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Published on: April 25, 2018
DDX6 recruits translational silenced human reticulocyte 15-lipoxygenase mRNA to RNP granules
Isabel S Naarmann1, Christiane Harnisch, Gerhard Müller-Newen
1Department of Intensive Care, Experimental Research Unit, University Hospital, RWTH Aachen University, 52074 Aachen, Germany.
Abstract:
Erythroid precursor cells lose the capacity for mRNA synthesis due to exclusion of the nucleus during maturation. Therefore, the stability and translation of mRNAs that code for specific proteins, which function in late stages of maturation when reticulocytes become erythrocytes, are controlled tightly. Reticulocyte 15-lipoxygenase (r15-LOX) initiates the breakdown of mitochondria in mature reticulocytes. Through the temporal restriction of mRNA translation, the synthesis of r15-LOX is prevented in premature cells. The enzyme is synthesized only in mature reticulocytes, although r15-LOX mRNA is already present in erythroid precursor cells. Translation of r15-LOX mRNA is inhibited by hnRNP K and hnRNP E1, which bind to the differentiation control element (DICE) in its 3' untranslated region (3'UTR). The hnRNP K/E1-DICE complex interferes with the joining of the 60S ribosomal subunit to the 40S subunit at the AUG. We took advantage of the inducible human erythroid K562 cell system that fully recapitulates this process to identify so far unknown factors, which are critical for DICE-dependent translational regulation. Applying RNA chromatography with the DICE as bait combined with hnRNP K immunoprecipitation, we specifically purified the DEAD-box RNA helicase 6 (DDX6) that interacts with hnRNP K and hnRNP E1 in a DICE-dependent manner. Employing RNA interference and fluorescence in situ hybridization, we show that DDX6 colocalizes with endogenous human (h)r15-LOX mRNA to P-body-like RNP granules, from which 60S ribosomal subunits are excluded. Our data suggest that in premature erythroid cells translational silencing of hr15-LOX mRNA is maintained by DDX6 mediated storage in these RNP granules.
Insights
DEAD-box RNA helicase 6 (DDX6) silences translation of human 15-lipoxygenase (h15-LOX) mRNA in erythroid cells. DDX6 stores h15-LOX mRNA in RNP granules, preventing premature protein synthesis during red blood cell maturation.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Erythroid precursor cells cease mRNA synthesis during maturation.
- Translation of specific mRNAs must be tightly regulated for late-stage erythropoiesis.
- Reticulocyte 15-lipoxygenase (r15-LOX) initiates mitochondrial breakdown in mature reticulocytes.
Purpose of the Study:
- Identify factors regulating DICE-dependent translational control of r15-LOX mRNA.
- Investigate the mechanism of translational silencing of r15-LOX in erythroid precursors.
- Characterize the role of DDX6 in translational regulation during erythroid maturation.
Main Methods:
- RNA chromatography using the differentiation control element (DICE) as bait.
- hnRNP K immunoprecipitation to identify interacting proteins.
- RNA interference and fluorescence in situ hybridization to study DDX6 localization and function.
Main Results:
- DEAD-box RNA helicase 6 (DDX6) was identified as a factor interacting with hnRNP K and hnRNP E1 on the DICE.
- DDX6 colocalizes with human r15-LOX mRNA in P-body-like RNP granules.
- These RNP granules exclude 60S ribosomal subunits, indicating translational repression.
Conclusions:
- DDX6 mediates the storage of h15-LOX mRNA in RNP granules in premature erythroid cells.
- This DDX6-dependent storage maintains translational silencing of h15-LOX mRNA.
- The findings reveal a novel mechanism for post-transcriptional gene regulation during erythropoiesis.
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