The long and short of it: Somite formation in mice
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[1] Jun Kanno,et al. Tbx6-mediated Notch signaling controls somite-specific Mesp2 expression. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[2] G. Duester,et al. Retinoic-acid signalling in node ectoderm and posterior neural plate directs left–right patterning of somitic mesoderm , 2006, Nature Cell Biology.
[3] Randy L. Johnson,et al. Targeted disruption of the DM domain containing transcription factor Dmrt2 reveals an essential role in somite patterning. , 2006, Developmental biology.
[4] Ryoichiro Kageyama,et al. Real-time imaging of the somite segmentation clock: Revelation of unstable oscillators in the individual presomitic mesoderm cells , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[5] A. Nóvoa,et al. Hox genes specify vertebral types in the presomitic mesoderm. , 2005, Genes & development.
[6] I. Palmeirim,et al. terra is a left–right asymmetry gene required for left–right synchronization of the segmentation clock , 2005, Nature Cell Biology.
[7] Olivier Pourquié,et al. Control of the segmentation process by graded MAPK/ERK activation in the chick embryo. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[8] D. Chapman,et al. Dll1 is a downstream target of Tbx6 in the paraxial mesoderm , 2005, Genesis.
[9] D. Chapman,et al. Regulation of Tbx6 expression by Notch signaling , 2005, Genesis.
[10] Yumiko Saga,et al. The Mesp2 transcription factor establishes segmental borders by suppressing Notch activity , 2005, Nature.
[11] O. Pourquié,et al. Retinoic acid coordinates somitogenesis and left–right patterning in vertebrate embryos , 2005, Nature.
[12] C. Tabin,et al. Developmental biology: Asymmetrical threat averted , 2005, Nature.
[13] Á. Raya,et al. Retinoic acid signalling links left–right asymmetric patterning and bilaterally symmetric somitogenesis in the zebrafish embryo , 2005, Nature.
[14] B. de Strooper,et al. Analysis of Notch function in presomitic mesoderm suggests a gamma-secretase-independent role for presenilins in somite differentiation. , 2005, Developmental cell.
[15] P. Chambon,et al. Retinoic Acid Controls the Bilateral Symmetry of Somite Formation in the Mouse Embryo , 2005, Science.
[16] Michael Levin,et al. Left–right asymmetry in embryonic development: a comprehensive review , 2005, Mechanisms of Development.
[17] Jun Kanno,et al. Mouse Nkd1, a Wnt antagonist, exhibits oscillatory gene expression in the PSM under the control of Notch signaling , 2004, Mechanisms of Development.
[18] O. Pourquié,et al. Coupling segmentation to axis formation , 2004, Development.
[19] Bernhard G Herrmann,et al. WNT signaling, in synergy with T/TBX6, controls Notch signaling by regulating Dll1 expression in the presomitic mesoderm of mouse embryos. , 2004, Genes & development.
[20] R. Grosschedl,et al. LEF1-mediated regulation of Delta-like1 links Wnt and Notch signaling in somitogenesis. , 2004, Genes & development.
[21] Bernhard G Herrmann,et al. Segmentation in vertebrates: clock and gradient finally joined. , 2004, Genes & development.
[22] Julian Lewis,et al. The vertebrate segmentation clock. , 2004, Current opinion in genetics & development.
[23] D. Sillence,et al. Mutated MESP2 causes spondylocostal dysostosis in humans. , 2004, American journal of human genetics.
[24] R. Krumlauf,et al. Dll3 pudgy mutation differentially disrupts dynamic expression of somite genes , 2004, Genesis.
[25] A. Gossler,et al. Specification of vertebral identity is coupled to Notch signalling and the segmentation clock , 2004, Development.
[26] Olivier Pourquié,et al. Faculty Opinions recommendation of Opposing FGF and retinoid pathways control ventral neural pattern, neuronal differentiation, and segmentation during body axis extension. , 2004 .
[27] C. Kintner,et al. Regulation of segmental patterning by retinoic acid signaling during Xenopus somitogenesis. , 2004, Developmental cell.
[28] G. Weinmaster,et al. Modulation of notch signaling during somitogenesis. , 2003, Annual review of cell and developmental biology.
[29] D. Selkoe,et al. Notch and Presenilin: regulated intramembrane proteolysis links development and degeneration. , 2003, Annual review of neuroscience.
[30] Emily Gale,et al. Opposing FGF and Retinoid Pathways Control Ventral Neural Pattern, Neuronal Differentiation, and Segmentation during Body Axis Extension , 2003, Neuron.
