Mutations affecting cell fates and cellular rearrangements during gastrulation in zebrafish.
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A. Schier | W. Driever | D. Stemple | D. Stainier | S. Neuhauss | J. Malicki | L. Solnica-Krezel | F. Zwartkruis | S. Abdelilah | Z. Rangini | S C Neuhauss | D Y Stainier | D L Stemple | L Solnica-Krezel | F Zwartkruis | A F Schier | J Malicki | S Abdelilah | Z Rangini | E Mountcastle-Shah | W Driever | E. Mountcastle-Shah | E. Mountcastle-Shah
[1] C. Kimmel,et al. Cell movements during epiboly and gastrulation in zebrafish. , 1990, Development.
[2] W. Driever. Axis formation in zebrafish. , 1995, Current opinion in genetics & development.
[3] R. Keller,et al. Gastrulation : movements, patterns, and molecules , 1991 .
[4] R. Keller,et al. Induction of neuronal differentiation by planar signals in Xenopus embryos , 1993, Developmental dynamics : an official publication of the American Association of Anatomists.
[5] D. Grunwald,et al. Lithium perturbation and goosecoid expression identify a dorsal specification pathway in the pregastrula zebrafish. , 1993, Development.
[6] H. Spemann. Embryonic development and induction , 1938 .
[7] B. Blumberg,et al. Tail formation as a continuation of gastrulation: the multiple cell populations of the Xenopus tailbud derive from the late blastopore lip. , 1993, Development.
[8] D. Kane,et al. Domains of movement in the zebrafish gastrula , 1994 .
[9] G. Streisinger,et al. Production of clones of homozygous diploid zebra fish (Brachydanio rerio) , 1981, Nature.
[10] D. Melton,et al. Follistatin, an antagonist of activin, is expressed in the Spemann organizer and displays direct neuralizing activity , 1994, Cell.
[11] D. Melton,et al. Processed Vg1 protein is an axial mesoderm inducer in xenopus , 1993, Cell.
[12] C. Kimmel,et al. Genetics and early development of zebrafish. , 1989, Trends in genetics : TIG.
[13] D. Melton,et al. Vertebrate embryonic induction: mesodermal and neural patterning. , 1994, Science.
[14] P. Ingham,et al. Axial, a zebrafish gene expressed along the developing body axis, shows altered expression in cyclops mutant embryos. , 1993, Genes & development.
[15] K. Hatta. Role of the floor plate in axonal patterning in the zebrafish CNS , 1992, Neuron.
[16] M. Allende,et al. Developmental regulation of zebrafish MyoD in wild-type, no tail and spadetail embryos. , 1996, Development.
[17] J. Trinkaus. Mechanism of Fundulus Epiboly—A Current View , 1984 .
[18] K. Kao,et al. The entire mesodermal mantle behaves as Spemann's organizer in dorsoanterior enhanced Xenopus laevis embryos. , 1988, Developmental biology.
[19] R. Keller,et al. The cellular basis of epiboly: an SEM study of deep-cell rearrangement during gastrulation in Xenopus laevis. , 1980, Journal of embryology and experimental morphology.
[20] A. Schier,et al. Mutations affecting neural survival in the zebrafish Danio rerio. , 1996, Development.
[21] C. Cretekos,et al. Cell mixing during early epiboly in the zebrafish embryo. , 1995, Developmental genetics.
[22] J. Trinkaus,et al. On the convergent cell movements of gastrulation in Fundulus. , 1992, The Journal of experimental zoology.
[23] J. Slack. Inducing factors in Xenopus early embryos , 1994, Current Biology.
[24] R. Ho,et al. The protein product of the zebrafish homologue of the mouse T gene is expressed in nuclei of the germ ring and the notochord of the early embryo. , 1992, Development.
[25] R. Ho,et al. The cyclops mutation blocks specification of the floor plate of the zebrafish central nervous system , 1991, Nature.
[26] G. Schoenwolf. CELL MOVEMENTS IN THE EPIBLAST DURING GASTRULATION AND NEURULATION IN AVIAN EMBRYOS , 1991 .
[27] Yoshiki Sasai,et al. A conserved system for dorsal-ventral patterning in insects and vertebrates involving sog and chordin , 1995, Nature.
