A Notch feeling of somite segmentation and beyond.
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[1] A. McMahon,et al. T (Brachyury) is a direct target of Wnt3a during paraxial mesoderm specification. , 1999, Genes & development.
[2] A. Israël,et al. The Notch1 receptor is cleaved constitutively by a furin-like convertase. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[3] S. Meier. Development of the chick embryo mesoblast. Formation of the embryonic axis and establishment of the metameric pattern. , 1979, Developmental biology.
[4] Makoto Furutani-Seiki,et al. Tbx24, encoding a T-box protein, is mutated in the zebrafish somite-segmentation mutant fused somites , 2002, Nature Genetics.
[5] Kevin P. Keegan,et al. A role for casein kinase 2α in the Drosophila circadian clock , 2002, Nature.
[6] T. Mak,et al. Disruption of the mouse RBP-J kappa gene results in early embryonic death. , 1995, Development.
[7] Y. Gorodilov. Rhythmic Processes in Lower Vertebrate Embryogenesis and Their Role for Developmental Control , 1992 .
[8] O. Pourquié,et al. Notch signalling is required for cyclic expression of the hairy-like gene HES1 in the presomitic mesoderm. , 2000, Development.
[9] A. Israël,et al. Delta-1 Activation of Notch-1 Signaling Results inHES-1 Transactivation , 1998, Molecular and Cellular Biology.
[10] S. Meier,et al. Somitomeres: The Primordial Body Segments , 1986 .
[11] A Cumano,et al. A novel proteolytic cleavage involved in Notch signaling: the role of the disintegrin-metalloprotease TACE. , 2000, Molecular cell.
[12] At,et al. On the organisation of the regulatory region of the zebrafish deltaD gene , 2002 .
[13] M. Bevan,et al. The Nrarp gene encodes an ankyrin-repeat protein that is transcriptionally regulated by the notch signaling pathway. , 2001, Developmental biology.
[14] D. P. King,et al. Mammalian Circadian Autoregulatory Loop A Timeless Ortholog and mPer1 Interact and Negatively Regulate CLOCK-BMAL1-Induced Transcription , 1998, Neuron.
[15] C. Niehrs,et al. Periodic repression of Notch pathway genes governs the segmentation of Xenopus embryos. , 1999, Genes & development.
[16] S. Artavanis-Tsakonas,et al. Notch Signaling : Cell Fate Control and Signal Integration in Development , 1999 .
[17] S. Kay,et al. Time zones: a comparative genetics of circadian clocks , 2001, Nature Reviews Genetics.
[18] Wei Wang,et al. Light-Independent Role of CRY 1 and CRY 2 in the Mammalian Circadian Clock , 2022 .
[19] J. Cooke,et al. Control of somite number during morphogenesis of a vertebrate, Xenopus laevis , 1975, Nature.
[20] U. Schibler,et al. A Serum Shock Induces Circadian Gene Expression in Mammalian Tissue Culture Cells , 1998, Cell.
[21] J. Takahashi,et al. Stopping time: the genetics of fly and mouse circadian clocks. , 2001, Annual review of neuroscience.
[22] Wnt-3a regulates somite and tailbud formation in the mouse embryo. , 1994 .
[23] M. Fortini. Notch and presenilin: a proteolytic mechanism emerges. , 2001, Current opinion in cell biology.
[24] A. Goldbeter. Computational approaches to cellular rhythms , 2002, Nature.
[25] L. Wolpert. Developmental Biology , 1968, Nature.
[26] B. Hogan,et al. The winged helix transcription factor Foxc1a is essential for somitogenesis in zebrafish. , 2001, Genes & development.
[27] J. Rossant,et al. Expression of the fibroblast growth factor receptor FGFR-1/flg during gastrulation and segmentation in the mouse embryo. , 1992, Developmental biology.
[28] D. V. Leenen,et al. Mammalian Cry1 and Cry2 are essential for maintenance of circadian rhythms , 1999, Nature.
