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  • Author: Chung WH
  • References

Author: Chung WH


References 17 references


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  • Chung WH (2023) Signification and Application of Mutator and Antimutator Phenotype-Induced Genetic Variations in Evolutionary Adaptation and Cancer Therapeutics. J Microbiol 61(12):1013-1024 PMID:38100001
    • SGD Paper
    • DOI full text
    • PubMed
  • Choi JE, et al. (2022) Yap1-mediated Flr1 expression reveals crosstalk between oxidative stress signaling and caffeine resistance in Saccharomyces cerevisiae. Front Microbiol 13:1026780 PMID:36504777
    • SGD Paper
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  • Choi JE and Chung WH (2020) Functional interplay between the oxidative stress response and DNA damage checkpoint signaling for genome maintenance in aerobic organisms. J Microbiol 58(2):81-91 PMID:31875928
    • SGD Paper
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  • Choi JE and Chung WH (2019) Synthetic lethal interaction between oxidative stress response and DNA damage repair in the budding yeast and its application to targeted anticancer therapy. J Microbiol 57(1):9-17 PMID:30594981
    • SGD Paper
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  • Choi JE, et al. (2018) Lack of superoxide dismutase in a rad51 mutant exacerbates genomic instability and oxidative stress-mediated cytotoxicity in Saccharomyces cerevisiae. Free Radic Biol Med 129:97-106 PMID:30223018
    • SGD Paper
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  • Chung WH (2017) Unraveling new functions of superoxide dismutase using yeast model system: Beyond its conventional role in superoxide radical scavenging. J Microbiol 55(6):409-416 PMID:28281199
    • SGD Paper
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  • Yi DG, et al. (2016) Yap1 and Skn7 genetically interact with Rad51 in response to oxidative stress and DNA double-strand break in Saccharomyces cerevisiae. Free Radic Biol Med 101:424-433 PMID:27838435
    • SGD Paper
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  • Sakofsky CJ, et al. (2015) Translesion Polymerases Drive Microhomology-Mediated Break-Induced Replication Leading to Complex Chromosomal Rearrangements. Mol Cell 60(6):860-72 PMID:26669261
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  • Chung WH (2014) To peep into Pif1 helicase: multifaceted all the way from genome stability to repair-associated DNA synthesis. J Microbiol 52(2):89-98 PMID:24500472
    • SGD Paper
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  • Lee Y, et al. (2014) Atmospheric-pressure plasma jet induces DNA double-strand breaks that require a Rad51-mediated homologous recombination for repair in Saccharomyces cerevisiae. Arch Biochem Biophys 560:1-9 PMID:25086216
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  • Wilson MA, et al. (2013) Pif1 helicase and Polδ promote recombination-coupled DNA synthesis via bubble migration. Nature 502(7471):393-6 PMID:24025768
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  • Chen X, et al. (2011) Cell cycle regulation of DNA double-strand break end resection by Cdk1-dependent Dna2 phosphorylation. Nat Struct Mol Biol 18(9):1015-9 PMID:21841787
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  • Niu H, et al. (2010) Mechanism of the ATP-dependent DNA end-resection machinery from Saccharomyces cerevisiae. Nature 467(7311):108-11 PMID:20811460
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  • Shim EY, et al. (2010) Saccharomyces cerevisiae Mre11/Rad50/Xrs2 and Ku proteins regulate association of Exo1 and Dna2 with DNA breaks. EMBO J 29(19):3370-80 PMID:20834227
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  • Chaban Y, et al. (2008) Structure of a RSC-nucleosome complex and insights into chromatin remodeling. Nat Struct Mol Biol 15(12):1272-7 PMID:19029894
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  • Zhu Z, et al. (2008) Sgs1 helicase and two nucleases Dna2 and Exo1 resect DNA double-strand break ends. Cell 134(6):981-94 PMID:18805091
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  • Chung WH, et al. (2003) RNA polymerase II/TFIIF structure and conserved organization of the initiation complex. Mol Cell 12(4):1003-13 PMID:14580350
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