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.

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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