[29] X. Liu,et al. N-cadherin/catenin-mediated morphoregulation of somite formation. , 1998, Developmental biology.
[30] Mary-Lee Dequéant,et al. Periodic Notch inhibition by Lunatic Fringe underlies the chick segmentation clock , 2003, Nature.
[31] Christel Brou,et al. Signalling downstream of activated mammalian Notch , 1995, Nature.
[32] C. Weitz,et al. Light-independent role of CRY1 and CRY2 in the mammalian circadian clock. , 1999, Science.
[33] I. Edery,et al. Role for Slimb in the degradation of Drosophila Period protein phosphorylated by Doubletime , 2002, Nature.
[34] Raphael Kopan,et al. Notch: a membrane-bound transcription factor. , 2002, Journal of cell science.
[35] H Clevers,et al. Wnt3a-/--like phenotype and limb deficiency in Lef1(-/-)Tcf1(-/-) mice. , 1999, Genes & development.
[36] Michael J. McDonald,et al. Microarray Analysis and Organization of Circadian Gene Expression in Drosophila , 2001, Cell.
[37] Ricardo C T Aguiar,et al. The BAL-binding Protein BBAP and Related Deltex Family Members Exhibit Ubiquitin-Protein Isopeptide Ligase Activity* , 2003, Journal of Biological Chemistry.
[38] D A Kane,et al. Mutations affecting somite formation and patterning in the zebrafish, Danio rerio. , 1996, Development.
[39] Mads Kærn,et al. Segmentation and somitogenesis derived from phase dynamics in growing oscillatory media. , 2000, Journal of theoretical biology.
[40] D. Melton,et al. A molecular mechanism for the effect of lithium on development. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[41] A. Garcı́a-Bellido,et al. Relationships between extramacrochaetae and Notch signalling in Drosophila wing development. , 2000, Development.
[42] Virginia E. Papaioannou,et al. Three neural tubes in mouse embryos with mutations in the T-box gene Tbx6 , 1998, Nature.
[43] Olivier Pourquié,et al. FGF Signaling Controls Somite Boundary Position and Regulates Segmentation Clock Control of Spatiotemporal Hox Gene Activation , 2001, Cell.
[44] D. Zinyk,et al. Fringe boundaries coincide with Notch-dependent patterning centres in mammals and alter Notch-dependent development in Drosophila , 1997, Nature Genetics.
[45] R. Keynes,et al. A cell lineage analysis of segmentation in the chick embryo. , 1988, Development.
[46] B. Christ,et al. Early stages of chick somite development , 1995, Anatomy and Embryology.
[47] Daniel R. Foltz,et al. Glycogen Synthase Kinase-3β Modulates Notch Signaling and Stability , 2002, Current Biology.
[48] I. Edery,et al. PER and TIM Inhibit the DNA Binding Activity of aDrosophila CLOCK-CYC/dBMAL1 Heterodimer without Disrupting Formation of the Heterodimer: a Basis for Circadian Transcription , 1999, Molecular and Cellular Biology.
[49] P. Leder,et al. Murine FGFR-1 is required for early postimplantation growth and axial organization. , 1994, Genes & development.
[50] R. Keller. 7 The Origin and Morphogenesis of Amphibian Somites , 1999 .
[51] C. Nüsslein-Volhard,et al. Control of her1 expression during zebrafish somitogenesis by a delta-dependent oscillator and an independent wave-front activity. , 2000, Genes & development.
[52] Steven M. Reppert,et al. Rhythmic histone acetylation underlies transcription in the mammalian circadian clock , 2003, Nature.
[53] J. Campos-Ortega,et al. her1, a zebrafish pair-rule like gene, acts downstream of notch signalling to control somite development. , 1999, Development.
[54] H. Weintraub,et al. Signal transduction by activated mNotch: importance of proteolytic processing and its regulation by the extracellular domain. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[55] M. H. Angelis,et al. Maintenance of somite borders in mice requires the Delta homologue Dll1 , 1997, Nature.
