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  • Epilepsy has been historically seen as a functional brain disorder associated with excessive synchronization of large neuronal populations leading to a hypersynchronous state. Recent evidence showed that epileptiform phenomena, particularly seizures, result from complex interactions between neuronal networks characterized by heterogeneity of neuronal firing and dynamical evolution of synchronization. Desynchronization is often observed preceding seizures or during their early stages; in contrast, high levels of synchronization observed towards the end of seizures may facilitate termination. In this review we discuss cellular and network mechanisms responsible for such complex changes in synchronization. Recent work has identified cell-type-specific inhibitory and excitatory interactions, the dichotomy between neuronal firing and the non-local measurement of local field potentials distant to that firing, and the reflection of the neuronal dark matter problem in non-firing neurons active in seizures. These recent advances have challenged long-established views and are leading to a more rigorous and realistic understanding of the pathophysiology of epilepsy.
  • Epilepsy has been historically seen as a functional brain disorder associated with excessive synchronization of large neuronal populations leading to a hypersynchronous state. Recent evidence showed that epileptiform phenomena, particularly seizures, result from complex interactions between neuronal networks characterized by heterogeneity of neuronal firing and dynamical evolution of synchronization. Desynchronization is often observed preceding seizures or during their early stages; in contrast, high levels of synchronization observed towards the end of seizures may facilitate termination. In this review we discuss cellular and network mechanisms responsible for such complex changes in synchronization. Recent work has identified cell-type-specific inhibitory and excitatory interactions, the dichotomy between neuronal firing and the non-local measurement of local field potentials distant to that firing, and the reflection of the neuronal dark matter problem in non-firing neurons active in seizures. These recent advances have challenged long-established views and are leading to a more rigorous and realistic understanding of the pathophysiology of epilepsy. (en)
Title
  • Synchronization and desynchronization in epilepsy: controversies and hypotheses
  • Synchronization and desynchronization in epilepsy: controversies and hypotheses (en)
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  • Synchronization and desynchronization in epilepsy: controversies and hypotheses
  • Synchronization and desynchronization in epilepsy: controversies and hypotheses (en)
skos:notation
  • RIV/00216208:11130/13:10209665!RIV14-MZ0-11130___
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  • I, P(NT11460)
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  • 4
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  • 109370
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  • RIV/00216208:11130/13:10209665
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  • focal epileptogenesis; phase synchronization; spatiotemporal dynamics; in-vitro; chaotic systems; neuronal-activity; fast ripples; seizure onset zone; temporal-lobe epilepsy; high-frequency oscillations (en)
http://linked.open.../riv/klicoveSlovo
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  • GB - Spojené království Velké Británie a Severního Irska
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  • [926C9858151F]
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  • Journal of Physiology
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  • 591
http://linked.open...iv/tvurceVysledku
  • Jefferys, John G. R.
  • Jiruška, Přemysl
  • Schevon, Catherine A.
  • Schiff, Steven J.
  • Schindler, Kaspar
  • de Curtis, Marco
http://linked.open...ain/vavai/riv/wos
  • 000315150000007
issn
  • 0022-3751
number of pages
http://bibframe.org/vocab/doi
  • 10.1113/jphysiol.2012.239590
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  • 11130
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