The long-term goal of this project is to understand how the Hox family of homeodomain transcription factors regulate their target genes in vivo. Hox proteins are critical regulators of animal development. They also underlie many human diseases. Prior work suggests that these DNA binding proteins use at least two cofactors, Extradenticle and Homothorax, to select the correct sets of target genes in vivo. Extradenticle and Homothorax are also homeodomain proteins and are also implicated in various leukemias. Once bound to DNA, additional factors are then thought to be recruited to Hox/Extradenticle/Homothorax complexes to control target gene expression. These complexes can be used for both gene activation and gene repression. Using Drosophila melanogaster as the experimental system, the experiments proposed here are in part aimed at identifying these additional factors. Some of these are expected to be DNA binding proteins whereas others are expected to be co-repressors or co-activators or proteins that have the capacity to recruit these transcriptional regulators. One set of experiments focus on the Hox-repressed target gene Distalless and are aimed at testing the role of two proteins, recently identified in preliminary experiments, that appear to collaborate with Hox/Extradenticle/Homothorax complexes to repress transcription. A second set of experiments propose to use a biochemical approach to identify and ultimately characterize factors used by Hox/Extradenticle/Homothorax complexes to effect gene regulation.
A third aim addresses how Hox proteins achieve DNA-binding specificity in cells where Extradenticle and Homothorax are not available to act as cofactors. Other proteins are hypothesized to act as Hox cofactors in these cells, and experiments are designed to identify and test the function of these putative cofactors in vivo. ? ?

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM054510-15
Application #
7210601
Study Section
Development - 1 Study Section (DEV)
Program Officer
Carter, Anthony D
Project Start
1992-08-01
Project End
2008-03-31
Budget Start
2007-04-01
Budget End
2008-03-31
Support Year
15
Fiscal Year
2007
Total Cost
$339,641
Indirect Cost
Name
Columbia University (N.Y.)
Department
Biochemistry
Type
Schools of Medicine
DUNS #
621889815
City
New York
State
NY
Country
United States
Zip Code
10032
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Riley, Todd R; Slattery, Matthew; Abe, Namiko et al. (2014) SELEX-seq: a method for characterizing the complete repertoire of binding site preferences for transcription factor complexes. Methods Mol Biol 1196:255-78
Agelopoulos, Marios; McKay, Daniel J; Mann, Richard S (2014) cgChIP: a cell type- and gene-specific method for chromatin analysis. Methods Mol Biol 1196:291-306
Shazman, Shula; Lee, Hunjoong; Socol, Yakov et al. (2014) OnTheFly: a database of Drosophila melanogaster transcription factors and their binding sites. Nucleic Acids Res 42:D167-71

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