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Blumberg, B., Wright, C. V. E., De Robertis, E. M. and Cho, K. W. Y (1991). Organizer-specific homeobox genes in Xenopus laevis embryos. Science 253, 194-196.[Abstract/Free Full Text]

Boucaut, J.-C., Darribere, T., Boulekbache, H. and Thiery, J. P (1984). Prevention of gastrulation but not neurulation by antibody to fibronectin in amphibian embryos. Nature 307, 364-367.[Medline]

Boucaut, J.-C., Darribere, T., Shi, D. L., Boulekbache, H., Yamada, K. M. and Thiery, J. P (1985). Evidence for the role of fibronectin in amphibian gastrulation. J. Embryol. Exp. Morph 89, 211-227.

Chesley, P (1935). Development of the short-tailed mutation in the house mouse. J. Exp. Zool 70, 429-459.

Cho, K. W. Y., Blumberg, B., Steinbeisser, H. and De Robertis, E. M (1991). Molecular nature of Spemann's organizer: the role of the Xenopus homeobox gene goosecoid. Cell 67, 1111-1120.[Medline]

Chomczynski, P. and Sacchi, N (1987). Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction. Analyt. Biochem 162, 156-159.[Medline]

Cunliffe, V. and Smith, J. C (1992). Ectopic mesoderm formation in Xenopus embryos caused by widespread expression of a Brachyury homolgue. Nature 358, 427-430.[Medline]

Cunliffe, V. and Smith, J. C (1994). Specification of mesodermal pattern in Xenopus laevis by interactions between Brachyury , noggin and Xwnt-8. EMBO J 13, 349-359.[Medline]

Darribere, T., Guida, K., Larjava, H., Johnson, K. E., Yamada, K. M., Thiery, J.-P. and Boucaut, J.-C (1990). In vivo analyses of integrin1subunit function in fibronectin matrix assembly. J. Cell Biol 110, 1813-1823.[Abstract/Free Full Text]

Gerhart, J. C., Vincent, J.-P., Scharf, S. R., Black, S. D., Gimlich, R. L. and Danilchik, M (1984). Localization and induction in early development of Xenopus. Phil. Trans. R. Soc. Lond. B 307, 319-330.[Medline]

Green, J. B. A., New, H. V. and Smith, J. C (1992). Responses of embryonic Xenopus cells to activin and FGF are separated by multiple dose thresholds and correspond to distinct axes of the mesoderm. Cell 71, 731-739.[Medline]

Green, J. B. A. and Smith, J. C (1990). Graded changes in dose of a Xenopus activin A homologue elicit stepwise transitions in embryonic cell fate. Nature 347, 391-394.[Medline]

Gruneberg, H (1958). Genetical studies on the skeleton of the mouse XXIII. The development of Brachyury and Anury. J. Embryol. Exp. Morph 6, 424-443.

Herrmann, B. G., Labeit, S., Poustka, A., King, T. R. and Lehrach, H (1990). Cloning of the T gene required in mesoderm formation in the mouse. Nature 343, 617-622.[Medline]

Howard, J. E., Hirst, E. M. and Smith, J. C (1992). Are1 integrins involved in Xenopus gastrulation?. Mech. Dev 38, 109-120.[Medline]

Howard, J. E. and Smith, J. C (1993). Analysis of gastrulation: different types of gastrulation movement are induced by different mesoderm-inducing factors in Xenopus laevis. Mech. Dev 43, 37-48.[Medline]

Jessell, T. M. and Melton, D. A (1992). Diffusible factors in vertebrate embryonic induction. Cell 68, 257-270.[Medline]

Jones, S. D., Ho, L., Smith, J. C., Yordan, C., Stiles, C. D. and Mercola, M (1993). The Xenopus platelet-derived growth factorreceptor: cDNA cloning and demonstration that mesoderm induction establishes the lineage-specific pattern of ligand and receptor expression. Dev. Genetics 14, 185-193.[Medline]

Kimelman, D., Christian, J. L. and Moon, R. T (1992). Synergistic principles of development: overlapping patterning system in Xenopus mesoderm induction. Development 116, 1-9.[Abstract]

Krieg, P. A., Varnum, S. M., Wormington, W. M. and Melton, D. A (1989). The mRNA encoding elongation factor-1 alpha (EF-1 alpha) is a major transcript at the midblastula transition in Xenopus. Dev. Biol 133, 93-100.[Medline]

Lee, G., Hynes, R. O. and Kirschner, M (1984). Temporal and spatial regulation of fibronectin in early Xenopus development. Cell 36, 729-740.[Medline]

