Selected Molecular Targets for Counteracting Epileptogenesis: What Do We Know About Its Effective Inhibition?
Abstract
1. Introduction
2. Search Strategy and Selection Criteria
3. Models of Epileptogenesis
4. Blood–Brain Barrier Dysfunction as a Key Factor in Primary Epileptogenesis?
5. Neuroinflammation
5.1. Inflammatory Cytokines
5.1.1. Interleukin-1β
5.1.2. Tumor Necrosis Factor-α
5.1.3. Interleukin-6
5.2. HMGB1-TLR4 Signaling Pathway
5.3. Cyclooxygenase-2 Signaling
6. Oxidative Stress
7. Can Antiepileptogenic Drugs Be Found Among Selected Already Registered Medications for Other Disorders than Epilepsy?
7.1. Losartan and Candesartan
7.2. Minocycline
7.3. Rapamycin and Apigenin
7.4. Statins
8. Antiepileptogenic Potential of Selected Newer Antiseizure Medications
8.1. Levetiracetam and Brivaracetam
8.2. Gabapentin
8.3. Topiramate
9. Combined Treatment as an Efficient Way to Halt Epileptogenesis?
10. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| ALK5 | Activin-like kinase 5 |
| AMPA | Alpha-amino-3-hydroxy-5-methyl- 4-isoxazolepropionic acid |
| AMPARs | AMPA receptors |
| anti-HMGB1 mAb | Anti-HMGB1 monoclonal antibody |
| ARE | Antioxidant response element |
| AQP4 | Aquaporin-4 |
| BBB | Blood–brain barrier |
| CAT | Catalase |
| CNS | Central nervous system |
| COX-2 | Cyclooxygenase-2 |
| CyP | Cyanobacterial product—selective antagonist of bacterial LPS |
| DZP | Diazepam |
| EEG | Electroencephalographic |
| GluR2 | Glutamate receptor 2 |
| GPx | Glutathione peroxidase |
| GR | Glutathione reductase |
| GSH | Reduced glutathione |
| GS-Pro | Glutathionylated proteins |
| GSSG | Glutathione disulfide |
| HMGB1 | High-mobility group box-1 |
| ICE | IL-1β converting enzyme |
| i.p. | Intraperitoneal |
| IGF-1 | Insulin-like growth factor 1 |
| IL-1R1 | IL-1β receptor type 1 |
| IL-1Ra | Interleukin-1 receptor antagonist |
| IL-1β | Interleukin-1β |
| IL-6 | Interleukin-6 |
| iNOS | Inducible nitric oxide synthase |
| JAK/STAT | Janus kinase/signal transducers and activators of transcription |
| KA | Kainate |
| Kir 4.1 | Inward rectifying potassium |
| LPO | Lipid peroxidation |
| LPS | Lipopolysaccharide |
| mAb | Monoclonal antibody |
| MDA | Malondialdehyde |
| MLR | Monocyte-to-lymphocyte ratio |
| MS | Multiple sclerosis |
| mTOR | Mammalian target of rapamycin |
| NADPH | Nicotinamide adenine dinucleotide phosphate |
| NF-κB | Nuclear factor kappa-light-chain-enhancer of activated B cells |
| NLR | Neutrophil-to-lymphocyte ratio |
| NO | Nitric oxide |
| NOS | Nitric oxide synthase |
| NOX | NADPH oxidase |
| Nrf2 | Nuclear erythroid-2-related factor 2 Pilo pilocarpine |
| OVLT | Organum vasculosum laminae terminalis |
| p38 MAPK | p38 mitogen-activated protein kinase |
| PGG2 | Prostaglandin G2 |
| PGI2 | Prostacyclin I2 |
| PGs | Prostaglandins |
| PI3K | Phosphatidylinositol 3-kinase |
| PILO | Pilocarpine |
| Prxs | Peroxiredoxins |
| PST | Posttraumatic epilepsy |
| PTZ | Pentylenetetrazol |
| Ra | Receptor antagonist |
| RAGE | Receptor for advanced glycation end products |
| RNS | Reactive nitrogen species |
| s.c. | Subcutaneous |
| SE | Status epilepticus |
| SOD | Supeoxide dismutase |
| SRS | Spontaneous recurrent seizure |
| TBI | Traumatic brain injury |
| TβRI | TGF-βI receptors |
| TβRII | TGF-β binds to receptor II |
| TGF-β | Transforming growth factor β |
| TLE | Temporal lobe epilepsy |
| TLR4 | Toll-like receptor 4 |
| TNF-α | Tumor necrosis factor-α. |
| TRPV1 | Transient receptor potential vanilloid 1 |
| TxA2 | Thromboxane A2 |
| TXN2 | Thioredoxin 2 |
| VX-765 | Caspase-1 inhibitor |
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| Drug | Anti-Inflammatory/Antioxidant Effects in the Brain Tissue | Model of Epileptogenesis | Anticonvulsant Effect | References |
|---|---|---|---|---|
| human recombinant IL-1Ra | IL-1 receptor antagonist; blockade the binding of IL-1β | electrical kindling in rats + LPS | inhibited kindling progression | [95] |
| VX-765 | IL-1β converting enzyme/caspase-1 inhibitor; blockade of IL-1β synthesis | electrical kindling in rats | blocked the development of kindling | [96] |
| VX-765 + CyP | IL-1β converting enzyme/caspase-1 inhibitor + TLR 4 antagonist; blockade of IL-1β synthesis | intra-amygdala KA model in mice | inhibited the SRS progression, reduced the number of seizures | [97] |
