Protein kinases are widely implicated in human disease, especially in cancer, and play a fundamental role in human biology. In order to understand the so-called """"""""phospho-proteome"""""""" one needs new tools to address which particular kinase(s) are active (usually phosphorylated) in a given signal transduction network. Almost all current protein-array technologies for identifying drug-induced expression levels and phosphorylation states of specific kinases utilize antibody based capture methods. However antibody capture agents are expensive, often not scalable, and recent reports strongly suggest that fewer than 30% of available antibodies can be utilized in microarray technologies. In order to provide a viable alternative to antibodies, this proposal seeks to systematically develop a new class of bivalent capture agents (BCAs) for kinases that link high-affinity small molecules to phage-displayed peptides. BCAs have the potential to be specific, scalable, and economical to produce. These salient features makes our BCAs attractive as a new class of reagents for use in array technology for understanding the regulation of kinase phosphorylation, which plays a central role in numerous signaling networks that are perturbed in human diseases, especially cancer.

Public Health Relevance

Protein-kinases lay at the heart of signal transduction cascades, which when perturbed lead to human diseases such as cancer. Thus, the identification of new classes of bivalent reagents for capturing kinases in microarray applications has direct utility in understanding the pathophysiology of human diseases and aid in the development of novel diagnostics and therapeutics.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Exploratory/Developmental Grants (R21)
Project #
1R21CA141974-01
Application #
7707065
Study Section
Synthetic and Biological Chemistry B Study Section (SBCB)
Program Officer
Knowlton, John R
Project Start
2009-06-01
Project End
2011-05-31
Budget Start
2009-06-01
Budget End
2010-05-31
Support Year
1
Fiscal Year
2009
Total Cost
$194,377
Indirect Cost
Name
University of Arizona
Department
Biochemistry
Type
Schools of Arts and Sciences
DUNS #
806345617
City
Tucson
State
AZ
Country
United States
Zip Code
85721
Jester, Benjamin W; Gaj, Alicia; Shomin, Carolyn D et al. (2012) Testing the promiscuity of commercial kinase inhibitors against the AGC kinase group using a split-luciferase screen. J Med Chem 55:1526-37
Lamba, Vandana; Ghosh, Indraneel (2012) New directions in targeting protein kinases: focusing upon true allosteric and bivalent inhibitors. Curr Pharm Des 18:2936-45
Cox, Kurt J; Shomin, Carolyn D; Ghosh, Indraneel (2011) Tinkering outside the kinase ATP box: allosteric (type IV) and bivalent (type V) inhibitors of protein kinases. Future Med Chem 3:29-43
Shomin, Carolyn D; Restituyo, Elizabeth; Cox, Kurt J et al. (2011) Selection of cyclic-peptide inhibitors targeting Aurora kinase A: problems and solutions. Bioorg Med Chem 19:6743-9
Furman, Jennifer L; Mok, Pui-Wing; Badran, Ahmed H et al. (2011) Turn-on DNA damage sensors for the direct detection of 8-oxoguanine and photoproducts in native DNA. J Am Chem Soc 133:12518-27
Shekhawat, Sujan S; Ghosh, Indraneel (2011) Split-protein systems: beyond binary protein-protein interactions. Curr Opin Chem Biol 15:789-97
Jester, Benjamin W; Cox, Kurt J; Gaj, Alicia et al. (2010) A coiled-coil enabled split-luciferase three-hybrid system: applied toward profiling inhibitors of protein kinases. J Am Chem Soc 132:11727-35
Shomin, Carolyn D; Meyer, Scott C; Ghosh, Indraneel (2009) Staurosporine tethered peptide ligands that target cAMP-dependent protein kinase (PKA): optimization and selectivity profiling. Bioorg Med Chem 17:6196-202