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Amaya, E., Musci, T. J. and Kirschner, M. W (1991). Expression of a dominant negative mutant of the FGF receptor disrupts mesoderm formation in Xenopus embryos. Cell 66, 257-270.[Medline]

Amaya, E., Stein, P. A., Musci, T. J. and Kirschner, M. W (1993). FGF signalling in the early specification of mesoderm in Xenopus. Development 118, 477-487.[Abstract]

Beck, C. W. and Slack, J. M (1998). Analysis of the developing Xenopus tail bud reveals separate phases of gene expression during determination and outgrowth. Mech. Dev 72, 41-52.[Medline]

Bijtel, J. H (1958). The mode of growth of the tailin urodeleu larvae. J. Embryol. Exp. Morph 6, 466-478.

Catala, M., Teillet, M.-A. and Le Douarin, N. M (1995). Organization and development of the tail bud analyzed with the quail-chick chimaera system. Mech. Dev 51, 51-65.[Medline]

Catala, M., Teillet, M. A., De Robertis, E. M. and Le Douarin, M. L (1996). A spinal cord fate map in the avian embryo: while regressing, Hensen's node lays down the notochord and floor plate thus joining the spinal cord lateral walls. Development 122, 2599-2610.[Abstract]

Chalfie, M (1995). Green fluorescent protein. Photochem. Photobiol 62, 651-656.[Medline]

Collazo, A., Bronner-Fraser, M. and Fraser, S. E (1993). Vital dye labelling of Xenopus laevis trunk neural crest reveals multipotency and novel pathways of migration. Development 118, 363-376.[Abstract]

Cooke, J (1979). Cell number in relation to primary pattern formation in the embryo of Xenopus laevis. II. Sequential cell recruitment, and control of the cell cycle, during mesoderm formation. J. Embryol. Exp. Morph 53, 269-289.[Medline]

Costanzo, R., Watterson, R. L. and Schoenwolf, G. C (1982). Evidence that secondary neurulation occurs autonomously in the chick embryo. J. Exp. Zool 219, 233-240.[Medline]

Gont, L. K., Steinbeisser, H., Blumberg, B. and de Robertis, E. M (1993). Tail formation as a continuation of gastrulation: the multiple cell populations of the Xenopus tailbud derive from the late blastopore lip. Development 119, 991-1004.[Abstract]

Griffith, C. M. and Sanders, E. J (1991). Effects of extracellular matrix components on the differentiation of chick embryo tail bud mesenchyme in culture. Differentiation 47, 61-68.[Medline]

Griffith, C. M., Wiley, M. J. and Sanders, E. J (1992). The vertebrate tail bud: three germ layers from one tissue. Anat. Embryol 185, 101-113.[Medline]

Hamilton, L (1969). The formation of somites in Xenopus. J. Embryol. Exp. Morph 22, 253-264.[Medline]

Hensey, C. and Gautier, J (1998). Programmed cell death during Xenopus development: a spatio-temporal analysis. Dev. Biol 203, 36-48.[Medline]

Holmdahl, D. E (1925). Experimentelle Untersuchungen uber die Lage der Grenze zwischen primarer und sekundarer Korperentwicklung beim Huhn. Anat. Anz 59, 393-396.

Isaacs, H. V., Pownall, M. E. and Slack, J. M (1995). eFGF is expressed in the dorsal midline of Xenopus laevis. Int. J. Dev. Biol 39, 575-579.[Medline]

Isaacs, H. V., Tannahill, D. and Slack, J. M (1992). Expression of a novel FGF in the Xenopus embryo. A new candidate inducing factor for mesoderm formation and anteroposterior specification. Development 114, 711-720.[Abstract]

Kanki, J. P. and Ho, R. K (1997). The development of the posterior body in zebrafish. Development 124, 881-893.[Abstract]

Knezevic, V., De Santo, R. and Mackem, S (1998). Continuing organizer function during chick tail development. Development 125, 1791-1801.[Abstract]

