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Updated: Apr 19, 2026

Eukaryotic Polyribosome Profile Analysis
Published on: June 15, 2010
Modulation of efficiency of translation termination in Saccharomyces cerevisiae
Anton A Nizhnikov1, Kirill S Antonets, Sergey G Inge-Vechtomov
1a Department of Genetics and Biotechnology ; St. Petersburg State University ; St. Petersburg , Russia.
Abstract:
Nonsense suppression is a readthrough of premature termination codons. It typically occurs either due to the recognition of stop codons by tRNAs with mutant anticodons, or due to a decrease in the fidelity of translation termination. In the latter case, suppressors usually promote the readthrough of different types of nonsense codons and are thus called omnipotent nonsense suppressors. Omnipotent nonsense suppressors were identified in yeast Saccharomyces cerevisiae in 1960s, and most of subsequent studies were performed in this model organism. Initially, omnipotent suppressors were localized by genetic analysis to different protein- and RNA-encoding genes, mostly the components of translational machinery. Later, nonsense suppression was found to be caused not only by genomic mutations, but also by epigenetic elements, prions. Prions are self-perpetuating protein conformations usually manifested by infectious protein aggregates. Modulation of translational accuracy by prions reflects changes in the activity of their structural proteins involved in different aspects of protein synthesis. Overall, nonsense suppression can be seen as a "phenotypic mirror" of events affecting the accuracy of the translational machine. However, the range of proteins participating in the modulation of translation termination fidelity is not fully elucidated. Recently, the list has been expanded significantly by findings that revealed a number of weak genetic and epigenetic nonsense suppressors, the effect of which can be detected only in specific genetic backgrounds. This review summarizes the data on the nonsense suppressors decreasing the fidelity of translation termination in S. cerevisiae, and discusses the functional significance of the modulation of translational accuracy.
Insights
Nonsense suppression, readthrough of stop codons, can be caused by genetic mutations or prions in yeast. These factors impact translation accuracy, revealing insights into the protein synthesis machinery.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Nonsense suppression involves readthrough of premature termination codons, either via mutant tRNAs or decreased translation termination fidelity.
- Omnipotent nonsense suppressors, affecting various stop codons, were first identified in Saccharomyces cerevisiae and primarily studied in this model organism.
Purpose of the Study:
- To review known nonsense suppressors that decrease translation termination fidelity in S. cerevisiae.
- To discuss the functional significance of altered translational accuracy modulated by genetic and epigenetic factors.
Main Methods:
- Genetic analysis to localize suppressors to genes encoding translational machinery components.
- Investigation of epigenetic elements, such as prions, as causes of nonsense suppression.
- Identification of weak genetic and epigenetic suppressors detectable in specific genetic backgrounds.
Main Results:
- Nonsense suppression can arise from genomic mutations or epigenetic elements like prions, which modulate translational accuracy.
- Prions, as self-perpetuating protein conformations, influence protein synthesis by altering the activity of structural proteins.
- Recent findings have expanded the known list of weak genetic and epigenetic nonsense suppressors.
Conclusions:
- Nonsense suppression serves as a "phenotypic mirror" of events affecting the accuracy of the translational machinery.
- The full spectrum of proteins involved in modulating translation termination fidelity is still under investigation.
- Understanding these suppressors is crucial for elucidating the complex regulation of translational accuracy.
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