Melton, D. A., Krieg, P. A., Rebagliati, M. R., Maniatis, T., Zinn, K. and Green, M. R (1984). Efficient in vitro synthesis of biologically active RNAand RNA hybridization probes from plasmids containing a bacteriophage SP6 promoter. Nucl. Acids Res 12, 7035-7056.[Abstract/Free Full Text]

Mercola, M., Melton, D. A. and Stiles, C. D (1988). Platelet-derived growth factor a chain is maternally encoded in Xenopus embryos. Science 241, 1223-1225.[Abstract/Free Full Text]

Moon, R. T (1993). In pursuit of the functions of the Wnt family of developmental regulators: insights from Xenopus laevis. BioEssays 5, 91-97.

Nakatsuji, N. and Johnson, K. E (1983). Comparative study of extracellular fibrils on the ectodermal layer in gastrulae of five amphibian species. J. Cell Sci 59, 61-70.[Abstract]

Nakatsuji, N., Smolira, M. A. and Wylie, C. C (1985). Fibronectin visualized by scanning electron microscopy immunocytochemistry on the substratum for cell migration in Xenopus laevis. Dev. Biol 107, 264-268.[Medline]

Niehrs, C., Keller, R., Cho, K. W. Y. and De Robertis, E. M (1993). The homeobox gene goosecoid controls cell migration in Xenopus embryos. Cell 72, 491-503.[Medline]

Niehrs, C., Steinbeisser, H. and De Robertis, E. M (1994). Mesodermal patterning by a gradient of the vertebrate homeobox gene goosecoid. Science 263, 817-820.[Abstract/Free Full Text]

Sargent, T. D., Jamrich, M. and Dawid, I (1986). Cell interactions and the control of gene activity during early development of Xenopus laevis. Dev. Biol 114, 238-246.[Medline]

Sive, H. L (1993). The frog prince-ss: A molecular formula for dorsoventral patterning in Xenopus. Genes Dev 7, 1-12.[Free Full Text]

Slack, J. M. W (1993). Embryonic induction. Mech. Dev 41, 91-107.[Medline]

Smith, J. C., Cunliffe, V., Green, J. B. and New, H. V (1993). Intercellular signalling in mesoderm formation during amphibian development. Phil. Trans. R. Soc. Lond. B 340, 287-296.[Medline]

Smith, J. C. and Howard, J. E (1992). Mesoderm-inducing factors and the control of gastrulation. Development 1992, 127-136.

Smith, J. C., Price, B. M. J., Green, J. B. A., Weigel, D. and Herrmann, B. G (1991). Expression of a Xenopus homolog of Brachyury (T) is an immediate-early response to mesoderm induction. Cell 67, 79-87.[Medline]

Smith, J. C. and Slack, J. M. W (1983). Dorsalization and neural induction: properties of the organizer in Xenopus laevis. J. Embryol. Exp. Morph 78, 299-317.[Medline]

Smith, J. C., Symes, K., Hynes, R. O. and DeSimone, D (1990). Mesoderm induction and the control of gastrulation in Xenopus laevis : the roles of fibronectin and integrins. Development 108, 229-238.[Abstract]

Smith, W. C. and Harland, R. M (1991). Injected Xwnt-8 RNA acts early in Xenopus embryos to promote formation of a vegetal dorsalizing center. Cell 67, 753-765.[Medline]

Smith, W. C. and Harland, R. M (1992). Expression cloning of noggin , a new dorsalizing factor localised to the Spemann organizer in Xenopus embryos. Cell 70, 829-840.[Medline]

Smith, W. C., Knecht, A. K., Wu, M. and Harland, R. M (1993). Secreted noggin protein mimics the Spemann organizer in dorsalizing Xenopus mesoderm. Nature 361, 547-549.[Medline]

Sokol, S., Christian, J. L., Moon, R. T. and Melton, D. A (1991). Injected Wnt RNA induces a complete body axis in Xenopus embryos. Cell 67, 741-752.[Medline]

Symes, K. and Smith, J. C (1987). Gastrulation movements provide an early marker of mesoderm induction in Xenopuslaevis. Development 101, 339-349.[Abstract]

Whitman, M. and Melton, D. A (1989). Growth factors in early embryogenesis. Annu. Rev. Cell Biol 5, 93-117.

Winklbauer, R (1990). Mesoderm cell migration during Xenopus gastrulation. Dev. Biol 142, 155-168.[Medline]




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