FOXO3-induced reactive oxygen species are regulated by BCL2L11 (Bim) and SESN3

Judith Hagenbuchner1, Andrey Kuznetsov, Martin Hermann

  • 1Tyrolean Cancer Research Institute, Innsbruck, Austria.

Journal of Cell Science
|February 22, 2012
PubMed

Insights

FOXO3 transcription factor triggers neuronal apoptosis by increasing reactive oxygen species (ROS). This occurs through impaired mitochondrial respiration and is modulated by Bim and Sestrin3, leading to cell death.

Area of Science:

  • Cellular Biology
  • Molecular Neuroscience
  • Oxidative Stress Research

Background:

  • FOXO transcription factors are key regulators of apoptosis and reactive oxygen species (ROS) production.
  • Understanding the molecular cascade of FOXO3-induced apoptosis is crucial for neurobiology.

Purpose of the Study:

  • To elucidate the sequential molecular events in FOXO3 (FKHRL1)-induced apoptosis.
  • To investigate the role of ROS production and mitochondrial function in this process.

Main Methods:

  • Utilized ECFP-tagged FOXO3 and 4OH-tamoxifen (4OHT)-inducible FOXO3-ERtm fusion proteins in neuronal cell lines.
  • Employed gene knockdown, dominant-negative mutants, and live cell microscopy with MitoTrackerRed.
  • Assessed the impact of FOXO3 targets like BCL2L11 (Bim) and SESN3 (Sestrin3) on ROS levels and apoptosis.

Main Results:

  • FOXO3 activation leads to two sequential ROS waves, dependent on BCL2L11 (Bim) induction.
  • Bim induction by FOXO3 impairs mitochondrial respiration, causing ROS overproduction and apoptosis.
  • FOXO3 also induces SESN3 (Sestrin3), a ROS rescue pathway that modulates ROS accumulation and apoptosis.

Conclusions:

  • FOXO3 drives neuronal apoptosis via ROS overproduction, stemming from Bim-mediated mitochondrial dysfunction.
  • The interplay between Bim, mitochondrial respiration, and Sestrin3 is critical for regulating ROS levels and cell fate.
  • FOXO3 acts as a central regulator linking mitochondrial stress to apoptotic pathways in neurons.

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