Tight Chk1 Levels Control Replication Cluster Activation in Xenopus
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A. Goldar | K. Marheineke | J. M. Wiggins | Pierre Priam | Hemalatha Narassimprakash | Marie Platel | Pedro Barbosa | Pierre Libeau | Xenia Grodzenski
[1] A. Shevchenko,et al. Interaction of Chk1 with Treslin negatively regulates the initiation of chromosomal DNA replication. , 2015, Molecular cell.
[2] T. Tsuji,et al. The Interaction between Checkpoint Kinase 1 (Chk1) and the Minichromosome Maintenance (MCM) Complex Is Required for DNA Damage-induced Chk1 Phosphorylation* , 2014, The Journal of Biological Chemistry.
[3] N. Rhind,et al. DNA Replication Timing. , 2020, Cold Spring Harbor perspectives in medicine.
[4] W. Michael,et al. Control of DNA Replication by the Nucleus/Cytoplasm Ratio in Xenopus* , 2013, The Journal of Biological Chemistry.
[5] O. Hyrien,et al. DNA topoisomerase IIα controls replication origin cluster licensing and firing time in Xenopus egg extracts , 2013, Nucleic acids research.
[6] J. Diffley,et al. Controlling DNA replication origins in response to DNA damage – inhibit globally, activate locally , 2013, Journal of Cell Science.
[7] J. Breed,et al. Discovery of checkpoint kinase inhibitor (S)-5-(3-fluorophenyl)-N-(piperidin-3-yl)-3-ureidothiophene-2-carboxamide (AZD7762) by structure-based design and optimization of thiophenecarboxamide ureas. , 2012, Journal of medicinal chemistry.
[8] O. Fernandez-Capetillo,et al. An extra allele of Chk1 limits oncogene-induced replicative stress and promotes transformation , 2012, The Journal of experimental medicine.
[9] Jared M. Peace,et al. Forkhead Transcription Factors Establish Origin Timing and Long-Range Clustering in S. cerevisiae , 2012, Cell.
[10] Ulrich Keller,et al. Therapeutic Implications for the Induced Levels of Chk1 in Myc-Expressing Cancer Cells , 2011, Clinical Cancer Research.
[11] J. Blow,et al. Chk1 inhibits replication factory activation but allows dormant origin firing in existing factories , 2010, The Journal of cell biology.
[12] Hisao Masai,et al. Eukaryotic chromosome DNA replication: where, when, and how? , 2010, Annual review of biochemistry.
[13] Olivier Hyrien,et al. Universal Temporal Profile of Replication Origin Activation in Eukaryotes , 2009, PloS one.
[14] H. Niida,et al. Cyclin A–Cdk1 regulates the origin firing program in mammalian cells , 2009, Proceedings of the National Academy of Sciences.
[15] F. Shanahan,et al. Replication stress activates DNA polymerase alpha-associated Chk1 , 2009, Cell cycle.
[16] A. Goldar,et al. Use of DNA combing to study DNA replication in Xenopus and human cell-free systems. , 2009, Methods in molecular biology.
[17] K. Marheineke,et al. DNA replication timing is deterministic at the level of chromosomal domains but stochastic at the level of replicons in Xenopus egg extracts , 2008, Nucleic acids research.
[18] Olivier Hyrien,et al. A Dynamic Stochastic Model for DNA Replication Initiation in Early Embryos , 2008, PloS one.
[19] M. Méchali,et al. Cdk1 and Cdk2 activity levels determine the efficiency of replication origin firing in Xenopus , 2008, The EMBO journal.
[20] Vincenzo Costanzo,et al. Plx1 is required for chromosomal DNA replication under stressful conditions , 2008, The EMBO journal.
[21] A. Lewellyn,et al. Undamaged DNA Transmits and Enhances DNA Damage Checkpoint Signals in Early Embryos , 2007, Molecular and Cellular Biology.
[22] Kathleen Marchal,et al. The E2F-regulated gene Chk1 is highly expressed in triple-negative estrogen receptor /progesterone receptor /HER-2 breast carcinomas. , 2007, Cancer research.
[23] D. Gillespie,et al. Chk1 regulates the density of active replication origins during the vertebrate S phase , 2007, The EMBO journal.
[24] R. Harland,et al. Xenopus laevis In Vitro Fertilization and Natural Mating Methods. , 2007, CSH protocols.
[25] K. Cimprich,et al. The structural determinants of checkpoint activation. , 2007, Genes & development.
[26] A. Gartner,et al. Excess Mcm2–7 license dormant origins of replication that can be used under conditions of replicative stress , 2006, The Journal of cell biology.
[27] G. Zachos,et al. Chk1 Requirement for High Global Rates of Replication Fork Progression during Normal Vertebrate S Phase , 2006, Molecular and Cellular Biology.
[28] S. Jackson,et al. Rapid PIKK-Dependent Release of Chk1 from Chromatin Promotes the DNA-Damage Checkpoint Response , 2006, Current Biology.
[29] M. Méchali,et al. Mitotic Remodeling of the Replicon and Chromosome Structure , 2005, Cell.
[30] R. Abraham,et al. Genotoxic stress targets human Chk1 for degradation by the ubiquitin-proteasome pathway. , 2005, Molecular cell.
[31] M. Pacek,et al. Functional uncoupling of MCM helicase and DNA polymerase activities activates the ATR-dependent checkpoint. , 2005, Genes & development.
