Synaptic NMDAR activity suppresses FOXO1 expression via a cis-acting FOXO binding site: FOXO1 is a FOXO target gene

Bashayer Al-Mubarak1, Francesc X Soriano, Giles E Hardingham

  • 1Centre for Integrative Physiology, University of Edinburgh, Edinburgh, UK.

Channels (Austin, Tex.)
|August 20, 2009
PubMed

Insights

Synaptic activity suppresses neuronal FOXO1 expression through a novel feed-forward mechanism, extending the duration of neuroprotection beyond transient PI3K-Akt pathway activation.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Cellular Signaling

Background:

  • FOXO transcription factors (FOXO1, FOXO3) promote neuronal death via pro-death genes.
  • Neuroprotective signals activate PI3K-Akt pathway, causing FOXO nuclear export.
  • FOXO nuclear re-entry limits the duration of PI3K-Akt pathway's inhibitory effect.

Purpose of the Study:

  • To investigate the long-term effects of synaptic activity on FOXO regulation.
  • To elucidate the mechanism by which synaptic activity suppresses FOXO1 expression.
  • To determine if FOXO1 is a target gene regulated by FOXO transcription factors.

Main Methods:

  • Investigated the impact of synaptic NMDA receptor activity on FOXO1 expression.
  • Utilized PI3K inhibition to assess its role in FOXO nuclear export and FOXO1 suppression.
  • Analyzed FOXO1 promoter activity and identified FOXO binding sites using reporter assays.

Main Results:

  • Synaptic NMDA receptor activity triggers FOXO nuclear export and suppresses FOXO1 expression.
  • FOXO3 and FOXO1 directly transactivate the FOXO1 promoter via specific binding sites.
  • Activity-dependent suppression of the FOXO1 promoter is mediated by a proximal FOXO binding site.

Conclusions:

  • Synaptic activity initiates a feed-forward inhibition loop, suppressing FOXO1 expression.
  • This mechanism provides longer-term inhibition of FOXO target genes than previously understood.
  • Highlights a novel regulatory pathway for neuronal survival under neurotrophic or oxidative stress.

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