| synthetic miR-146a | negative feedback regulator of inflammation; suppression of NF-κB signaling | intra-amygdala KA model in mice | inhibited the SRS progression, reduced the number of seizures | [97] |
| anti-HMGB1 mAb | Anti-HMGB1 monoclonal antibody; inhibition of HMGB1 activity | KA model in mice | reduced the seizure frequency | [67] |
| anti-HMGB1 mAb | Anti-HMGB1 monoclonal antibody; inhibition of HMGB1 activity | electrical kindling in mice | decreased the seizure severity | [67] |
| Tocilizumab | humanized monoclonal antibody against the IL-6 receptor; inhibition IL-6 signaling | WAG/Rij rats | reduced the development of absence seizures | [61] |
| Nimesulide | COX-2 inhibitor; inhibition of prostaglandin production | electrical kindling in rats | attenuated kindling development | [71] |
| Celecoxib | COX-2 inhibitor; inhibition of prostaglandin production | PILO model in rats | diminished the frequency and duration of SRS | [77] |
| SC-58236 | COX-2 inhibitor; inhibition of prostaglandin production | electrical SE model in rats | no antiepileptogenic effects | [79] |
| Resveratrol | non-flavonoid polyphenol; reduced the levels of IL-1β, IL1-Ra, IL-6, and TNF-α | PTZ kindling in mice | suppressed the development of kindling | [98] |
| Hesperidin | flavonoid; attenuated alterations in LPO, GSH, nitrate, SOD and CAT levels, as well as mitochondrial complex (I, II, and IV) activities | PTZ kindling in mice | decreased the seizure score | [99] |
| N-acetylcysteine | precursor of GSH; inhibited the LPO level | KA model in rats | prevented the neuronal cell loss, mossy fiber sprouting, and increased the threshold for seizures induced by flurothyl ether | [100] |
| Coenzyme Q10 | endogenous antioxidant; decreased the LPO and nitrite concentration, restored SOD, CAT, GSH levels and activities of mitochondrial enzyme complex (I, II and IV) | PTZ kindling in mice | reduced the kindling score | [101] |
| Lipoic acid | endogenous antioxidant; reduced the level of MDA and NO, increased SOD and CAT activities, promoted the translocation of Nrf2 in the nuclear fraction | PTZ kindling in rats | reduced the total frequency of seizures | [93] |
| Curcumin | polyphenol found in turmeric; decreased the level of MDA, increased GSH level | PTZ kindling in rats | increased the latency to myoclonic jerks, clonic and generalized tonic–clonic seizures, improved the seizure score | [102] |
| Dimethyl fumarate | activator of Nrf2; increased the levels of SOD, GPx and GSH; reduced the LPO | PTZ kindling in rats | decreased the number of kindled animals | [103] |
| N-acetylcysteine + Sulforaphane | precursor of GSH + activator of Nrf2; increased the GSH level, reduced GSSG, GSSG/GSH ratio and GS-Pro, prevented HMGB1 generation | electrical SE model in rats | delayed the onset of SRS, blocked the SRS progression, caused 70% SRS reduction | [104] |
| RTA 408 | activator of Nrf2; increased the total GSH level | KA model in rats | reduced (by 94%) the frequency of SRS | [105] |
| Ascorbic acid | vitamin C; exogenous antioxidant | PTZ kindling in rats | low doses prevent the progression of seizures; high doses exacerbate seizures | [90] |
| Drugs | Treatment | Experimental Model | Effect | References | ||
|---|---|---|---|---|---|---|
| Dose | Drug Exposure Time | |||||
| Losartan | 100 mg/kg/daily, i.p. | administered 40 min after sodium deoxycholate, followed by losartan 2 g/L in drinking water for 3 weeks | rat model of acquired epilepsy induced by sodium deoxycholate causing BBB breakdown | no seizure activity in 60% of the rats, markedly decreased weekly seizure frequency. | [106] | |
| 50 mg/kg/daily, i.p. for 21 consecutive days | chronic administration during kindling development | amygdala-kindled rat model | increased number of electrical stimulations, required to induce generalized convulsions. | [108] | ||
| 10 mg/kg/daily, s.c. | initially and for 3 days after status epilepticus, then oral administration in drinking water for 4 weeks | post-status epilepticus rat model induced by KA | significantly increased latency to spontaneous seizures, neuroprotective effect, particularly in the hippocampal CA1 region, improved behavioral outcomes—restoration of circadian locomotor variability, no changes were observed in the severity of seizures or the duration of the post-seizure state | [109] | ||
