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Updated: May 3, 2026

Lipidomics and Transcriptomics in Neurological Diseases
Published on: March 18, 2022
Decreased interaction between FoxO3a and Akt correlates with seizure-induced neuronal death
Yoon Sook Kim1, Mee Young Choi1, Dong Hoon Lee1
1Department of Anatomy and Neurobiology, School of Medicine, Institute of Health Science, Medical Research Center, Gyeongsang National University, 816-15 Jinju-daero, Jinju, Gyeongnam 660-751, South Korea.
Abstract:
Status epilepticus (SE) leads to neurodegeneration which likely contributes to the development of chronic temporal lobe epilepsy (TLE). Therefore, neuroprotection following SE is considered as a promising strategy for preventing chronic TLE, but molecular changes that occur following SE still remain unclear. The Forkhead homeobox type O (FoxO) family of Forkhead transcription factors mediates cell death in several pathological conditions, but the role of FoxO in the excitotoxic effects of kainic acid (KA) remains largely unknown. The present study examined how FoxO3a and its interaction with other proteins changed in response to excitotoxic stimuli in the mouse hippocampus after SE. Mice were given intraperitoneal injection of kainate and seizure behavior was monitored for 2h to ensure SE. Western blot analyses, co-immunoprecipitation experiments, sub-cellular fractionation and double immunofluorescence analyses were used to determine changes in levels of FoxO3a, Akt, Bim, cleaved caspase-3 and phospho-FoxO3a or phospho-Akt, and their interactions at 6 or 24h after KA treatment. We found that SE activated FoxO3a and increased levels of Bim or cleaved caspase-3, and decreased levels of phospho-FoxO3a or phospho-Akt in the hippocampus. In addition, we noted extensive hippocampal cell death at 24h after KA treatment, evidenced by terminal deoxynucleotidyl transferase-mediated deoxyuridine triphosphate nick-end labeling (TUNEL), fluoro-jade B or anti-active caspase-3 staining. Furthermore, co-immunoprecipitation experiments revealed that phospho-Akt interaction with FoxO3a was significantly lowered in the hippocampus at 24h after KA treatment, paralleling enhanced Bim levels and Bim interaction with Bcl-xL. Moreover, double immunofluorescence analyses showed increased co-localization of FoxO3a or Bim and TUNEL in the hippocampi at 24h after KA treatment. Identifying molecular mechanism underlying SE-induced neuronal death can provide a novel strategy to protect against seizure-induced neuronal injury. We found that Akt-FoxO3a signaling relates to seizure-induced neuronal death, providing insight into neuroprotection following SE.
Insights
Status epilepticus (SE) causes neurodegeneration. This study reveals that the Akt-FoxO3a signaling pathway is activated, leading to neuronal death and offering insights into neuroprotection strategies for temporal lobe epilepsy (TLE).
Area of Science:
- Neuroscience
- Molecular Biology
- Epilepsy Research
Background:
- Status epilepticus (SE) is a critical condition leading to neurodegeneration and potentially chronic temporal lobe epilepsy (TLE).
- Understanding the molecular mechanisms of SE-induced neuronal death is crucial for developing effective neuroprotective strategies.
- The role of Forkhead homeobox type O (FoxO) transcription factors, specifically FoxO3a, in SE-induced excitotoxicity remains largely unexplored.
Purpose of the Study:
- To investigate the changes in FoxO3a and its protein interactions in the mouse hippocampus following SE induced by kainic acid (KA).
- To elucidate the molecular signaling pathways involved in SE-induced neuronal death.
- To identify potential therapeutic targets for preventing TLE development.
Main Methods:
- Induction of SE in mice using intraperitoneal kainate injection.
- Western blot analysis to assess protein levels (FoxO3a, Akt, Bim, cleaved caspase-3, phospho-forms).
- Co-immunoprecipitation, sub-cellular fractionation, and double immunofluorescence staining (TUNEL, fluoro-jade B, anti-active caspase-3) to analyze protein interactions and cell death.
Main Results:
- SE activated FoxO3a, increased pro-apoptotic markers (Bim, cleaved caspase-3), and decreased inhibitory phosphorylation of FoxO3a and Akt.
- Significant hippocampal cell death was observed 24 hours post-KA treatment.
- Reduced interaction between phospho-Akt and FoxO3a was noted, correlating with increased Bim levels and its interaction with Bcl-xL.
Conclusions:
- The Akt-FoxO3a signaling pathway plays a critical role in SE-induced neuronal death.
- Activation of FoxO3a and subsequent apoptotic processes contribute to hippocampal damage following SE.
- Targeting the Akt-FoxO3a pathway may offer a novel neuroprotective strategy against seizure-induced neuronal injury and TLE.
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