More than a thousand G protein-coupled receptors (GPCRs) play roles in a vast range of biological processes and their importance in health and disease is underscored by the fact that they are the targets of hundreds of drugs, including antihypertensives, neuroleptics, antihistamines, and antidepressants. An important, but poorly understood issue is how signaling specificity is maintained in vivo. Knockout experiments have shown that particular components often have indispensable roles in vivo, but many pathways and interactions can be reconstituted in vitro, suggesting a large amount of redundancy. The experiments in this proposal will test the hypothesis that the cellular localization and organization of signaling proteins play an important role in the specificity. Functional fluorescent wild-type and dominant negative G protein subunits will be used to probe the cellular regulation of signaling in living cells in order to answer the following questions:
Aim I. How is targeting of G protein subunits regulated? In HEK-293 cells, the formation and localization of different G protein betagamma complexes and their abilities to target Galphas to the plasma membrane will be examined.
Aim II. How are hormone-dependent trafficking of G protein subunits and their receptors regulated? In HEK-293 cells, the mechanisms that regulate activation-dependent trafficking of the subunits of Gs will be determined, the spatial and temporal aspects of G protein heterotrimer dissociation and reassociation will be visualized, and the importance of specific alphabetagamma combinations for receptor signaling will be investigated.
Aim III. How are expression, localization, and complex formation of G protein subunits and their receptors regulated during differentiation of a specialized cell? Gs localization and signaling will be examined during differentiation of PC12 cells, a model system for growth-factor stimulated differentiation. The localization patterns of betagamma complexes that form and interact with Galphas and the Gs heterotrimers that are activated by the D1 dopamine receptor will be determined. These proposed studies will produce information and reagents that can be applied to elucidate the molecular and cellular basis for G protein signaling specificity in a variety of cell types and animal models. Ultimately, these approaches will facilitate the design of strategies to manipulate aberrant signaling pathways responsible for disease.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM050369-13
Application #
7087742
Study Section
Hypertension and Microcirculation Study Section (HM)
Program Officer
Dunsmore, Sarah
Project Start
1995-01-01
Project End
2008-06-30
Budget Start
2006-07-01
Budget End
2007-06-30
Support Year
13
Fiscal Year
2006
Total Cost
$266,845
Indirect Cost
Name
Weis Center for Research-Geisinger Clinc
Department
Type
DUNS #
079161360
City
Danville
State
PA
Country
United States
Zip Code
17822
Yost, Evan A; Hynes, Thomas R; Hartle, Cassandra M et al. (2015) Inhibition of G-protein ?? signaling enhances T cell receptor-stimulated interleukin 2 transcription in CD4+ T helper cells. PLoS One 10:e0116575
Mi, W; Lin, Q; Childress, C et al. (2015) Geranylgeranylation signals to the Hippo pathway for breast cancer cell proliferation and migration. Oncogene 34:3095-106
Hu, Zhigang; Hu, Jie; Zhang, Zhonghua et al. (2013) Regulation of expression and function of scavenger receptor class B, type I (SR-BI) by Na+/H+ exchanger regulatory factors (NHERFs). J Biol Chem 288:11416-35
Hoffmann, Carsten; Nuber, Susanne; Zabel, Ulrike et al. (2012) Comparison of the activation kinetics of the M3 acetylcholine receptor and a constitutively active mutant receptor in living cells. Mol Pharmacol 82:236-45
Hynes, Thomas R; Yost, Evan A; Yost, Stacy M et al. (2011) Multicolor BiFC analysis of G protein ýýýý complex formation and localization. Methods Mol Biol 756:229-43
Hynes, Thomas R; Yost, Evan; Mervine, Stacy et al. (2008) Multicolor BiFC analysis of competition among G protein beta and gamma subunit interactions. Methods 45:207-13
Sheridan, Douglas L; Berlot, Catherine H; Robert, Antoine et al. (2002) A new way to rapidly create functional, fluorescent fusion proteins: random insertion of GFP with an in vitro transposition reaction. BMC Neurosci 3:7