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.

RNA (New York, N.Y.)
|October 2, 2010
PubMed

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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