This project will consist of the development of methods to select for the integration of retroviral DNAs into particular host genes to generate specific mutations; and to target retroviral infection to particular cell types bearing specific cell-surface proteins. In our previous work, we have demonstrated the feasibility of generating mutations by insertional inactivation of the X-linked mouse gene encoding hypoxanthine-guanine phosphoribosyl transferase (HGPRTase). We propose to extend these studies to facilitate the disruption of other more interesting target genes, and to improve the efficiency of the process. We will attempt to select for transformants due to the disruption of recessive anti-oncogenes, recently demonstrated for the retinoblastoma system. Another powerful selection is survival of cells after induction toward terminal differentiation. We will also attempt to select for insertion of retroviral genomes into genes regulated in particular ways; this procedure is analogous to the Mud-lac gene fusions used in bacteria. Lastly, we describe efforts to improve the efficiency of the targeting of retroviral DNAs to particular host genes by the incorporation into the viral genome of potential regions of homology with the target gene. In a separate subproject, we will try to target virus to particular cell types. In some of these experiments the viral env gene will be partially disrupted and substituted with the gene encoding the Staphlococcus aureus protein A. Exposure of these virus to particular monoclonal IgG preparations will coat the virus with antibody, oriented with the variable specificity-determining domain outward. The ability of these viruses to enter and grow on cells expressing the antigen recognized by the monoclonal antibody will be tested by measuring the production of progeny virus after infection.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Program Projects (P01)
Project #
5P01CA023767-18
Application #
5207056
Study Section
Project Start
Project End
Budget Start
Budget End
Support Year
18
Fiscal Year
1996
Total Cost
Indirect Cost
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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