This Program Project proposes to facilitate an improved understanding of biological systems governing food intake, body fat mass and obesity pathogenesis. While many key molecules and neuronal cell types have been identified, it is the interactions between them, and the impact of environmental factors on these interactions, that ultimately determine the level of body fat that is defended. Identifying these interactions, and distinguishing those that are critical from those that are not, provides the overarching focus of this proposal. Because of the complexity inherent in this undertaking, this goal is best met by uniting investigators with complementary expertise and resources in an effective and productive collaboration using a multidisciplinary approach and state-of-the-art technology. Our proposal brings Dr. Greg Barsh from Stanford University School of Medicine together with established, NIH-funded investigators at the University of Washington--Drs. Michael W. Schwartz, David E. Cummings and Denis G. Baskin--in three highly-interrelated Projects that will clarify how insulin, leptin and ghrelin interact with nutrient-related signals to regulate both feeding behavior and the function of key neuronal subsets in the hypothalamic arcuate nucleus. The success of each project will depend upon interactions between them and on support provided by a Histochemistry Core and an Animal Physiology Core. Day-to-day oversight of the entire Program Project will be provided by an Administrative Core. In the event of its funding, Dr. Paul Ramsey, Dean of the University of Washington School of Medicine, has made a major commitment of new laboratory space to support the success of this endeavor. Progress in understanding signaling networks in energy homeostasis requires an interactive, multidisciplinary research program and is critical for ongoing efforts to develop more effective strategies for obesity treatment.

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
Research Program Projects (P01)
Project #
5P01DK068384-05
Application #
7475878
Study Section
Special Emphasis Panel (ZDK1-GRB-4 (M1))
Program Officer
Hyde, James F
Project Start
2004-08-01
Project End
2011-07-31
Budget Start
2008-08-01
Budget End
2011-07-31
Support Year
5
Fiscal Year
2008
Total Cost
$1,183,264
Indirect Cost
Name
University of Washington
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
605799469
City
Seattle
State
WA
Country
United States
Zip Code
98195
O-Sullivan, InSug; Zhang, Wenwei; Wasserman, David H et al. (2015) FoxO1 integrates direct and indirect effects of insulin on hepatic glucose production and glucose utilization. Nat Commun 6:7079
Lee, Woo Je; Tateya, Sanshiro; Cheng, Andrew M et al. (2015) M2 Macrophage Polarization Mediates Anti-inflammatory Effects of Endothelial Nitric Oxide Signaling. Diabetes 64:2836-46
Morton, Gregory J; Kaiyala, Karl J; Foster-Schubert, Karen E et al. (2014) Carbohydrate feeding dissociates the postprandial FGF19 response from circulating bile acid levels in humans. J Clin Endocrinol Metab 99:E241-5
Guyenet, Stephan J; Nguyen, Hong T; Hwang, Bang H et al. (2013) High-fat diet feeding causes rapid, non-apoptotic cleavage of caspase-3 in astrocytes. Brain Res 1512:97-105
Lu, Min; Sarruf, David A; Li, Pingping et al. (2013) Neuronal Sirt1 deficiency increases insulin sensitivity in both brain and peripheral tissues. J Biol Chem 288:10722-35
Schwartz, Michael W; Baskin, Denis G (2013) Leptin and the brain: then and now. J Clin Invest 123:2344-5
Thaler, Joshua P; Yi, Chun-Xia; Schur, Ellen A et al. (2012) Obesity is associated with hypothalamic injury in rodents and humans. J Clin Invest 122:153-62
Schwartz, Michael W (2012) An inconvenient truth about obesity. Mol Metab 1:2-4
Guyenet, Stephan J; Schwartz, Michael W (2012) Clinical review: Regulation of food intake, energy balance, and body fat mass: implications for the pathogenesis and treatment of obesity. J Clin Endocrinol Metab 97:745-55
Lu, Min; Sarruf, David A; Talukdar, Saswata et al. (2011) Brain PPAR-? promotes obesity and is required for the insulin-sensitizing effect of thiazolidinediones. Nat Med 17:618-22

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