A basic requirement of all cells is the ability to sense and respond to changes in the environment. Osmolarity is one of the most basic conditions to which cells must respond. Despite the ubiquitous nature of osmosensing systems, the molecular mechanism by which osmotic pressure is sensed is largely unknown. Studies involving microbial model systems have played an important role in identifying the sensors and signal transduction pathways that respond to changes in osmolarity. We plan to use the yeast osmotic stress sensor, Slnlp, as a paradigm for eukaryotic osmosensors. Changes in osmotic conditions regulate Slnlp causing changes in phosphate flux between the individual proteins comprising the two-component signaling system. The fundamental question addressed by this proposal is how Slnlp activity is regulated in response to changes in osmolarity. Using computational, genetic, and biochemical techniques, we have identified a coiled-coil dimerization domain that plays a key role in mediating the stimulus-activation step. It is located in the linker region between the membrane and the kinase domain. The specific objective of this application is to perform a detailed structure-function analysis of the coiled coil (CC) region of the yeast Slnlp osmosensor to test the hypothesis that the unusual composition of the HK CC contributes to the regulation of the HK family of sensor kinases.
The specific aims of the proposal are to (1) Genetically dissect the Sin1 CC domain, (2) Determine the structure of the CC domain and CC mutants, and (3) Develop membrane-based assays for Sin1 function. The elucidation of the unique structural and mechanistic features of the two-component type coiled-coil domain in Slnlp will serve as a model for this class of signaling molecules and may lead to the development of histidine kinase inhibitors for antifungal therapy.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
1R01GM068746-01
Application #
6675004
Study Section
Cell Development and Function Integrated Review Group (CDF)
Program Officer
Anderson, James J
Project Start
2003-08-01
Project End
2007-07-31
Budget Start
2003-08-01
Budget End
2004-07-31
Support Year
1
Fiscal Year
2003
Total Cost
$288,000
Indirect Cost
Name
University of Iowa
Department
Biochemistry
Type
Schools of Medicine
DUNS #
062761671
City
Iowa City
State
IA
Country
United States
Zip Code
52242
Fassler, Jan S; West, Ann H (2011) Fungal Skn7 stress responses and their relationship to virulence. Eukaryot Cell 10:156-67
Mulford, K E; Fassler, J S (2011) Association of the Skn7 and Yap1 transcription factors in the Saccharomyces cerevisiae oxidative stress response. Eukaryot Cell 10:761-9
Fassler, Jan S; West, Ann H (2010) Genetic and biochemical analysis of the SLN1 pathway in Saccharomyces cerevisiae. Methods Enzymol 471:291-317
Lu, Jade Mei-Yeh; Deschenes, Robert J; Fassler, Jan S (2004) Role for the Ran binding protein, Mog1p, in Saccharomyces cerevisiae SLN1-SKN7 signal transduction. Eukaryot Cell 3:1544-56
Lu, Jade Mei-Yeh; Deschenes, Robert J; Fassler, Jan S (2003) Saccharomyces cerevisiae histidine phosphotransferase Ypd1p shuttles between the nucleus and cytoplasm for SLN1-dependent phosphorylation of Ssk1p and Skn7p. Eukaryot Cell 2:1304-14
Tao, Wei; Malone, Cheryl L; Ault, Addison D et al. (2002) A cytoplasmic coiled-coil domain is required for histidine kinase activity of the yeast osmosensor, SLN1. Mol Microbiol 43:459-73
Ault, A D; Fassler, J S; Deschenes, R J (2002) Altered phosphotransfer in an activated mutant of the Saccharomyces cerevisiae two-component osmosensor Sln1p. Eukaryot Cell 1:174-80
Li, Sheng; Dean, Susan; Li, Zhijian et al. (2002) The eukaryotic two-component histidine kinase Sln1p regulates OCH1 via the transcription factor, Skn7p. Mol Biol Cell 13:412-24
Zhan, X L; Hong, Y; Zhu, T et al. (2000) Essential functions of protein tyrosine phosphatases PTP2 and PTP3 and RIM11 tyrosine phosphorylation in Saccharomyces cerevisiae meiosis and sporulation. Mol Biol Cell 11:663-76
Deschenes, R J; Lin, H; Ault, A D et al. (1999) Antifungal properties and target evaluation of three putative bacterial histidine kinase inhibitors. Antimicrob Agents Chemother 43:1700-3