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.

Epilepsy Research
|February 13, 2014
PubMed

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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