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Mammalian nonsense codons can be cis effectors of nuclear mRNA half-life
1Department of Human Genetics, Roswell Park Cancer Institute, Buffalo, New York 14263.
Abstract:
Frameshift and nonsense mutations within the gene for human triosephosphate isomerase (TPI) that generate a nonsense codon within the first three-fourths of the protein coding region have been found to reduce the abundance of the product mRNA that copurifies with nuclei. The cellular process and location of the nonsense codon-mediated reduction have proven difficult to elucidate for technical reasons. We show here, using electron microscopy to judge the purity of isolated nuclei, that the previously established reduction to 25% of the normal mRNA level is evident for nuclei that are free of detectable cytoplasmic contamination. Therefore, the reduction is likely to be characteristic of bona fide nuclear RNA. Fully spliced nuclear mRNA is identified by Northern (RNA) blot hybridization and a reverse transcription-PCR assay as the species that undergoes decay in experiments that used the human c-fos promoter to elicit a burst and subsequent shutoff of TPI gene transcription upon the addition of serum to serum-deprived cells. Finally, the finding that deletion of a 5' splice site of the TPI gene results predominantly but not exclusively in the removal by splicing (i.e., skipping) of the upstream exon as a part of the flanking introns has been used to demonstrate that decay is specific to those mRNA products that maintain the nonsense codon. This result, together with our previous results that implicate translation by ribosomes and charged tRNAs in the decay mechanism, indicate that nonsense codon recognition takes place after splicing and triggers decay solely in cis. The possibility that decay takes place during the process of mRNA export from the nucleus to the cytoplasm is discussed.
Insights
Nonsense mutations in the triosephosphate isomerase (TPI) gene trigger mRNA decay within the nucleus after splicing. This decay specifically targets mRNA containing the nonsense codon, indicating a cis-acting mechanism.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Nonsense mutations can reduce mRNA levels, but the location and mechanism of this reduction are unclear.
- Previous studies indicated reduced mRNA abundance associated with nuclei, but cytoplasmic contamination was a concern.
Purpose of the Study:
- To determine if nonsense codon-mediated mRNA reduction occurs in the nucleus.
- To identify the specific mRNA species undergoing decay.
- To elucidate the mechanism and timing of nonsense codon recognition and subsequent decay.
Main Methods:
- Electron microscopy to assess nuclear purity.
- Northern blot hybridization and RT-PCR to analyze mRNA species.
- Gene manipulation (deletion of splice sites) to study decay specificity.
Main Results:
- mRNA reduction was confirmed in highly purified nuclei, suggesting a nuclear process.
- Fully spliced nuclear mRNA, not pre-mRNA, was identified as the species undergoing decay.
- Decay was specific to mRNA retaining the nonsense codon and occurred post-splicing, implicating translation.
Conclusions:
- Nonsense codon-mediated mRNA decay (NMD) occurs in the nucleus after splicing.
- The mechanism is cis-acting, triggered by nonsense codon recognition.
- Decay may occur during mRNA export, highlighting a critical regulatory step.