[56] R. Kageyama,et al. Structure, chromosomal locus, and promoter analysis of the gene encoding the mouse helix-loop-helix factor HES-1. Negative autoregulation through the multiple N box elements. , 1994, The Journal of biological chemistry.
[57] F. Schweisguth,et al. The neurogenic suppressor of hairless DNA-binding protein mediates the transcriptional activation of the enhancer of split complex genes triggered by Notch signaling. , 1995, Genes & development.
[58] M. W. Young,et al. Ligand-induced cleavage and regulation of nuclear entry of Notch in Drosophila melanogaster embryos. , 1998, Genes & development.
[59] J. Heasman. Morpholino oligos: making sense of antisense? , 2002, Developmental biology.
[60] D. E. Somers,et al. Cloning of the Arabidopsis clock gene TOC1, an autoregulatory response regulator homolog. , 2000, Science.
[61] M. W. Young,et al. A Role for the Segment Polarity Gene shaggy/GSK-3 in the Drosophila Circadian Clock , 2001, Cell.
[62] Cheol‐Hee Kim,et al. Mind bomb is a ubiquitin ligase that is essential for efficient activation of Notch signaling by Delta. , 2003, Developmental cell.
[63] T. Hunter,et al. Recognition and Ubiquitination of Notch by Itch, a Hect-type E3 Ubiquitin Ligase* , 2000, The Journal of Biological Chemistry.
[64] P. S. Klein,et al. Activation of the Wnt signaling pathway: a molecular mechanism for lithium action. , 1997, Developmental biology.
[65] A. Fritz,et al. Zebrafish Mesp family genes, mesp-a and mesp-b are segmentally expressed in the presomitic mesoderm, and Mesp-b confers the anterior identity to the developing somites. , 2000, Development.
[66] Nigel A. Brown,et al. Waves of mouse Lunatic fringe expression, in four-hour cycles at two-hour intervals, precede somite boundary formation , 1998, Current Biology.
[67] D Gonze,et al. Theoretical models for circadian rhythms in Neurospora and Drosophila. , 2000, Comptes rendus de l'Academie des sciences. Serie III, Sciences de la vie.
[68] E. C. Zeeman,et al. A clock and wavefront model for control of the number of repeated structures during animal morphogenesis. , 1976, Journal of theoretical biology.
[69] O. Pourquié,et al. Avian hairy Gene Expression Identifies a Molecular Clock Linked to Vertebrate Segmentation and Somitogenesis , 1997, Cell.
[70] François Rouyer,et al. The F-box protein Slimb controls the levels of clock proteins Period and Timeless , 2002, Nature.
[71] Jeffrey C. Hall,et al. The cryb Mutation Identifies Cryptochrome as a Circadian Photoreceptor in Drosophila , 1998, Cell.
[72] M. Bounpheng,et al. Degradation of Id proteins by the ubiquitin‐proteasome pathway , 1999, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[73] D. Ish-Horowicz,et al. Periodic Lunatic fringe expression is controlled during segmentation by a cyclic transcriptional enhancer responsive to notch signaling. , 2002, Developmental cell.
[74] T. Vogt,et al. Clock regulatory elements control cyclic expression of Lunatic fringe during somitogenesis. , 2002, Developmental cell.
[75] Kenneth R Chien,et al. Dishevelled 2 is essential for cardiac outflow tract development, somite segmentation and neural tube closure , 2002, Development.
[76] Jonathan M.W. Slack,et al. From egg to embryo : regional specification in early development , 1991 .
[77] D. P. King,et al. Role of the CLOCK protein in the mammalian circadian mechanism. , 1998, Science.
[78] J. Beckers,et al. The mouse rib-vertebrae mutation disrupts anterior-posterior somite patterning and genetically interacts with a Delta1 null allele , 2000, Mechanisms of Development.
