RAD5/YLR032W Literature Guide Help

Other names published for RAD5: REV2, SNM2, DNA helicase RAD5, YLR032W

RAD5 - Reviews (35)

ReferenceOther Genes Addressed
Boiteux S and Jinks-Robertson S  (2013) DNA repair mechanisms and the bypass of DNA damage in Saccharomyces cerevisiae. Genetics 193(4):1025-64
Hoch NC, et al.  (2013) Genomic stability disorders: from budding yeast to humans. Front Biosci (Schol Ed) 5():396-411
Finley D, et al.  (2012) The Ubiquitin-Proteasome System of Saccharomyces cerevisiae. Genetics 192(2):319-60
Gazy I and Kupiec M  (2012) The importance of being modified: PCNA modification and DNA damage response. Cell Cycle 11(14):2620-3
Carr AM, et al.  (2011) DNA replication: failures and inverted fusions. Semin Cell Dev Biol 22(8):866-74
Flaus A and Owen-Hughes T  (2011) Mechanisms for ATP-dependent chromatin remodelling: the means to the end. FEBS J 278(19):3579-95
Lehmann AR  (2011) Ubiquitin-family modifications in the replication of DNA damage. FEBS Lett 585(18):2772-9
Nijwening JH, et al.  (2011) Screening for modulators of cisplatin sensitivity: unbiased screens reveal common themes. Cell Cycle 10(3):380-6
Zhang W, et al.  (2011) Roles of sequential ubiquitination of PCNA in DNA-damage tolerance. FEBS Lett 585(18):2786-94
Liu F and Walters KJ  (2010) Multitasking with ubiquitin through multivalent interactions. Trends Biochem Sci 35(6):352-60
Shaheen M, et al.  (2010) The Role of PCNA Posttranslational Modifications in Translesion Synthesis.LID - 761217 [pii] J Nucleic Acids 2010()
Ting L, et al.  (2010) RAD18 lives a double life: Its implication in DNA double-strand break repair. DNA Repair (Amst) 9(12):1241-8
Unk I, et al.  (2010) Role of yeast Rad5 and its human orthologs, HLTF and SHPRH in DNA damage tolerance. DNA Repair (Amst) 9(3):257-267
Schleker T, et al.  (2009) Posttranslational modifications of repair factors and histones in the cellular response to stalled replication forks. DNA Repair (Amst) 8(9):1089-100
Andersen PL, et al.  (2008) Eukaryotic DNA damage tolerance and translesion synthesis through covalent modifications of PCNA. Cell Res 18(1):162-73
Lee KY and Myung K  (2008) PCNA Modifications for Regulation of Post-Replication Repair Pathways. Mol Cells 26(1):5-11
Myung K and Smith S  (2008) The RAD5-dependent postreplication repair pathway is important to suppress gross chromosomal rearrangements. J Natl Cancer Inst Monogr (39):12-5
Banerjee S, et al.  (2007) Suppression of gross chromosomal rearrangements by a new alternative replication factor C complex. Biochem Biophys Res Commun 362(3):546-9
Branzei D and Foiani M  (2007) Interplay of replication checkpoints and repair proteins at stalled replication forks. DNA Repair (Amst) 6(7):994-1003
Klein HL  (2007) Reversal of fortune: rad5 to the rescue. Mol Cell 28(2):181-3
Lawrence CW  (2007) Following the RAD6 pathway. DNA Repair (Amst) 6(5):676-86
Ulrich HD  (2007) Conservation of DNA damage tolerance pathways from yeast to humans. Biochem Soc Trans 35(Pt 5):1334-7
Branzei D and Foiani M  (2006) The Rad53 signal transduction pathway: Replication fork stabilization, DNA repair, and adaptation. Exp Cell Res 312(14):2654-9
Cederberg H and Rannug U  (2006) Mechanisms of human minisatellite mutation in yeast. Mutat Res 598(1-2):132-43
Durr H, et al.  (2006) Snf2 family ATPases and DExx box helicases: differences and unifying concepts from high-resolution crystal structures. Nucleic Acids Res 34(15):4160-7
Lee KM and O'Connell MJ  (2006) A new SUMO ligase in the DNA damage response. DNA Repair (Amst) 5(1):138-41
Kannouche PL and Lehmann AR  (2004) Ubiquitination of PCNA and the polymerase switch in human cells. Cell Cycle 3(8):1011-3
Smirnova M and Klein HL  (2003) Role of the error-free damage bypass postreplication repair pathway in the maintenance of genomic stability. Mutat Res 532(1-2):117-35
Dronkert ML and Kanaar R  (2001) Repair of DNA interstrand cross-links. Mutat Res 486(4):217-47
Kunz BA, et al.  (2000) DNA damage-induced mutation: tolerance via translesion synthesis. Mutat Res 451(1-2):169-85