| Candesartan | subcutaneously at a daily dose of 2 or 4 mg/kg in homo- and heterozygotes or oral pellet administration (mean 9.1 ± 4.2 mg/kg/daily) in heterozygotes | they were given the medicine every day until their death | scn8a pathogenic knockin mouse model (homozygous and heterozygous) | prolonged survival, increased seizure-free period, reduced BBB permeability reduced activity of the NF-κB, TNF-α, TGF-β and IL-6 signaling pathways, which was caused by the partial normalization of gene expression profiles across the entire genome in transgenic mice. | [111] | |
| Minocycline | 45 mg/kg/daily | treatment for 2 weeks after status epilepticus | lithium/pilocarpine-induced status epilepticus in rats | significant reduction in spontaneous seizure frequency, duration, and severity, reduced activation of microglia, reduction of TNF-α and IL-1β production in hippocampal CA1 and surrounding cortex | [115] | |
| 0–1 day: 2 × 50 mg/kg, i.p. 2–13 day: 25 mg/kg/daily, i.p. | at subchronic doses, administered immediately following an electrically induced status epilepticus in rats | electrically induced status epilepticus in rats | no significant effect on the occurrence of spontaneous seizures, prevention of spatial memory deficits and normalization of locomotor activity—reduction in hyperactivity and excessive physical activity | [116] | ||
| 100 mg/kg/daily 50 mg/kg/daily | 100 mg/kg daily for 2 days after status epilepticus, followed by 50 mg/kg daily for 5 days | juvenile rat model of lithium/pilocarpine-induced status epilepticus | significant increase in the number of lba1-positive microglia in the CA1 and CA3 hippocampal fields, reduction of anxiety-like behavior—normalization of open-field activity and self-grooming, restoration of NMDA receptor-mediated long-term potentiation | [117] | ||
| Rapamycin | 10 mg/kg/daily | for 2 months after status epilepticus | pilocarpine-induced status epilepticus in mice | no reduction in spontaneous seizure frequency despite reduced mossy fiber sprouting and dentate gyrus hypertrophy, no neuroprotection was observed with respect to hilar neurons, no neuroprotection was observed with respect to hilar neurons | [119] | |
| 3 mg/kg/daily | for 2 months following status epilepticus | pilocarpine-induced epilepsy in mice | no significant effect on spontaneous seizures, did not prevent the formation of ectopic cells or the proliferation of granular cells, inhibited mossy fiber sprouting and the hypertrophy of the dentate gyrus | [120] | ||
| 1.5 or 3 mg/kg/daily | treatment was started 24 h after the end of pilocarpine treatment and continued for 2 months | pilocarpine-induced epilepsy in mice | no significant effect on spontaneous seizure frequency, no effect proliferation of granule cells, neurodegeneration in the hippocampal hilus or generation of ectopic granule cells, chronic treatment inhibited mossy fiber sprouting and hypertrophy of the dentate gyrus | [120] | ||
| 6 mg/kg/daily | for 2 weeks | amygdala stimulation model of temporal lobe epilepsy in rats | no effect on seizure onset, latency, seizure frequency, or mossy fiber sprouting | [121] | ||
| 80 mg/kg 40 mg/kg/daily | the first dose, administered 5 h after a status epilepticus continuation of treatment for 20 days | Intrahippocampal KA-induced status epilepticus in mice | no effect on paroxysmal discharges in the hippocampus, inhibited granule cell dispersion and mossy fiber sprouting | [122] | ||
| 6 mg/kg/daily | For 3 weeks | electrical stimulation of angular bundle in rats | temporary remission of spontaneous seizures during treatment, seizures returned after the drug was discontinued | [123] | ||
| 3 mg/kg/daily | 3 days prior to the induction of status epilepticus and continued for 3 weeks | electrical stimulation of angular bundle in rats | no effect on the development of spontaneous seizures | [123] | ||
| 3 mg/kg/daily | during the phase of spontaneous seizures for 5 days | electrical stimulation of angular bundle in rats | reduction of seizure frequency | [123] | ||
