PP2A Phosphatase Activity Is Required for Stress and Tor Kinase Regulation of Yeast Stress Response Factor Msn2p
- 1 October 2004
- journal article
- research article
- Published by American Society for Microbiology in Eukaryotic Cell
- Vol. 3 (5) , 1261-1271
- https://doi.org/10.1128/ec.3.5.1261-1271.2004
Abstract
In response to stress and nutrient starvation, the Saccharomyces cerevisiae transcription factor Msn2p accumulates in the nucleus and activates expression of a broad array of genes. Here, we analyze the role of the Tor (target of rapamycin) signaling pathway in mediating these responses. Inactivation of the Tor pathway component Tap42p using tap42(Ts) alleles causes a sustained nuclear localization similar to that after the addition of the Tor kinase inhibitor rapamycin. Effects of Tap42p inactivation and rapamycin addition could be suppressed by deletion of TIP41, which encodes a Tap42p-interacting protein. These results support the notion that rapamycin affects Msn2p by inactivating Tap42p function. Tap42p interacts with the catalytic subunit of PP2A (protein phosphatase 2A) and PP2A-like phosphatases. Deletion of either the catalytic or regulatory subunit that forms the PP2A phosphatase complex prevents nuclear accumulation of Msn2p in the tap42(Ts) strain and in wild-type strains treated with rapamycin. These results suggest that Tap42p is an inhibitor of PP2A phosphatase, which in turn inhibits nuclear export of Msn2p. Interestingly, PP2A function is also required for nuclear accumulation of Msn2p in response to stresses, such as heat and osmotic shock, as well as nitrogen (but not glucose) starvation. Thus, PP2A and the Tor kinase pathway transduce stress and nitrogen starvation signals to Msn2p. Finally, Msn2p localization is unaffected by conditional loss of 14-3-3 protein function, ruling out the possibility that 14-3-3 proteins act as a scaffold to sequester Msn2p in the cytoplasm.Keywords
This publication has 52 references indexed in Scilit:
- Multiple Roles of Tap42 in Mediating Rapamycin-Induced Transcriptional Changes in YeastMolecular Cell, 2003
- Rapamycin Treatment Results in GATA Factor-Independent Hyperphosphorylation of the Proline Utilization Pathway Activator in Saccharomyces cerevisiaeEukaryotic Cell, 2003
- Elucidating TOR Signaling and Rapamycin Action: Lessons from Saccharomyces cerevisiaeMicrobiology and Molecular Biology Reviews, 2002
- Localization ofSaccharomyces cerevisiaeProtein Phosphatase 2A Subunits throughout Mitotic Cell CycleMolecular Biology of the Cell, 2002
- Convergence of the Target of Rapamycin and the Snf1 Protein Kinase Pathways in the Regulation of the Subcellular Localization of Msn2, a Transcriptional Activator of STRE (Stress Response Element)-regulated GenesJournal of Biological Chemistry, 2002
- Systematic identification of protein complexes in Saccharomyces cerevisiae by mass spectrometryNature, 2002
- Functional organization of the yeast proteome by systematic analysis of protein complexesNature, 2002
- A comprehensive two-hybrid analysis to explore the yeast protein interactomeProceedings of the National Academy of Sciences, 2001
- Targets for Cell Cycle Arrest by the Immunosuppressant Rapamycin in YeastScience, 1991
- cAMP-independent control of sporulation, glycogen metabolism, and heat shock resistance in S. cerevisiaeCell, 1988