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Assessment of Selective mRNA Translation in Mammalian Cells by Polysome Profiling
Published on: October 28, 2014
Loss of eIF4E Phosphorylation Engenders Depression-like Behaviors via Selective mRNA Translation
Inês S Amorim1,2, Sonal Kedia1,2, Stella Kouloulia1,2
1Centre for Discovery Brain Sciences, University of Edinburgh, Edinburgh EH8 9XD, United Kingdom.
Abstract:
The MAPK/ERK (mitogen-activated protein kinases/extracellular signal-regulated kinase) pathway is a cardinal regulator of synaptic plasticity, learning, and memory in the hippocampus. One of major endpoints of this signaling cascade is the 5' mRNA cap binding protein eIF4E (eukaryotic Initiation Factor 4E), which is phosphorylated on Ser 209 by MNK (MAPK-interacting protein kinases) and controls mRNA translation. The precise role of phospho-eIF4E in the brain is yet to be determined. Herein, we demonstrate that ablation of eIF4E phosphorylation in male mice (4Eki mice) does not impair long-term spatial or contextual fear memory, or the late phase of LTP. Using unbiased translational profiling in mouse brain, we show that phospho-eIF4E differentially regulates the translation of a subset of mRNAs linked to inflammation, the extracellular matrix, pituitary hormones, and the serotonin pathway. Consequently, 4Eki male mice display exaggerated inflammatory responses and reduced levels of serotonin, concomitant with depression and anxiety-like behaviors. Remarkably, eIF4E phosphorylation is required for the chronic antidepressant action of the selective serotonin reuptake inhibitor fluoxetine. Finally, we propose a novel phospho-eIF4E-dependent translational control mechanism in the brain, via the GAIT complex (gamma IFN activated inhibitor of translation). In summary, our work proposes a novel translational control mechanism involved in the regulation of inflammation and depression, which could be exploited to design novel therapeutics.SIGNIFICANCE STATEMENT We demonstrate that downstream of the MAPK (mitogen-activated protein kinase) pathway, eukaryotic Initiation Factor 4E (eIF4E) Ser209 phosphorylation is not required for classical forms of hippocampal LTP and memory. We reveal a novel role for eIF4E phosphorylation in inflammatory responses and depression-like behaviors. eIF4E phosphorylation is required for the chronic action of antidepressants, such as fluoxetine in mice. These phenotypes are accompanied by selective translation of extracellular matrix, pituitary hormones, and serotonin pathway genes, in eIF4E phospho-mutant mice. We also describe a previously unidentified translational control mechanism in the brain, whereby eIF4E phosphorylation is required for inhibiting the translation of gamma IFN activated inhibitor of translation element-containing mRNAs. These findings can be used to design novel therapeutics for depression.
Insights
eIF4E phosphorylation is not essential for memory but regulates inflammation and mood. This process is crucial for antidepressant drug effectiveness and involves novel translational control mechanisms.
Area of Science:
- Neuroscience
- Molecular Biology
- Translational Control
Background:
- The MAPK/ERK pathway regulates synaptic plasticity, learning, and memory.
- eIF4E (eukaryotic Initiation Factor 4E) is a key translation factor downstream of this pathway.
- The role of eIF4E phosphorylation (phospho-eIF4E) in the brain remains unclear.
Purpose of the Study:
- To investigate the role of eIF4E phosphorylation at Ser209 in the brain.
- To determine the impact of ablating eIF4E phosphorylation on memory, behavior, and gene translation.
- To elucidate novel translational control mechanisms involving phospho-eIF4E.
Main Methods:
- Generation and analysis of male mice with ablated eIF4E phosphorylation (4Eki mice).
- Assessment of long-term spatial and contextual fear memory, and long-term potentiation (LTP).
- Unbiased translational profiling of mouse brain mRNA.
- Behavioral tests for depression and anxiety-like behaviors.
- Investigation of the effect of fluoxetine on 4Eki mice.
Main Results:
- Ablation of eIF4E phosphorylation did not impair hippocampal LTP or memory formation.
- Phospho-eIF4E selectively regulates the translation of mRNAs involved in inflammation, extracellular matrix, pituitary hormones, and serotonin pathways.
- 4Eki mice exhibited exaggerated inflammatory responses, reduced serotonin levels, and depression/anxiety-like behaviors.
- eIF4E phosphorylation is essential for the chronic antidepressant effects of fluoxetine.
- A novel phospho-eIF4E-dependent translational control mechanism involving the GAIT complex was identified.
Conclusions:
- eIF4E phosphorylation plays a critical role in regulating brain inflammation and mood-related behaviors, independent of classical memory processes.
- This phosphorylation event is necessary for the therapeutic efficacy of chronic antidepressant treatment.
- Findings reveal a novel translational control mechanism with potential for developing new depression therapeutics.
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