the ictal onset zone, the discharges generated during a seizure consisted of current sinks and sources only within the infra-granular and granular layers. Outside of the seizure onset zone, ictal discharges reflected current flow in the supra-granular layers. Interestingly, these patterns of current flow evolved during the course of the seizure - especially outside the seizure onset zone where superficial sinks and sources extended into the deeper layers. Based on these observations, a framework describing cortical-cortical dynamics of seizures is proposed with implications for seizure localization, surgical targeting, and neuromodulation techniques to block the generation and propagation of seizures. How seizure propagation occurs across cortical layers in humans is not fully understood. Here the authors use intracerebral laminar electrodes (capable of recording the six layers of the cortex) during pre-surgical evaluations, and identify a signature of the area responsible for seizures characterized by pathological activities in the granular and infragranular layers.
更多
查看译文
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要