Xenopus CAF1 requires NOT1-mediated interaction with 4E-T to repress translation in vivo

Shruti Waghray1, Clay Williams2, Joshua J Coon2

  • 1Department of Biochemistry, University of Wisconsin, Madison, Wisconsin 53706, USA.

RNA (New York, N.Y.)
|May 28, 2015
PubMed

Insights

The CCR4-NOT complex deadenylase CAF1 represses translation independently of deadenylation. This repression involves a protein chain linking CAF1 to Xp54 and 4E-T, requiring eIF4E for global translation effects.

Area of Science:

  • Molecular Biology
  • Gene Regulation
  • Translational Control

Background:

  • RNA-binding proteins associated with 3' UTRs regulate gene expression.
  • The deadenylase CAF1, part of the CCR4-NOT complex, is known to repress translation.
  • Previous studies indicated CAF1's repression activity is independent of its deadenylation function.

Purpose of the Study:

  • To elucidate the mechanism behind CAF1's deadenylation-independent translational repression in Xenopus oocytes.
  • To identify the protein interactions involved in CAF1-mediated repression.

Main Methods:

  • Tethering CAF1 to reporter mRNAs to assess repression.
  • Affinity purification-mass spectrometry and coimmunoprecipitation to identify protein complexes.
  • Site-directed mutagenesis of 4E-T to dissect eIF4E-dependent and -independent roles.
  • Analysis of IRES-containing reporter mRNAs to study cap-independent translation.

Main Results:

  • CAF1 associates with NOT1, a key subunit of the CCR4-NOT complex, which is essential for repression.
  • CAF1 recruits multiple CCR4-NOT components, NOT1, Xp54, and 4E-T.
  • 4E-T's interaction with eIF4E is crucial for CAF1-mediated repression of global translation.
  • Repression mediated by CAF1 and Xp54 on IRES elements is cap- and eIF4E-independent, but requires eIF4A, eIF4B, or eIF4G.

Conclusions:

  • CAF1-mediated translational repression involves a protein complex including CCR4-NOT, Xp54, and 4E-T.
  • The mechanism highlights a novel role for 4E-T in translation repression, dependent on eIF4E.
  • This pathway may represent a conserved mechanism for translational control by 3' UTR-binding proteins and miRNAs.

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