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Updated: Jun 25, 2026

Measurement of mRNA Decay Rates in Saccharomyces cerevisiae Using rpb1-1 Strains
Published on: December 13, 2014
Chapter 3. Assays of adenylate uridylate-rich element-mediated mRNA decay in cells
Riza M Ysla1, Gerald M Wilson, Gary Brewer
1Department of Molecular Genetics, Microbiology, and Immunology, University of Medicine and Dentistry of New Jersey, Robert Wood Johnson Medical School, Piscataway, New Jersey, USA.
Abstract:
The abundance of a cytoplasmic mRNA in eukaryotes often determines the level of the encoded protein product. The rates at which an mRNA is synthesized, exported, and degraded collectively contribute to its abundance in all cell types. Numerous mRNAs, particularly those encoding structural proteins, are very stable, with half-lives in the order of many hours. In contrast, mRNAs encoding regulatory proteins, including oncoproteins, cytokines, and signaling proteins, are relatively unstable with half-lives of an hour or less. As a result, modest changes in their decay rates affect their levels over a relatively short time period. This is particularly important to ensure rapid responses to extracellular signaling events. Messenger RNAs often harbor sequence elements that dictate their degradation rates. Adenylate uridylate (A+U)-rich elements (AREs), first identified in 1986, are perhaps the best characterized sequences that promote rapid mRNA degradation. These elements, localized within 3'-untranslated regions, sometimes contain AUUUA pentamers within an overall U-rich sequence, but this does not always define a bona fide ARE. Thus, experimental validation is essential before bestowing upon a suspected A+U-rich sequence the title of "ARE." This chapter describes a reporter gene system that permits quantitative assessment of the effects of candidate A+U-rich sequences on mRNA half-life. This system employs tetracycline-controlled transcriptional silencing of the reporter gene, isolation of total-cell RNA at selected time points, quantitative reverse transcriptase polymerase chain reaction analysis of reporter mRNA levels, and nonlinear regression analysis of mRNA level as a function of time to quantitatively define parameters describing mRNA decay kinetics. Finally, this chapter describes more specialized assays to characterize ARE-mediated mRNA decay pathways, including deadenylation, and discusses decapping.
Insights
mRNA decay rates control protein levels. Adenylate uridylate-rich elements (AREs) are key regulators of mRNA stability, influencing cellular responses to signaling events.
Area of Science:
- Molecular Biology
- Gene Regulation
- RNA Biology
Background:
- Cytoplasmic mRNA abundance dictates protein levels in eukaryotes.
- mRNA stability, influenced by synthesis, export, and degradation rates, varies significantly between structural and regulatory proteins.
- Adenylate uridylate-rich elements (AREs) in 3'-untranslated regions are known regulators of rapid mRNA degradation.
Purpose of the Study:
- To present a reporter gene system for quantitative assessment of AREs' effects on mRNA half-life.
- To validate candidate A+U-rich sequences as bona fide AREs.
- To characterize ARE-mediated mRNA decay pathways.
Main Methods:
- Utilizing tetracycline-controlled transcriptional silencing of a reporter gene.
- Isolating total-cell RNA at specific time points.
- Performing quantitative reverse transcriptase polymerase chain reaction (RT-qPCR) and nonlinear regression analysis to determine mRNA decay kinetics.
- Employing specialized assays to study deadenylation and decapping in ARE-mediated decay.
Main Results:
- The described reporter system allows for quantitative measurement of mRNA decay rates influenced by specific sequence elements.
- Experimental validation is crucial for identifying functional AREs, as sequence alone is insufficient.
- The system facilitates detailed characterization of mRNA decay mechanisms.
Conclusions:
- The reporter gene system provides a robust method for quantifying mRNA decay kinetics and identifying ARE function.
- Understanding ARE-mediated decay is critical for comprehending gene expression regulation and cellular responses.
- This approach aids in the precise characterization of mRNA degradation pathways.
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