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Updated: Mar 3, 2026

Assay for Adhesion and Agar Invasion in S. cerevisiae
Published on: November 8, 2006
Cpp1 phosphatase mediated signaling crosstalk between Hog1 and Cek1 mitogen-activated protein kinases is involved in
Fu-Sheng Deng1, Ching-Hsuan Lin1
1Department of Biochemical Science and Technology, College of Life Science, National Taiwan University, Taipei, Taiwan.
Abstract:
Cellular signaling pathways involved in cell growth and differentiation mediated by mitogen-activated protein kinase (MAPK) cascades have been well characterized in fungi. However, the mechanisms of signaling crosstalk between MAPKs to ensure signaling specificity are largely unknown. Previous work showed that activation of the Candida albicans Cek1 MAPK pathway resulted in opaque cell formation and filamentation, which mirrored the phenotypes to hog1Δ. Additionally, deleting the HOG1 gene stimulated Cek1p. Thus, we hypothesized that an unknown factor could act as a bridge between these two MAPKs. In Saccharomyces cerevisiae, the dual-specificity phosphatase (DSP) Msg5 specifically dephosphorylates Fus3p/Kss1p. C. albicans Cpp1, an ortholog of Msg5, has been shown to be important in regulating Cek1p. Compared with the wild-type strain, hog1Δ shows a ∼40% reduction in CPP1 expression. Consistent with previous reports, CPP1 deletion also resulted in Cek1 hyperphosphorylation, implicating Cpp1 as a regulator of the Hog1 and Cek1 cascades. Interestingly, both cpp1Δ and hog1Δ induced 100% opaque colony formation in MTL-homozygous strains grown on N-acetylglucosamine (NAG) plates, whereas the wild-type and complemented strains exhibited 80.9% and 77.1% white-to-opaque switching rates, respectively. CPP1 gene deletion also caused hyperfilamentous phenotypes in both white and opaque cells. These phenomena may be due to highly phosphorylated Cek1p, as deleting CEK1 in the cpp1Δ background generated nonfilamentous strains and reduced opaque colony formation. Taken together, we conclude that cpp1Δ and hog1Δ exhibited comparable phenotypes, and both are involved in regulating Cek1 phosphorylation, implicating Cpp1 phosphatase as a key intermediary between the Hog1 and Cek1 signal transduction pathways.
Insights
The dual-specificity phosphatase (DSP) Cpp1 acts as a key intermediary between the Hog1 and Cek1 mitogen-activated protein kinase (MAPK) pathways in Candida albicans, regulating cell morphology and filamentation.
Area of Science:
- Microbiology
- Molecular Biology
- Cell Biology
Background:
- Mitogen-activated protein kinase (MAPK) cascades regulate fungal cell growth and differentiation.
- Signaling crosstalk between MAPKs is crucial for specificity but remains poorly understood.
- The Candida albicans Cek1 MAPK pathway influences opaque cell formation and filamentation, with phenotypes similar to hog1Δ mutants.
Purpose of the Study:
- To investigate the potential role of an unknown factor bridging the Hog1 and Cek1 MAPK pathways.
- To determine if Cpp1, a homolog of Saccharomyces cerevisiae Msg5, regulates Cek1 phosphorylation.
- To elucidate the function of Cpp1 in mediating signaling crosstalk between Hog1 and Cek1.
Main Methods:
- Comparative analysis of gene expression in wild-type and hog1Δ strains.
- Assessment of Cek1 phosphorylation levels in wild-type, cpp1Δ, and hog1Δ mutants.
- Phenotypic analysis of white-to-opaque switching and filamentation in response to N-acetylglucosamine (NAG).
- Genetic manipulation including gene deletion and complementation.
Main Results:
- Hog1 deletion reduced CPP1 expression by approximately 40%.
- Cpp1 deletion led to Cek1 hyperphosphorylation and induced 100% opaque colony formation, similar to hog1Δ.
- Cpp1 deletion also caused hyperfilamentation, which was dependent on Cek1 phosphorylation.
Conclusions:
- Cpp1 phosphatase is a key regulator of Cek1 phosphorylation.
- Cpp1 acts as an intermediary between the Hog1 and Cek1 signal transduction pathways.
- Hog1 and Cpp1 share overlapping functions in regulating C. albicans morphology and differentiation.
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