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Mcs4 mitotic catastrophe suppressor regulates the fission yeast cell cycle through the Wik1-Wis1-Spc1 kinase cascade
K Shiozaki1, M Shiozaki, P Russell
1Department of Molecular Biology, Scripps Research Institute, La Jolla, California 92037, USA.
Abstract:
Spc1 in Schizosaccharomyces pombe is a member of the stress-activated protein kinase family, an evolutionary conserved subfamily of mitogen-activated protein kinases (MAPKs). Spc1 is activated by a MAPK kinase homologue, Wis1, and negatively regulated by Pyp1 and Pyp2 tyrosine phosphatases. Mutations in the spc1+ and wis1+ genes cause a G2 cell cycle delay that is exacerbated during stress. Herein, we describe two upstream regulators of the Wis1-Spc1 cascade. wik1+ (Wis1 kinase) was identified from its homology to budding yeast SSK2, which encodes a MAPKK kinase that regulates the HOG1 osmosensing pathway. Delta wik1 cells are impaired in stress-induced activation of Spc1 and show a G2 cell cycle delay and osmosensitive growth. Moreover, overproduction of a constitutively active form of Wik1 induces hyperactivation of Spc1 in wis1(+)-dependent manner, suggesting that Wik1 regulates Spc1 through activation of Wis1. A mutation of mcs4+ (mitotic catastrophe suppressor) was originally isolated as a suppressor of the mitotic catastrophe phenotype of a cdc2-3w wee1-50 double mutant. We have found that mcs4- cells are defective at activation of Spc1 in response to various forms of stress. Epistasis analysis has placed Mcs4-upstream of Wik1 in the Spc1 activation cascade. These results indicate that Mcs4 is part of a sensor system for multiple environmental signals that modulates the timing of entry into mitosis by regulating the Wik1-Wis1-Spc1 kinase cascade. Inactivation of the sensor system delays the onset of mitosis and rescues lethal premature mitosis in cdc2-3w wee1-50 cells.
Insights
Two novel genes, wik1+ and mcs4+, regulate the stress-activated protein kinase Spc1 in fission yeast. Mcs4 acts upstream of Wik1, forming a sensor system that controls cell cycle timing via the Wis1-Spc1 cascade.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Spc1 (stress-activated protein kinase) in Schizosaccharomyces pombe is a conserved MAPK.
- Spc1 activation involves MAPK kinase Wis1 and is regulated by phosphatases Pyp1/Pyp2.
- Mutations in spc1+ and wis1+ cause G2 cell cycle delays, worsened by stress.
Purpose of the Study:
- Identify upstream regulators of the Wis1-Spc1 signaling cascade.
- Characterize the roles of novel genes wik1+ and mcs4+ in stress response and cell cycle control.
- Elucidate the hierarchical relationship between Mcs4 and Wik1 in the Spc1 activation pathway.
Main Methods:
- Gene homology searches and mutant analysis (Delta wik1, mcs4-).
- Overexpression of constitutively active Wik1.
- Epistasis analysis to determine gene order in the signaling cascade.
- Phenotypic analysis of cell cycle delay and osmosensitive growth.
Main Results:
- Delta wik1 cells show impaired stress-induced Spc1 activation, G2 delay, and osmosensitive growth.
- Overactive Wik1 hyperactivates Spc1 in a Wis1-dependent manner.
- Mcs4 acts upstream of Wik1 in the Spc1 activation cascade.
- Mcs4 functions as a sensor for environmental signals regulating the Wik1-Wis1-Spc1 pathway.
Conclusions:
- Mcs4 and Wik1 are key components upstream of the Wis1-Spc1 cascade, integrating environmental signals.
- This regulatory pathway modulates cell cycle timing, specifically entry into mitosis.
- Disruption of this sensor system leads to delayed mitosis and rescue of lethal premature mitosis phenotypes.