[28] A. Schier,et al. Mutations affecting development of the notochord in zebrafish. , 1996, Development.
[29] A. Schier,et al. A genetic screen for mutations affecting embryogenesis in zebrafish. , 1996, Development.
[30] J. Shih,et al. Cell motility driving mediolateral intercalation in explants of Xenopus laevis. , 1992, Development.
[31] J. Postlethwait,et al. Expression of a type II collagen gene in the zebrafish embryonic axis , 1995, Developmental dynamics : an official publication of the American Association of Anatomists.
[32] B. Hogan,et al. Growth factors in development: the role of TGF-beta related polypeptide signalling molecules in embryogenesis. , 1994, Development (Cambridge, England). Supplement.
[33] R. Keller,et al. Cell rearrangement during gastrulation of Xenopus: direct observation of cultured explants. , 1991, Development.
[34] C. Nüsslein-Volhard,et al. Large-scale mutagenesis in the zebrafish: in search of genes controlling development in a vertebrate , 1994, Current Biology.
[35] J. Gerhart,et al. Planar induction of anteroposterior pattern in the developing central nervous system of Xenopus laevis. , 1992, Science.
[36] R. Behringer,et al. Requirement for LIml in head-organizer function , 1995, Nature.
[37] C. Kimmel,et al. Origin and organization of the zebrafish fate map. , 1990, Development.
[38] J. Slack,et al. The Xenopus laevis tail-forming region , 1995 .
[39] C. H. Waddington,et al. Induction by the Primitive Streak and its Derivatives in the Chick , 1933 .
[40] J. Trinkaus. A study of the mechanism of epiboly in the egg of Fundulus heteroclitus , 1951 .
[41] A. Schier,et al. Mutations affecting the development of the embryonic zebrafish brain. , 1996, Development.
[42] J. Gerhart,et al. Axis determination in eggs of Xenopus laevis: a critical period before first cleavage, identified by the common effects of cold, pressure and ultraviolet irradiation. , 1983, Developmental biology.
[43] C. Kimmel,et al. Stages of embryonic development of the zebrafish , 1995, Developmental dynamics : an official publication of the American Association of Anatomists.
[44] C. Kimmel,et al. Midline signaling in the primordium of the zebrafish anterior central nervous system. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[45] W. Driever,et al. Transparent things: Cell fates and cell movements during early embryogenesis of zebrafish , 1995, BioEssays : news and reviews in molecular, cellular and developmental biology.
[46] R. Beddington. Induction of a second neural axis by the mouse node. , 1994, Development.
[47] Y. Sasai,et al. Xenopus chordin: A novel dorsalizing factor activated by organizer-specific homeobox genes , 1994, Cell.
[48] A. Fainsod,et al. The evolution of vertebrate gastrulation. , 1994, Development (Cambridge, England). Supplement.
[49] A. Fainsod,et al. On the function of BMP‐4 in patterning the marginal zone of the Xenopus embryo. , 1994, The EMBO journal.
[50] D. Duboule,et al. Expression of the zebrafish gene hlx-1 in the prechordal plate and during CNS development. , 1994, Development.
[51] A. Schier,et al. Mutations affecting craniofacial development in zebrafish. , 1996, Development.
[52] Douglas A. Melton,et al. Injected Wnt RNA induces a complete body axis in Xenopus embryos , 1991, Cell.
[53] E M De Robertis,et al. Expression of zebrafish goosecoid and no tail gene products in wild-type and mutant no tail embryos. , 1994, Development.
[54] J. Smith,et al. Control of vertebrate gastrulation: inducing signals and responding genes. , 1993, Current opinion in genetics & development.
[55] J. Postlethwait,et al. Cell-autonomous shift from axial to paraxial mesodermal development in zebrafish floating head mutants. , 1995, Development.
[56] H. Sive,et al. The frog prince-ss: a molecular formula for dorsoventral patterning in Xenopus. , 1993, Genes & development.
[57] S. Krauss,et al. Expression of the zebrafish paired box gene pax[zf-b] during early neurogenesis. , 1991, Development.
[58] A. Schier,et al. Efficient recovery of ENU-induced mutations from the zebrafish germline. , 1994, Genetics.
