The insulin receptor is a membrane-spanning tyrosine kinase that phosphorylates itself in response to insulin binding. Autophosphorylation activates the receptor as a substrate kinase, leading to its direct phosphorylation of additional proteins within the cell, including IRS-1 and Shc. Once phosphorylated on specific tyrosine residues, these cytoplasmic substrates engage and activate SH2 domain-containing enzymes which propagate the signals into the cell. Since the insulin receptor and its interactions with cellular substrates provide the initiating events in insulin action cascades, a detailed understanding of these interactions should provide insights into normal cellular metabolism and the pathophysiology of NIDDM, and these insights may translate into therapeutic interventions. Both of these substrates contain a new type of phosphotyrosine binding (PTB) domain distinct from the well characterized SH2 domain. The applicant showed that PTB domains of Shc and IRS-1 bind to the insulin receptor at a site just within the membrane, and it is hypothesized that this positions the substrates for efficient phosphorylation by the kinase. Studies are proposed to (1) analyze binding characteristics of IRS-1 and Shc PTB domains in detail, (2) determine three-dimensional structures of the PTB domains, (3) analyze the role of PTB domains in insulin receptor-catalyzed phosphorylations of IRS-1 and Shc, and (4) as a long term goal, to determine the crystallographic structure of an insulin receptor kinase/PTB domain signaling complex. Results from these studies should provide a detailed structural basis for understanding the initiating events in insulin action and transmembrane signaling by the insulin receptor. Since related or identical mechanisms likely occur in additional receptor signaling pathways, proposed studies should also interest those working in many areas of oncology, endocrinology and immunology.

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
Research Project (R01)
Project #
5R01DK051729-04
Application #
2905922
Study Section
Biochemistry Study Section (BIO)
Program Officer
Linder, Barbara
Project Start
1996-09-21
Project End
2000-08-31
Budget Start
1999-09-01
Budget End
2000-08-31
Support Year
4
Fiscal Year
1999
Total Cost
Indirect Cost
Name
Joslin Diabetes Center
Department
Type
DUNS #
071723084
City
Boston
State
MA
Country
United States
Zip Code
02215
Woo, Ju Rang; Kim, Soon-Jong; Kim, Keon Young et al. (2017) The carboxy-terminal region of the TBC1D4 (AS160) RabGAP mediates protein homodimerization. Int J Biol Macromol 103:965-971
Goldfine, Allison B; Shoelson, Steven E (2017) Therapeutic approaches targeting inflammation for diabetes and associated cardiovascular risk. J Clin Invest 127:83-93
Okazaki, Tatsuma; Liang, Feng; Li, Tong et al. (2014) Muscle-specific inhibition of the classical nuclear factor-?B pathway is protective against diaphragmatic weakness in murine endotoxemia. Crit Care Med 42:e501-9
Lee, Jongsoon; Miyazaki, Masaya; Romeo, Giulio R et al. (2014) Insulin receptor activation with transmembrane domain ligands. J Biol Chem 289:19769-77
King, Aileen J F; Guo, Yongjing; Cai, Dongsheng et al. (2013) Sustained NF-?B activation and inhibition in ?-cells have minimal effects on function and islet transplant outcomes. PLoS One 8:e77452
Romeo, Giulio R; Pae, Munkyong; Eberlé, Delphine et al. (2013) Profilin-1 haploinsufficiency protects against obesity-associated glucose intolerance and preserves adipose tissue immune homeostasis. Diabetes 62:3718-26
Goldfine, A B; Conlin, P R; Halperin, F et al. (2013) A randomised trial of salsalate for insulin resistance and cardiovascular risk factors in persons with abnormal glucose tolerance. Diabetologia 56:714-23
Kim, Myung-Sunny; Yamamoto, Yasuhiko; Kim, Kyungjin et al. (2013) Regulation of diet-induced adipose tissue and systemic inflammation by salicylates and pioglitazone. PLoS One 8:e82847
Wong, Man C; van Diepen, Janna A; Hu, Lihui et al. (2012) Hepatocyte-specific IKK? expression aggravates atherosclerosis development in APOE*3-Leiden mice. Atherosclerosis 220:362-8
Schakman, O; Dehoux, M; Bouchuari, S et al. (2012) Role of IGF-I and the TNF?/NF-?B pathway in the induction of muscle atrogenes by acute inflammation. Am J Physiol Endocrinol Metab 303:E729-39

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