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Sheybani, L.

Publications and source records attributed to Sheybani, L..

2 recordsLinked to original sources

Fast-ripples are emergent properties of neuronal networks

Fast-ripples (250-500 Hz) have been proposed as a promising biomarker in epilepsy, but their specificity remains unclear. In particular, it is uncertain whether they reflect chance coincident neural activity or distinctly generated pathological entities. We combined in silico simulations, neuronal cultures, the intra-hippocampal kainate rat model of hippocampal epilepsy, and human microwire recordings to investigate whether fast-ripples occur more frequently than expected by the chance aggregation of action potentials. Our simulations showed that chance aggregation can generate fast-ripples and that their incidence changes depending on brain state, an observation that we confirmed in our rodent data. The likelihood of exceeding chance depended on biological system complexity and vigilance state: fast-ripples in neuronal cultures did not surpass chance levels, whereas those in awake - but not sleeping - rodents did. Similarly, the incidence of fast-ripples in awake human recordings was ~30% greater than expected by chance. As such, our findings suggest that most fast-ripples reflect stochastic network activity rather than distinctly generated pathological entities. This work does not rule out FRs as potential indicators of epileptogenic tissue, but it does challenge prevailing assumptions about their generation and specificity. Their higher prevalence in epileptogenic tissue is likely primarily due to increased excitation and/or neural synchronization, rather than peculiar abnormalities in network behavior.

neuroscience↗

Involvement of remote regions in sustained, but not transient, epileptic activities in the kainate mouse model of temporal lobe epilepsy

Animal and human studies have shown that the seizure-generating region is vastly dependent on distant neuronal hubs that can decrease duration and propagation of ongoing seizures. However, we still lack a comprehensive understanding of the impact of distant brain areas on specific interictal or ictal epileptic activities (e.g., isolated spikes, spike trains, seizures). Such knowledge is critically needed since all kinds of epileptic activities are not equivalent in terms of clinical expression and impact on the progression of the disease. We used surface, high-density EEG and multisite intracortical recordings, combined with pharmacological silencing of specific brain regions in the well-known kainate mouse model of temporal lobe epilepsy. We tested the impact of selective regional silencing on the generation of epileptic activities within a continuum ranging from very transient to more sustained and long-lasting discharges reminiscent of seizures. Silencing the contralateral hippocampus completely suppresses sustained ictal activities in the focus, as efficiently as silencing the focus itself, but while focus silencing abolishes all focal activities, contralateral silencing fails to control transient spikes. In parallel, we observed that sustained epileptic discharges in the focus are preceded by contralateral firing and more strongly phase locked to bi-hippocampal delta/theta oscillations than transient spiking activities, reinforcing the presumed dominant role of the contralateral hippocampus in promoting long-lasting, but not transient, epileptic activities. Altogether, our work provides suggestive evidence that the contralateral hippocampus is necessary for the interictal-to ictal-state transition and proposes that cross-talk between contralateral neuronal activity and ipsilateral delta/theta oscillation could be a candidate mechanism underlying the progression from short to long-lasting epileptic activities. Key PointsO_LIWe study how regions remote from the focus influence epileptic activities in the kainate mouse model of temporal lobe epilepsy. C_LIO_LIThe contralateral hippocampus plays a decisive role in the initiation of sustained epileptic activities C_LIO_LIIntegration of contralateral activities and bi-hippocampal delta/theta oscillations precedes focal paroxysmal activities C_LIO_LIWe propose that a large-scale epileptic network might be necessary for the transition from interictal to ictal states C_LI

neuroscience↗