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  • Author: Stith CM
  • References

Author: Stith CM


References 17 references


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  • Sparks JL, et al. (2019) The roles of fission yeast exonuclease 5 in nuclear and mitochondrial genome stability. DNA Repair (Amst) 83:102720 PMID:31563844
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  • Stodola JL, et al. (2016) Proficient Replication of the Yeast Genome by a Viral DNA Polymerase. J Biol Chem 291(22):11698-705 PMID:27072134
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  • Northam MR, et al. (2014) DNA polymerases ζ and Rev1 mediate error-prone bypass of non-B DNA structures. Nucleic Acids Res 42(1):290-306 PMID:24049079
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  • Netz DJ, et al. (2011) Eukaryotic DNA polymerases require an iron-sulfur cluster for the formation of active complexes. Nat Chem Biol 8(1):125-32 PMID:22119860
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  • Burgers PM, et al. (2010) Yeast exonuclease 5 is essential for mitochondrial genome maintenance. Mol Cell Biol 30(6):1457-66 PMID:20086101
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  • Li X, et al. (2009) PCNA is required for initiation of recombination-associated DNA synthesis by DNA polymerase delta. Mol Cell 36(4):704-13 PMID:19941829
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  • Stone JE, et al. (2009) Low-fidelity DNA synthesis by the L979F mutator derivative of Saccharomyces cerevisiae DNA polymerase zeta. Nucleic Acids Res 37(11):3774-87 PMID:19380376
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  • Nick McElhinny SA, et al. (2008) Division of labor at the eukaryotic replication fork. Mol Cell 30(2):137-44 PMID:18439893
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  • Sommer D, et al. (2008) Partial reconstitution of DNA large loop repair with purified proteins from Saccharomyces cerevisiae. Nucleic Acids Res 36(14):4699-707 PMID:18628298
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  • Stith CM, et al. (2008) Flexibility of eukaryotic Okazaki fragment maturation through regulated strand displacement synthesis. J Biol Chem 283(49):34129-40 PMID:18927077
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  • Chilkova O, et al. (2007) The eukaryotic leading and lagging strand DNA polymerases are loaded onto primer-ends via separate mechanisms but have comparable processivity in the presence of PCNA. Nucleic Acids Res 35(19):6588-97 PMID:17905813
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  • Nick McElhinny SA, et al. (2007) Inefficient proofreading and biased error rates during inaccurate DNA synthesis by a mutant derivative of Saccharomyces cerevisiae DNA polymerase delta. J Biol Chem 282(4):2324-32 PMID:17121822
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  • Fortune JM, et al. (2006) RPA and PCNA suppress formation of large deletion errors by yeast DNA polymerase delta. Nucleic Acids Res 34(16):4335-41 PMID:16936322
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  • Zhong X, et al. (2006) The fidelity of DNA synthesis by yeast DNA polymerase zeta alone and with accessory proteins. Nucleic Acids Res 34(17):4731-42 PMID:16971464
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  • Garg P, et al. (2005) Proliferating cell nuclear antigen promotes translesion synthesis by DNA polymerase zeta. J Biol Chem 280(25):23446-50 PMID:15879599
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  • Jin YH, et al. (2005) The multiple biological roles of the 3'-->5' exonuclease of Saccharomyces cerevisiae DNA polymerase delta require switching between the polymerase and exonuclease domains. Mol Cell Biol 25(1):461-71 PMID:15601866
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  • Garg P, et al. (2004) Idling by DNA polymerase delta maintains a ligatable nick during lagging-strand DNA replication. Genes Dev 18(22):2764-73 PMID:15520275
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