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Updated: Jun 10, 2026

Isolation of Translating Ribosomes Containing Peptidyl-tRNAs for Functional and Structural Analyses
Published on: February 25, 2011
Translational competence of ribosomes released from a premature termination codon is modulated by NMD factors
Shubhendu Ghosh1, Robin Ganesan, Nadia Amrani
1Department of Molecular Genetics and Microbiology, University of Massachusetts Medical School, Worcester, Massachusetts 01655-0122, USA.
Abstract:
In addition to their well-documented roles in the promotion of nonsense-mediated mRNA decay (NMD), yeast Upf proteins (Upf1, Upf2/Nmd2, and Upf3) also manifest translational regulatory functions, at least in vitro, including roles in premature translation termination and subsequent reinitiation. Here, we find that all upf Delta strains also fail to reinitiate translation after encountering a premature termination codon (PTC) in vivo, a result that led us to seek a unifying mechanism for all of these translation phenomena. Comparisons of the in vitro translational activities of wild-type (WT) and upf1 Delta extracts were utilized to test for a Upf1 role in post-termination ribosome reutilization. Relative to WT extracts, non-nucleased extracts lacking Upf1 had approximately twofold decreased activity for the translation of synthetic CAN1/LUC mRNA, a defect paralleled by fewer ribosomes per mRNA and reduced efficiency of the 60S joining step at initiation. These deficiencies could be complemented by purified FLAG-Upf1, or 60S subunits, and appeared to reflect diminished cycling of ribosomes from endogenous PTC-containing mRNAs to exogenously added synthetic mRNA in the same extracts. This hypothesis was tested, and supported, by experiments in which nucleased WT or upf1 Delta extracts were first challenged with high concentrations of synthetic mRNAs that were templates for either normal or premature translation termination and then assayed for their capacity to translate a normal mRNA. Our results indicate that Upf1 plays a key role in a mechanism coupling termination and ribosome release at a PTC to subsequent ribosome reutilization for another round of translation initiation.
Insights
Yeast Upf proteins, including Upf1, regulate translation. This study shows Upf1 is crucial for ribosome reuse after premature translation termination, ensuring efficient protein synthesis.
Area of Science:
- Molecular Biology
- Yeast Genetics
- RNA Biology
Background:
- Yeast Upf proteins (Upf1, Upf2/Nmd2, Upf3) are known to promote nonsense-mediated mRNA decay (NMD).
- These proteins also exhibit in vitro translational regulatory functions, including roles in premature translation termination and reinitiation.
Purpose of the Study:
- To investigate the in vivo role of Upf proteins in translation reinitiation after premature termination codons (PTCs).
- To elucidate a unifying mechanism for Upf protein-mediated translational phenomena.
Main Methods:
- Comparative analysis of in vitro translation in wild-type (WT) and upf1 Delta yeast extracts.
- Assessing ribosome reutilization by challenging extracts with synthetic mRNAs encoding normal or premature translation termination.
- Complementation assays using purified FLAG-Upf1 or 60S ribosomal subunits.
Main Results:
- All upf Delta strains failed to reinitiate translation after encountering a PTC in vivo.
- Upf1-deficient extracts showed reduced translation of synthetic mRNA, with fewer ribosomes per mRNA and inefficient 60S subunit joining.
- Ribosome cycling from endogenous PTC-containing mRNAs to exogenous synthetic mRNA was diminished in upf1 Delta extracts.
- Experiments supported the hypothesis that Upf1 couples termination at PTCs to subsequent ribosome reutilization.
Conclusions:
- Upf1 plays a critical role in linking translation termination at PTCs with ribosome release and subsequent reutilization.
- This mechanism is essential for efficient translation initiation and overall protein synthesis in yeast.
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