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Updated: Jun 30, 2025

Determining Genome-wide Transcript Decay Rates in Proliferating and Quiescent Human Fibroblasts
Published on: January 2, 2018
Translation-dependent and -independent mRNA decay occur through mutually exclusive pathways defined by ribosome
Blandine C Mercier1, Emmanuel Labaronne2,3, David Cluet2
1RNA Therapeutics Institute, University of Massachusetts Medical School, Worcester, Massachusetts 01605, USA.
Abstract:
mRNA translation and decay are tightly interconnected processes both in the context of mRNA quality-control pathways and for the degradation of functional mRNAs. Cotranslational mRNA degradation through codon usage, ribosome collisions, and the recruitment of specific proteins to ribosomes is an important determinant of mRNA turnover. However, the extent to which translation-dependent mRNA decay (TDD) and translation-independent mRNA decay (TID) pathways participate in the degradation of mRNAs has not been studied yet. Here we describe a comprehensive analysis of basal and signal-induced TDD and TID in mouse primary CD4+ T cells. Our results indicate that most cellular transcripts are decayed to some extent in a translation-dependent manner. Our analysis further identifies the length of untranslated regions, the density of ribosomes, and GC3 content as important determinants of TDD magnitude. Consistently, all transcripts that undergo changes in ribosome density within their coding sequence upon T cell activation display a corresponding change in their TDD level. Moreover, we reveal a dynamic modulation in the relationship between GC3 content and TDD upon T cell activation, with a reversal in the impact of GC3- and AU3-rich codons. Altogether, our data show a strong and dynamic interconnection between mRNA translation and decay in mammalian primary cells.
Insights
Most cellular transcripts degrade via translation-dependent mRNA decay (TDD). Untranslated region length, ribosome density, and codon content influence TDD, which dynamically changes with T cell activation.
Area of Science:
- Molecular Biology
- Cell Biology
- Immunology
Background:
- mRNA translation and decay are critical, interconnected cellular processes.
- Cotranslational mRNA degradation influences mRNA turnover, but the roles of translation-dependent mRNA decay (TDD) and translation-independent mRNA decay (TID) are not fully understood.
Purpose of the Study:
- To comprehensively analyze basal and signal-induced TDD and TID in mouse primary CD4+ T cells.
- To identify factors determining TDD magnitude and how these relationships change upon T cell activation.
Main Methods:
- Analysis of mRNA decay pathways in mouse primary CD4+ T cells.
- Investigated the impact of untranslated region length, ribosome density, and codon content (GC3) on TDD.
- Examined dynamic changes in TDD and its determinants following T cell activation.
Main Results:
- Most cellular transcripts exhibit some degree of translation-dependent decay.
- Untranslated region length, ribosome density, and GC3 content are key determinants of TDD.
- T cell activation dynamically alters the relationship between codon content and TDD, including a reversal of GC3/AU3 codon effects.
Conclusions:
- There is a strong, dynamic interplay between mRNA translation and decay in mammalian cells.
- TDD is a significant contributor to mRNA turnover, influenced by transcript features and cellular activation states.
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