Kozlowski, D. J., Murakami, T., Ho, R. K. and Weinberg, E. S (1997). Regional cell movement and tissue patterning in the zebrafish embryo revealed by fate mapping with caged fluorescein. Biochem. Cell Biol 75, 551-562.[Medline]

Krieg, P. A. and Melton, D. A (1987). In vitro RNA synthesis with SP6 RNA polymerase. Methods Enzymol 155, 397-415.[Medline]

Krieg, P. A., Sakaguchi, D. S. and Kintner, C. R (1989). Primary structure and developmental expression of a large cytoplasmic domain form of Xenopus laevis neural cell adhesion molecule (NCAM). Nucleic Acids Res 17, 10321-10335.[Abstract/Free Full Text]

Moriyoshi, K., Richards, L. J., Akazawa, C., O'Leary, D. D. and Nakanishi, S (1996). Labeling neural cells using adenoviral gene transfer of membrane-targeted GFP. Neuron 16, 255-260.[Medline]

Pasteels, J (1942). New observations concerning the maps of presemptive areas of the young amphibian gastrula (Amblystoma and Discoglossus). J. Exp. Zool 89, 255-281.

Pasteels, J (1943). Proliferations et croissance dans la gastrulation et la formation de la queue des Vertebres. Arch. de Biol 54, 1-51.

Schoenwolf, G. C (1979). Histological and ultrastructural observations of tail bud formation in the chick embryo. Anat. Rec 193, 131-148.[Medline]

Schoenwolf, G. C (1984). Histological and ultrastructural studies of secondary neurulation in mouse embryos. Am. J. Anat 169, 361-376.[Medline]

Schoenwolf, G. C. and Delongo, J (1980). Ultrastructure of secondary neurulation in the chick embryo. Am. J. Anat 158, 43-63.[Medline]

Schulte-Merker, S., van Eeden, F. J., Halpern, M. E., Kimmel, C. B. and Nusslein-Volhard, C (1994). no tail (ntl) is the zebrafish homologue of the mouse T (Brachyury) gene. Development 120, 1009-1015.[Abstract]

Selleck, M. A. and Bronner-Fraser, M (1995). Origins of the avian neuralcrest: the role of neural plate-epidermal interactions. Development 121, 525-538.[Abstract]

Smith, J. C. and Watt, F. M (1985). Biochemical specificity of Xenopus notochord. Differentiation 29, 109-115.[Medline]

Smithberg, M (1954). The origin and development of the tail in the frog, Rana pipiens. J. Exp. Zool 127, 397-425.

Spofford, W. R (1945). Observations on the posterior part of the neural plate in Amblystoma. J. Exp. Zool 99, 35-52.

Spofford, W. R (1948). Observations on the posterior part of the neural plate in Amblystoma II. J. Exp. Zool 107, 123-163.[Medline]

Stutz, F. and Spohr, G (1986). Isolation and characterization of sarcomeric actin genes expressed in Xenopus laevis embryos. J. Mol. Biol 187, 349-361.[Medline]

Takada, S., Stark, K. L., Shea, M. J., Vassileva, G., McMahon, J. A. and McMahon, A. P (1994). Wnt-3a regulates somite and tailbud formation in the mouse embryo. Genes Dev 8, 174-189.[Abstract/Free Full Text]

Tucker, A. S. and Slack, J. M (1995). Tail bud determination in the vertebrate embryo. Curr. Biol 5, 807-813.[Medline]

Turner, D. L. and Weintraub, H (1994). Expression of achaete-scute homolog 3 in Xenopus embryos converts ectodermal cells to a neural fate. Genes Dev 8, 1434-1447.[Abstract/Free Full Text]

Vincent, J. P. and O'Farrell, P. H (1992). The state of engrailed expression is not clonally transmitted during early Drosophila development. Cell 68, 923-931.[Medline]

von Dassow, G., Schmidt, J. E. and Kimelman, D (1993). Induction of the Xenopus organizer: expression and regulation of Xnot, a novel FGF and activin-regulated homeo box gene. Genes Dev 7, 355-366.[Abstract/Free Full Text]


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