[79] M M Newhouse,et al. Analysis of the vestigial tail mutation demonstrates that Wnt-3a gene dosage regulates mouse axial development. , 1996, Genes & development.
[80] G. Odell,et al. Robustness, Flexibility, and the Role of Lateral Inhibition in the Neurogenic Network , 2002, Current Biology.
[81] J. Cooke. The problem of periodic patterns in embryos. , 1981, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[82] A. Polezhaev. A mathematical model of the mechanism of vertebrate somitic segmentation. , 1992, Journal of theoretical biology.
[83] S. Fisher,et al. Patterning the zebrafish axial skeleton requires early chordin function , 1999, Nature Genetics.
[84] B. Hogan,et al. Developmentally regulated expression of two members of the Nrarp family in zebrafish. , 2003, Gene expression patterns : GEP.
[85] L Wolpert,et al. A clock and trail model for somite formation, specialization and polarization. , 2000, Journal of theoretical biology.
[86] D. Duboule. Temporal colinearity and the phylotypic progression: a basis for the stability of a vertebrate Bauplan and the evolution of morphologies through heterochrony. , 1994, Development (Cambridge, England). Supplement.
[87] David Ish-Horowicz,et al. Notch signalling and the synchronization of the somite segmentation clock , 2000, Nature.
[88] J. Rossant,et al. fgfr-1 is required for embryonic growth and mesodermal patterning during mouse gastrulation. , 1994, Genes & development.
[89] R. Beddington,et al. The Metameric Organization of the Presomitic Mesoderm and Somite Specification in the Mouse Embryo , 1986 .
[90] C. Kimmel,et al. Two linked hairy/Enhancer of split-related zebrafish genes, her1 and her7, function together to refine alternating somite boundaries. , 2002, Development.
[91] B. Birren,et al. The mouse pudgy mutation disrupts Delta homologue Dll3 and initiation of early somite boundaries , 1998, Nature Genetics.
[92] A. Bernstein,et al. Mice lacking both presenilin genes exhibit early embryonic patterning defects. , 1999, Genes & development.
[93] Y. Rao,et al. The Secreted Product of Xenopus Gene lunatic Fringe, a Vertebrate Signaling Molecule , 1996, Science.
[94] J. Rossant,et al. Interaction between Notch signalling and Lunatic fringe during somite boundary formation in the mouse , 1999, Current Biology.
[95] G. Martin,et al. Targeted disruption of Fgf8 causes failure of cell migration in the gastrulating mouse embryo. , 1999, Genes & development.
[96] M. Cornell,et al. The Drosophila melanogaster Suppressor of deltex gene, a regulator of the Notch receptor signaling pathway, is an E3 class ubiquitin ligase. , 1999, Genetics.
[97] J. Slack,et al. The role of BMP signaling in outgrowth and patterning of the Xenopus tail bud. , 2001, Developmental biology.
[98] J. M. W. Slack,et al. From Egg to Embryo , 1983 .
[99] Paul E. Hardin,et al. dCLOCK Is Present in Limiting Amounts and Likely Mediates Daily Interactions between the dCLOCK–CYC Transcription Factor and the PER–TIM Complex , 2000, The Journal of Neuroscience.
[100] P. Sassone-Corsi,et al. Unraveling the mechanisms of the vertebrate circadian clock: zebrafish may light the way , 2002, BioEssays : news and reviews in molecular, cellular and developmental biology.
[101] Y. Bessho,et al. Dynamic expression and essential functions of Hes7 in somite segmentation. , 2001, Genes & development.
[102] S. Strogatz,et al. Phase diagram for the Winfree model of coupled nonlinear oscillators. , 2000, Physical review letters.
[103] J. Rossant,et al. Notch1 is required for the coordinate segmentation of somites. , 1995, Development.
[104] M. Gurney,et al. SEL-10 Is an Inhibitor of Notch Signaling That Targets Notch for Ubiquitin-Mediated Protein Degradation , 2001, Molecular and Cellular Biology.
