Chemogenetics with PSAM4-GlyR decreases excitability and epileptiform activity in epileptic hippocampus
海马体
神经科学
癫痫
生物
心理学
作者
Ana Gonzalez‐Ramos,Fredrik Berglind,Jan Kudláček,Elza Ribeiro Rocha,Esbjörn Melin,Ana M. Sebastião,Cláudia A. Valente,Marco Ledri,My Andersson,Mérab Kokaia
Abstract Despite the availability of new drugs on the clinics in recent years, drug-resistant epilepsy remains an unresolved challenge for healthcare, and one-third of epilepsy patients remain refractory to anti-seizure medications. Gene therapy in experimental models has emerged as effective treatment targeting specific neuronal populations in the epileptogenic focus. When combined with an external chemical activator using chemogenetics, it also becomes an “on-demand” treatment. Here, we evaluate a targeted and specific chemogenetic therapy, the PSAM/PSEM system, which holds promise as a potential candidate for clinical application in treating drug-resistant epilepsy. We show that the inert ligand uPSEM 817 , which selectively activates the chloride-permeable channel PSAM 4 -GlyR, effectively reduces the number of depolarization-induced action potentials in vitro. This effect is likely due to the shunting of depolarizing currents, as evidenced by decreased membrane resistance in these cells. In organotypic slices, uPSEM 817 decreased the number of bursts and peak amplitude of events of spontaneous epileptiform activity. Although administration of uPSEM 817 in vivo did not significantly alter electrographic seizures in a male mouse model of temporal lobe epilepsy, it did demonstrate a strong trend toward reducing the frequency of interictal epileptiform discharges. These findings indicate that PSAM 4 -GlyR-based chemogenetics holds potential as an anti-seizure strategy, although further refinement is necessary to enhance its efficacy.