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  • Author: Feng W
  • References

Author: Feng W


References 36 references


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  • Zhang R, et al. (2024) Autophagy-mediated post-transcriptional surveillance of meiotic translation in Saccharomyces Cerevisiae. Autophagy 20(3):694-696 PMID:37927068
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  • Zhang R, et al. (2023) Autophagy-mediated surveillance of Rim4-mRNA interaction safeguards programmed meiotic translation. Cell Rep 42(9):113051 PMID:37659076
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  • Bachant J, et al. (2022) The yeast Dbf4 Zn2+ finger domain suppresses single-stranded DNA at replication forks initiated from a subset of origins. Curr Genet 68(2):253-265 PMID:35147742
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  • Chen F, et al. (2022) Crystal Structure of the Core Module of the Yeast Paf1 Complex. J Mol Biol 434(2):167369 PMID:34852272
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  • Feng W, et al. (2022) Cdc14 spatiotemporally dephosphorylates Atg13 to activate autophagy during meiotic divisions. J Cell Biol 221(5) PMID:35238874
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  • Feng W, et al. (2022) Distinctive phosphorylation pattern during mitotic exit network (MEN) regulation is important for the development and pathogenicity of Magnaporthe oryzae. Stress Biol 2(1):41 PMID:37676543
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  • Feng W, et al. (2022) Cdc14 plans autophagy for meiotic cell divisions. Autophagy 18(6):1481-1482 PMID:35617128
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  • Gasparayan H, et al. (2022) Yeast Stn1 promotes MCM to circumvent Rad53 control of the S phase checkpoint. Curr Genet 68(2):165-179 PMID:35150303
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  • Joshi I, et al. (2022) Exceptional origin activation revealed by comparative analysis in two laboratory yeast strains. PLoS One 17(2):e0263569 PMID:35157703
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  • Zhao L, et al. (2022) From Plant to Yeast-Advances in Biosynthesis of Artemisinin. Molecules 27(20) PMID:36296479
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  • Chen F, et al. (2021) Biochemical insights into Paf1 complex-induced stimulation of Rad6/Bre1-mediated H2B monoubiquitination. Proc Natl Acad Sci U S A 118(33) PMID:34385316
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  • Chen J, et al. (2021) A model for long-term infection of bovine papillomavirus type 1 in Saccharomyces cerevisiae. Acta Virol 65(2):192-199 PMID:34130470
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  • Joshi I, et al. (2021) Genome-wide mapping of DNA double-strand breaks from eukaryotic cell cultures using Break-seq. STAR Protoc 2(2):100554 PMID:34189468
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  • Mishra PK, et al. (2021) R-loops at centromeric chromatin contribute to defects in kinetochore integrity and chromosomal instability in budding yeast. Mol Biol Cell 32(1):74-89 PMID:33147102
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  • Wang F, et al. (2020) Autophagy of an Amyloid-like Translational Repressor Regulates Meiotic Exit. Dev Cell 52(2):141-151.e5 PMID:31991104
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  • Julius J, et al. (2019) Inhibition of spindle extension through the yeast S phase checkpoint is coupled to replication fork stability and the integrity of centromeric DNA. Mol Biol Cell 30(22):2771-2789 PMID:31509480
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  • Feng W (2016) Mec1/ATR, the Program Manager of Nucleic Acids Inc. Genes (Basel) 8(1) PMID:28036033
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  • Peng J and Feng W (2016) Incision of damaged DNA in the presence of an impaired Smc5/6 complex imperils genome stability. Nucleic Acids Res 44(21):10216-10229 PMID:27536003
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  • Feng W, et al. (2015) Analysis of phosphorylation sites on autophagy proteins. Protein Cell 6(9):698-701 PMID:26081468
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  • Feng W, et al. (2015) Phosphorylation of Atg31 is required for autophagy. Protein Cell 6(4):288-96 PMID:25773276
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  • Hang LE, et al. (2015) Rtt107 Is a Multi-functional Scaffold Supporting Replication Progression with Partner SUMO and Ubiquitin Ligases. Mol Cell 60(2):268-79 PMID:26439300
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  • Hoffman EA, et al. (2015) Break-seq reveals hydroxyurea-induced chromosome fragility as a result of unscheduled conflict between DNA replication and transcription. Genome Res 25(3):402-12 PMID:25609572
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  • Wu F, et al. (2015) Structural Basis of the Differential Function of the Two C. elegans Atg8 Homologs, LGG-1 and LGG-2, in Autophagy. Mol Cell 60(6):914-29 PMID:26687600
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  • McCulley A, et al. (2014) Chemical suppression of defects in mitotic spindle assembly, redox control, and sterol biosynthesis by hydroxyurea. G3 (Bethesda) 4(1):39-48 PMID:24192836
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  • Peng J, et al. (2014) Analysis of ssDNA gaps and DSBs in genetically unstable yeast cultures. Methods Mol Biol 1170:501-15 PMID:24906332
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  • Peng J, et al. (2014) Analysis of replication timing using synchronized budding yeast cultures. Methods Mol Biol 1170:477-99 PMID:24906331
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  • Yi C, et al. (2012) Function and molecular mechanism of acetylation in autophagy regulation. Science 336(6080):474-7 PMID:22539722
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  • Feng W, et al. (2011) Replication stress-induced chromosome breakage is correlated with replication fork progression and is preceded by single-stranded DNA formation. G3 (Bethesda) 1(5):327-35 PMID:22384343
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  • Feng W, et al. (2009) Centromere replication timing determines different forms of genomic instability in Saccharomyces cerevisiae checkpoint mutants during replication stress. Genetics 183(4):1249-60 PMID:19805819
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  • Feng W, et al. (2007) Mapping yeast origins of replication via single-stranded DNA detection. Methods 41(2):151-7 PMID:17189857
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  • Feng W, et al. (2006) Genomic mapping of single-stranded DNA in hydroxyurea-challenged yeasts identifies origins of replication. Nat Cell Biol 8(2):148-55 PMID:16429127
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    • Reference supplement
  • Feng W and Hopper AK (2002) A Los1p-independent pathway for nuclear export of intronless tRNAs in Saccharomycescerevisiae. Proc Natl Acad Sci U S A 99(8):5412-7 PMID:11959996
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  • Ding W, et al. (1999) [Determination of 14 elements in chromium-rich brewer's yeast by ICP-AES]. Guang Pu Xue Yu Guang Pu Fen Xi 19(4):595-7 PMID:15818967
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  • Feng W, et al. (1999) Antagonistic effects of NES and NLS motifs determine S. cerevisiae Rna1p subcellular distribution. J Cell Sci 112 ( Pt 3):339-47 PMID:9885287
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