[105] M. W. Young,et al. Phosphorylation of PERIOD Is Influenced by Cycling Physical Associations of DOUBLE-TIME, PERIOD, and TIMELESS in the Drosophila Clock , 2001, Neuron.
[106] Erik D. Herzog,et al. Clock controls circadian period in isolated suprachiasmatic nucleus neurons , 1998, Nature Neuroscience.
[107] C. Niehrs,et al. Nrarp is a novel intracellular component of the Notch signaling pathway. , 2001, Genes & development.
[108] J. Dunlap. Molecular Bases for Circadian Clocks , 1999, Cell.
[109] O. Pourquié,et al. A nomenclature for prospective somites and phases of cyclic gene expression in the presomitic mesoderm. , 2001, Developmental cell.
[110] R. Ho,et al. Heat shock produces periodic somitic disturbances in the zebrafish embryo , 1999, Mechanisms of Development.
[111] Julian Lewis. Autoinhibition with Transcriptional Delay A Simple Mechanism for the Zebrafish Somitogenesis Oscillator , 2003, Current Biology.
[112] J. Posakony,et al. Suppressor of hairless directly activates transcription of enhancer of split complex genes in response to Notch receptor activity. , 1995, Genes & development.
[113] A. Kuroiwa,et al. Fgf/MAPK signalling is a crucial positional cue in somite boundary formation. , 2001, Development.
[114] K.,et al. Control of somite number in normal and amputated mutant mouse embryos: an experimental and a theoretical analysis. , 1978, Journal of embryology and experimental morphology.
[115] K D Irvine,et al. A family of mammalian Fringe genes implicated in boundary determination and the Notch pathway. , 1997, Development.
[116] F Radtke,et al. Oscillating expression of c-Hey2 in the presomitic mesoderm suggests that the segmentation clock may use combinatorial signaling through multiple interacting bHLH factors. , 2000, Developmental biology.
[117] S. Reppert,et al. Coordination of circadian timing in mammals , 2002, Nature.
[118] Yang Wang,et al. Fringe is a glycosyltransferase that modifies Notch , 2000, Nature.
[119] Ryoichiro Kageyama,et al. Periodic repression by the bHLH factor Hes7 is an essential mechanism for the somite segmentation clock. , 2003, Genes & development.
[120] K. Tomita,et al. The bHLH gene Hes1 is essential for expansion of early T cell precursors. , 1999, Genes & development.
[121] R. Beddington,et al. The T gene is necessary for normal mesodermal morphogenetic cell movements during gastrulation. , 1995, Development.
[122] R. Keynes,et al. Mechanisms of vertebrate segmentation. , 1988, Development.
[123] G M Rubin,et al. Drosophila neuralized is a ubiquitin ligase that promotes the internalization and degradation of delta. , 2001, Developmental cell.
[124] A. Graham,et al. Abnormalities of somite development in the absence of retinoic acid. , 2000, The International journal of developmental biology.
[125] P K Maini,et al. Clock and induction model for somitogenesis , 2000, Developmental dynamics : an official publication of the American Association of Anatomists.
[126] A. Ciechanover,et al. Functional Interaction between SEL-10 , an F-box Protein , and the Nuclear Form of Activated Notch 1 Receptor * , 2001 .
[127] S E Lux,et al. Constitutively active human Notch1 binds to the transcription factor CBF1 and stimulates transcription through a promoter containing a CBF1-responsive element. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[128] C. Johnson,et al. Expression of a gene cluster kaiABC as a circadian feedback process in cyanobacteria. , 1998, Science.
[129] D. Tautz,et al. Homologues of c-hairy1 (her9) and lunatic fringe in zebrafish are expressed in the developing central nervous system, but not in the presomitic mesoderm , 2001, Development Genes and Evolution.
[130] S. Artavanis-Tsakonas,et al. Deltex acts as a positive regulator of Notch signaling through interactions with the Notch ankyrin repeats. , 1995, Development.
