This proposal describes experiments using the tools of mouse genetics to determine the in vivo functions of the c-abl proto-oncogene. The c-abl gene product is a cytoplasmic tyrosine kinase important for signal transduction and control of the cell cycle. Knock-out mice deficient in c-abl exhibit a number of phenotypes: perinatal lethality, runting, bone abnormalities, and defects in early lymphoid cell lineages. Several genetic studies of these mice are proposed. First, new alleles of c-abl will be generated by gene targeting (""""""""knock-in"""""""" experiments). One of these alleles will permit the conditional deletion of the gene at selected times in development and in selected tissues; others will express altered forms of c-abl lacking particular domains responsible for protein localization. Examination of these mice should help determine the functions of each pathway emanating from c-abl; we will be particularly interested to examine the course of B cell development and the repertoire of variable region utilization. Secondly, a germ-line mutation of a new member of the Abi family termed PSTPIP1, a mammalian homologue of the yeast Cdc15 gene, will be generated by gene targeting, and the effects of the mutation alone and with other knock-out mutations will be characterized. Our expectation is that the loss of PSTPIP1 may suppress some of the phenotypes caused by loss of Abl. Thirdly, we will generate and analyze germ line mutations of the UV-DDB proteins, products of the xpe locus in man, and which we have shown are bound and regulated by the Abl kinase. Finally, we will directly catalogue the genes induced in cell lines and in tissues by oxidative stress, comparing the responses in abl mutants with wild-type controls, and thereby identify the Abl-dependent downstream targets. These studies should help define the many diverse functions of c-abl in mammalian development and physiology.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Program Projects (P01)
Project #
5P01CA023767-28
Application #
7326832
Study Section
Subcommittee G - Education (NCI)
Project Start
Project End
Budget Start
2006-12-01
Budget End
2007-11-30
Support Year
28
Fiscal Year
2007
Total Cost
$217,382
Indirect Cost
Name
Columbia University (N.Y.)
Department
Type
DUNS #
621889815
City
New York
State
NY
Country
United States
Zip Code
10032
Qiu, Zhaozhu; Cang, Yong; Goff, Stephen P (2010) c-Abl tyrosine kinase regulates cardiac growth and development. Proc Natl Acad Sci U S A 107:1136-41
Qiu, Zhaozhu; Cang, Yong; Goff, Stephen P (2010) Abl family tyrosine kinases are essential for basement membrane integrity and cortical lamination in the cerebellum. J Neurosci 30:14430-9
Ohno, Nobuhiko; Terada, Nobuo; Komada, Masayuki et al. (2009) Dispensable role of protein 4.1B/DAL-1 in rodent adrenal medulla regarding generation of pheochromocytoma and plasmalemmal localization of TSLC1. Biochim Biophys Acta 1793:506-15
Liberatore, Rachel A; Goff, Stephen P (2009) c-Abl-deficient mice exhibit reduced numbers of peritoneal B-1 cells and defects in BCR-induced B cell activation. Int Immunol 21:403-14
Luria, Victor; Krawchuk, Dayana; Jessell, Thomas M et al. (2008) Specification of motor axon trajectory by ephrin-B:EphB signaling: symmetrical control of axonal patterning in the developing limb. Neuron 60:1039-53
Fleischmann, Alexander; Shykind, Benjamin M; Sosulski, Dara L et al. (2008) Mice with a ""monoclonal nose"": perturbations in an olfactory map impair odor discrimination. Neuron 60:1068-81
Cang, Yong; Zhang, Jianxuan; Nicholas, Sally A et al. (2007) DDB1 is essential for genomic stability in developing epidermis. Proc Natl Acad Sci U S A 104:2733-7
Lomvardas, Stavros; Barnea, Gilad; Pisapia, David J et al. (2006) Interchromosomal interactions and olfactory receptor choice. Cell 126:403-13
Cang, Yong; Zhang, Jianxuan; Nicholas, Sally A et al. (2006) Deletion of DDB1 in mouse brain and lens leads to p53-dependent elimination of proliferating cells. Cell 127:929-40
Heanue, Tiffany A; Pachnis, Vassilis (2006) Expression profiling the developing mammalian enteric nervous system identifies marker and candidate Hirschsprung disease genes. Proc Natl Acad Sci U S A 103:6919-24

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