Many hormones, autacoids, neuroregulatory agents, and sensory stimuli act through cell-surface receptors that are coupled to intracellular guanine nucleotide-binding proteins (G proteins). Receptors of this family mediate diverse physiological processes in man, including regulation of blood pressure, inflammation, cardiac rhythm, synaptic response and neuronal plasticity, sensation of light and olfactants, and regulation of cellular proliferation. The mechanisms and regulation of signal transduction between receptors, G proteins and their intracellular effectors are unresolved issues of key importance from the standpoint of developing pharmacological agents targeted to specific receptor subtypes, and understanding (and perhaps controlling) the transforming activity of certain cellular oncogenes. Although the structural features of receptors and G proteins that mediate transmembrane signaling are beginning to emerge, the mechanisms by which receptors, G proteins and effectors are activated and regulated are poorly understood. The long-term goal of this research program is to establish the fundamental molecular principles by which G protein-coupled signaling systems are regulated. for these purposes a system offering unique experimental advantages will be used: the alpha-factor mating pheromone signal transduction pathway of the yeast Saccharomyces cerevisiae. Genes encoding the alpha-factor receptor and the alpha, beta and gamma subunits of its cognate G protein have been identified. Pharmacological and biochemical assays for receptor/G protein function are now well-developed. These biochemical techniques will be combined with those of classical yeast genetics, molecular genetics and yeast mating physiology to select and characterize mutant receptors and G protein subunits that alter the signal transduction process in novel and illuminating ways. Also, the potential nature of intracellular effectors will be explored. Specific objectives are to: 1. Identify structural elements of the alpha- factor receptor involved in transmembrane signaling by selecting for receptor variants that: i) no longer activate G protein; ii) constitutively activate G protein without binding agonist; and iii) have gained the ability to respond to alpha-factor antagonists. 2. Establish whether receptor mutations affect G protein interaction or activation by using: i) techniques of allele-specific suppression to obtain G protein variants that define specific protein-protein interactions; ii) kinetic, equilibrium, and competition binding experiments to monitor receptor-G protein coupling in vitro; iii) of agonist-stimulated GTPase or GDP/GTP exchange to monitor G protein activation. 3. Explore the potential intracellular second messenger system(s) that mediate response to alpha- factor by determining whether: i) the alpha-factor receptor and its cognate yeast G protein subunits expressed in Xenopus oocytes modulate effectors that regulate ion channel activity; and ii) yeast cell stimulated with alpha-factor produce putative second messengers through the hydrolysis of membrane phospholipids.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM044592-04
Application #
3303784
Study Section
Physiological Chemistry Study Section (PC)
Project Start
1990-07-01
Project End
1995-06-30
Budget Start
1993-07-01
Budget End
1994-06-30
Support Year
4
Fiscal Year
1993
Total Cost
Indirect Cost
Name
Washington University
Department
Type
Schools of Medicine
DUNS #
062761671
City
Saint Louis
State
MO
Country
United States
Zip Code
63130
Sun, Xianqiang; Singh, Sukrit; Blumer, Kendall J et al. (2018) Simulation of spontaneous G protein activation reveals a new intermediate driving GDP unbinding. Elife 7:
Onken, Michael D; Makepeace, Carol M; Kaltenbronn, Kevin M et al. (2018) Targeting nucleotide exchange to inhibit constitutively active G protein ? subunits in cancer cells. Sci Signal 11:
Scherer, Stephanie L; Cain, Matthew D; Kanai, Stanley M et al. (2017) Regulation of neurite morphogenesis by interaction between R7 regulator of G protein signaling complexes and G protein subunit G?13. J Biol Chem 292:9906-9918
Kanai, Stanley M; Edwards, Alethia J; Rurik, Joel G et al. (2017) Proteolytic degradation of regulator of G protein signaling 2 facilitates temporal regulation of Gq/11 signaling and vascular contraction. J Biol Chem 292:19266-19278
Osei-Owusu, Patrick; Blumer, Kendall J (2015) Regulator of G Protein Signaling 2: A Versatile Regulator of Vascular Function. Prog Mol Biol Transl Sci 133:77-92
Osei-Owusu, Patrick; Owens, Elizabeth A; Jie, Li et al. (2015) Regulation of Renal Hemodynamics and Function by RGS2. PLoS One 10:e0132594
Rensing, Derek T; Uppal, Sakshi; Blumer, Kendall J et al. (2015) Toward the Selective Inhibition of G Proteins: Total Synthesis of a Simplified YM-254890 Analog. Org Lett 17:2270-3
Oladipupo, Sunday S; Smith, Craig; Santeford, Andrea et al. (2014) Endothelial cell FGF signaling is required for injury response but not for vascular homeostasis. Proc Natl Acad Sci U S A 111:13379-84
Osei-Owusu, Patrick; Knutsen, Russell H; Kozel, Beth A et al. (2014) Altered reactivity of resistance vasculature contributes to hypertension in elastin insufficiency. Am J Physiol Heart Circ Physiol 306:H654-66
Jia, Lixia; Chisari, Mariangela; Maktabi, Mohammad H et al. (2014) A mechanism regulating G protein-coupled receptor signaling that requires cycles of protein palmitoylation and depalmitoylation. J Biol Chem 289:6249-57

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