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1.
Int J Mol Sci ; 25(14)2024 Jul 10.
Artículo en Inglés | MEDLINE | ID: mdl-39062811

RESUMEN

Epilepsy is known to cause alterations in neural networks. However, many details of these changes remain poorly understood. The objective of this study was to investigate changes in the properties of hippocampal CA1 pyramidal neurons and their synaptic inputs in a rat lithium-pilocarpine model of epilepsy. In the chronic phase of the model, we found a marked loss of pyramidal neurons in the CA1 area. However, the membrane properties of the neurons remained essentially unaltered. The results of the electrophysiological and morphological studies indicate that the direct pathway from the entorhinal cortex to CA1 neurons is reinforced in epileptic animals, whereas the inputs to them from CA3 are either unaltered or even diminished. In particular, the dendritic spine density in the str. lacunosum moleculare, where the direct pathway from the entorhinal cortex terminates, was found to be 2.5 times higher in epileptic rats than in control rats. Furthermore, the summation of responses upon stimulation of the temporoammonic pathway was enhanced by approximately twofold in epileptic rats. This enhancement is believed to be a significant contributing factor to the heightened epileptic activity observed in the entorhinal cortex of epileptic rats using an ex vivo 4-aminopyridine model.


Asunto(s)
Región CA1 Hipocampal , Modelos Animales de Enfermedad , Epilepsia , Litio , Pilocarpina , Células Piramidales , Animales , Células Piramidales/patología , Células Piramidales/metabolismo , Ratas , Epilepsia/inducido químicamente , Epilepsia/patología , Epilepsia/fisiopatología , Masculino , Región CA1 Hipocampal/patología , Litio/toxicidad , Litio/farmacología , Corteza Entorrinal/patología , Ratas Wistar
2.
Int J Mol Sci ; 24(1)2022 Dec 22.
Artículo en Inglés | MEDLINE | ID: mdl-36613660

RESUMEN

Low-frequency electrical stimulation is used to treat some drug-resistant forms of epilepsy. Despite the effectiveness of the method in suppressing seizures, there is a considerable risk of side effects. An optogenetic approach allows the targeting of specific populations of neurons, which can increase the effectiveness and safety of low-frequency stimulation. In our study, we tested the efficacy of the suppression of ictal activity in entorhinal cortex slices in a 4-aminopyridine model with three variants of low-frequency light stimulation (LFLS): (1) activation of excitatory and inhibitory neurons (on Thy1-ChR2-YFP mice), (2) activation of inhibitory interneurons only (on PV-Cre mice after virus injection with channelrhodopsin2 gene), and (3) hyperpolarization of excitatory neurons (on Wistar rats after virus injection with archaerhodopsin gene). Only in the first variant did simultaneous LFLS of excitatory and inhibitory neurons replace ictal activity with interictal activity. We suggest that LFLS caused changes in the concentration gradients of K+ and Na+ cations across the neuron membrane, which activated Na-K pumping. According to the mathematical modeling, the increase in Na-K pump activity in neurons induced by LFLS led to an antiepileptic effect. Thus, a less specific and generalized optogenetic effect on entorhinal cortex neurons was more effective in suppressing ictal activity in the 4-aminopyridine model.


Asunto(s)
Corteza Entorrinal , Interneuronas , Animales , Ratones , Ratas , 4-Aminopiridina/farmacología , Corteza Entorrinal/metabolismo , Interneuronas/metabolismo , Optogenética , Parvalbúminas/genética , Parvalbúminas/metabolismo , Ratas Wistar
3.
Brain Stimul ; 13(5): 1387-1395, 2020.
Artículo en Inglés | MEDLINE | ID: mdl-32717394

RESUMEN

Low-frequency electrical stimulation (LFES) of the brain is one of the promising methods for helping patients with pharmacoresistant epilepsy. However, the mechanism of the antiepileptic effect of LFES is still unclear. We applied electrophysiological and pharmacological tools and mathematical modeling to investigate it. Using the 4-aminopyridine (4-AP) model of epileptiform activity in juvenile rat brain slices, we found that LFES increased the interval between ictal discharges (IDs) in the entorhinal cortex. The blockade of GABAA, GABAB, AMPA, or NMDA synaptic receptors strongly affected the characteristics of epileptiform discharges in slices. However, only under the blockade of GABAB receptors, LFES becomes entirely ineffective, indicating that the activation of GABAB receptors underlies the main LFES antiepileptic effect. Further experiments allowed us to suggest that LFES activates mostly presynaptic GABAB receptors, which decrease the probability of glutamate release. In line with this hypothesis is the following data: 1) LFES reduces the short-term synaptic depression of excitatory postsynaptic currents similar to the agonist of GABAB receptors SKF-97541; 2) the blockade of excitatory amino acid transporters diminishes the antiepileptic effect of LFES; 3) modeling of the effects of LFES on the probability of glutamate release with a previously proposed mathematical model of epileptiform activity Epileptor-2 also shows the increase of the interval between IDs. Our findings point out a crucial role of presynaptic GABAB receptors in the antiepileptic effect of LFES in the 4-AP model in juvenile rat brain slices.


Asunto(s)
4-Aminopiridina/toxicidad , Epilepsia/inducido químicamente , Epilepsia/fisiopatología , Hipocampo/fisiopatología , Receptores de GABA-B/fisiología , Animales , Anticonvulsivantes/farmacología , Anticonvulsivantes/uso terapéutico , Estimulación Eléctrica/métodos , Epilepsia/tratamiento farmacológico , Potenciales Postsinápticos Excitadores/efectos de los fármacos , Potenciales Postsinápticos Excitadores/fisiología , Ácido Glutámico/fisiología , Hipocampo/efectos de los fármacos , Masculino , Técnicas de Cultivo de Órganos , Bloqueadores de los Canales de Potasio , Ratas , Ratas Wistar , Ácido gamma-Aminobutírico/fisiología
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