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Updated: Mar 15, 2026

Identification of Footprints of RNA:Protein Complexes via RNA Immunoprecipitation in Tandem Followed by Sequencing RIPiT-Seq
Published on: July 10, 2019
SMG1:SMG8:SMG9-complex integrity supports efficient execution of nonsense-mediated mRNA decay
Sabrina Kueckelmann1,2, Sophie Theunissen1,2, Fenja Meyer Zu Altenschildesche1,2
1Institute for Genetics, Faculty of Mathematics and Natural Sciences, University of Cologne, 50674 Cologne, Germany.
Abstract:
Nonsense-mediated mRNA decay (NMD) is a translation-dependent mRNA turnover pathway, which degrades transcripts containing premature termination codons. NMD activation depends on phosphorylation of the RNA helicase UPF1 by the SMG1 kinase, which acts in a complex with SMG8 and SMG9. Structural and biochemical studies have implicated SMG8 and SMG9 as regulators of SMG1 activity, but their contributions to NMD in human cells remain incompletely defined. Here, we systematically dissect the roles of SMG8 and SMG9 in NMD using genetic and pharmacological perturbations in multiple human cell lines. Deletion of the kinase inhibitory domain (KID) of SMG8 did not affect UPF1 phosphorylation or NMD efficiency, demonstrating that this domain is dispensable in vivo. Complete loss of SMG8 or SMG9 resulted in only modest NMD impairment and was accompanied by moderately increased UPF1 phosphorylation. However, SMG8- or SMG9-deficient cells exhibited pronounced hypersensitivity to partial pharmacological inhibition of SMG1, leading to synergistic, transcriptome-wide stabilization of NMD targets. These effects were reproducible across different cellular contexts, underscoring a general regulatory role for SMG8 and SMG9. Together, our results establish SMG8 and SMG9 as nonessential modulators that safeguard the efficiency and perturbation tolerance of the NMD pathway in human cells.
Insights
Nonsense-mediated mRNA decay (NMD) relies on UPF1 phosphorylation. SMG8 and SMG9 are nonessential regulators that modulate NMD efficiency and perturbation tolerance in human cells.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Nonsense-mediated mRNA decay (NMD) is a crucial post-transcriptional regulatory pathway.
- NMD degrades aberrant mRNAs with premature termination codons, preventing cellular damage.
- SMG1 kinase phosphorylates UPF1 to activate NMD, with SMG8 and SMG9 implicated as regulators.
Purpose of the Study:
- To systematically investigate the roles of SMG8 and SMG9 in human NMD.
- To determine the in vivo significance of the SMG8 kinase inhibitory domain (KID).
- To assess the impact of SMG8 and SMG9 loss on NMD efficiency and cellular response to SMG1 inhibition.
Main Methods:
- Genetic manipulation (gene deletion) in human cell lines.
- Pharmacological inhibition of the SMG1 kinase.
- Analysis of UPF1 phosphorylation levels.
- Transcriptome-wide assessment of NMD target mRNA stability.
Main Results:
- The SMG8 KID is dispensable for NMD in vivo.
- Complete loss of SMG8 or SMG9 caused only modest NMD impairment and moderate UPF1 hyperphosphorylation.
- SMG8- or SMG9-deficient cells showed hypersensitivity to partial SMG1 inhibition, leading to synergistic NMD target stabilization.
Conclusions:
- SMG8 and SMG9 are not essential for NMD but act as nonessential modulators.
- These proteins safeguard NMD pathway efficiency and its tolerance to perturbations.
- SMG8 and SMG9 play a general regulatory role in NMD across different cellular contexts.
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