Since the discovery that the v-sis oncogene of Simian Sarcoma Virus encodes a homolog of platelet-derived growth factor (PDGF), the sis/PDGF system has yielded important information concerning signal transduction and cellular transformation. This proposal examines structural aspects of the E5 oncoprotein of bovine papilloma virus (BPV), which mimics PDGF and activates PDGF receptors during autocrine transformation. These experiments will include the E5 proteins encoded by the clinically important human papillomaviruses (HPVs). The first specific aim will continue our extensive analysis of the structure and function of the BPV B5 oncoprotein based on many deletion and point mutants. The ability of BPV E5 to specifically activate the PDGF alpha- and beta-receptors, as well as other receptor tyrosine kinases, will be examined. Molecular modeling techniques will be utilized to formulate structural models of the E5 oncoprotein and, lastly, X-ray crystallography will be employed to achieve a complete structural determination. In the second specific aim, transforming B5 derivatives with heterologous transmembrane domains will be characterized. Our goal is to probe the structural features of the transmembrane domain of the E5 oncoprotein that contribute to its biological potency. In successful preliminary experiments, pools of degenerate oligonucleotides have generated large numbers of transmembrane substitutions between the BPV E5 oncoprotein and either the neu receptor or glycophorin A. These experiments will explore how small transmembrane peptides activate receptors resulting in biological transformation. In the third specific aim, we will build upon preliminary results demonstrating reversion of transformation by dominant negative E5 mutants. In the experiments proposed here, we will undertake a more detailed analysis of this dominant negative inhibition and, importantly, generalize this approach to novel E5-derived oncoproteins containing heterologous transmembrane domains. Our goal is to design effective dominant negative inhibitors that function by interacting with specific transmembrane domains required for the activity of transmembrane oncoproteins. Finally, we will examine the receptor specificity of HPV E5 proteins. HPV infection represents one of the most significant risk factors identified for ovarian cancer. These experiments will explore whether the HPV E5 proteins may function to stimulate the proliferation of cells through activation of a growth factor receptor. These experiments may thus be expected to increase our understanding of the molecular mechanisms employed by the HPVs to deregulate the control of cellular proliferation.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Project (R01)
Project #
5R01CA040573-10
Application #
2090253
Study Section
Cellular Biology and Physiology Subcommittee 1 (CBY)
Project Start
1985-07-01
Project End
1997-06-30
Budget Start
1995-07-01
Budget End
1996-06-30
Support Year
10
Fiscal Year
1995
Total Cost
Indirect Cost
Name
University of California San Diego
Department
Chemistry
Type
Schools of Arts and Sciences
DUNS #
077758407
City
La Jolla
State
CA
Country
United States
Zip Code
92093
Tavormina, P L; Bellus, G A; Webster, M K et al. (1999) A novel skeletal dysplasia with developmental delay and acanthosis nigricans is caused by a Lys650Met mutation in the fibroblast growth factor receptor 3 gene. Am J Hum Genet 64:722-31
Chen, L I; Webster, M K; Meyer, A N et al. (1997) Transmembrane domain sequence requirements for activation of the p185c-neu receptor tyrosine kinase. J Cell Biol 137:619-31
Webster, M K; Donoghue, D J (1997) Enhanced signaling and morphological transformation by a membrane-localized derivative of the fibroblast growth factor receptor 3 kinase domain. Mol Cell Biol 17:5739-47
Webster, M K; Donoghue, D J (1996) Constitutive activation of fibroblast growth factor receptor 3 by the transmembrane domain point mutation found in achondroplasia. EMBO J 15:520-7
Webster, M K; D'Avis, P Y; Robertson, S C et al. (1996) Profound ligand-independent kinase activation of fibroblast growth factor receptor 3 by the activation loop mutation responsible for a lethal skeletal dysplasia, thanatophoric dysplasia type II. Mol Cell Biol 16:4081-7
Galvin, B D; Hart, K C; Meyer, A N et al. (1996) Constitutive receptor activation by Crouzon syndrome mutations in fibroblast growth factor receptor (FGFR)2 and FGFR2/Neu chimeras. Proc Natl Acad Sci U S A 93:7894-9
Meyer, A N; Xu, Y F; Webster, M K et al. (1994) Cellular transformation by a transmembrane peptide: structural requirements for the bovine papillomavirus E5 oncoprotein. Proc Natl Acad Sci U S A 91:4634-8
Hart, K C; Xu, Y F; Meyer, A N et al. (1994) The v-sis oncoprotein loses transforming activity when targeted to the early Golgi complex. J Cell Biol 127:1843-57
Maher, D W; Strawn, L M; Donoghue, D J (1993) Alanine mutagenesis of conserved residues in the platelet-derived growth factor family: identification of residues necessary for dimerization and transformation. Oncogene 8:533-41
Xu, Y F; Meyer, A N; Webster, M K et al. (1993) The v-sis protein retains biological activity as a type II membrane protein when anchored by various signal-anchor domains, including the hydrophobic domain of the bovine papilloma virus E5 oncoprotein. J Cell Biol 123:549-60

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