Uracil in DNA and its processing by different DNA glycosylases
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M. Otterlei | H. Krokan | T. Visnes | G. Slupphaug | M. M. Sousa | B. Doseth | B. Kavli | M. Akbari | Lars Hagen | H. S. Pettersen
[1] M. Otterlei,et al. Mitochondrial base excision repair of uracil and AP sites takes place by single-nucleotide insertion and long-patch DNA synthesis. , 2008, DNA repair.
[2] D. Schatz,et al. Two levels of protection for the B cell genome during somatic hypermutation , 2008, Nature.
[3] S. Knuutila,et al. Truncation of MBD4 predisposes to reciprocal chromosomal translocations and alters the response to therapeutic agents in colon cancer cells. , 2008, DNA repair.
[4] O. Jensen,et al. Cell cycle-specific UNG2 phosphorylations regulate protein turnover, activity and association with RPA , 2007, The EMBO journal.
[5] M. Neuberger,et al. Molecular mechanisms of antibody somatic hypermutation. , 2007, Annual review of biochemistry.
[6] H. Krokan,et al. DNA-uracil and human pathology. , 2007, Molecular aspects of medicine.
[7] H. Krokan,et al. Uracil–DNA glycosylases SMUG1 and UNG2 coordinate the initial steps of base excision repair by distinct mechanisms , 2007, Nucleic acids research.
[8] C. Kunz,et al. Cell cycle regulation as a mechanism for functional separation of the apparently redundant uracil DNA glycosylases TDG and UNG2 , 2007, Nucleic acids research.
[9] M. Otterlei,et al. Uracil in DNA--general mutagen, but normal intermediate in acquired immunity. , 2007, DNA repair.
[10] H. Nilsen,et al. Monoclonal B-cell hyperplasia and leukocyte imbalance precede development of B-cell malignancies in uracil-DNA glycosylase deficient mice. , 2005, DNA repair.
[11] A. Fischer,et al. B cells from hyper-IgM patients carrying UNG mutations lack ability to remove uracil from ssDNA and have elevated genomic uracil , 2005, The Journal of experimental medicine.
[12] D. Barnes,et al. C → T mutagenesis and γ‐radiation sensitivity due to deficiency in the Smug1 and Ung DNA glycosylases , 2005, The EMBO journal.
[13] B. Epe,et al. Incorporation of dUMP into DNA is a major source of spontaneous DNA damage, while excision of uracil is not required for cytotoxicity of fluoropyrimidines in mouse embryonic fibroblasts. , 2004, Carcinogenesis.
[14] A. Durandy,et al. Repair of U/G and U/A in DNA by UNG2-associated repair complexes takes place predominantly by short-patch repair both in proliferating and growth-arrested cells. , 2004, Nucleic acids research.
[15] H. Krokan,et al. The interacting pathways for prevention and repair of oxidative DNA damage. , 2003, Mutation research.
[16] A. Fischer,et al. Human uracil–DNA glycosylase deficiency associated with profoundly impaired immunoglobulin class-switch recombination , 2003, Nature Immunology.
[17] D. Barnes,et al. Gene-targeted mice lacking the Ung uracil-DNA glycosylase develop B-cell lymphomas , 2003, Oncogene.
[18] F. Drabløs,et al. Uracil in DNA – occurrence, consequences and repair , 2002, Oncogene.
[19] F. Skorpen,et al. hUNG2 Is the Major Repair Enzyme for Removal of Uracil from U:A Matches, U:G Mismatches, and U in Single-stranded DNA, with hSMUG1 as a Broad Specificity Backup* , 2002, The Journal of Biological Chemistry.
[20] D. Barnes,et al. Immunoglobulin Isotype Switching Is Inhibited and Somatic Hypermutation Perturbed in UNG-Deficient Mice , 2002, Current Biology.
[21] J. Jiricny,et al. Modification of the human thymine‐DNA glycosylase by ubiquitin‐like proteins facilitates enzymatic turnover , 2002, The EMBO journal.
[22] D. Barnes,et al. Excision of deaminated cytosine from the vertebrate genome: role of the SMUG1 uracil–DNA glycosylase , 2001, The EMBO journal.
[23] A. Bellacosa. Role of MED1 (MBD4) Gene in DNA repair and human cancer , 2001, Journal of cellular physiology.
[24] T. Lindahl,et al. Uracil-DNA glycosylase (UNG)-deficient mice reveal a primary role of the enzyme during DNA replication. , 2000, Molecular cell.
[25] A. Bird,et al. The thymine glycosylase MBD4 can bind to the product of deamination at methylated CpG sites , 1999, Nature.
[26] M. Otterlei,et al. Post‐replicative base excision repair in replication foci , 1999, The EMBO journal.
[27] T. Honjo,et al. Specific Expression of Activation-induced Cytidine Deaminase (AID), a Novel Member of the RNA-editing Deaminase Family in Germinal Center B Cells* , 1999, The Journal of Biological Chemistry.
[28] J. Jiricny,et al. Human Thymine DNA Glycosylase Binds to Apurinic Sites in DNA but Is Displaced by Human Apurinic Endonuclease 1* , 1999, The Journal of Biological Chemistry.
[29] F. Skorpen,et al. Human Uracil-DNA Glycosylase , 1999 .
[30] A. Bird,et al. Identification and Characterization of a Family of Mammalian Methyl-CpG Binding Proteins , 1998, Molecular and Cellular Biology.
[31] H. Krokan,et al. DNA glycosylases in the base excision repair of DNA. , 1997, The Biochemical journal.
[32] H. Krokan,et al. Properties of a recombinant human uracil-DNA glycosylase from the UNG gene and evidence that UNG encodes the major uracil-DNA glycosylase. , 1995, Biochemistry.
[33] H. Krokan,et al. Consensus sequences for good and poor removal of uracil from double stranded DNA by uracil-DNA glycosylase. , 1993, Nucleic acids research.
[34] T. Lindahl. Instability and decay of the primary structure of DNA , 1993, Nature.