The overall goal of this proposal is to determine the role of the adenomatous polyposis coil (APC) gene in DNA repair activity and the development of colorectal cancer. Mutation of the APC gene is one of the earliest events in the multistep process of the development of colorectal cancer, and is followed by sequential mutations in K-ras, deleted in colorectal cancer (DCC) and p53 genes. How mutation of the APC gene leads to the mutation of other genes is unclear. Our preliminary data indicate that the APC protein interacts with the DNA base excision repair (BER) proteins, proliferating cell nuclear antigen (PCNA) and apurinic/apyrimidinic endonuclease (APE), and the cell cycle kinase inhibitor protein, p21. PCNA and APE interact with APC at the PCNA-interacting protein (PIP)-box and p21 interacts at the C-terminal region of APC. We hypothesize that wild-type levels of APC promote formation of an active complex with PCNA and APE, which increases APE activity and facilitates repair of abasic lesions through a long-patch (LP)-BER pathway thereby preventing accumulation of gene mutations in normal colonic epithelial cells. Truncation of the C-terminal region of APC leads to loss of p21 binding and the p21 binds with PCNA at the PIP-box of APC, blocking PCNA-mediated APE activity and LP-BER. The decrease in LP-BER results in the accumulation of mutations and the initiation and progression of colorectal tumorigenesis. To test this hypothesis, we will: (1) Determine the interactions of APC with p21 and BER proteins in in vitro pull-down and in vivo functional assays; (2) Characterize APC/PCNA/APE/p21 assembly in the functionally active BER complexes purified from the cellular extracts in the presence or absence of abasic DNA; (3) Determine whether the wild-type APC acts as a recruitment factor for PCNA interaction with abasic DNA and whether p21 interferes with mutant APC and decreases this activity; and (4) Determine whether the p21-mediated decrease in LP-BER is associated with APE-mediated increase in 3' - 5' exonuclease activity. This project will, for the first time, detail the molecular mechanisms underlying the function of wild-type and mutant APC in collaboration with p21 in BER activity and its role in the initiation and progression of colorectal tumorigenesis. The findings of these studies will lay the basis for the development of a new class of chemotherapeutic agents for the prevention of colorectal cancers. ? ?

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Project (R01)
Project #
5R01CA097031-04
Application #
7058760
Study Section
Radiation Study Section (RAD)
Program Officer
Okano, Paul
Project Start
2003-05-16
Project End
2008-04-30
Budget Start
2006-05-01
Budget End
2008-04-30
Support Year
4
Fiscal Year
2006
Total Cost
$252,904
Indirect Cost
Name
University of Florida
Department
Anatomy/Cell Biology
Type
Schools of Medicine
DUNS #
969663814
City
Gainesville
State
FL
Country
United States
Zip Code
32611
Narayan, Satya; Sharma, Ritika (2015) Molecular mechanism of adenomatous polyposis coli-induced blockade of base excision repair pathway in colorectal carcinogenesis. Life Sci 139:145-52
Jaiswal, Aruna S; Panda, Harekrushna; Law, Brian K et al. (2015) NSC666715 and Its Analogs Inhibit Strand-Displacement Activity of DNA Polymerase ? and Potentiate Temozolomide-Induced DNA Damage, Senescence and Apoptosis in Colorectal Cancer Cells. PLoS One 10:e0123808
Jaiswal, Aruna S; Armas, Melissa L; Izumi, Tadahide et al. (2012) Adenomatous polyposis coli interacts with flap endonuclease 1 to block its nuclear entry and function. Neoplasia 14:495-508
Jaiswal, Aruna S; Banerjee, Sanjeev; Aneja, Ritu et al. (2011) DNA polymerase ? as a novel target for chemotherapeutic intervention of colorectal cancer. PLoS One 6:e16691
Jaiswal, Aruna S; Narayan, Satya (2011) Assembly of the base excision repair complex on abasic DNA and role of adenomatous polyposis coli on its functional activity. Biochemistry 50:1901-9
Jaiswal, Aruna S; Banerjee, Sanjeev; Panda, Harekrushna et al. (2009) A novel inhibitor of DNA polymerase beta enhances the ability of temozolomide to impair the growth of colon cancer cells. Mol Cancer Res 7:1973-83
Panda, Harekrushna; Jaiswal, Aruna S; Corsino, Patrick E et al. (2009) Amino acid Asp181 of 5'-flap endonuclease 1 is a useful target for chemotherapeutic development. Biochemistry 48:9952-8
Jaiswal, Aruna S; Narayan, Satya (2008) A novel function of adenomatous polyposis coli (APC) in regulating DNA repair. Cancer Lett 271:272-80
Balusu, Ramesh; Jaiswal, Aruna S; Armas, Melissa L et al. (2007) Structure/function analysis of the interaction of adenomatous polyposis coli with DNA polymerase beta and its implications for base excision repair. Biochemistry 46:13961-74
Kundu, Chanakya N; Balusu, Ramesh; Jaiswal, Aruna S et al. (2007) Adenomatous polyposis coli-mediated hypersensitivity of mouse embryonic fibroblast cell lines to methylmethane sulfonate treatment: implication of base excision repair pathways. Carcinogenesis 28:2089-95

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