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  • Author: Crouch RJ
  • References

Author: Crouch RJ


References 20 references


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  • Cerritelli SM, et al. (2020) High density of unrepaired genomic ribonucleotides leads to Topoisomerase 1-mediated severe growth defects in absence of ribonucleotide reductase. Nucleic Acids Res 48(8):4274-4297 PMID:32187369
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  • Liu Y, et al. (2020) RNA abasic sites in yeast and human cells. Proc Natl Acad Sci U S A 117(34):20689-20695 PMID:32788345
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  • Cerritelli SM and Crouch RJ (2019) RNase H2-RED carpets the path to eukaryotic RNase H2 functions. DNA Repair (Amst) 84:102736 PMID:31761672
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  • Donigan KA, et al. (2015) Unlocking the steric gate of DNA polymerase η leads to increased genomic instability in Saccharomyces cerevisiae. DNA Repair (Amst) 35:1-12 PMID:26340535
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  • Chon H, et al. (2013) RNase H2 roles in genome integrity revealed by unlinking its activities. Nucleic Acids Res 41(5):3130-43 PMID:23355612
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  • Sparks JL, et al. (2012) RNase H2-initiated ribonucleotide excision repair. Mol Cell 47(6):980-6 PMID:22864116
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  • Cerritelli SM, et al. (2011) Molecular biology. A new twist for topoisomerase. Science 332(6037):1510-1 PMID:21700860
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  • Cerritelli SM and Crouch RJ (2009) Ribonuclease H: the enzymes in eukaryotes. FEBS J 276(6):1494-505 PMID:19228196
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  • Chon H, et al. (2009) Contributions of the two accessory subunits, RNASEH2B and RNASEH2C, to the activity and properties of the human RNase H2 complex. Nucleic Acids Res 37(1):96-110 PMID:19015152
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  • Rohman MS, et al. (2008) Effect of the disease-causing mutations identified in human ribonuclease (RNase) H2 on the activities and stabilities of yeast RNase H2 and archaeal RNase HII. FEBS J 275(19):4836-49 PMID:18721139
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  • Jeong HS, et al. (2004) RNase H2 of Saccharomyces cerevisiae is a complex of three proteins. Nucleic Acids Res 32(2):407-14 PMID:14734815
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  • Crouch RJ, et al. (2001) RNase H1 of Saccharomyces cerevisiae: methods and nomenclature. Methods Enzymol 341:395-413 PMID:11582793
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  • Arudchandran A, et al. (2000) The absence of ribonuclease H1 or H2 alters the sensitivity of Saccharomyces cerevisiae to hydroxyurea, caffeine and ethyl methanesulphonate: implications for roles of RNases H in DNA replication and repair. Genes Cells 5(10):789-802 PMID:11029655
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  • Cerritelli SM, et al. (1998) A common 40 amino acid motif in eukaryotic RNases H1 and caulimovirus ORF VI proteins binds to duplex RNAs. Nucleic Acids Res 26(7):1834-40 PMID:9512560
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  • Han LY, et al. (1997) Ribonuclease H renaturation gel assay using a fluorescent-labeled substrate. Biotechniques 23(5):920-6 PMID:9383560
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  • Stanford DR, et al. (1997) Personal Communication
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  • Cerritelli SM and Crouch RJ (1995) The non-RNase H domain of Saccharomyces cerevisiae RNase H1 binds double-stranded RNA: magnesium modulates the switch between double-stranded RNA binding and RNase H activity. RNA 1(3):246-59 PMID:7489497
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  • Itaya M, et al. (1991) Selective cloning of genes encoding RNase H from Salmonella typhimurium, Saccharomyces cerevisiae and Escherichia coli rnh mutant. Mol Gen Genet 227(3):438-45 PMID:1650910
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  • Crouch RJ (1990) Ribonuclease H: from discovery to 3D structure. New Biol 2(9):771-7 PMID:2177653
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  • Yang W, et al. (1990) Structure of ribonuclease H phased at 2 A resolution by MAD analysis of the selenomethionyl protein. Science 249(4975):1398-405 PMID:2169648
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