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Updated: Jan 13, 2026

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Published on: December 13, 2014
Genomic stop codon scanning reveals quantitative principles of nonsense-mediated mRNA decay
Michael A Cortázar1, Jacob Schmidt2, Iman Egab2
1Department of Biochemistry and Molecular Genetics, University of Colorado Anschutz Medical Campus, Aurora, CO 80045, USA.
Abstract:
Nonsense-mediated mRNA decay (NMD) degrades transcripts containing premature termination codons (PTCs), critically shaping the disease outcomes of protein-truncating variants. While existing NMD rules categorize PTCs as NMD-triggering or NMD-evading, they cannot quantitatively predict the degree of NMD activity for a given endogenous PTC variant. To provide quantitative insight into NMD, we used saturation genome editing (SGE) to systematically introduce all possible PTCs (TAA, TAG, TGA) at every codon position spanning the first, penultimate, and three internal exons of the Lamin A/C (LMNA) gene. Combining targeted sequencing with NMD inhibition, we measured mRNA expression and NMD activity for 722 PTCs and 211 single nucleotide variants (SNVs). Our data validate known positional trends in NMD activity but reveal unexpected complexity. In the penultimate exon, the PTC position effect extends beyond the binary 50-55 nucleotides (nt) rule, revealing a quantitative relationship between the PTC-EJC distance and NMD activity. At the 5' end, NMD is completely absent in the first 21 codons of LMNA, followed by sharp activation over the next 4 codons. Both patterns, at the 5' end and in the penultimate exon, are unexplained by current models. Finally, internal exons show robust NMD with outliers consistently mapping to predicted readthrough-permissive sequence contexts, including the conserved readthrough promoting TGA-CT motif. This comprehensive dataset provides an unprecedented resource for understanding the quantitative impact of PTC position and sequence context on NMD, with direct implications for the clinical interpretation of nonsense variants in the human population.
Insights
Nonsense-mediated mRNA decay (NMD) quantitatively impacts disease by degrading faulty transcripts. This study reveals complex NMD rules beyond current models, offering new insights into variant interpretation.
Area of Science:
- Molecular Biology
- Genetics
- Genomics
Background:
- Nonsense-mediated mRNA decay (NMD) is a crucial cellular surveillance pathway.
- NMD degrades transcripts with premature termination codons (PTCs), influencing disease outcomes.
- Current NMD rules lack quantitative prediction for PTC variant activity.
Purpose of the Study:
- To quantitatively assess NMD activity across all possible PTCs in the LMNA gene.
- To refine understanding of PTC position and sequence context effects on NMD.
- To provide a resource for clinical interpretation of genetic variants.
Main Methods:
- Saturation genome editing (SGE) to introduce all PTCs (TAA, TAG, TGA) at various positions in LMNA.
- Targeted sequencing and NMD inhibition to measure mRNA expression and NMD activity.
- Analysis of 722 PTCs and 211 single nucleotide variants (SNVs).
Main Results:
- Validated known NMD positional trends but revealed unexpected complexity.
- Identified a quantitative PTC-EJC distance relationship in the penultimate exon, extending beyond the 50-55 nt rule.
- Observed complete NMD absence in the first 21 LMNA codons, followed by rapid activation, and identified readthrough-permissive motifs in internal exons.
Conclusions:
- Current NMD models do not fully explain observed positional effects.
- The comprehensive dataset offers unprecedented insight into PTC impact on NMD.
- Findings have direct implications for interpreting nonsense variants in clinical genetics.
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