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Published on: December 13, 2014
Variable efficiency of nonsense-mediated mRNA decay across human tissues, tumors and individuals
Guillermo Palou-Márquez1, Fran Supek2,3,4
1Institute for Research in Biomedicine (IRB Barcelona), The Barcelona Institute for Science and Technology (BIST), Barcelona, 08028, Spain.
Background:
Nonsense-mediated mRNA decay (NMD) is a quality-control pathway that degrades mRNA bearing premature termination codons (PTCs) resulting from mutation or mis-splicing, and that additionally participates in gene regulation of unmutated transcripts. While NMD activity is known to differ between examples of PTCs, it is less well studied if human tissues differ in NMD activity, or if individuals differ.
Results:
We analyzed exomes and matched transcriptomes from Human tumors and healthy tissues to quantify individual-level NMD efficiency, and assess its variability between tissues, tumors, and individuals. This was done by monitoring mRNA levels of endogenous NMD target transcripts, and additionally supported by allele-specific expression of germline PTCs. Nervous system and reproductive system tissues have lower NMD efficiency than other tissues, such as the digestive tract. Next, there is systematic inter-individual variability in NMD efficiency, and we identify two underlying mechanisms. First, somatic copy number alterations can robustly associate with NMD efficiency, prominently the commonly-occurring gain at chromosome 1q that encompasses two core NMD genes: SMG5 and SMG7 and additional functionally interacting genes such as PMF1 and GON4L. Second, deleterious germline variants in genes such as the KDM6B chromatin modifier can associate with higher or lower NMD efficiency in individuals. Variable NMD efficiency modulates positive selection upon somatic nonsense mutations in tumor suppressor genes, and is associated with cancer patient survival and immunotherapy responses. CONCLUSIONS: NMD efficiency is variable across human tissues, and it is additionally variable across individuals and tumors thereof due to germline and somatic genetic alterations.
Insights
Nonsense-mediated mRNA decay (NMD) efficiency varies across human tissues and individuals. Genetic alterations, both inherited and acquired, influence NMD activity, impacting cancer development and treatment outcomes.
Area of Science:
- Genomics
- Molecular Biology
- Cancer Research
Background:
- Nonsense-mediated mRNA decay (NMD) is a critical RNA surveillance pathway.
- NMD degrades aberrant mRNAs with premature termination codons (PTCs).
- Its role in gene regulation and variability across human tissues and individuals is less understood.
Purpose of the Study:
- To quantify NMD efficiency in human tissues and individuals.
- To assess variability in NMD efficiency across tissues, tumors, and individuals.
- To identify genetic mechanisms underlying NMD variability.
Main Methods:
- Analysis of exomes and transcriptomes from human tumors and healthy tissues.
- Monitoring mRNA levels of endogenous NMD target transcripts.
- Utilizing allele-specific expression of germline PTCs.
Main Results:
- NMD efficiency differs significantly between human tissues, with nervous and reproductive systems showing lower activity.
- Substantial inter-individual variability in NMD efficiency was observed.
- Somatic copy number alterations (e.g., 1q gain affecting SMG5/SMG7) and germline variants (e.g., in KDM6B) were identified as key mechanisms influencing NMD efficiency.
- Variable NMD efficiency impacts selection on somatic mutations and correlates with cancer patient survival and immunotherapy response.
Conclusions:
- Human tissue and individual NMD efficiency exhibit significant variability.
- Germline and somatic genetic alterations are major drivers of this NMD variability.
- Understanding NMD variability is crucial for its role in cancer biology and therapeutic strategies.
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