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Brewster, A. L.

Publications and source records attributed to Brewster, A. L..

3 recordsLinked to original sources

Severity-dependent proteomic alterations in the rat hippocampus following pilocarpine-induced status epilepticus

Status epilepticus (SE) is a prolonged seizure state that can induce lasting hippocampal damage and promote the development of spontaneous seizures and cognitive deficits. The severity and duration of SE strongly influence these long-term outcomes; however, many experimental studies rely on behavioral assessments such as the Racine scale, which may not capture subclinical or non-convulsive seizure activity. Consequently, the molecular consequences of lower-severity seizures that do not meet conventional criteria for severe SE, but may nonetheless contribute to epileptogenesis, remain poorly understood. To address this gap, we investigated whether behavioral seizure severity in the pilocarpine model correlates with distinct proteomic alterations in the hippocampus. Seizures were induced in adult male rats using pilocarpine, and animals were behaviorally classified into three groups: control, mild SE, and severe SE. Hippocampal tissue was collected from control (n = 3), mild SE (n = 5), and severe SE (n = 6) rats and subjected to mass spectrometry-based proteomic analysis. Proteomic profiles were analyzed using partial least squares discriminant analysis (PLS-DA), and differentially expressed proteins (DEPs) were identified using volcano plots. Functional enrichment analyses were performed using Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway databases. Our findings revealed distinct hippocampal proteomic signatures across control, mild SE, and severe SE groups, as revealed by PLS-DA. Severe SE was associated with widespread proteomic alterations, including 129 DEPs linked to synaptic structure, RNA regulation, and metabolic processes. In contrast, mild SE was associated with fewer changes (81 DEPs), primarily involving synaptic organization and endocytosis. A direct comparison of the severe and mild SE groups identified 76 DEPs enriched in pathways related to synaptic plasticity and neurodegeneration. Notably, 23 proteins showed a stepwise expression pattern across groups, suggesting a molecular gradient correlated with seizure severity. Correlation analyses identified and further confirmed glial and inflammatory molecules as candidate molecular markers associated with seizure burden. In conclusion, behavioral seizure severity in the pilocarpine model corresponds to distinct hippocampal proteomic profiles, with severe SE inducing broader and more pronounced molecular alterations than mild SE. Importantly, lower-severity SE is associated with biologically meaningful changes in pathways related to synaptic organization and cellular processing, highlighting mechanistic differences between mild and severe SE that may contribute to epileptogenic progression.

neuroscience↗

Sex-specific proteomic analysis of epileptic brain tissues from Pten knockout mice and human refractory epilepsy

RationaleEpilepsy presents significant sex-based disparities in prevalence and manifestation. Epidemiological studies reveal that epilepsy is more prevalent in males, with lesional types being more common, whereas idiopathic generalized epilepsies are more frequently observed in females. These differences stress the importance of considering sex-specific factors in epilepsy diagnosis, treatment, and mechanistic research using preclinical models. To elucidate potential molecular differences that could explain these disparities and inform personalized treatment strategies, we conducted a proteomic analysis of epileptic brain tissues from both an experimental mouse model of genetic epilepsy and humans with drug-resistant epilepsy (DRE). MethodsWe employed mass spectrometry-based proteomic analysis on brain tissues from DRE patients and the Pten knockout (KO) mouse model of genetic epilepsy with focal cortical dysplasia. Mouse samples included hippocampi from adult wild-type (WT) and Pten KO mice (4-5 per group and sex). Human samples included temporal cortex from 12 DRE adult patients (7 males, 5 females) and 5 non-epileptic (NE) controls (2 males, 3 females). Brain biopsies were collected with patients informed consent under approved IRB protocols (Indiana University Health Biorepository). Proteomic profiles were analyzed using principal component analysis (PCA) along with volcano plots to identify significant changes in protein expression. The enrichment analysis of differentially expressed proteins was conducted by Gene Ontology (GO) and Kyoto Encyclopedia of Gene and Genomes (KEGG) pathway. ResultsPCA revealed distinct clustering of brain proteomes between epilepsy and control cases in both human and mice, with 390 proteins showing significant differences in human and 437 proteins in mouse samples. These proteins are primarily associated with ion channels, synaptic processes, and neuronal energy regulation. In the mouse model, males have more pronounced proteomic changes than females, with enrichment in metabolic pathways and VEGF signaling pathway, indicating a more severe vascular permeability impairment in males. In human DRE cases, 118 proteins were significantly changed by comparing epileptic females to males. Pathway analysis revealed changes in metabolic pathways and the HIF-1 signaling pathway, indicating that altered neuronal activity and inflammation may lead to increased oxygen consumption. ConclusionThese findings highlight significant differences between epilepsy and control brain samples in both humans and mice. Sex-specific analysis revealed distinct pathway enrichments between females and males, with males exhibiting a broader range of alterations, suggesting more extensive proteomic alterations. This study offers valuable insights into potential underlying mechanisms of epilepsy and underscores the importance of considering sex as a key factor in epilepsy research and therapeutic development.

neuroscience↗

Sex-Specific Complement and Cytokine Imbalances in Drug-Resistant Epilepsy: Biomarkers of Immune Vulnerability

ObjectiveDrug-resistant epilepsy (DRE) poses significant challenges in treatment and management. While seizure-related alterations in peripheral immune players are increasingly recognized, the involvement of the complement system, central to immune function, remains insufficiently explored in DRE. This study aimed to investigate the levels of complement system components and their association with cytokine profiles in patients with DRE. MethodsWe analyzed serum samples from DRE patients (n = 46) and age- and sex-matched healthy controls (n = 45). Complement components and cytokines were quantified using Multi- and Single-plex ELISA. Statistical analyses examined relationships between complement molecules, cytokines, and clinical outcomes including epilepsy duration, Full-Scale Intelligence Quotient (FSIQ) scores, and age. ResultsWe found common alterations in all DRE cases, including significant complement deficiencies (C1q, Factor H, C4, C4b, C3, and C3b/iC3b) and detectable bFGF levels. DRE females showed significantly lower levels of TNF and IL-8 compared to healthy females. We observed a trend towards elevated CCL2 and CCL5 levels in DRE males compared to healthy males. These findings suggest potential sex dimorphism in immune profiles. Our analysis also indicated associations between specific complement and inflammatory markers (C2, IL-8, and IL-9) and Full-Scale Intelligence Quotient (FSIQ) scores in DRE patients. InterpretationOur study reveals sex-specific peripheral complement deficiencies and cytokine dysregulation in DRE patients, indicating an underlying immune system vulnerability. These findings provide new insights into DRE mechanisms, potentially guiding future research on complement and cytokine signaling toward personalized treatments for DRE patients.

neuroscience↗