Cyclin E is a critical cell cycle regulatory protein. At the same time, deregulation of cyclin E expression has been linked to carcinogenesis both in human patients and in mouse models. The current proposal constitutes an ongoing project aimed at gaining understanding into how cyclin E is normally regulated and to elucidate the mechanisms whereby cyclin E expression becomes deregulated and promotes carcinogenesis, respectively. The proposal is divided into three specific aims, the first of which addresses the mechanism of cyclin E degradation in cultured cells and in mice. The role of specific phosphorylation sites on cyclin E will be explored as well as the contribution of a new SCF protein ubiquitin ligase defined by the F-box protein hCdc4. The second specific aim is targeted at the mechanism whereby deregulation of cyclin E confers genomic instability, likely to be a contributing factor in cyclin E-mediated carcinogenesis. Two hypotheses will be explored in detail: that deregulation of cyclin E impairs DNA replication by interfering with pre-replication complex assembly and that elevated cyclin E levels in mitosis block the metaphase-anaphase transition by inhibiting the essential mitotic protein ubiquitin ligase known as APC. The final specific aim seeks to gain a better understanding of the link between cyclin E deregulation and carcinogenesis. Mouse models will be employed to determine if cyclin E promotes carcinogenesis by accelerating loss of heterozygosity (LOH) at tumor suppressor loci. It is hoped that these investigations will provide insights that will ultimately lead to improved prognosis and therapy.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Project (R01)
Project #
5R01CA078343-08
Application #
6898273
Study Section
Cell Development and Function Integrated Review Group (CDF)
Program Officer
Spalholz, Barbara A
Project Start
1998-08-01
Project End
2008-05-31
Budget Start
2005-06-02
Budget End
2006-05-31
Support Year
8
Fiscal Year
2005
Total Cost
$352,876
Indirect Cost
Name
Scripps Research Institute
Department
Type
DUNS #
781613492
City
La Jolla
State
CA
Country
United States
Zip Code
92037
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del Rincón, S V; Widschwendter, M; Sun, D et al. (2015) Cks overexpression enhances chemotherapeutic efficacy by overriding DNA damage checkpoints. Oncogene 34:1961-7
Teixeira, Leonardo K; Wang, Xianlong; Li, Yongjiang et al. (2015) Cyclin E deregulation promotes loss of specific genomic regions. Curr Biol 25:1327-33
Sandhu, Rupninder; Rivenbark, Ashley G; Mackler, Randi M et al. (2014) Dysregulation of microRNA expression drives aberrant DNA hypermethylation in basal-like breast cancer. Int J Oncol 44:563-72
Ekholm-Reed, Susanna; Goldberg, Matthew S; Schlossmacher, Michael G et al. (2013) Parkin-dependent degradation of the F-box protein Fbw7? promotes neuronal survival in response to oxidative stress by stabilizing Mcl-1. Mol Cell Biol 33:3627-43
Teixeira, Leonardo K; Reed, Steven I (2013) Ubiquitin ligases and cell cycle control. Annu Rev Biochem 82:387-414
Bhaskaran, Nimesh; van Drogen, Frank; Ng, Hwee-Fang et al. (2013) Fbw7? and Fbw7? collaborate to shuttle cyclin E1 into the nucleolus for multiubiquitylation. Mol Cell Biol 33:85-97
Best, D Hunter; Coleman, William B (2010) Liver regeneration by small hepatocyte-like progenitor cells after necrotic injury by carbon tetrachloride in retrorsine-exposed rats. Exp Mol Pathol 89:92-8

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