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  • Author: Machín F
  • References

Author: Machín F


References 35 references


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  • Rodríguez-Herrera N, et al. (2025) Chromosome Segregation in Closed Mitosis Under an Excess of Nuclear Envelope. Biol Cell 117(5):e70011 PMID:40391723
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  • Anaissi-Afonso L, et al. (2024) Fused oxazepine-naphthoquinones as novel cytotoxic agents with diverse modes of action in yeast. Heliyon 10(24):e41105 PMID:39759308
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  • Medina-Suárez S and Machín F (2024) The CRISPR/Cas9 system forms a condensate in the yeast nucleus. MicroPubl Biol 2024 PMID:38287928
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  • Medina-Suárez S, et al. (2024) Msc1 is a nuclear envelope protein that reinforces DNA repair in late mitosis. iScience 27(7):110250 PMID:39021806
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  • Reyes CP, et al. (2024) Exploring the Anticancer Potential of Phenolic nor-Triterpenes from Celastraceae Species. Int J Mol Sci 25(17) PMID:39273417
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  • Santana-Sosa S, et al. (2023) A Yeast Mitotic Tale for the Nucleus and the Vacuoles to Embrace. Int J Mol Sci 24(12) PMID:37372977
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  • Matos-Perdomo E, et al. (2022) The vacuole shapes the nucleus and the ribosomal DNA loop during mitotic delays. Life Sci Alliance 5(10) PMID:35961781
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  • Prescott TAK, et al. (2022) A simplified and easy-to-use HIP HOP assay provides insights into chalcone antifungal mechanisms of action. FEBS Lett 596(23):3087-3102 PMID:36053795
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  • Ayra-Plasencia J, et al. (2021) Topoisomerase II deficiency leads to a postreplicative structural shift in all Saccharomyces cerevisiae chromosomes. Sci Rep 11(1):14940 PMID:34294749
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  • Machín F and Ayra-Plasencia J (2020) Are Anaphase Events Really Irreversible? The Endmost Stages of Cell Division and the Paradox of the DNA Double-Strand Break Repair. Bioessays 42(7):e2000021 PMID:32363600
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  • Ayra-Plasencia J and Machín F (2019) DNA double-strand breaks in telophase lead to coalescence between segregated sister chromatid loci. Nat Commun 10(1):2862 PMID:31253793
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  • Ayra-Plasencia J and Machín F (2019) Yeast cells can partially revert chromosome segregation to repair late DNA double-strand breaks through homologous recombination. Mol Cell Oncol 6(5):e1648027 PMID:31528706
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  • Matos-Perdomo E and Machín F (2019) Nucleolar and Ribosomal DNA Structure under Stress: Yeast Lessons for Aging and Cancer. Cells 8(8) PMID:31357498
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  • Ramos-Pérez C, et al. (2019) Cytological and genetic consequences for the progeny of a mitotic catastrophe provoked by Topoisomerase II deficiency. Aging (Albany NY) 11(23):11686-11721 PMID:31812950
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  • Anaissi-Afonso L, et al. (2018) Lawsone, Juglone, and β-Lapachone Derivatives with Enhanced Mitochondrial-Based Toxicity. ACS Chem Biol 13(8):1950-1957 PMID:29878754
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  • García-Luis J and Machín F (2018) Fanconi Anaemia-Like Mph1 Helicase Backs up Rad54 and Rad5 to Circumvent Replication Stress-Driven Chromosome Bridges. Genes (Basel) 9(11) PMID:30453647
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  • Matos-Perdomo E and Machín F (2018) The ribosomal DNA metaphase loop of Saccharomyces cerevisiae gets condensed upon heat stress in a Cdc14-independent TORC1-dependent manner. Cell Cycle 17(2):200-215 PMID:29166821
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  • Ramos-Pérez C, et al. (2017) Genome-Scale Genetic Interactions and Cell Imaging Confirm Cytokinesis as Deleterious to Transient Topoisomerase II Deficiency in Saccharomyces cerevisiae. G3 (Bethesda) 7(10):3379-3391 PMID:28839115
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  • Machín F, et al. (2016) Cdc14 phosphatase: warning, no delay allowed for chromosome segregation! Curr Genet 62(1):7-13 PMID:26116076
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  • Quevedo O, et al. (2015) The Transient Inactivation of the Master Cell Cycle Phosphatase Cdc14 Causes Genomic Instability in Diploid Cells of Saccharomyces cerevisiae. Genetics 200(3):755-69 PMID:25971663
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  • García-Luis J and Machín F (2014) Mus81-Mms4 and Yen1 resolve a novel anaphase bridge formed by noncanonical Holliday junctions. Nat Commun 5:5652 PMID:25466415
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  • García-Luis J, et al. (2014) Cdc14 targets the Holliday junction resolvase Yen1 to the nucleus in early anaphase. Cell Cycle 13(9):1392-9 PMID:24626187
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  • Ramos-Pérez C, et al. (2014) Yeast cytotoxic sensitivity to the antitumour agent β-lapachone depends mainly on oxidative stress and is largely independent of microtubule- or topoisomerase-mediated DNA damage. Biochem Pharmacol 92(2):206-19 PMID:25241291
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  • Quintana-Espinoza P, et al. (2013) Synthesis and study of antiproliferative, antitopoisomerase II, DNA-intercalating and DNA-damaging activities of arylnaphthalimides. Bioorg Med Chem 21(21):6484-95 PMID:24054489
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  • Quevedo O, et al. (2012) Nondisjunction of a single chromosome leads to breakage and activation of DNA damage checkpoint in G2. PLoS Genet 8(2):e1002509 PMID:22363215
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  • Quinto-Alemany D, et al. (2012) Yeasts acquire resistance secondary to antifungal drug treatment by adaptive mutagenesis. PLoS One 7(7):e42279 PMID:22860105
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  • Quevedo O, et al. (2011) No role of homologous recombination in dealing with β-lapachone cytotoxicity in yeast. Chem Res Toxicol 24(12):2106-8 PMID:22091990
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  • Clemente-Blanco A, et al. (2009) Cdc14 inhibits transcription by RNA polymerase I during anaphase. Nature 458(7235):219-22 PMID:19158678
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  • Machín F, et al. (2006) Transcription of ribosomal genes can cause nondisjunction. J Cell Biol 173(6):893-903 PMID:16769819
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  • Machín F, et al. (2005) Spindle-independent condensation-mediated segregation of yeast ribosomal DNA in late anaphase. J Cell Biol 168(2):209-19 PMID:15657393
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  • Torres-Rosell J, et al. (2005) SMC5 and SMC6 genes are required for the segregation of repetitive chromosome regions. Nat Cell Biol 7(4):412-9 PMID:15793567
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  • Torres-Rosell J, et al. (2005) Cdc14 and the temporal coordination between mitotic exit and chromosome segregation. Cell Cycle 4(1):109-12 PMID:15611663
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  • Machín F, et al. (2004) Condensin regulates rDNA silencing by modulating nucleolar Sir2p. Curr Biol 14(2):125-30 PMID:14738734
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  • Torres-Rosell J, et al. (2004) Nucleolar segregation lags behind the rest of the genome and requires Cdc14p activation by the FEAR network. Cell Cycle 3(4):496-502 PMID:15004526
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  • Avila J, et al. (2002) A second Zn(II)(2)Cys(6) transcriptional factor encoded by the YNA2 gene is indispensable for the transcriptional activation of the genes involved in nitrate assimilation in the yeast Hansenula polymorpha. Yeast 19(6):537-44 PMID:11921102
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