[131] J. Campos-Ortega,et al. SUMMARY her 1 , a zebrafish pair-rule like gene , acts downstream of notch signalling to control somite development , 2022 .
[132] R. Keynes,et al. Heat shock causes repeated segmental anomalies in the chick embryo. , 1988, Development.
[133] Christian Wehrle,et al. Wnt3a plays a major role in the segmentation clock controlling somitogenesis. , 2003, Developmental cell.
[134] C. Haass,et al. A γ‐secretase inhibitor blocks Notch signaling in vivo and causes a severe neurogenic phenotype in zebrafish , 2002, EMBO reports.
[135] Robert L Davis,et al. Vertebrate hairy and Enhancer of split related proteins: transcriptional repressors regulating cellular differentiation and embryonic patterning , 2001, Oncogene.
[136] J. Hopfield,et al. From molecular to modular cell biology , 1999, Nature.
[137] Diethard Tautz,et al. The role of Suppressor of Hairless in Notch mediated signalling during zebrafish somitogenesis , 2003, Mechanisms of Development.
[138] T. Gridley,et al. Defects in somite formation in lunatic fringe-deficient mice , 1998, Nature.
[139] P K Maini,et al. A cell cycle model for somitogenesis: mathematical formulation and numerical simulation. , 2000, Journal of theoretical biology.
[140] J. Aster,et al. Deltex1 redirects lymphoid progenitors to the B cell lineage by antagonizing Notch1. , 2002, Immunity.
[141] P. Tam,et al. Specification and segmentation of the paraxial mesoderm , 1994, Anatomy and Embryology.
[142] Hans Meinhardt,et al. Models of Segmentation , 1986 .
[143] H. Hirata,et al. Oscillatory Expression of the bHLH Factor Hes1 Regulated by a Negative Feedback Loop , 2002, Science.
[144] G. Struhl,et al. Nuclear Access and Action of Notch In Vivo , 1998, Cell.
[145] D. Price,et al. Presenilin 1 is required for Notch 1 and Dll1 expression in the paraxial mesoderm , 1997, Nature.
[146] R. Krumlauf. Hox genes in vertebrate development , 1994, Cell.
[147] K. Irvine,et al. Fringe modulates Notch–ligand interactions , 1997, Nature.
[148] N. Perrimon,et al. Interaction Between Wingless and Notch Signaling Pathways Mediated by Dishevelled , 1996, Science.
[149] A. Sehgal,et al. Positional Cloning and Sequence Analysis of the Drosophila Clock Gene, timeless , 1995, Science.
[150] F. Stockdale,et al. Molecular and cellular biology of avian somite development , 2000, Developmental dynamics : an official publication of the American Association of Anatomists.
[151] R. Beddington,et al. Axial skeletal defects caused by mutation in the spondylocostal dysplasia/pudgy gene Dll3 are associated with disruption of the segmentation clock within the presomitic mesoderm. , 2002, Development.
[152] Yvonne A. Evrard,et al. lunatic fringe is an essential mediator of somite segmentation and patterning , 1998, Nature.
[153] A. Parks,et al. Ligand endocytosis drives receptor dissociation and activation in the Notch pathway. , 2000, Development.
[154] A. Burgess,et al. Somite segmentation in amphibian embryos: is there a transmitted control mechanism? , 1967 .
[155] V. Papaioannou. T-box genes in development: from hydra to humans. , 2001, International review of cytology.
[156] J. Campos-Ortega,et al. Overexpression of a zebrafish homologue of the Drosophila neurogenic gene Delta perturbs differentiation of primary neurons and somite development , 1997, Mechanisms of Development.
[157] M. H. Angelis,et al. Distinct regulatory elements direct Delta1 expression in the nervous system and paraxial mesoderm of transgenic mice , 2000, Mechanisms of Development.
[158] Thomas K. Darlington,et al. Closing the circadian loop: CLOCK-induced transcription of its own inhibitors per and tim. , 1998, Science.
