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Analysis of Translation Initiation During Stress Conditions by Polysome Profiling
Published on: May 19, 2014
EIF2A-dependent translational arrest protects leukemia cells from the energetic stress induced by NAMPT inhibition
Chiara Zucal1, Vito G D'Agostino2, Antonio Casini3
1Laboratory of Genomic Screening, CIBIO, University of Trento, Trento, Italy. chiara.zucal@unitn.it.
Background:
Nicotinamide phosphoribosyltransferase (NAMPT), the rate-limiting enzyme in NAD(+) biosynthesis from nicotinamide, is one of the major factors regulating cancer cells metabolism and is considered a promising target for treating cancer. The prototypical NAMPT inhibitor FK866 effectively lowers NAD(+) levels in cancer cells, reducing the activity of NAD(+)-dependent enzymes, lowering intracellular ATP, and promoting cell death.
Results:
We show that FK866 induces a translational arrest in leukemia cells through inhibition of MTOR/4EBP1 signaling and of the initiation factors EIF4E and EIF2A. Specifically, treatment with FK866 is shown to induce 5'AMP-activated protein kinase (AMPK) activation, which, together with EIF2A phosphorylation, is responsible for the inhibition of protein synthesis. Notably, such an effect was also observed in patients' derived primary leukemia cells including T-cell Acute Lymphoblastic Leukemia. Jurkat cells in which AMPK or LKB1 expression was silenced or in which a non-phosphorylatable EIF2A mutant was ectopically expressed showed enhanced sensitivity to the NAMPT inhibitor, confirming a key role for the LKB1-AMPK-EIF2A axis in cell fate determination in response to energetic stress via NAD(+) depletion.
Conclusions:
We identified EIF2A phosphorylation as a novel early molecular event occurring in response to NAMPT inhibition and mediating protein synthesis arrest. In addition, our data suggest that tumors exhibiting an impaired LBK1- AMPK- EIF2A response may be especially susceptible to NAMPT inhibitors and thus become an elective indication for this type of agents.
Insights
Nicotinamide phosphoribosyltransferase (NAMPT) inhibition by FK866 causes protein synthesis arrest in leukemia cells via the LKB1-AMPK-EIF2A pathway. This suggests NAMPT inhibitors may be effective for tumors with impaired LKB1-AMPK-EIF2A signaling.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Nicotinamide phosphoribosyltransferase (NAMPT) is crucial for NAD(+) biosynthesis and cancer cell metabolism, making it a promising therapeutic target.
- The NAMPT inhibitor FK866 reduces NAD(+) levels, impacting cancer cell metabolism and survival.
Purpose of the Study:
- To investigate the molecular mechanisms by which FK866 induces cell death in leukemia.
- To identify key signaling pathways involved in the response to NAMPT inhibition.
Main Methods:
- Treatment of leukemia cells with FK866.
- Analysis of protein synthesis, signaling pathways (MTOR/4EBP1, LKB1-AMPK-EIF2A), and gene expression.
- Use of gene silencing and mutant expression to probe pathway function.
Main Results:
- FK866 induced a translational arrest in leukemia cells by inhibiting MTOR/4EBP1 signaling and initiation factors EIF4E and EIF2A.
- Activation of 5'AMP-activated protein kinase (AMPK) and EIF2A phosphorylation were responsible for protein synthesis inhibition.
- This effect was observed in primary leukemia cells, and impaired LKB1-AMPK-EIF2A signaling enhanced sensitivity to FK866.
Conclusions:
- EIF2A phosphorylation is a novel early event in response to NAMPT inhibition, mediating protein synthesis arrest.
- Tumors with deficient LKB1-AMPK-EIF2A signaling may be particularly susceptible to NAMPT inhibitors, suggesting a potential patient selection strategy.
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Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
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