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Updated: Feb 4, 2026

Measurement of mRNA Decay Rates in Saccharomyces cerevisiae Using rpb1-1 Strains
Published on: December 13, 2014
Compound C inhibits nonsense-mediated RNA decay independently of AMPK
Abigael Cheruiyot1, Shan Li1, Andrew Nickless1
1Department of Cell Biology & Physiology, Washington University School of Medicine, St. Louis, Missouri, United States of America.
Abstract:
The nonsense mediated RNA decay (NMD) pathway safeguards the integrity of the transcriptome by targeting mRNAs with premature translation termination codons (PTCs) for degradation. It also regulates gene expression by degrading a large number of non-mutant RNAs (including mRNAs and noncoding RNAs) that bear NMD-inducing features. Consequently, NMD has been shown to influence development, cellular response to stress, and clinical outcome of many genetic diseases. Small molecules that can modulate NMD activity provide critical tools for understanding the mechanism and physiological functions of NMD, and they also offer potential means for treating certain genetic diseases and cancer. Therefore, there is an intense interest in identifying small-molecule NMD inhibitors or enhancers. It was previously reported that both inhibition of NMD and treatment with the AMPK-selective inhibitor Compound C (CC) induce autophagy in human cells, raising the possibility that CC may be capable of inhibiting NMD. Here we show that CC indeed has a NMD-inhibitory activity. Inhibition of NMD by CC is, however, independent of AMPK activity. As a competitive ATP analog, CC does not affect the kinase activity of SMG1, an essential NMD factor and the only known kinase in the NMD pathway. However, CC treatment down-regulates the protein levels of several NMD factors. The induction of autophagy by CC treatment is independent of ATF4, a NMD target that has been shown to promote autophagy in response to NMD inhibition. Our results reveal a new activity of CC as a NMD inhibitor, which has implications for its use in basic research and drug development.
Insights
Compound C (CC) inhibits nonsense-mediated RNA decay (NMD) by reducing NMD factor levels, independent of AMPK activity. This discovery offers new avenues for NMD research and therapeutic development in genetic diseases and cancer.
Area of Science:
- Molecular Biology
- Cellular Biology
- Genetics
Background:
- Nonsense-mediated RNA decay (NMD) is crucial for transcriptome integrity and gene expression regulation.
- NMD influences development, stress response, and genetic disease outcomes.
- Small molecules modulating NMD are valuable for research and potential therapeutics.
Purpose of the Study:
- To investigate the potential NMD-inhibitory activity of Compound C (CC).
- To elucidate the mechanism by which CC affects NMD.
- To explore the relationship between CC-induced autophagy and NMD inhibition.
Main Methods:
- Cellular assays to assess NMD activity.
- Western blotting to analyze protein levels of NMD factors.
- Investigating the role of AMPK and SMG1 in CC's NMD inhibition.
- Examining the involvement of ATF4 in CC-induced autophagy.
Main Results:
- Compound C (CC) demonstrates significant NMD-inhibitory activity.
- CC's NMD inhibition is independent of AMPK activity.
- CC treatment leads to down-regulation of key NMD factor protein levels.
- CC-induced autophagy is independent of the NMD target ATF4.
Conclusions:
- CC acts as a novel NMD inhibitor through a mechanism independent of AMPK.
- CC affects NMD by reducing the protein levels of essential NMD factors.
- CC's distinct mechanism of NMD inhibition has implications for drug development and basic research.
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