[159] D. Wettstein,et al. The Notch ligand, X-Delta-2, mediates segmentation of the paraxial mesoderm in Xenopus embryos. , 1997, Development.
[160] A. Goate,et al. A common enzyme connects notch signaling and Alzheimer's disease. , 2000, Genes & development.
[161] T. Mak,et al. Disruption of the mouse RBP-Jκ gene results in early embryonic death , 1995 .
[162] G. Boulianne,et al. Neuralized functions as an E3 ubiquitin ligase during Drosophila development , 2001, Current Biology.
[163] M. García-Castro,et al. Interactions between primordial germ cells play a role in their migration in mouse embryos. , 1994, Development.
[164] Denis Duboule,et al. Localized and Transient Transcription of Hox Genes Suggests a Link between Patterning and the Segmentation Clock , 2001, Cell.
[165] T. Ohtsuka,et al. The Notch-Hes pathway in mammalian neural development , 1999, Cell Research.
[166] L. Wolpert,et al. Somite formation in the early chick embryo following grafts of Hensen's node. , 1979, Journal of embryology and experimental morphology.
[167] Andrew C Oates,et al. Hairy/E(spl)-related (Her) genes are central components of the segmentation oscillator and display redundancy with the Delta/Notch signaling pathway in the formation of anterior segmental boundaries in the zebrafish , 2002 .
[168] C. Nüsslein-Volhard,et al. Mutations affecting neurogenesis and brain morphology in the zebrafish, Danio rerio. , 1996, Development.
[169] Raphael Kopan,et al. Notch-1 signalling requires ligand-induced proteolytic release of intracellular domain , 1998, Nature.
[170] L. F. Kolakowski,et al. A time-less function for mouse Timeless , 2000, Nature Neuroscience.
[171] H. Axelson,et al. Modulation of Basic Helix-Loop-Helix Transcription Complex Formation by Id Proteins during Neuronal Differentiation* , 2002, The Journal of Biological Chemistry.
[172] C. Kimmel,et al. Molecular identification of spadetail: regulation of zebrafish trunk and tail mesoderm formation by T-box genes. , 1998, Development.
[173] Steven M Reppert,et al. GABA Synchronizes Clock Cells within the Suprachiasmatic Circadian Clock , 2000, Neuron.
[174] T. Ohtsuka,et al. Hes1 and Hes5 as Notch effectors in mammalian neuronal differentiation , 1999, The EMBO journal.
[175] R. Keller. The origin and morphogenesis of amphibian somites. , 2000, Current topics in developmental biology.
[176] D. Chapman,et al. Defective somite patterning in mouse embryos with reduced levels of Tbx6 , 2003, Development.
[177] O. Pourquié,et al. Vertebrate somitogenesis. , 2001, Annual review of cell and developmental biology.
[178] A. Gossler,et al. Transcriptional oscillation of lunatic fringe is essential for somitogenesis. , 2003, Genes & development.
[179] G. Miyoshi,et al. Hes7: a bHLH‐type repressor gene regulated by Notch and expressed in the presomitic mesoderm , 2001, Genes to cells : devoted to molecular & cellular mechanisms.
[180] F. Schweisguth,et al. Indirect evidence for Delta-dependent intracellular processing of Notch in Drosophila embryos , 1998, Current Biology.
[181] S. Cohen,et al. Glycosyltransferase activity of Fringe modulates Notch–Delta interactions , 2000, Nature.
[182] E. Lai,et al. Xenopus neuralized is a ubiquitin ligase that interacts with XDelta1 and regulates Notch signaling. , 2001, Developmental cell.
[183] R. Keynes,et al. Periodic segmental anomalies induced by heat shock in the chick embryo are associated with the cell cycle. , 1989, Development.
[184] L. Hamilton. The formation of somites in Xenopus. , 1969, Journal of embryology and experimental morphology.
[185] J. Smith,et al. The Xenopus Brachyury promoter is activated by FGF and low concentrations of activin and suppressed by high concentrations of activin and by paired-type homeodomain proteins. , 1997, Genes & development.
