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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.
Abstract:
Activation of gene expression by FOXO transcription factors can promote neuronal death in response to loss of trophic support, or oxidative stress. The predominant neuronal FOXOs, FOXO1 and FOXO3, promote the expression of pro-death genes, such as Fas Ligand, Bim and Txnip. Neuroprotective signals initiated by neurotrophins, growth factors or synaptic activity trigger the nuclear export of FOXOs via activation of the PI3K-Akt pathway. One key aspect of FOXO regulation is that once PI3K-Akt activity has returned to baseline, FOXOs return to the nucleus to resume the activation of their target genes. Thus, the FOXO-inhibiting capacity of the PI3K-Akt pathway is thought to be short-lived. However, we show here that synaptic NMDA receptor activity not only triggers FOXO export, but also suppresses the expression of FOXO1. Blockade of PI3K activity prevents both FOXO nuclear export and suppression of FOXO1 expression, raising the possibility that FOXO1 is itself a FOXO target gene. We found that FOXO3, and to a lesser extent FOXO1 transactivates the FOXO1 promoter via a consensus FOXO binding site (GTA AAC AA), and also an upstream sequence resembling a classical FOXO-binding insulin response sequence (CAA AAC AA). Activity-dependent suppression of the FOXO1 promoter is mediated through the proximal GTAAACAA sequence. Similar suppression via this site is observed by activating neuronal IGF-1 receptors by exogenous insulin. Thus, through a feed-forward inhibition mechanism, synaptic activity triggers FOXO export resulting in suppression of FOXO1 expression. These results suggest that FOXO-inactivating signals are likely to result in longer-term inhibition of FOXO target gene expression than previously thought.
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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