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Updated: Jul 20, 2026

Methods to Classify Cytoplasmic Foci as Mammalian Stress Granules
Published on: May 12, 2017
Polysome-bound endonuclease PMR1 is targeted to stress granules via stress-specific binding to TIA-1
Feng Yang1, Yong Peng, Elizabeth L Murray
1Department of Molecular and Cellular Biochemistry, The Ohio State University, 1645 Neil Avenue, Columbus, OH 43210-1218, USA.
Abstract:
The generalized process of mRNA decay involves deadenylation followed by release from translating polysomes, decapping, and exonuclease decay of the mRNA body. In contrast the mRNA endonuclease PMR1 forms a selective complex with its translating substrate mRNA, where it initiates decay by cleaving within the mRNA body. In stressed cells the phosphorylation of the alpha subunit of eukaryotic initiation factor 2 causes translating mRNAs to accumulate with stalled 48S subunits in large subcellular structures termed stress granules (SGs), wherein mRNAs undergo sorting for reinitiation, storage, or decay. Given the unique relationship between translation and PMR1-mediated mRNA decay, we examined the impact of stress-induced dissociation of polysomes on this process. Arsenite stress disrupts the polysome binding of PMR1 and its substrate mRNA but has no impact on the critical tyrosine phosphorylation of PMR1, its association with substrate mRNA, or its association with the functional approximately 680-kDa mRNP complex in which it normally resides on polysomes. We show that arsenite stress drives PMR1 into an RNase-resistant complex with TIA-1, and we identify a distinct domain in the N terminus of PMR1 that facilitates its interaction with TIA-1. Finally, we show that arsenite promotes the delayed association of PMR1 with SGs under conditions which cause tristetraprolin and butyrate response factor 1, proteins that facilitate exonucleolytic mRNA, to exit SGs.
Insights
Stress granules sequester mRNA-cleaving enzyme PMR1 during arsenite stress, altering mRNA decay pathways. PMR1 forms complexes with TIA-1, delaying its entry into stress granules.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- mRNA decay is a crucial cellular process.
- The endonuclease PMR1 initiates mRNA decay by cleaving mRNA within the body.
- Stress granules (SGs) form in stressed cells, sequestering translating mRNAs.
Purpose of the Study:
- To investigate the impact of stress-induced polysome dissociation on PMR1-mediated mRNA decay.
- To understand how arsenite stress affects the interaction of PMR1 with translating mRNAs and stress granules.
Main Methods:
- Analyzing the effects of arsenite stress on PMR1 binding to polysomes and substrate mRNA.
- Assessing PMR1 phosphorylation and its association with mRNP complexes.
- Investigating the formation of PMR1-TIA-1 complexes and PMR1 localization to SGs.
Main Results:
- Arsenite stress disrupts PMR1 polysome binding but not its phosphorylation or association with substrate mRNA.
- PM R1 forms an RNase-resistant complex with TIA-1 via its N-terminal domain.
- Arsenite stress causes delayed PMR1 association with SGs, coinciding with the exit of exonucleolytic factors.
Conclusions:
- Arsenite stress alters PMR1 localization and complex formation, impacting mRNA decay regulation.
- PMR1's interaction with TIA-1 is critical for its behavior under stress conditions.
- The dynamic recruitment of PMR1 to SGs influences the fate of mRNAs during cellular stress.
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