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Updated: Jun 23, 2026

A Suppressor Screen for the Characterization of Genetic Links Regulating Chronological Lifespan in Saccharomyces cerevisiae
Published on: September 17, 2020
The yeast PNC1 longevity gene is up-regulated by mRNA mistranslation
Raquel M Silva1, Iven C N Duarte, João A Paredes
1Department of Biology and CESAM, University of Aveiro, Aveiro, Portugal.
Abstract:
Translation fidelity is critical for protein synthesis and to ensure correct cell functioning. Mutations in the protein synthesis machinery or environmental factors that increase synthesis of mistranslated proteins result in cell death and degeneration and are associated with neurodegenerative diseases, cancer and with an increasing number of mitochondrial disorders. Remarkably, mRNA mistranslation plays critical roles in the evolution of the genetic code, can be beneficial under stress conditions in yeast and in Escherichia coli and is an important source of peptides for MHC class I complex in dendritic cells. Despite this, its biology has been overlooked over the years due to technical difficulties in its detection and quantification. In order to shed new light on the biological relevance of mistranslation we have generated codon misreading in Saccharomyces cerevisiae using drugs and tRNA engineering methodologies. Surprisingly, such mistranslation up-regulated the longevity gene PNC1. Similar results were also obtained in cells grown in the presence of amino acid analogues that promote protein misfolding. The overall data showed that PNC1 is a biomarker of mRNA mistranslation and protein misfolding and that PNC1-GFP fusions can be used to monitor these two important biological phenomena in vivo in an easy manner, thus opening new avenues to understand their biological relevance.
Insights
Mistranslation, or errors in protein synthesis, can cause cell death but also has benefits. Researchers found the PNC1 gene acts as a biomarker for monitoring mistranslation and protein misfolding in vivo.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Protein synthesis fidelity is crucial for cellular function.
- Errors in protein synthesis (mistranslation) are linked to diseases like cancer and neurodegeneration.
- Mistranslation also plays roles in evolution and stress adaptation.
Purpose of the Study:
- To investigate the biological relevance of mRNA mistranslation.
- To identify biomarkers for detecting and quantifying mistranslation and protein misfolding.
Main Methods:
- Induced codon misreading in Saccharomyces cerevisiae using drugs and tRNA engineering.
- Grew cells in the presence of amino acid analogues to promote protein misfolding.
- Utilized PNC1-GFP fusions for in vivo monitoring.
Main Results:
- Induced mistranslation upregulated the longevity gene PNC1.
- Amino acid analogues also led to similar PNC1 upregulation.
- PNC1 functions as a biomarker for mRNA mistranslation and protein misfolding.
Conclusions:
- PNC1 is a reliable biomarker for mRNA mistranslation and protein misfolding.
- PNC1-GFP fusions provide an accessible method for in vivo monitoring of these processes.
- This opens new research avenues into the biological significance of mistranslation and misfolding.
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