[186] Robert Geisler,et al. her1 and the notch pathway function within the oscillator mechanism that regulates zebrafish somitogenesis. , 2002, Development.
[187] S. Campuzano. Emc, a negative HLH regulator with multiple functions in Drosophila development , 2001, Oncogene.
[188] Tadahiro Iimura,et al. Onset of the segmentation clock in the chick embryo: evidence for oscillations in the somite precursors in the primitive streak. , 2002, Development.
[189] Olivier Pourquié,et al. The lunatic Fringe gene is a target of the molecular clock linked to somite segmentation in avian embryos , 1998, Current Biology.
[190] Hans Clevers,et al. Negative Feedback Loop of Wnt Signaling through Upregulation of Conductin/Axin2 in Colorectal and Liver Tumors , 2002, Molecular and Cellular Biology.
[191] M. Gurney,et al. The Notch Intracellular Domain Is Ubiquitinated and Negatively Regulated by the Mammalian Sel-10 Homolog* , 2001, The Journal of Biological Chemistry.
[192] Choun-Ki Joo,et al. Wnt/β-Catenin/Tcf Signaling Induces the Transcription of Axin2, a Negative Regulator of the Signaling Pathway , 2002, Molecular and Cellular Biology.
[193] T Roenneberg,et al. A fungus among us: the Neurospora crassa circadian system. , 2001, Seminars in cell & developmental biology.
[194] Z. Paroush,et al. Drosophila melanogaster Casein Kinase II Interacts with and Phosphorylates the Basic Helix-Loop-Helix Proteins m5, m7, and m8 Derived from the Enhancer of split Complex* , 2001, The Journal of Biological Chemistry.
[195] Katsu Takahashi,et al. Murine fibroblast growth factor receptor 1alpha isoforms mediate node regression and are essential for posterior mesoderm development. , 1999, Developmental biology.
[196] O. Pourquié,et al. Uncoupling segmentation and somitogenesis in the chick presomitic mesoderm. , 1998, Developmental genetics.
[197] Jennifer J. Loros,et al. Circadian Programs of Transcriptional Activation, Signaling, and Protein Turnover Revealed by Microarray Analysis of Mammalian Cells , 2002, Current Biology.
[198] C. Niehrs,et al. Cyclic expression of esr9 gene in Xenopus presomitic mesoderm. , 2003, Differentiation; research in biological diversity.
[199] T. Elsdale,et al. Somitogenesis in amphibian embryos. I. Experimental evidence for an interaction between two temporal factors in the specification of somite pattern. , 1979, Journal of embryology and experimental morphology.
[200] R. L. Johnson,et al. Dynamic expression of lunatic fringe suggests a link between notch signaling and an autonomous cellular oscillator driving somite segmentation. , 1999, Developmental biology.
[201] R. Kageyama,et al. Targeted disruption of mammalian hairy and Enhancer of split homolog-1 (HES-1) leads to up-regulation of neural helix-loop-helix factors, premature neurogenesis, and severe neural tube defects. , 1995, Genes & development.
[202] T. Kadesch,et al. The Notch Intracellular Domain Can Function as a Coactivator for LEF-1 , 2001, Molecular and Cellular Biology.
[203] P. Ingham,et al. Wnt5 is required for tail formation in the zebrafish embryo. , 1997, Cold Spring Harbor symposia on quantitative biology.
[204] M. Muskavitch,et al. Ligand-receptor interactions and trans-endocytosis of Delta, Serrate and Notch: members of the Notch signalling pathway in Drosophila. , 1999, Journal of cell science.
[205] B C Goodwin,et al. A cellular oscillator model for periodic pattern formation. , 2001, Journal of theoretical biology.
[206] Stefan Hans,et al. Anterior and posterior waves of cyclic her1 gene expression are differentially regulated in the presomitic mesoderm of zebrafish , 2003, Development.