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Acute Changes in Electrophysiological Properties of Cortical Regular-Spiking Cells Following Seizures in a Rat Lithium-Pilocarpine Model.
Smirnova, Elena Y; Amakhin, Dmitry V; Malkin, Sergey L; Chizhov, Anton V; Zaitsev, Aleksey V.
Affiliation
  • Smirnova EY; Sechenov Institute of Evolutionary Physiology and Biochemistry of RAS (IEPhB), 44, Toreza prospekt, Saint Petersburg 194223, Russia; Ioffe Institute, 26, Politekhnicheskaya, St Petersburg 194021, Russia.
  • Amakhin DV; Sechenov Institute of Evolutionary Physiology and Biochemistry of RAS (IEPhB), 44, Toreza prospekt, Saint Petersburg 194223, Russia.
  • Malkin SL; Sechenov Institute of Evolutionary Physiology and Biochemistry of RAS (IEPhB), 44, Toreza prospekt, Saint Petersburg 194223, Russia.
  • Chizhov AV; Sechenov Institute of Evolutionary Physiology and Biochemistry of RAS (IEPhB), 44, Toreza prospekt, Saint Petersburg 194223, Russia; Ioffe Institute, 26, Politekhnicheskaya, St Petersburg 194021, Russia.
  • Zaitsev AV; Sechenov Institute of Evolutionary Physiology and Biochemistry of RAS (IEPhB), 44, Toreza prospekt, Saint Petersburg 194223, Russia; Almazov National Medical Research Centre, Institute of Experimental Medicine, 2 Akkuratova Street, St. Petersburg 197341, Russia. Electronic address: aleksey_zaitsev@m
Neuroscience ; 379: 202-215, 2018 05 21.
Article in En | MEDLINE | ID: mdl-29580962
Profound alterations in both the synaptic and intrinsic membrane properties of neurons that increase the neuronal network excitability are found in epileptic tissue. However, there are still uncertainties regarding the kind of changes in the intrinsic membrane properties occurring during epileptogenesis. Epileptogenesis is typically triggered by the initial brain-damaging insult, and status epilepticus (SE) is one of such insults. In the present study, we explored the acute changes in the intrinsic membrane properties of pyramidal cells one day after SE in a rat lithium-pilocarpine model. Using whole-cell patch-clamp recording and the dynamic-clamp technique, we investigated the properties of regular-spiking neurons in the entorhinal cortex (EC) and the medial prefrontal cortex (PFC), two areas differentially affected by SE. We found that one day after SE: (1) the intrinsic membrane properties of EC neurons are significantly altered, while the properties of PFC neurons are mostly unchanged; (2) the input resistance and membrane time constant of regular-spiking neurons are reduced due to enhanced leak current; (3) the active membrane properties of neurons are mostly unaffected; and (4) changes in the passive membrane properties diminish the intrinsic neuronal excitability. Therefore, our results suggest that the acute changes in the intrinsic membrane properties of entorhinal neurons following pilocarpine-induced SE do not contribute to network hyperexcitability. In contrast, at the early stage of epileptogenesis, protective homeostatic plasticity of intrinsic membrane properties is observed in the EC; it reduces the neuronal excitability in response to increased network excitability.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Status Epilepticus / Prefrontal Cortex / Pyramidal Cells / Entorhinal Cortex Limits: Animals Language: En Journal: Neuroscience Year: 2018 Document type: Article Affiliation country: Rusia Country of publication: Estados Unidos

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Status Epilepticus / Prefrontal Cortex / Pyramidal Cells / Entorhinal Cortex Limits: Animals Language: En Journal: Neuroscience Year: 2018 Document type: Article Affiliation country: Rusia Country of publication: Estados Unidos