[59] N. Ueno,et al. Localized BMP-4 mediates dorsal/ventral patterning in the early Xenopus embryo. , 1995, Developmental biology.
[60] J. Rossant,et al. HNF-3β is essential for node and notochord formation in mouse development , 1994, Cell.
[61] W. Driever,et al. Microtubule arrays of the zebrafish yolk cell: organization and function during epiboly. , 1994, Development.
[62] C. Kimmel,et al. A mutation that changes cell movement and cell fate in the zebrafish embryo , 1989, Nature.
[63] R. Ho,et al. Induction of muscle pioneers and floor plate is distinguished by the zebrafish no tail mutation , 1993, Cell.
[64] C. Nüsslein-Volhard,et al. The expression of a zebrafish gene homologous to Drosophila snail suggests a conserved function in invertebrate and vertebrate gastrulation. , 1993, Development.
[65] C. Nüsslein-Volhard,et al. no tail (ntl) is the zebrafish homologue of the mouse T (Brachyury) gene. , 1994, Development.
[66] J. Postlethwait,et al. Structure of the zebrafish snail1 gene and its expression in wild-type, spadetail and no tail mutant embryos. , 1993, Development.
[67] R. Lockshin,et al. Delayed internucleosomal DNA fragmentation in programmed cell death , 1993, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[68] R. Harland,et al. Neural induction by the secreted polypeptide noggin. , 1993, Science.
[69] J. Oppenheimer. Transplantation experiments on developing teleosts (Fundulus and Perca) , 1936 .
[70] R. Keller,et al. Regional expression, pattern and timing of convergence and extension during gastrulation of Xenopus laevis. , 1988, Development.
[71] D. Grunwald,et al. The DVR-1 (Vg1) transcript of zebrafish is maternally supplied and distributed throughout the embryo. , 1993, Developmental biology.
[72] J. Vaughan,et al. Activins are expressed early in Xenopus embryogenesis and can induce axial mesoderm and anterior structures , 1990, Cell.
[73] E. Oxtoby,et al. Cloning of the zebrafish krox-20 gene (krx-20) and its expression during hindbrain development. , 1993, Nucleic acids research.
[74] J. Joly,et al. The ventral and posterior expression of the zebrafish homeobox gene eve1 is perturbed in dorsalized and mutant embryos. , 1993, Development.
[75] P. Tibbetts,et al. Mediolateral cell intercalation in the dorsal, axial mesoderm of Xenopus laevis. , 1989, Developmental biology.
[76] J. Postlethwait,et al. Goosecoid expression in neurectoderm and mesendoderm is disrupted in zebrafish cyclops gastrulas. , 1994, Developmental biology.
[77] M. Westerfield,et al. Comparative analysis of Pax-2 protein distributions during neurulation in mice and zebrafish , 1992, Mechanisms of Development.
[78] R. Harland,et al. Injected Xwnt-8 RNA acts early in Xenopus embryos to promote formation of a vegetal dorsalizing center , 1991, Cell.
[79] John Philip Trinkaus,et al. Cells into Organs: The Forces That Shape the Embryo , 1984 .
[80] M. Catala,et al. Organization and development of the tail bud analyzed with the quail-chick chimaera system , 1995, Mechanisms of Development.
[81] B. Hogan,et al. Involvement of Bone Morphogenetic Protein-4 (BMP-4) and Vgr-1 in morphogenesis and neurogenesis in the mouse. , 1991, Development.
[82] J. Graff,et al. Studies with a Xenopus BMP receptor suggest that ventral mesoderm-inducing signals override dorsal signals in vivo , 1994, Cell.
[83] Thomas M. Jessell,et al. The winged-helix transcription factor HNF-3β is required for notochord development in the mouse embryo , 1994, Cell.
[84] D. Melton,et al. Expression of Xenopus N-CAM RNA in ectoderm is an early response to neural induction. , 1987, Development.
[85] J. Postlethwait,et al. A homeobox gene essential for zebrafish notochord development , 1995, Nature.
[86] E. Knapik,et al. A reference cross DNA panel for zebrafish (Danio rerio) anchored with simple sequence length polymorphisms. , 1996, Development.
[87] R. Ho,et al. Cell-autonomous action of zebrafish spt-1 mutation in specific mesodermal precursors , 1990, Nature.