Clobazam and Valproate, but Lamotrigine, a Sodium Channel Inhibitor, Reduce the Incidence of Hyperthermia-Induced Clonic Seizures in Dravet Syndrome Mice: Assessment of Anti-Seizure Effects in Mice Using a Stabilized Ambient Temperature System
BACKGROUND: Dravet syndrome (DS) is a severe and treatment-resistant epileptic encephalopathy, most commonly caused by de novo mutations in the sodium voltage-gated channel alpha subunit 1 (SCN1A) gene. Patients with DS often present with febrile seizures. It has been reported that Scn1a mutant mice have the risk for hyperthermia-induced clonic seizures similar to those observed in patients with DS. Using our heating protocol with an incubator, we evaluated the effects of antiseizure medications on the incidence of hyperthermia-induced clonic seizures in mutant Scn1a knock-in (KI)/+ mice. METHODS: For clonic seizure induction in Scn1a KI/+ mice, each mouse was placed into an incubator (38°C-40°C) and observed for 15 min. Antiseizure medications were administered orally 30 min prior to the experiment. The time to seizure onset and the incidence of clonic seizures were analyzed to evaluate and compare the antiseizure effects among treatment groups. RESULTS: Our incubation system increased the body temperature of mice and induced clonic seizures in Scn1a KI/+ mice. Clobazam (CLB) and valproate (VPA) significantly reduced the incidence of hyperthermia-induced clonic seizures in Scn1a KI/+ mice, with 50% effective dose (ED50) values of 1.94 mg/kg (95% confidence interval [CI]: 0.93-3.89 mg/kg) and 255.87 mg/kg (95% CI: 188.66-356.85 mg/kg) respectively, and prolonged the time to seizure onset. In contrast, lamotrigine (LTG), a sodium channel blocker, did not reduce the incidence of hyperthermia-induced seizures. CLB and LTG did not affect the body temperature. VPA decreased the body temperature compared to the vehicle-treated mice before and after incubation. CONCLUSION: These results reflect clinical findings that CLB and VPA suppress, but LTG does not suppress seizures in patients with DS. Our data demonstrate the validity of our test system to induce hyperthermia-induced seizures and to evaluate the efficacy of antiseizure medications in Scn1a KI/+ mice.
OBJECTIVE: To determine the extent to which electroclinical information available at initial evaluation allows classification of idiopathic generalized epilepsy (IGE) syndromes, and to assess the contributions of seizure semiology and age at seizure onset to early syndromic diagnosis. METHODS: We prospectively analyzed a cohort of patients with new-onset seizures who underwent a structured clinical evaluation, including detailed history-taking, 3-h video-EEG, and epilepsy-protocol MRI. Seizure semiology was assessed at three levels: index seizure, initial seizure type, and seizure types identified at initial evaluation. Syndromic classification followed International League Against Epilepsy criteria. Final electroclinical diagnosis, established after longitudinal follow-up, served as reference. Within patients ultimately diagnosed with one of the four IGE syndromes, baseline data were used to determine whether the final syndrome could be assigned at initial evaluation. RESULTS: Of 2699 patients evaluated, 498 (18.4%) met criteria for genetic generalized epilepsy, of whom 401 (80.5%) were classified as having one of the IGE syndromes. Based on initial evaluation, the correct syndrome could be assigned in 366 patients (91.3%), whereas 7 (1.7%) would have been misclassified and 28 (7.0%) were not assignable. Non-assignability was confined to absence epilepsies, reflecting overlap between childhood (CAE) and juvenile absence epilepsy (JAE), whereas misclassification occurred only in juvenile myoclonic epilepsy (JME) presenting with isolated generalized tonic-clonic (GTC) seizures. Classification based on the index seizure alone showed limited accuracy (63.6%), whereas incorporation of seizure types identified through structured history improved classification to 95.0%. Myoclonic seizures were highly specific for JME, whereas absence and GTC seizures required integration with additional features. Age at seizure onset strongly differentiated CAE from JAE (AUC 0.935). SIGNIFICANCE: Electroclinical classification of IGE syndromes is frequently achievable at initial evaluation when based on seizure semiology and age at onset. When classification is not possible, limitations follow predictable electroclinical patterns, supporting a structured, history-driven diagnostic approach. PLAIN LANGUAGE SUMMARY: This study examined how accurately doctors can identify specific types of generalized epilepsy when patients are first evaluated. Among 401 patients with generalized epilepsy, the correct epilepsy syndrome could be identified in more than 90% at the first visit. Looking beyond the first seizure and asking about all seizure types together with age at seizure onset greatly improved diagnosis. While some overlap exists between specific types (like childhood versus juvenile absence epilepsy), a thorough clinical evaluation from the start provides reliable diagnostic direction for patients and supports early and accurate diagnosis.
