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Updated: Aug 25, 2026

Measurement of mRNA Decay Rates in Saccharomyces cerevisiae Using rpb1-1 Strains
Published on: December 13, 2014
Leaky termination at premature stop codons antagonizes nonsense-mediated mRNA decay in S. cerevisiae
Kim M Keeling1, Jessica Lanier, Ming Du
1Department of Microbiology, University of Alabama at Birmingham, Birmingham, Alabama, USA.
Abstract:
The Nonsense-Mediated mRNA Decay (NMD) pathway mediates the rapid degradation of mRNAs that contain premature stop mutations in eukaryotic organisms. It was recently shown that mutations in three yeast genes that encode proteins involved in the NMD process, UPF1, UPF2, and UPF3, also reduce the efficiency of translation termination. In the current study, we compared the efficiency of translation termination in a upf1Delta strain and a [PSI(+)] strain using a collection of translation termination reporter constructs. The [PSI(+)] state is caused by a prion form of the polypeptide chain release factor eRF3 that limits its availability to participate in translation termination. In contrast, the mechanism by which Upf1p influences translation termination is poorly understood. The efficiency of translation termination is primarily determined by a tetranucleotide termination signal consisting of the stop codon and the first nucleotide immediately 3' of the stop codon. We found that the upf1Delta mutation, like the [PSI(+)] state, decreases the efficiency of translation termination over a broad range of tetranucleotide termination signals in a unique, context-dependent manner. These results suggest that Upf1p may associate with the termination complex prior to polypeptide chain release. We also found that the increase in readthrough observed in a [PSI(+)]/upf1Delta strain was larger than the readthrough observed in strains carrying either defect alone, indicating that the upf1Delta mutation and the [PSI(+)] state influence the termination process in distinct ways. Finally, our analysis revealed that the mRNA destabilization associated with NMD could be separated into two distinct forms that correlated with the extent the premature stop codon was suppressed. The minor component of NMD was a 25% decrease in mRNA levels observed when readthrough was >/=0.5%, while the major component was represented by a larger decrease in mRNA abundance that was observed only when readthrough was =0.5%. This low threshold for the onset of the major component of NMD indicates that mRNA surveillance is an ongoing process that occurs throughout the lifetime of an mRNA.
Insights
The Nonsense-Mediated mRNA Decay (NMD) pathway and the [PSI(+)] state both impair translation termination. This study reveals Upf1p
Area of Science:
- Molecular Biology
- Genetics
Background:
- The Nonsense-Mediated mRNA Decay (NMD) pathway degrades mRNAs with premature stop codons.
- Mutations in UPF genes (UPF1, UPF2, UPF3) affecting NMD also impact translation termination efficiency.
- The mechanism of Upf1p's influence on translation termination is not well understood.
Purpose of the Study:
- To compare translation termination efficiency in yeast strains with upf1Delta and [PSI(+)] mutations.
- To elucidate the role of Upf1p in the context-dependent regulation of translation termination.
Main Methods:
- Utilized a collection of translation termination reporter constructs in yeast.
- Compared termination efficiency in upf1Delta and [PSI(+)] strains.
- Analyzed mRNA destabilization patterns in relation to premature stop codon readthrough.
Main Results:
- The upf1Delta mutation, similar to the [PSI(+)] state, reduces translation termination efficiency in a context-dependent manner.
- Upf1p may interact with the termination complex before polypeptide release.
- Combined upf1Delta and [PSI(+)] mutations result in greater readthrough than either defect alone, suggesting distinct mechanisms.
Conclusions:
- Upf1p plays a significant role in regulating translation termination efficiency.
- NMD-mediated mRNA destabilization can be separated into distinct forms based on readthrough levels.
- mRNA surveillance is a continuous process throughout mRNA lifespan.
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