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Published on: December 13, 2014
Comparison of nonsense-mediated mRNA decay efficiency in various murine tissues
Almoutassem B Zetoune1, Sandra Fontanière, Delphine Magnin
1Laboratoire de Génétique Moléculaire, Signalisation et Cancer UMR5201 CNRS, Equipe Labellisée par Ligue Nationale contre Cance, Université Lyon 1, Université de Lyon, Faculté de Médecine, Lyon, France. moutassem.zetoune@recherche.univ-lyon1.fr
Background:
The Nonsense-Mediated mRNA Decay (NMD) pathway detects and degrades mRNAs containing premature termination codons, thereby preventing the accumulation of potentially detrimental truncated proteins. Intertissue variation in the efficiency of this mechanism has been suggested, which could have important implications for the understanding of genotype-phenotype correlations in various genetic disorders. However, compelling evidence in favour of this hypothesis is lacking. Here, we have explored this question by measuring the ratio of mutant versus wild-type Men1 transcripts in thirteen tissues from mice carrying a heterozygous truncating mutation in the ubiquitously expressed Men1 gene.
Results:
Significant differences were found between two groups of tissues. The first group, which includes testis, ovary, brain and heart, displays a strong decrease of the nonsense transcript (average ratio of 18% of mutant versus wild-type Men1 transcripts, identical to the value measured in murine embryonic fibroblasts). The second group, comprising lung, intestine and thymus, shows much less pronounced NMD (average ratio of 35%). Importantly, the extent of degradation by NMD does not correlate with the expression level of eleven genes encoding proteins involved in NMD or with the expression level of the Men1 gene.
Conclusion:
Mouse models are an attractive option to evaluate the efficiency of NMD in multiple mammalian tissues and organs, given that it is much easier to obtain these from a mouse than from a single individual carrying a germline truncating mutation. In this study, we have uncovered in the thirteen different murine tissues that we examined up to a two-fold difference in NMD efficiency.
Insights
The Nonsense-Mediated mRNA Decay (NMD) pathway shows variable efficiency across different mouse tissues. This study found up to a two-fold difference in NMD efficiency, impacting genotype-phenotype correlations.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- The Nonsense-Mediated mRNA Decay (NMD) pathway prevents the accumulation of truncated proteins by degrading aberrant mRNAs.
- Intertissue variation in NMD efficiency could explain genotype-phenotype correlations in genetic disorders, but evidence is limited.
Purpose of the Study:
- To investigate intertissue differences in NMD efficiency.
- To measure the ratio of mutant to wild-type Men1 transcripts across thirteen mouse tissues.
Main Methods:
- Utilized a mouse model with a heterozygous truncating mutation in the Men1 gene.
- Quantified mutant versus wild-type Men1 transcript ratios in thirteen distinct tissues.
Main Results:
- Identified significant differences in NMD efficiency between two tissue groups.
- Tissues like testis, ovary, brain, and heart showed strong NMD (18% mutant transcript ratio), while lung, intestine, and thymus exhibited less NMD (35% mutant transcript ratio).
- NMD efficiency did not correlate with the expression of NMD-related genes or the Men1 gene.
Conclusions:
- Mouse models facilitate the evaluation of NMD efficiency across multiple tissues.
- Demonstrated up to a two-fold variation in NMD efficiency across thirteen murine tissues.
- Highlights the importance of considering tissue-specific NMD activity in genetic disorder research.
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