[32] J. Bartek,et al. Inhibition of Human Chk1 Causes Increased Initiation of DNA Replication, Phosphorylation of ATR Targets, and DNA Breakage , 2005, Molecular and Cellular Biology.
[33] M. Luciani,et al. Characterization of a novel ATR-dependent, Chk1-independent, intra-S-phase checkpoint that suppresses initiation of replication in Xenopus , 2004, Journal of Cell Science.
[34] A. Lewellyn,et al. The DNA damage checkpoint in embryonic cell cycles is dependent on the DNA-to-cytoplasmic ratio. , 2004, Developmental cell.
[35] K. Marheineke,et al. Control of Replication Origin Density and Firing Time in Xenopus Egg Extracts , 2004, Journal of Biological Chemistry.
[36] J. Rosen,et al. Chk1 is haploinsufficient for multiple functions critical to tumor suppression. , 2004, Cancer cell.
[37] J. Gautier,et al. ATR and ATM regulate the timing of DNA replication origin firing , 2004, Nature Cell Biology.
[38] Jun Qin,et al. SCFbeta-TRCP links Chk1 signaling to degradation of the Cdc25A protein phosphatase. , 2003, Genes & development.
[39] M. Donzelli,et al. Regulating mammalian checkpoints through Cdc25 inactivation , 2003, EMBO reports.
[40] Olivier Hyrien,et al. Paradoxes of eukaryotic DNA replication: MCM proteins and the random completion problem , 2003, BioEssays : news and reviews in molecular, cellular and developmental biology.
[41] S. Gasser,et al. ORC and the intra-S-phase checkpoint: a threshold regulates Rad53p activation in S phase. , 2002, Genes & development.
[42] K. Okazaki,et al. Chk1 is activated transiently and targets Cdc25A for degradation at the Xenopus midblastula transition , 2002, The EMBO journal.
[43] John Herrick,et al. Kinetic model of DNA replication in eukaryotic organisms. , 2001, Journal of molecular biology.
[44] C. Smythe,et al. Activation of mammalian Chk1 during DNA replication arrest , 2001, The Journal of cell biology.
[45] C. Newlon,et al. The DNA replication checkpoint response stabilizes stalled replication forks , 2001, Nature.
[46] J. Diffley,et al. Regulation of DNA replication fork progression through damaged DNA by the Mec1/Rad53 checkpoint , 2001, Nature.
[47] H. Piwnica-Worms,et al. ATR-Mediated Checkpoint Pathways Regulate Phosphorylation and Activation of Human Chk1 , 2001, Molecular and Cellular Biology.
[48] O. Hyrien,et al. Aphidicolin Triggers a Block to Replication Origin Firing inXenopus Egg Extracts* , 2001, The Journal of Biological Chemistry.
[49] J. Blow,et al. Replication Origins in XenopusEgg Extract Are 5–15 Kilobases Apart and Are Activated in Clusters That Fire at Different Times , 2001, The Journal of cell biology.
[50] A. Kumagai,et al. Requirement for Atr in phosphorylation of Chk1 and cell cycle regulation in response to DNA replication blocks and UV-damaged DNA in Xenopus egg extracts. , 2000, Genes & development.
[51] E. Fanning,et al. Activation of the DNA replication checkpoint through RNA synthesis by primase. , 2000, Science.
[52] J. Sarkaria,et al. The radiosensitizing agent 7-hydroxystaurosporine (UCN-01) inhibits the DNA damage checkpoint kinase hChk1. , 2000, Cancer research.
[53] P. Roussel,et al. Involvement of the PP2C-like phosphatase Ptc2p in the DNA checkpoint pathways of Saccharomyces cerevisiae. , 2000, Genetics.
[54] Ronald Berezney,et al. Heterogeneity of eukaryotic replicons, replicon clusters, and replication foci , 2000, Chromosoma.
[55] Edward A. Sausville,et al. The Chk1 Protein Kinase and the Cdc25C Regulatory Pathways Are Targets of the Anticancer Agent UCN-01* , 2000, The Journal of Biological Chemistry.
[56] K. Shirahige,et al. Regulation of DNA-replication origins during cell-cycle progression , 1998, Nature.
[57] J. Diffley,et al. A Mec1- and Rad53-dependent checkpoint controls late-firing origins of DNA replication , 1998, Nature.
[58] A. Kumagai,et al. The Xenopus Chk1 Protein Kinase Mediates a Caffeine-sensitive Pathway of Checkpoint Control in Cell-free Extracts , 1998, The Journal of cell biology.
[59] Ana Pombo,et al. Replicon Clusters Are Stable Units of Chromosome Structure: Evidence That Nuclear Organization Contributes to the Efficient Activation and Propagation of S Phase in Human Cells , 1998, The Journal of cell biology.
[60] M. Méchali,et al. Chromosomal replication initiates and terminates at random sequences but at regular intervals in the ribosomal DNA of Xenopus early embryos. , 1993, The EMBO journal.
[61] M. Dasso,et al. On the coupling between DNA replication and mitosis , 1989, Journal of Cell Science.
[62] J. Blow,et al. A role for the nuclear envelope in controlling DNA replication within the cell cycle , 1988, Nature.
[63] J. Blow,et al. Initiation of DNA replication in nuclei and purified DNA by a cell-free extract of Xenopus eggs , 1986, Cell.