Regulation of zygotic genome activation and DNA damage checkpoint acquisition at the mid-blastula transition
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[1] Nick D L Owens,et al. High-resolution analysis of gene activity during the Xenopus mid-blastula transition , 2014, Development.
[2] Alex T. Kalinka,et al. The earliest transcribed zygotic genes are short, newly evolved, and different across species. , 2014, Cell reports.
[3] A. Vaquero,et al. The embryonic linker histone H1 variant of Drosophila, dBigH1, regulates zygotic genome activation. , 2013, Developmental cell.
[4] C. Bradshaw,et al. Titration of Four Replication Factors Is Essential for the Xenopus laevis Midblastula Transition , 2013, Science.
[5] M. O'Connell,et al. Regulatory motifs in Chk1 , 2013, Cell cycle.
[6] Nina Vogt,et al. Number of Nuclear Divisions in the Drosophila Blastoderm Controlled by Onset of Zygotic Transcription , 2013, Current Biology.
[7] P. O’Farrell,et al. Mechanism and Regulation of Cdc25/Twine Protein Destruction in Embryonic Cell-Cycle Remodeling , 2013, Current Biology.
[8] E. Wieschaus,et al. Posttranslational Control of Cdc25 Degradation Terminates Drosophila’s Early Cell-Cycle Program , 2013, Current Biology.
[9] Sinnakaruppan Mathavan,et al. Prepatterning of developmental gene expression by modified histones before zygotic genome activation. , 2011, Developmental cell.
[10] T. Hwa,et al. Gene length may contribute to graded transcriptional responses in the Drosophila embryo. , 2011, Developmental biology.
[11] P. S. Klein,et al. An essential role for transcription before the MBT in Xenopus laevis. , 2011, Developmental biology.
[12] T. Kishimoto,et al. Phosphorylation of Claspin is triggered by the nucleocytoplasmic ratio at the Xenopus laevis midblastula transition. , 2011, Developmental biology.
[13] K. Kaestner,et al. The nuclear pore complex protein Elys is required for genome stability in mouse intestinal epithelial progenitor cells. , 2011, Gastroenterology.
[14] Shelby A. Blythe,et al. beta-Catenin primes organizer gene expression by recruiting a histone H3 arginine 8 methyltransferase, Prmt2. , 2010, Developmental cell.
[15] Wael Tadros,et al. The maternal-to-zygotic transition: a play in two acts , 2009, Development.
[16] J. Petrini,et al. Taking the time to make important decisions: the checkpoint effector kinases Chk1 and Chk2 and the DNA damage response. , 2009, DNA repair.
[17] Shelby A. Blythe,et al. Beta-catenin primes organizer gene expression by recruiting a histone H3 arginine 8 methyltransferase, Prmt2 , 2009 .
[18] Jennifer M. Li,et al. Coupling of zygotic transcription to mitotic control at the Drosophila mid-blastula transition , 2009, Development.
[19] Wael Tadros,et al. An essential role for the RNA-binding protein Smaug during the Drosophila maternal-to-zygotic transition , 2009, Development.
[20] M. E. Lane,et al. G2 acquisition by transcription-independent mechanism at the zebrafish midblastula transition. , 2009, Developmental biology.
[21] M. O'Connell,et al. Regulation of Chk1 by its C-terminal domain. , 2008, Molecular biology of the cell.
[22] M. Metzstein,et al. The zinc-finger protein Zelda is a key activator of the early zygotic genome in Drosophila , 2008, Nature.
[23] D. Cortez,et al. ATR: an essential regulator of genome integrity , 2008, Nature Reviews Molecular Cell Biology.
[24] D. Green,et al. Chk1 Suppresses a Caspase-2 Apoptotic Response to DNA Damage that Bypasses p53, Bcl-2, and Caspase-3 , 2008, Cell.
[25] Ian A. Swinburne,et al. Intron delays and transcriptional timing during development. , 2008, Developmental cell.
[26] M. E. Lane,et al. Zebrafish cdc25a is expressed during early development and limiting for post‐blastoderm cell cycle progression , 2007, Developmental dynamics : an official publication of the American Association of Anatomists.
[27] W. Theurkauf,et al. grp (chk1) replication-checkpoint mutations and DNA damage trigger a Chk2-dependent block at the Drosophila midblastula transition , 2007, Development.
[28] O. Elemento,et al. Unmasking Activation of the Zygotic Genome Using Chromosomal Deletions in the Drosophila Embryo , 2007, PLoS biology.
