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Fus3-triggered Tec1 Degradation Modulates Mating Transcriptional Output During the Pheromone Response

Overview
Journal Mol Syst Biol
Specialty Molecular Biology
Date 2008 Aug 7
PMID 18682702
Citations 9
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Abstract

The yeast transcription factor Ste12 controls both mating and filamentation pathways. Upon pheromone induction, the mitogen-activated protein kinases, Fus3 and Kss1, activate Ste12 by relieving the repression of two functionally redundant Ste12 inhibitors, Dig1 and Dig2. Mating genes are controlled by the Ste12/Dig1/Dig2 complex through Ste12-binding sites, whereas filamentation genes are regulated by the Tec1/Ste12/Dig1 complex through Tec1-binding sites. The two Ste12 complexes are mutually exclusive. During pheromone response, Tec1 is degraded upon phosphorylation by Fus3, preventing cross-activation of the filamentation pathway. Here, we show that a stable Tec1 also impairs the induction of mating genes. A mathematical model is developed to capture the dynamic formation of the two Ste12 complexes and their interactions with pathway-specific promoters. By model simulations and experimentation, we show that excess Tec1 can impair the mating transcriptional output because of its ability to sequester Ste12, and because of a novel function of Dig2 for the transcription of mating genes. We suggest that Fus3-triggered Tec1 degradation is an important part of the transcriptional induction of mating genes during the pheromone response.

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References
1.
Ghaemmaghami S, Huh W, Bower K, Howson R, Belle A, Dephoure N . Global analysis of protein expression in yeast. Nature. 2003; 425(6959):737-41. DOI: 10.1038/nature02046. View

2.
Bardwell L, Cook J, Voora D, Thorner J . Differential regulation of transcription: repression by unactivated mitogen-activated protein kinase Kss1 requires the Dig1 and Dig2 proteins. Proc Natl Acad Sci U S A. 1998; 95(26):15400-5. PMC: 28054. DOI: 10.1073/pnas.95.26.15400. View

3.
Sabbagh Jr W, Flatauer L, Bardwell A, Bardwell L . Specificity of MAP kinase signaling in yeast differentiation involves transient versus sustained MAPK activation. Mol Cell. 2001; 8(3):683-91. PMC: 3017497. DOI: 10.1016/s1097-2765(01)00322-7. View

4.
Borneman A, Zhang Z, Rozowsky J, Seringhaus M, Gerstein M, Snyder M . Transcription factor binding site identification in yeast: a comparison of high-density oligonucleotide and PCR-based microarray platforms. Funct Integr Genomics. 2007; 7(4):335-45. DOI: 10.1007/s10142-007-0054-7. View

5.
Bardwell L, Zou X, Nie Q, Komarova N . Mathematical models of specificity in cell signaling. Biophys J. 2007; 92(10):3425-41. PMC: 1853162. DOI: 10.1529/biophysj.106.090084. View