Persistent DNA methylation and downregulation of homeostatic genes in astrocytes after pilocarpine-induced status epilepticus: Implications for epileptogenesis
Gomez Cuautle, D. D.; Rossi, A. R.; Villarreal, A.; D Alessio, L.; Ramos, A. J.
Show abstract
Epilepsy is a debilitating neurological disorder characterized by recurrent seizures, affecting millions of patients worldwide. Retrospective studies in Temporal lobe epilepsy (TLE) patients have shown a high incidence of an initial precipitating event (IPE) in early childhood followed by a silent period where epileptogenesis occurs to end up in chronic epilepsy. Epileptogenesis, the process through which a normal brain undergoes structural and functional changes leading to epilepsy, remains an enigmatic phenomenon. We hypothesized that epigenetics may be involved in epileptogenesis and specifically astrocytes could be affected by pathological remodeling. To study this process, we used three approaches: The lithium-pilocarpine model of TLE in rats, primary astroglial cultures exposed to epileptogenic DAMP named HMGB1, and brain tissue samples resected from TLE patients with drug-resistant epilepsy. We found that the IPE achieved by lithium- pilocarpine treatment (127/30 mg/kg IP) induced the hypermethylation of astrocytes at 7-, 21-, and 35 days post-IPE, indicating persistent epigenetic alterations in astrocytes during the epileptogenic period. In addition, we observed the downregulation of homeostatic astroglial genes AQP4; glutamine synthase (GS), and Kir4.1 with increased proinflammatory genes (C3, MAFG) and DNA methyl transferases (DNMT) expression. These alterations were mimicked in primary astrocyte cultures exposed to the epileptogenic HMGB1 (500 ng/ml; 18 hours) that also induced the hypermethylation of homeostatic astroglial genes. Astrocytes from TLE patients brains showed reactive astrogliosis, increased DNA methylation, and downregulation of homeostatic genes Kir4.1 and GS. These findings show that astrocytes are pathologically altered during the epileptogenic period, combining the proinflammatory gain of function with the loss of homeostatic profile. This may sustain the long-term alterations underlining epileptogenesis.
Matching journals
The top 7 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Neurotensin receptor 2 is induced in astrocytes and brain endothelial cells in relation to status epilepticus and neuroinflammation following pilocarpine administration in rats 97%
- Deletion of calcineurin from GFAP-expressing astrocytes impairs excitability of cerebellar and hippocampal neurons through astroglial Na+/K+ ATPase. 94%
- Transcriptome network analysis link perinatal Staphylococcus epidermidis infection to microglia reprogramming in the immature hippocampus 94%
Similar papers in this journal
- Methylation Biomarkers Associated With Drug-Resistant Epilepsy 94%
- Selective medial septum lesions in healthy rats induce longitudinal changes in microstructure of limbic regions, behavioral alterations, and increased susceptibility to status epilepticus 94%
- Spatial Analysis of Neural Cell Proteomic Profiles following Ischemic Stroke in Mice using High-Plex Digital Spatial Profiling 92%
Similar papers in this journal
Similar papers in this journal
- Prolonged deficit of gamma oscillations in the peri-infarct cortex of mice after stroke 94%
- The role of subicular VIP-expressing interneurons on seizure dynamics in the intrahippocampal kainic acid model of temporal lobe epilepsy 93%
- Chronic Seizures Induce Sex-Specific Cognitive Deficits with Loss of Presenilin 2 Function 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.