[29] Z. Gong,et al. Transcriptome Analysis of Zebrafish Embryogenesis Using Microarrays , 2005, PLoS genetics.
[30] W. Du,et al. Chk1 activation and the nuclear/cytoplasmic ratio. , 2004, Developmental cell.
[31] J. Gautier,et al. Regulation of DNA replication by ATR: signaling in response to DNA intermediates. , 2004, DNA repair.
[32] A. Lewellyn,et al. The DNA damage checkpoint in embryonic cell cycles is dependent on the DNA-to-cytoplasmic ratio. , 2004, Developmental cell.
[33] N. Sagata,et al. Regulation of Chk1 kinase by autoinhibition and ATR-mediated phosphorylation. , 2004, Molecular biology of the cell.
[34] C. Nüsslein-Volhard,et al. The maternal-effect gene futile cycle is essential for pronuclear congression and mitotic spindle assembly in the zebrafish zygote , 2003, Development.
[35] D. Baltimore,et al. Essential and dispensable roles of ATR in cell cycle arrest and genome maintenance. , 2003, Genes & development.
[36] K. Okazaki,et al. Chk1 is activated transiently and targets Cdc25A for degradation at the Xenopus midblastula transition , 2002, The EMBO journal.
[37] M. Kastan,et al. Two Molecularly Distinct G2/M Checkpoints Are Induced by Ionizing Irradiation , 2002, Molecular and Cellular Biology.
[38] H. Takisawa,et al. Inactivation of the checkpoint kinase Cds1 is dependent on cyclin B-Cdc2 kinase activation at the meiotic G(2)/M-phase transition in Xenopus oocytes. , 2001, Journal of cell science.
[39] H. Piwnica-Worms,et al. ATR-Mediated Checkpoint Pathways Regulate Phosphorylation and Activation of Human Chk1 , 2001, Molecular and Cellular Biology.
[40] K. Chen,et al. Dissection of the XChk1 signaling pathway in Xenopus laevis embryos. , 2000, Molecular biology of the cell.
[41] V. Yamazaki,et al. A critical role for histone H2AX in recruitment of repair factors to nuclear foci after DNA damage , 2000, Current Biology.
[42] R. Meehan,et al. Transient depletion of xDnmt1 leads to premature gene activation in Xenopus embryos. , 2000, Genes & development.
[43] N. Sagata,et al. Involvement of Chk1 kinase in prophase I arrest of Xenopus oocytes. , 1999, Developmental biology.
[44] J. Gautier,et al. A developmental timer that regulates apoptosis at the onset of gastrulation , 1997, Mechanisms of Development.
[45] O. Sibon,et al. DNA-replication checkpoint control at the Drosophila midblastula transition , 1997, Nature.
[46] T. Yager,et al. Effect of inhibitors of DNA replication on early zebrafish embryos: evidence for coordinate activation of multiple intrinsic cell-cycle checkpoints at the mid-blastula transition , 1997, Zygote.
[47] G. Schubiger,et al. Activation of transcription in Drosophila embryos is a gradual process mediated by the nucleocytoplasmic ratio. , 1996, Genes & development.
[48] B. Meinecke,et al. Effects of α-amanitin on nuclear maturation of porcine oocytes in vitro , 1993 .
[49] P. O’Farrell,et al. Progression of the cell cycle through mitosis leads to abortion of nascent transcripts , 1991, Cell.
[50] M. Dasso,et al. On the coupling between DNA replication and mitosis , 1989, Journal of Cell Science.
[51] M. Kirschner,et al. The events of the midblastula transition in Xenopus are regulated by changes in the cell cycle , 1987, Cell.
[52] M. Kirschner,et al. A major developmental transition in early xenopus embryos: II. control of the onset of transcription , 1982, Cell.
[53] J. R. Paulson,et al. Phosphorylation of histones 1 and 3 and nonhistone high mobility group 14 by an endogenous kinase in HeLa metaphase chromosomes. , 1982, The Journal of biological chemistry.
[54] Timothy R Hughes,et al. SMAUG is a major regulator of maternal mRNA destabilization in Drosophila and its translation is activated by the PAN GU kinase. , 2007, Developmental cell.
[55] K. Okazaki,et al. Cytoplasmic occurrence of the Chk1/Cdc25 pathway and regulation of Chk1 in Xenopus oocytes. , 2001, Developmental biology.