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Updated: Jun 25, 2026

Quantitative Immunofluorescence to Measure Global Localized Translation
Published on: August 22, 2017
Nascent peptide-dependent translation arrest leads to Not4p-mediated protein degradation by the proteasome
Lyudmila N Dimitrova1, Kazushige Kuroha, Tsuyako Tatematsu
1Division of Biological Science, Graduate School of Science, Nagoya University, Chikusa-ku, Nagoya 464-8602, Japan.
Abstract:
The potentially deleterious effects of aberrant mRNA lacking a termination codon (nonstop mRNA) are ameliorated by translation arrest, proteasome-mediated protein destabilization, and rapid mRNA degradation. Because polylysine synthesis via translation of the poly(A) mRNA tail leads to translation arrest and protein degradation by the proteasome, we examined the effects of other amino acid sequences. Insertion of 12 consecutive basic amino acids between GFP and HIS3 reporter genes, but not a stem-loop structure, resulted in degradation of the truncated green fluorescent protein (GFP) products by the proteasome. Translation arrest products derived from GFP-R12-FLAG-HIS3 or GFP-K12-FLAG-HIS3 mRNA were detected in a not4Delta mutant, and MG132 treatment did not affect the levels of the truncated arrest products. Deletion of other components of the Ccr4-Not complex did not increase the levels of the translation arrest products or reporter mRNAs. A L35A substitution in the Not4p RING finger domain, which disrupted its interaction with the Ubc4/Ubc5 E2 enzyme and its activity as an ubiquitin-protein ligase, also abrogated the degradation of arrest products. These results suggest that Not4p, a component of the Ccr4-Not complex, may act as an E3 ubiquitin-protein ligase for translation arrest products. The results let us propose that the interaction between basic amino acid residues and the negatively charged exit tunnel of the ribosome leads to translation arrest followed by Not4p-mediated ubiquitination and protein degradation by the proteasome.
Insights
Aberrant mRNA lacking stop codons triggers protein degradation. Basic amino acid sequences cause translation arrest, leading to proteasome degradation mediated by the Not4 protein, a component of the Ccr4-Not complex.
Area of Science:
- Molecular Biology
- Protein Degradation
- Gene Expression Regulation
Background:
- Aberrant mRNA lacking termination codons poses risks.
- Cellular mechanisms like translation arrest and proteasome degradation mitigate these risks.
- Polylysine synthesis from poly(A) tails exemplifies this process.
Purpose of the Study:
- To investigate if other amino acid sequences, besides polylysine, can induce similar degradation pathways.
- To identify the specific cellular components involved in the degradation of truncated proteins resulting from translation arrest.
Main Methods:
- Insertion of basic amino acid sequences (e.g., R12, K12) between reporter genes (GFP, HIS3).
- Analysis of truncated protein degradation using proteasome inhibitors (MG132).
- Genetic analysis involving mutants of the Ccr4-Not complex and its components (Not4p).
- Site-directed mutagenesis of Not4p's RING finger domain.
Main Results:
- Insertion of 12 basic amino acids, but not a stem-loop, caused degradation of truncated GFP.
- Truncated proteins were stabilized in not4Delta mutants and were not affected by MG132.
- Mutating Not4p's RING finger domain abolished degradation of arrest products.
- Not4p appears to function as an E3 ubiquitin-protein ligase.
Conclusions:
- Basic amino acid sequences can induce translation arrest and subsequent proteasomal degradation.
- Not4p, a Ccr4-Not complex member, acts as an E3 ubiquitin ligase targeting these arrested translation products.
- This pathway involves ribosome exit tunnel interactions, arrest, ubiquitination by Not4p, and proteasomal degradation.
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