Reactive oxygen species (ROS) formed by the multi-component NADPH oxidase of phagocytic leukocytes play a primary role in host defense, but also perpetuate acute and chronic cellular inflammatory responses. Roles for ROS in non-phagocytic cells include intracellular signaling, proliferation, apoptosis, and innate immunity. We have shown that Rac2 serves as a key """"""""molecular switch"""""""" for ROS formation in neutrophils. Our work suggested a novel 2-step mechanism through which Rac2 regulates the process of electron transfer from NADPH to molecular oxygen in the NADPH oxidase. A more detailed knowledge of NADPH oxidase regulation by Rac GTPase is critical for understanding the physiological and pathological regulation of ROS formation in both immune- and non-immune cells. Based upon predictions of our regulatory model, we will define the activity of Rac2 in controlling electron transfer reactions critical to phagocyte NADPH oxidase (phox) function. Interaction sites for Rac2 on cyt b and related cyt b (Nox) homologs will be defined. We will use a variety of experimental approaches to investigate Rac/Rho GTPase regulation of Nox function. Integrin-initiated signaling pathways that cross-talk with and regulate phox function, and their molecular targets in adherent neutrophils, will be identified. During cell activation, GDP Dissociation Inhibitors (GDIs) serve as key regulators of Rac activity. We recently identified RhoGDI phosphorylation as a mechanism for specific regulation of Rac GTPase release and activation. In the current application, we will characterize the regulation of GTPase-GDI interactions through tyrosine kinase-dependent phosphorylation of GDI. The biological roles of GDI kinases in modulating the GTPase-GDI regulatory cycle will be investigated.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL048008-17
Application #
7418372
Study Section
Special Emphasis Panel (ZRG1-ELB (01))
Program Officer
Gao, Yunling
Project Start
1991-09-09
Project End
2009-06-30
Budget Start
2008-05-01
Budget End
2009-06-30
Support Year
17
Fiscal Year
2008
Total Cost
$553,721
Indirect Cost
Name
Scripps Research Institute
Department
Type
DUNS #
781613492
City
La Jolla
State
CA
Country
United States
Zip Code
92037
Taulet, Nicolas; Delorme-Walker, Violaine D; DerMardirossian, Celine (2012) Reactive oxygen species regulate protrusion efficiency by controlling actin dynamics. PLoS One 7:e41342
Gianni, Davide; DerMardirossian, Céline; Bokoch, Gary M (2011) Direct interaction between Tks proteins and the N-terminal proline-rich region (PRR) of NoxA1 mediates Nox1-dependent ROS generation. Eur J Cell Biol 90:164-71
Gianni, Davide; Taulet, Nicolas; DerMardirossian, Celine et al. (2010) c-Src-mediated phosphorylation of NoxA1 and Tks4 induces the reactive oxygen species (ROS)-dependent formation of functional invadopodia in human colon cancer cells. Mol Biol Cell 21:4287-98
Gianni, Davide; Taulet, Nicolas; Zhang, Hui et al. (2010) A novel and specific NADPH oxidase-1 (Nox1) small-molecule inhibitor blocks the formation of functional invadopodia in human colon cancer cells. ACS Chem Biol 5:981-93
Kim, Jun-Sub; Bokoch, Gary M (2009) Anthrax edema toxin inhibits Nox1-mediated formation of reactive oxygen species by colon epithelial cells. J Innate Immun 1:145-52
Bokoch, Gary M; Diebold, Becky; Kim, Jun-Sub et al. (2009) Emerging evidence for the importance of phosphorylation in the regulation of NADPH oxidases. Antioxid Redox Signal 11:2429-41
Bielek, Heike; Anselmo, Anthony; Dermardirossian, Celine (2009) Morphological and proliferative abnormalities in renal mesangial cells lacking RhoGDI. Cell Signal 21:1974-83
Gianni, Davide; Diaz, Begoña; Taulet, Nicolas et al. (2009) Novel p47(phox)-related organizers regulate localized NADPH oxidase 1 (Nox1) activity. Sci Signal 2:ra54
Kim, Jun-Sub; Huang, Timothy Y; Bokoch, Gary M (2009) Reactive oxygen species regulate a slingshot-cofilin activation pathway. Mol Biol Cell 20:2650-60
Kao, Yu-Ya; Gianni, Davide; Bohl, Benjamin et al. (2008) Identification of a conserved Rac-binding site on NADPH oxidases supports a direct GTPase regulatory mechanism. J Biol Chem 283:12736-46

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