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  • Author: Schmidt KH
  • References

Author: Schmidt KH


References 25 references


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  • Gupta SV, et al. (2023) Mitochondrial superoxide dismutase Sod2 suppresses nuclear genome instability during oxidative stress. Genetics 225(2) PMID:37638880
    • SGD Paper
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  • Muellner J and Schmidt KH (2023) Helicase activities of Rad5 and Rrm3 genetically interact in the prevention of recombinogenic DNA lesions in Saccharomyces cerevisiae. DNA Repair (Amst) 126:103488 PMID:37054652
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  • Gupta SV and Schmidt KH (2020) Maintenance of Yeast Genome Integrity by RecQ Family DNA Helicases. Genes (Basel) 11(2) PMID:32085395
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  • Muellner J and Schmidt KH (2020) Yeast Genome Maintenance by the Multifunctional PIF1 DNA Helicase Family. Genes (Basel) 11(2) PMID:32093266
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  • Campos-Doerfler L, et al. (2018) Sgs1 Binding to Rad51 Stimulates Homology-Directed DNA Repair in Saccharomyces cerevisiae. Genetics 208(1):125-138 PMID:29162625
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  • Arora S, et al. (2017) Genetic Separation of Sae2 Nuclease Activity from Mre11 Nuclease Functions in Budding Yeast. Mol Cell Biol 37(24) PMID:28970327
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  • Syed S, et al. (2016) A Novel Rrm3 Function in Restricting DNA Replication via an Orc5-Binding Domain Is Genetically Separable from Rrm3 Function as an ATPase/Helicase in Facilitating Fork Progression. PLoS Genet 12(12):e1006451 PMID:27923055
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  • Bastos de Oliveira FM, et al. (2015) Phosphoproteomics reveals distinct modes of Mec1/ATR signaling during DNA replication. Mol Cell 57(6):1124-1132 PMID:25752575
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  • Kennedy JA, et al. (2015) Structural Motifs Critical for In Vivo Function and Stability of the RecQ-Mediated Genome Instability Protein Rmi1. PLoS One 10(12):e0145466 PMID:26717309
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  • Chiotti KE, et al. (2014) The Valley-of-Death: reciprocal sign epistasis constrains adaptive trajectories in a constant, nutrient limiting environment. Genomics 104(6 Pt A):431-7 PMID:25449178
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  • Doerfler L and Schmidt KH (2014) Exo1 phosphorylation status controls the hydroxyurea sensitivity of cells lacking the Pol32 subunit of DNA polymerases delta and zeta. DNA Repair (Amst) 24:26-36 PMID:25457771
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  • Nagarajan S, et al. (2014) Uncoupling reproduction from metabolism extends chronological lifespan in yeast. Proc Natl Acad Sci U S A 111(15):E1538-47 PMID:24706810
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  • Kennedy JA, et al. (2013) A transient α-helical molecular recognition element in the disordered N-terminus of the Sgs1 helicase is critical for chromosome stability and binding of Top3/Rmi1. Nucleic Acids Res 41(22):10215-27 PMID:24038467
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  • Mirzaei H and Schmidt KH (2012) Non-Bloom syndrome-associated partial and total loss-of-function variants of BLM helicase. Proc Natl Acad Sci U S A 109(47):19357-62 PMID:23129629
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  • Doerfler L, et al. (2011) Differential genetic interactions between Sgs1, DNA-damage checkpoint components and DNA repair factors in the maintenance of chromosome stability. Genome Integr 2:8 PMID:22040455
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  • Mirzaei H, et al. (2011) Sgs1 truncations induce genome rearrangements but suppress detrimental effects of BLM overexpression in Saccharomyces cerevisiae. J Mol Biol 405(4):877-91 PMID:21111748
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  • Schmidt KH, et al. (2010) Formation of complex and unstable chromosomal translocations in yeast. PLoS One 5(8):e12007 PMID:20711256
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  • Schmidt KH, et al. (2010) Defects in DNA lesion bypass lead to spontaneous chromosomal rearrangements and increased cell death. Eukaryot Cell 9(2):315-24 PMID:20008080
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  • Vijayakumar S, et al. (2007) The C-terminal domain of yeast PCNA is required for physical and functional interactions with Cdc9 DNA ligase. Nucleic Acids Res 35(5):1624-37 PMID:17308348
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  • Schmidt KH and Kolodner RD (2006) Suppression of spontaneous genome rearrangements in yeast DNA helicase mutants. Proc Natl Acad Sci U S A 103(48):18196-201 PMID:17114288
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  • Schmidt KH, et al. (2006) Control of translocations between highly diverged genes by Sgs1, the Saccharomyces cerevisiae homolog of the Bloom's syndrome protein. Mol Cell Biol 26(14):5406-20 PMID:16809776
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  • Schmidt KH, et al. (2006) Analysis of gross-chromosomal rearrangements in Saccharomyces cerevisiae. Methods Enzymol 409:462-76 PMID:16793418
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  • Smolka MB, et al. (2005) Dynamic changes in protein-protein interaction and protein phosphorylation probed with amine-reactive isotope tag. Mol Cell Proteomics 4(9):1358-69 PMID:15972895
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    • Reference supplement
  • Schmidt KH and Kolodner RD (2004) Requirement of Rrm3 helicase for repair of spontaneous DNA lesions in cells lacking Srs2 or Sgs1 helicase. Mol Cell Biol 24(8):3213-26 PMID:15060145
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  • Schmidt KH, et al. (2002) Saccharomyces cerevisiae RRM3, a 5' to 3' DNA helicase, physically interacts with proliferating cell nuclear antigen. J Biol Chem 277(47):45331-7 PMID:12239216
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