The extracellular milieu, including extracellular vesicles (EVs), plays a pivotal role in brain development. In this study, we sought to elucidate the pathogenesis of progressive myoclonus epilepsy type 1 (EPM1), a disease caused by mutations in the CSTB gene, using cerebral organoids (COs) derived from patient cells. The results demonstrate that EPM1 COs display increased electrophysiological activity and disrupted excitatory/inhibitory (E/I) balance. Single-cell RNA sequencing analysis of ventral EPM1-COs revealed an abnormal specification of progenitor fate, with a shift toward dorsal neuron identities. We demonstrated that this misspecification is driven by a functional alteration of the ventral signaling niche, resulting from impaired EV dynamics and altered protein cargo. Mechanistically, we identified Sonic Hedgehog (SHH) as a direct physical interactor of CSTB and demonstrated that CSTB deficiency leads to reduced SHH content and secretion. Our findings establish CSTB as a safeguard of ventral patterning and identify the CSTB-SHH-EV axis as a potential therapeutic target for mitigating the E/I imbalance associated with EPM1.
BACKGROUND: Pathogenic variants in SLC6A1, which encodes the γ-aminobutyric acid (GABA) transporter GAT-1, cause developmental and epileptic encephalopathies (DEEs) through reduced GABA uptake, impaired transporter trafficking, and functional haploinsufficiency. 4-phenylbutyrate (PBA) is a clinically available small molecule with chemical-chaperone and histone-deacetylase-inhibitor activities that can rescue misfolded GABAergic proteins, but variant-level rescue data are needed to guide precision treatment. METHODS: We report a novel de novo missense mutation p.Ala305Val in GAT-1 encoding SLC6A1, in a patient with myoclonic-atonic epilepsy and a developmental and epileptic encephalopathy phenotype. Ala305Val was compared with the residue-matched comparator p.Ala305Thr (Ala305Thr). Variant effects were evaluated by (i) protein-structure prediction across nine stability-prediction algorithms using the cryo-EM-derived human GAT-1 template (PDB 7Y7W); (ii) 3H-GABA uptake assays in HEK293T cells and in human iPSC-derived astrocytes and cortical neurons; (iii) live-cell confocal microscopy of ER colocalization; (iv) pharmacologic rescue with PBA, TUDCA and salubrinal (v) and GAT-1 cDNA gene-augmentation, alone and in combination with PBA. RESULTS: AI-based stability predictors uniformly indicated destabilization of GAT-1 p.Ala305Val and GAT-1 p.Ala305Thr. GAT-1 p.Ala305Val reduced 3H GABA uptake across HEK293Ts, astrocytes, and neurons. The mutant transporter accumulated within the endoplasmic reticulum (ER), with ER colocalization rising from approximately 30% in wildtype to ~80% in GAT-1 p.Ala305Val; PBA reduced ER retention to approximately ~40% and restored total GAT-1 fluorescence toward wildtype levels. Pharmacochaperones (PBA, TUDCA) restored GABA uptake for the mutant transporters. Wildtype GAT-1 gene augmentation improved GABA uptake in the heterozygous condition but combined PBA plus wildtype allele augmentation produced rescue greater than either intervention alone in the available dose-response ranges. CONCLUSIONS: GAT-1 p.Ala305Val is a trafficking-impaired, loss-of-function variant whose dysfunction is amenable to two convergent therapeutic axes: pharmacologic correction of folding and trafficking, and augmentation of functional transporter expression. These findings support a two-pronged precision-medicine framework for SLC6A1-related DEEs in which PBA increased the transporter function augmented by genetic approaches.
BACKGROUND: Variants in GBA1 are associated with neurodegenerative disease. This study aimed to explore pathogenic GBA1 variants. METHODS: Four patients with progressive myoclonic epilepsy (PME) and extremely low β-glucosidase levels were recruited. Whole-exome sequencing and long-range PCR were performed to identify GBA1 variants. Bioinformatic analyses were used to predict the impact of the identified variants. A literature review was performed to explore the genotype-phenotype correlations. GBA1 expression data across different brain regions and developmental stages were analyzed using the BrainSpan database. RT-PCR was performed to verify the splicing effects. RESULTS: Compound heterozygous GBA1 variants were identified in four patients. Five distinct variants were detected, including two novel splice site variants (c.308-2A>G and c.762-2A>C) and three previously reported variants. All identified variants were rare or absent in gnomAD. Splice site variants c.308-2A>G and c.762-2A>C were predicted to cause aberrant splicing. Minigene-based splicing assays coupled with RT-PCR and Sanger sequencing confirmed that both variants cause complete exon skipping (exon 4 and exon 7, respectively). All patients presented with PME onset in childhood/adolescence, intellectual regression, low β-glucosidase, and diffuse brain atrophy and were subsequently diagnosed with Gaucher disease type 3. GBA1 expression in the brain showed two distinct peaks: one in infancy and another after five years of age. The onset age of PME aligned with the second GBA1 expression peak (after five years of age). CONCLUSION: This study identified compound heterozygous GBA1 variants, including two novel candidate pathogenic splice site variants, in Gaucher disease type 3 patients, expanding the known mutational spectrum.