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Updated: Apr 11, 2026

Xenopus laevis as a Model to Identify Translation Impairment
Published on: September 27, 2015
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.
Abstract:
RNA-regulatory factors bound to 3' UTRs control translation and stability. Repression often is associated with poly(A) removal. The deadenylase CAF1 is a core component of the CCR4-NOT complex. Our prior studies established that CAF1 represses translation independent of deadenylation. We sought the mechanism of its deadenylation-independent repression in Xenopus oocytes. Our data reveal a chain of interacting proteins that links CAF1 to CCR4-NOT and to Xp54 and 4E-T. Association of CAF1 with NOT1, the major subunit of CCR4-NOT, is required for repression by CAF1 tethered to a reporter mRNA. Affinity purification-mass spectrometry and coimmunoprecipitation revealed that at least five members of the CCR4-NOT complex were recruited by CAF1. The recruitment of these proteins required NOT1, as did the ability of tethered CAF1 to repress translation. In turn, NOT1 was needed to recruit Xp54 and 4E-T. We examined the role of 4E-T in repression using mutations that disrupted either eIF4E-dependent or -independent mechanisms. Expression of a 4E-T truncation that still bound eIF4E alleviated repression by tethered CAF1, NOT1, and Xp54. In contrast, a mutant 4E-T that failed to bind eIF4E did not. Repression of global translation was affected only by the eIF4E-dependent mechanism. Reporters bearing IRES elements revealed that repression via tethered CAF1 and Xp54 is cap- and eIF4E-independent, but requires one or more of eIF4A, eIF4B, and eIF4G. We propose that RNA-binding proteins, and perhaps miRNAs, repress translation through an analogous chain of interactions that begin with the 3' UTR-bound repressor and end with the noncanonical activity of 4E-T.
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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