| 6 mg/kg/daily | for 1 week, then every second day for 6 weeks | a model of electrical stimulation of the angular bundle in rats | complete elimination of seizures in 25% of the animals and a significant reduction in their frequency in the remaining rats, neuroprotective effect in the hippocampus, a reduction in the permeability of the BBB | [124] | ||
| 6 mg/kg/daily | 1 h after brain injury, continued once daily for up 4 weeks | a mouse model of traumatic brain injury | 12.5% compared with 50% (control group) showed spontaneous electroencephalographic seizures, the study group had a frequency of seizures almost 10 times lower than the control group, inhibited neurodegeneration and mossy fiber sprouting | [125] | ||
| Apigenin * | 50 mg/kg/daily, orally | for 6 days starting 5 days before status epilepticus | intracerebroventricular KA-induced status epilepticus in rats | reduced number of spontaneous epileptiform spikes | [126] | |
| 50 mg/kg/daily | for six days following a status epilepticus | intracerebroventricular KA-induced status epilepticus in rats | a reduction in spontaneous epileptiform spikes, neurodegeneration, aberrant neurogenesis and mossy fiber sprouting, and m-TOR hyperactivity | [127] | ||
| Statins | Atorvastatin | 10 mg/kg/daily | for 14 days, started 7 days prior to status epilepticus | a model of electrical stimulation of the angular bundle in rats | no effect on the development of spontaneous seizure activity, no effect on the permeability of the BBB, no effect on the loss of hilar cells or the regrowth of moss fibers | [139] |
| 10 or 100 mg/kg/daily, intragastrically | for 14 days | pilocarpine-induced status epilepticus in mice | no neuroprotection in the hilus of dentate gyrus, the response time to myoclonic jerks or tonic–clonic seizures has been reduced | [135] | ||
| 10 or 100 mg/kg/daily, intragastrically | for 14 days | pilocarpine-induced status epilepticus in mice | reduced inflammatory markers in the cortex and hippocampus, improvement in behavioral test results, an increase in the level of the anti-inflammatory interleukin-10 | [136] | ||
| 10 mg/kg/daily, orally | for 17 weeks (starting at 45 days of age) | WAG/Rij genetic absence epilepsy rat model | reduced the development of absence seizures in rats at 6 months of age, reduced immobility time in the forced swimming test, and reduced anxiety in the open field test | [138] | ||
| Simvastatin | 10 mg/kg/daily, orally | for 17 weeks (starting at 45 days of age) | WAG/Rij genetic absence epilepsy rat model | [138] | ||
| Pravastatin | 30 mg/kg/daily, orally | for 17 weeks (starting at 45 days of age) | WAG/Rij genetic absence epilepsy rat model | [138] | ||
| Lovastatin | 20 mg/kg/twice/daily, intragastrically | via an esophagic probe 2 h after a status epilepticus onset and continued for 15 days | pilocarpine-induced status epilepticus in rats | significant decrease in the levels of inflammatory markers (IL-1β, TNF-α, and IL-6 during the latent phase and a decreased expression of IL-1β and TNF-α in the chronic chase), an increase in the level of the anti-inflammatory interleukin-10 | [137] | |
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Łukawski, K.; Czuczwar, S.J.; Miziak, B. Selected Molecular Targets for Counteracting Epileptogenesis: What Do We Know About Its Effective Inhibition? Curr. Issues Mol. Biol. 2026, 48, 842. https://doi.org/10.3390/cimb48080842
Łukawski K, Czuczwar SJ, Miziak B. Selected Molecular Targets for Counteracting Epileptogenesis: What Do We Know About Its Effective Inhibition? Current Issues in Molecular Biology. 2026; 48(8):842. https://doi.org/10.3390/cimb48080842
Chicago/Turabian StyleŁukawski, Krzysztof, Stanisław J. Czuczwar, and Barbara Miziak. 2026. "Selected Molecular Targets for Counteracting Epileptogenesis: What Do We Know About Its Effective Inhibition?" Current Issues in Molecular Biology 48, no. 8: 842. https://doi.org/10.3390/cimb48080842
APA StyleŁukawski, K., Czuczwar, S. J., & Miziak, B. (2026). Selected Molecular Targets for Counteracting Epileptogenesis: What Do We Know About Its Effective Inhibition? Current Issues in Molecular Biology, 48(8), 842. https://doi.org/10.3390/cimb48080842
