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Measurement of mRNA Decay Rates in Saccharomyces cerevisiae Using rpb1-1 Strains
Published on: December 13, 2014
Multiple transcripts from a 3'-UTR reporter vary in sensitivity to nonsense-mediated mRNA decay in Saccharomyces
John M Zaborske1, Bethany Zeitler, Michael R Culbertson
1Laboratory of Genetics and Laboratory of Cell and Molecular Biology, University of Wisconsin, Madison, Wisconsin, United States of America.
Abstract:
Nonsense-mediated mRNA decay (NMD) causes accelerated transcript degradation when a premature translation termination codon disrupts the open reading frame (ORF). Although endogenous transcripts that have uninterrupted ORFs are typically insensitive to NMD, some can nonetheless become prone to NMD when translation terminates at out-of-frame premature stop codons. This occurs when introns containing stop codons fail to be spliced, when translation of an upstream ORF (uORF) terminates in the 5'-untranslated region (5'-UTR) or the coding region, or when the 5'-proximal AUG initiation codon is bypassed and translation initiates at a downstream out-of-frame AUG followed by a stop codon. Some 3'-untranslated regions (3'-UTRs) are also known to trigger NMD, but the mechanism is less well understood. To further study the role of 3'-UTRs in NMD, a reporter system was designed to examine 3'-UTRs from candidate genes known to produce NMD-sensitive transcripts. Out of eight that were tested, the 3'-UTRs from MSH4 and SPO16 caused NMD-dependent mRNA destabilization. Both endogenous genes produce multiple transcripts that differ in length at the 3' end. Detailed studies revealed that the longest of six reporter MSH4-3'-UTR transcripts was NMD-sensitive but five shorter transcripts were insensitive. NMD-dependent degradation of the long transcript required Xrn1, which degrades mRNA from the 5' end. Sensitivity to NMD was not associated with extensive translational read-through past the normal stop codon. To our knowledge, this is the first example where multiple transcripts containing the same ORF are differentially sensitive to NMD in Saccharomyces cerevisiae. The results provide a proof of principle that long 3'-UTRs can trigger NMD, which suggests a potential link between errors in transcription termination or processing and mRNA decay.
Insights
Nonsense-mediated mRNA decay (NMD) typically degrades faulty transcripts. This study shows that long 3' untranslated regions (3'-UTRs) can trigger NMD, even in otherwise stable transcripts, impacting gene regulation.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Nonsense-mediated mRNA decay (NMD) is a surveillance pathway that degrades aberrant mRNAs containing premature stop codons.
- While typically affecting transcripts with disrupted open reading frames (ORFs), NMD can also be triggered by other mechanisms, including elements within untranslated regions.
- The role of 3'-untranslated regions (3'-UTRs) in NMD regulation is not fully understood.
Purpose of the Study:
- To investigate the potential of 3'-UTRs to trigger NMD-dependent mRNA decay.
- To identify specific 3'-UTRs that confer NMD sensitivity to otherwise stable transcripts.
- To elucidate the mechanism by which 3'-UTRs influence NMD in Saccharomyces cerevisiae.
Main Methods:
- A reporter system was employed to test the NMD sensitivity of 3'-UTRs from candidate genes.
- Analysis of multiple transcript variants differing in 3'-UTR length for NMD sensitivity.
- Investigating the requirement of specific factors, such as Xrn1, in NMD-mediated degradation.
Main Results:
- The 3'-UTRs of MSH4 and SPO16 were identified as potent triggers of NMD.
- Differential NMD sensitivity was observed among multiple transcripts derived from the same gene, with longer 3'-UTRs being more sensitive.
- NMD-dependent degradation of the long MSH4-3'-UTR transcript required the 5'-to-3' exoribonuclease Xrn1.
- NMD sensitivity was not linked to translational read-through.
Conclusions:
- This study provides the first evidence in Saccharomyces cerevisiae of differential NMD sensitivity among transcripts from the same ORF based on 3'-UTR length.
- Long 3'-UTRs can actively trigger NMD, suggesting a mechanism linking transcription termination/processing errors to mRNA decay.
- These findings highlight a novel regulatory role for 3'-UTRs in post-transcriptional gene expression control.
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