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epileptic encephalopathy is a devastating epilepsy syndrome caused by mutant , which encodes the voltage-gated sodium channel Na1.6. To date, it is unclear if and how inhibitory interneurons, which express Na1.6, influence disease pathology. Using both sexes of a transgenic mouse model of epileptic encephalopathy, we found that selective expression of the R1872W mutation in somatostatin (SST) interneurons was sufficient to convey susceptibility to audiogenic seizures. Patch-clamp electrophysiology experiments revealed that SST interneurons from mutant mice were hyperexcitable but hypersensitive to action potential failure via depolarization block under normal and seizure-like conditions. Remarkably, GqDREADD-mediated activation of WT SST interneurons resulted in prolonged electrographic seizures and was accompanied by SST hyperexcitability and depolarization block. Aberrantly large persistent sodium currents, a hallmark of mutations, were observed and were found to contribute directly to aberrant SST physiology in computational modeling and pharmacological experiments. These novel findings demonstrate a critical and previously unidentified contribution of SST interneurons to seizure generation not only in epileptic encephalopathy, but epilepsy in general. epileptic encephalopathy is a devastating neurological disorder that results from mutations in the sodium channel isoform Na1.6. Inhibitory neurons express Na1.6, yet their contribution to seizure generation in epileptic encephalopathy has not been determined. We show that mice expressing a human-derived variant (R1872W) selectively in somatostatin (SST) interneurons have audiogenic seizures. Physiological recordings from SST interneurons show that mutations lead to an elevated persistent sodium current which drives initial hyperexcitability, followed by premature action potential failure because of depolarization block. Furthermore, chemogenetic activation of WT SST interneurons leads to audiogenic seizure activity. These findings provide new insight into the importance of SST inhibitory interneurons in seizure initiation, not only in epileptic encephalopathy, but for epilepsy broadly.
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http://dx.doi.org/10.1523/JNEUROSCI.0718-21.2021 | DOI Listing |
FASEB J
September 2025
Department of Hematology, The Second Xiangya Hospital of Central South University, Changsha, Hunan, People's Republic of China.
Epilepsy is a common chronic nervous system disease that threatens human health. However, the role of FOXC1 and its relations with pyroptosis have not been fully studied in epilepsy. Sprague-Dawley rats were obtained for constructing temporal lobe epilepsy (TLE) models.
View Article and Find Full Text PDFEpileptic Disord
September 2025
Unit of Child Neurology and Psychiatry, ASST-Spedali Civili of Brescia, Brescia, Italy.
Protein ufymilation is a post-translational modification implicated in the regulation of several cellular processes. Biallelic variants in UBA5 causing a functional alteration of its protein product have been associated with early-onset epileptic encephalopathy 44 (EIEE44), a rare disease for which 28 patients have been described in the literature at present. We here report on the clinical and detailed EEG phenotype of a novel patient affected by EIEE44.
View Article and Find Full Text PDFJ Integr Neurosci
August 2025
Central Laboratory, The First Affiliated Hospital of Henan Polytechnic University (Jiaozuo Second People's Hospital), 454001 Jiaozuo, Henan, China.
Background: Epilepsy, a significant neurological condition marked by the occurrence of repeated seizures, continues to pose a substantial health challenge. Previous studies have indicated that Dipeptidyl Peptidase-4 (DPP4) inhibitors may possess antiepileptic properties. Ferroptosis, a newly discovered type of programmed cell death, has recently surfaced as a promising therapeutic target in the management of epilepsy.
View Article and Find Full Text PDFFront Pediatr
August 2025
Department of Ophthalmology, Peking University People's Hospital, Beijing, China.
Background: The m.3243A>G mutation in the MT-TL1 gene is the most common mtDNA mutation. The mutation can lead to a spectrum of conditions, including diabetes, hearing loss, heart and muscle involvement, encephalopathy and epilepsy, gastrointestinal problems, and vision impairment, often occurring concurrently-collectively referred to as MELAS (mitochondrial encephalopathy lactic acidosis and stroke-like episodes) syndrome.
View Article and Find Full Text PDFImmune Netw
August 2025
Department of Microbiology and Immunology, Yonsei University College of Medicine, Seoul 03722, Korea.
Developmental and epileptic encephalopathies (DEEs), including Infantile Epileptic Spasms Syndrome (IESS) and Lennox-Gastaut Syndrome (LGS), are severe pediatric conditions characterized by profound developmental delays and treatment-resistant epilepsy. Although steroid therapies provide some clinical benefits, the underlying immunological mechanisms remain poorly understood. In this study, we performed comprehensive immune profiling using multi-parametric flow cytometry on PBMCs from IESS (n=25) and LGS (n=9) patients, comparing them with age-matched healthy controls (n=54).
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