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Updated: Oct 30, 2025

Studying RNA Interactors of Protein Kinase RNA-Activated during the Mammalian Cell Cycle
Published on: March 5, 2019
Phosphorylation of mRNA-Binding Proteins Puf1 and Puf2 by TORC2-Activated Protein Kinase Ypk1 Alleviates Their
Henri A Galez1, Françoise M Roelants1, Sarah M Palm1
1Department of Molecular and Cell Biology, Division of Biochemistry, Biophysics and Structural Biology, University of California, Berkeley, CA 94720, USA.
Abstract:
Members of the Puf family of RNA-binding proteins typically associate via their Pumilio homology domain with specific short motifs in the 3'-UTR of an mRNA and thereby influence the stability, localization and/or efficiency of translation of the bound transcript. In our prior unbiased proteome-wide screen for targets of the TORC2-stimulated protein kinase Ypk1, we identified the paralogs Puf1/Jsn1 and Puf2 as high-confidence substrates. Earlier work by others had demonstrated that Puf1 and Puf2 exhibit a marked preference for interaction with mRNAs encoding plasma membrane-associated proteins, consistent with our previous studies documenting that a primary physiological role of TORC2-Ypk1 signaling is maintenance of plasma membrane homeostasis. Here, we show, first, that both Puf1 and Puf2 are authentic Ypk1 substrates both in vitro and in vivo. Fluorescently tagged Puf1 localizes constitutively in cortical puncta closely apposed to the plasma membrane, whereas Puf2 does so in the absence of its Ypk1 phosphorylation, but is dispersed in the cytosol when phosphorylated. We further demonstrate that Ypk1-mediated phosphorylation of Puf1 and Puf2 upregulates production of the protein products of the transcripts to which they bind, with a concomitant increase in the level of the cognate mRNAs. Thus, Ypk1 phosphorylation relieves Puf1- and Puf2-mediated post-transcriptional repression mainly by counteracting their negative effect on transcript stability. Using a heterologous protein-RNA tethering and fluorescent protein reporter assay, the consequence of Ypk1 phosphorylation in vivo was recapitulated for full-length Puf1 and even for N-terminal fragments (residues 1-340 and 143-295) corresponding to the region upstream of its dimerization domain (an RNA-recognition motif fold) encompassing its two Ypk1 phosphorylation sites (both also conserved in Puf2). This latter result suggests that alleviation of Puf1-imposed transcript destabilization does not obligatorily require dissociation of Ypk1-phosphorylated Puf1 from a transcript. Our findings add new insight about how the TORC2-Ypk1 signaling axis regulates the content of plasma membrane-associated proteins to promote maintenance of the integrity of the cell envelope.
Insights
The TORC2-Ypk1 signaling pathway regulates plasma membrane proteins by phosphorylating RNA-binding proteins Puf1 and Puf2. This phosphorylation enhances mRNA and protein production, maintaining cell envelope integrity.
Area of Science:
- Molecular and Cellular Biology
- Biochemistry
- Yeast Genetics
Background:
- Puf family proteins (Puf1, Puf2) bind mRNA 3'-UTRs, influencing transcript stability, localization, and translation.
- TORC2-Ypk1 signaling is crucial for maintaining plasma membrane homeostasis.
- Puf1 and Puf2 preferentially bind mRNAs encoding plasma membrane proteins.
Purpose of the Study:
- To investigate if Puf1 and Puf2 are substrates of the Ypk1 kinase.
- To determine the effect of Ypk1-mediated phosphorylation on Puf1 and Puf2 activity.
- To elucidate the role of TORC2-Ypk1 signaling in regulating plasma membrane protein abundance.
Main Methods:
- In vitro and in vivo kinase assays to confirm Ypk1 phosphorylation of Puf1 and Puf2.
- Fluorescent tagging and localization studies of Puf1 and Puf2.
- Reporter assays using heterologous protein-RNA tethering to assess Puf1/Puf2 function.
- Analysis of mRNA and protein levels of target transcripts.
Main Results:
- Puf1 and Puf2 are confirmed Ypk1 substrates, with phosphorylation altering Puf2 localization.
- Ypk1 phosphorylation of Puf1 and Puf2 enhances the production of their target proteins and increases cognate mRNA levels.
- Ypk1 phosphorylation counteracts Puf1/Puf2-mediated post-transcriptional repression, primarily by stabilizing transcripts.
- Phosphorylation's effect on Puf1 function can be recapitulated by N-terminal fragments, suggesting dissociation is not required.
Conclusions:
- Ypk1 phosphorylation of Puf1 and Puf2 relieves their repressive effects on target gene expression.
- This mechanism contributes to the TORC2-Ypk1 pathway's role in regulating plasma membrane protein levels.
- Findings provide insight into maintaining cell envelope integrity through precise control of membrane protein content.
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