The goals of this work are to understand the enzymology and functions of human DNA polymerase delta.
Aim 1. The primary structures of human DNA polymerases delta-125 and delta-170 will be determined by cDNA cloning. The cDNAs for human DNA polymerase delta-125 and delta-170 will be cloned by a dual approach of hybridization screening of cDNA libraries and PCR amplification methods. Their nucleotide sequences and their encoded protein sequences will be determined. Final identification of the cDNA clones will be made by obtaining protein sequence data from the isolated proteins. This work will provide significant information on the structures of these two enzymes and permit an evaluation of their structural and evolutionary relationships with other members of this DNA polymerase family.
Aim 2. The chromosomal localization of the human DNA polymerase delta-125 and delta-170 genes will be determined by in situ hybridization. The organization of the DNA polymerase delta-125 gene will be investigated by Southern blot analysis and S1 nuclease mapping. The sequence of the 5' flanking region will be determined by the isolation of genomic clones from an EMBL3 genomic library using probes from the 5' end of the cDNA in order to obtain information on potential promoter sequences.
Aim 3. The expression of DNA polymerase delta activity will be examined by determination of the change in levels of enzyme activity, enzyme protein and steady state mRNA levels as a function of the cell cycle and proliferative state in human cultured cells. The potential promoter regions of the 5' flanking regions of the gene will be cloned into an expression vector containing a reporter gene and studied.
Aim 4. DNA polymerase delta-125 will be expressed in E. coli using an expression vector. The coding sequence will be inserted into the pET3a a vector for this purpose. The recombinant enzyme will be isolated, characterized and its properties compared to those of the native protein. Deletion mutants of the recombinant enzyme will be examined to obtain information on the potential domain structure of the enzyme. This work will provide significant information on the structures of these two enzymes and permit an evaluation of their structural and evolutionary relationships with other members of this DNA polymerase family and can contribute significantly to our understanding of mammalian replication. Studies of the human enzyme is of particular significance as it relates to the potential of basic studies to contribute to clinical aspects of health care. Basic information on a human proof-reading polymerase could contribute to our understanding of mechanisms of eukaryotic mutagenesis. Moreover, the genetic structures of these human enzymes are also of relevance to current efforts to sequence the human genome.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM031973-10
Application #
3280430
Study Section
Biochemistry Study Section (BIO)
Project Start
1983-04-01
Project End
1995-03-31
Budget Start
1992-04-01
Budget End
1993-03-31
Support Year
10
Fiscal Year
1992
Total Cost
Indirect Cost
Name
University of Miami School of Medicine
Department
Type
Schools of Medicine
DUNS #
City
Miami
State
FL
Country
United States
Zip Code
33146
Huehls, Amelia M; Huntoon, Catherine J; Joshi, Poorval M et al. (2016) Genomically Incorporated 5-Fluorouracil that Escapes UNG-Initiated Base Excision Repair Blocks DNA Replication and Activates Homologous Recombination. Mol Pharmacol 89:53-62
Darzynkiewicz, Zbigniew; Zhao, Hong; Zhang, Sufang et al. (2015) Initiation and termination of DNA replication during S phase in relation to cyclins D1, E and A, p21WAF1, Cdt1 and the p12 subunit of DNA polymerase ? revealed in individual cells by cytometry. Oncotarget 6:11735-50
Lee, Marietta Y W T; Zhang, Sufang; Lin, Szu Hua Sharon et al. (2014) The tail that wags the dog: p12, the smallest subunit of DNA polymerase ?, is degraded by ubiquitin ligases in response to DNA damage and during cell cycle progression. Cell Cycle 13:23-31
Zhao, Hong; Zhang, Sufang; Xu, Dazhong et al. (2014) Expression of the p12 subunit of human DNA polymerase ? (Pol ?), CDK inhibitor p21(WAF1), Cdt1, cyclin A, PCNA and Ki-67 in relation to DNA replication in individual cells. Cell Cycle 13:3529-40
Zhang, Sufang; Zhao, Hong; Darzynkiewicz, Zbiegniew et al. (2013) A novel function of CRL4(Cdt2): regulation of the subunit structure of DNA polymerase ? in response to DNA damage and during the S phase. J Biol Chem 288:29550-61
Zhang, Sufang; Zhou, Yajing; Sarkeshik, Ali et al. (2013) Identification of RNF8 as a ubiquitin ligase involved in targeting the p12 subunit of DNA polymerase ? for degradation in response to DNA damage. J Biol Chem 288:2941-50
Walsh, Erin; Wang, Xiaoxiao; Lee, Marietta Y et al. (2013) Mechanism of replicative DNA polymerase delta pausing and a potential role for DNA polymerase kappa in common fragile site replication. J Mol Biol 425:232-43
Wong, Agnes; Zhang, Sufang; Mordue, Dana et al. (2013) PDIP38 is translocated to the spliceosomes/nuclear speckles in response to UV-induced DNA damage and is required for UV-induced alternative splicing of MDM2. Cell Cycle 12:3184-93
Clausen, Anders R; Zhang, Sufang; Burgers, Peter M et al. (2013) Ribonucleotide incorporation, proofreading and bypass by human DNA polymerase ?. DNA Repair (Amst) 12:121-7
Lin, Szu Hua Sharon; Wang, Xiaoxiao; Zhang, Sufang et al. (2013) Dynamics of enzymatic interactions during short flap human Okazaki fragment processing by two forms of human DNA polymerase ?. DNA Repair (Amst) 12:922-35

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