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Zsigri, N.

Publications and source records attributed to Zsigri, N..

2 recordsLinked to original sources

Heterogeneity of ictal firing during generalized seizures in the awake cortex

Cortico-thalamo-cortical oscillations are central to both normal and pathological brain activities and emerge from complex cortical and thalamic interactions. However, the specific activity of identified cortical neurons during the paroxysmal oscillations associated with absence seizures (ASs) in awake animals remains underexplored. The dominant narrative suggests that seizures indiscriminately disrupt cortical activity through generalized hyperexcitability, but direct evidence supporting this view is lacking. Here, we recorded single units from pyramidal neurons and different interneuron subtypes in the neocortex of two validated rodent models of absence epilepsy under awake, behaving conditions. We find that neurons maintain their firing rank order across interictal and ictal states, regardless of whether their ictal firing rate increases, decreases, or remains stable compared to the interictal phase. Rather than a random cortical takeover, ictal activity represents a scalable modulation of pre-existing network states. These results challenge the generalized hyperexcitability model and highlight the structured, heterogeneous nature of cortical activity during ASs, with implications for mechanistic understanding and targeted therapies.

neuroscience↗

Higher-order thalamic nuclei facilitate the generalization and maintenance of spike-and-wave discharges in absence seizures

Spike-and-wave discharges (SWDs), generated by the cortico-thalamo-cortical (CTC) network, are pathological, large amplitude oscillations and the hallmark of absence seizures (ASs). SWDs begin in a cortical initiation network in both humans and animal models, including the Genetic Absence Epilepsy Rats from Strasbourg (GAERS), where it is located in the primary somatosensory cortex (S1). The behavioral manifestation of an AS occurs when SWDs spread from the cortical initiation site to the whole brain, however, the mechanisms behind this rapid propagation remain unclear. Here we investigated these processes beyond the principal CTC network, in higher-order (HO) thalamic nuclei (lateral posterior (LP) and posterior (PO) nuclei) since their diffuse connectivity and known facilitation of intracortical communications make these nuclei key candidates to support SWD generation and maintenance. In freely moving GAERS, multi-site LFP in LP, PO and multiple cortical regions revealed a novel feature of SWDs: during SWDs there are short periods (named SWD-breaks) when cortical regions far from S1, such the primary visual cortex (V1), become transiently unsynchronized from the ongoing EEG rhythm. Inactivation of HO nuclei with local muscimol injections or optogenetic perturbation of HO nuclei activity increased the occurrence of SWD-breaks and the former intervention also increased the SWD propagation-time from S1. The neural underpinnings of these findings were explored further by silicon probe recordings from single units of PO which uncovered two previously unknown groups of excitatory neurons based on their burst firing dynamics at SWD onset. Moreover, a switch from tonic to burst firing at SWD onset was shown to be an important feature since it was much less prominent for non-generalized events, i.e. SWDs that remained local to S1. Additionally, one group of neurons showed a reverse of this switch during SWD-breaks, demonstrating the importance of this firing pattern throughout the SWD. In summary, these results support the view that multiple HO thalamic nuclei are utilized at SWD onset and contribute to cortical synchrony throughout the paroxysmal discharge.

neuroscience↗