[31] Ryoichiro Kageyama,et al. Oscillations, clocks and segmentation. , 2003, Current opinion in genetics & development.
[32] Ryoichiro Kageyama,et al. Periodic repression by the bHLH factor Hes7 is an essential mechanism for the somite segmentation clock. , 2003, Genes & development.
[33] D. Chapman,et al. Defective somite patterning in mouse embryos with reduced levels of Tbx6 , 2003, Development.
[34] T. Gridley. Notch signaling and inherited disease syndromes. , 2003, Human molecular genetics.
[35] Christian Wehrle,et al. Wnt3a plays a major role in the segmentation clock controlling somitogenesis. , 2003, Developmental cell.
[36] J. Lowe,et al. Role of glycosylation in development. , 2003, Annual review of biochemistry.
[37] V. Papaioannou,et al. The mouse rib-vertebrae mutation is a hypomorphic Tbx6 allele , 2002, Mechanisms of Development.
[38] T. Gridley,et al. Segmentation defects of Notch pathway mutants and absence of a synergistic phenotype in lunatic fringe/radical fringe double mutant mice , 2002, Genesis.
[39] 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.
[40] O. Pourquié,et al. When body segmentation goes wrong , 2001, Clinical genetics.
[41] Y. Bessho,et al. Dynamic expression and essential functions of Hes7 in somite segmentation. , 2001, Genes & development.
[42] Olivier Pourquié,et al. FGF Signaling Controls Somite Boundary Position and Regulates Segmentation Clock Control of Spatiotemporal Hox Gene Activation , 2001, Cell.
[43] Denis Duboule,et al. Localized and Transient Transcription of Hox Genes Suggests a Link between Patterning and the Segmentation Clock , 2001, Cell.
[44] S. Mundlos,et al. Mouse mutant “rib‐vertebrae” (rv): A defect in somite polarity , 2000, Developmental dynamics : an official publication of the American Association of Anatomists.
[45] Haruhiko Koseki,et al. Mesp2 initiates somite segmentation through the Notch signalling pathway , 2000, Nature Genetics.
[46] 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.
[47] O. Pourquié,et al. Notch signalling is required for cyclic expression of the hairy-like gene HES1 in the presomitic mesoderm. , 2000, Development.
[48] E. Lander,et al. Mutations in the human Delta homologue, DLL3, cause axial skeletal defects in spondylocostal dysostosis , 2000, Nature Genetics.
[49] 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.
[50] 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.
[51] Yvonne A. Evrard,et al. lunatic fringe is an essential mediator of somite segmentation and patterning , 1998, Nature.
[52] T. Gridley,et al. Defects in somite formation in lunatic fringe-deficient mice , 1998, Nature.
[53] B. Birren,et al. The mouse pudgy mutation disrupts Delta homologue Dll3 and initiation of early somite boundaries , 1998, Nature Genetics.
[54] Virginia E. Papaioannou,et al. Three neural tubes in mouse embryos with mutations in the T-box gene Tbx6 , 1998, Nature.
[55] O. Pourquié,et al. Avian hairy Gene Expression Identifies a Molecular Clock Linked to Vertebrate Segmentation and Somitogenesis , 1997, Cell.
[56] M. Taketo,et al. Mesp2: a novel mouse gene expressed in the presegmented mesoderm and essential for segmentation initiation. , 1997, Genes & development.
[57] D. Zinyk,et al. Fringe boundaries coincide with Notch-dependent patterning centres in mammals and alter Notch-dependent development in Drosophila , 1997, Nature Genetics.
[58] K D Irvine,et al. A family of mammalian Fringe genes implicated in boundary determination and the Notch pathway. , 1997, Development.
[59] M. H. Angelis,et al. Maintenance of somite borders in mice requires the Delta homologue Dll1 , 1997, Nature.
[60] J. Rossant,et al. Notch1 is required for the coordinate segmentation of somites. , 1995, Development.
[61] D. Sillence,et al. Mutation of the LUNATIC FRINGE gene in humans causes spondylocostal dysostosis with a severe vertebral phenotype. , 2006, American journal of human genetics.
[62] I. Palmeirim,et al. Running after the clock. , 2005, The International journal of developmental biology.
[63] P. Tam,et al. 7 – Somitogenesis: Segmentation of the Paraxial Mesoderm and the Delineation of Tissue Compartments , 2002 .
[64] A. Burke,et al. Hox genes and the global patterning of the somitic mesoderm. , 2000, Current topics in developmental biology.