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Updated: Jul 14, 2025

Analysis of RNA Processing Reactions Using Cell Free Systems: 3' End Cleavage of Pre-mRNA Substrates in vitro
Published on: May 3, 2014
NMD targets experience deadenylation during their maturation and endonucleolytic cleavage during their decay
Marcus J Viscardi1, Joshua A Arribere1
1Department of Molecular, Cellular and Developmental Biology, University of California at Santa Cruz, Santa Cruz, CA, USA.
Abstract:
Premature stop codon-containing mRNAs can produce truncated and dominantly acting proteins that harm cells. Eukaryotic cells protect themselves by degrading such mRNAs via the Nonsense-Mediated mRNA Decay (NMD) pathway. The precise reactions by which cells attack NMD target mRNAs remain obscure, precluding a mechanistic understanding of NMD and hampering therapeutic efforts to control NMD. A key step in NMD is the decay of the mRNA, which is proposed to occur via several competing models including deadenylation, exonucleolytic decay, and/or endonucleolytic decay. We set out to clarify the relative contributions of these decay mechanisms to NMD, and to identify the role of key factors. Here, we modify and deploy single-molecule nanopore mRNA sequencing to capture full-length NMD targets and their degradation intermediates, and we obtain single-molecule measures of splicing isoform, cleavage state, and poly(A) tail length. We observe robust endonucleolytic cleavage of NMD targets in vivo that depends on the nuclease SMG-6 and we use the occurence of cleavages to identify several known NMD targets. We show that NMD target mRNAs experience deadenylation, but similar to the extent that normal mRNAs experience as they enter the translational pool. Furthermore, we show that a factor (SMG-5) that historically was ascribed a function in deadenylation, is in fact required for SMG-6-mediated cleavage. Our results support a model in which NMD factors act in concert to degrade NMD targets in animals via an endonucleolytic cleavage near the stop codon, and suggest that deadenylation is a normal part of mRNA (and NMD target) maturation rather than a facet unique to NMD. Our work clarifies the route by which NMD target mRNAs are attacked in an animal.
Insights
Eukaryotic cells degrade harmful mRNAs with premature stop codons using Nonsense-Mediated mRNA Decay (NMD). This study reveals NMD primarily uses SMG-6-dependent endonucleolytic cleavage, not deadenylation, to attack these mRNAs.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Nonsense-Mediated mRNA Decay (NMD) is a crucial cellular surveillance pathway that eliminates mRNAs containing premature stop codons, preventing the production of potentially harmful truncated proteins.
- The exact molecular mechanisms and key factors involved in the degradation of NMD target mRNAs remain incompletely understood, hindering therapeutic applications.
- Existing models propose mRNA decay occurs through deadenylation, exonucleolytic decay, or endonucleolytic decay, but their relative contributions in NMD are unclear.
Approach:
- Utilized modified single-molecule nanopore mRNA sequencing to analyze full-length NMD targets and their degradation intermediates.
- Obtained single-molecule measurements of mRNA splicing isoforms, cleavage sites, and poly(A) tail lengths.
- Investigated the roles of key NMD factors, including SMG-6 and SMG-5, in the decay process.
Key Points:
- Demonstrated robust *in vivo* endonucleolytic cleavage of NMD target mRNAs, dependent on the nuclease SMG-6.
- Showed that NMD target mRNAs undergo deadenylation, but to a similar extent as normal mRNAs during translational initiation.
- Revealed that the NMD factor SMG-5 is essential for SMG-6-mediated cleavage, challenging its previously ascribed role in deadenylation.
Conclusions:
- NMD factors collaborate to degrade NMD target mRNAs in animals through endonucleolytic cleavage near the premature stop codon.
- Deadenylation appears to be a general mRNA maturation process rather than a mechanism specific to NMD.
- This research clarifies the primary mechanism by which NMD targets are attacked in animal cells.
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