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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]

Capco, D. G. and Jeffrey, W. R (1981). Regional accumulation of vegetal pole poly (A)+ RNA injected into fertilized Xenopus eggs. Nature 294, 255-257.[Medline]

Carpenter, C. D. and Klein, W. H (1980). A gradient of poly (A)+ RNA sequences in Xenopus laevis eggs and embryos. Dev. Biol 91, 43-49.

Cho, K. W. Y., Blumberg, B., Steinbelsser, 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]

Christian, J. L., Gavin, B. J., McMahan, J. A. and Moon, R. T (1991). Isolation of a cDNA partially encoding four Xenopus Wnt-1/Int-1 related proteins and characterization of their transient expression during development. Dev. Biol 143, 230-234.[Medline]

Christian, J. L., McMahon, J. A., McMahon, A. P. and Moon, R. T (1991). Xwnt-8, a Xenopus Wnt-1/int-1-related gene responsive to mesoderm-inducing growth factors, may play a role in ventral mesoderm patterning during embryogenesis. Development 111, 1045-1055.[Abstract/Free Full Text]

DeSimone, D. W., Norton, P. A. and Hynes, R. O (1992). Identification and characterization of alternately spliced fibronectin mRNAs expressed in early Xenopus embryos. Dev. Biol 149, 357-369.[Medline]

Elinson, R. P. and Kao, K. R (1989). The location of dorsal information in frog early development. Dev. Growth Differ 31, 423-430.

Elinson, R. P. and Rowning, B (1988). A transient array of parallel microtubules in frog eggs: potential tracks for a cytoplasmic rotation that specifies the dorso-ventral axis. Dev. Biol 128, 185-197.[Medline]

Gimlich, R. L (1986). Acquisition of developmental autonomy in the equatorial region of the Xenopus embryo. Dev. Biol 115, 340-352.[Medline]

Gerhart, J., Danilchik, M., Doniach, T., Roberts, S., Rowning, B., and Stewart, R (1989). Cortical rotation of the Xenopus egg: consequences for the anteroposterior pattern of the embryonic dorsal development. Development 107, 37-51.[Medline]

Green, J. B. A., Howes, G., Symes, K., Cooke, J., and Smith, J. C (1990). The biological effects of XTC-MIF: quantitative comparison with Xenopus bFGF. Development 108, 173-183.[Abstract]

Hirose, G. and Jacobson, M (1979). Clonal organization of the central nervous system of the frog. I. Clones stemming from individual blastomeres of the 16-cell and earlier stages. Dev. Biol 71, 191-202.[Medline]

Imoh, H (1984). Appearance and distribution of RNA-rich cytoplasms in the embryo of Xenopus laevis during early development. Dev. Growth Differ 26, 167-176.

Jones, E. A. and Woodland, H. R (1987). The development of animal cap cells in Xenopus : a measure of the start of animal cap competence to form mesoderm. Development 101, 557-563.[Abstract]

Kao, K. R., and Elinson, R. P (1988). The entire mesodermal mantle behaves as Spemann's organizer in dorsoanterior enhanced Xenopus laevis embryos. Dev. Biol 127, 64-77.[Medline]

King, M. L. and Barklis, E. ( (1985). Regional distribution of maternal messenger RNA in the amphibian oocyte. Dev. Biol 112, 203-212.

Klein, S. L (1987). The first cleavage furrow demarcates the dorsal-ventral axis in Xenopus embryos. Dev. Biol 120, 299-304.[Medline]

Moody, S. A (1987). Fates of the blastomeres of the 16-cell stage Xenopus embryo. Dev. Biol 119, 560-578.[Medline]

Moody, S. A (1987). Fates of the blastomeres of the 32-cell stage Xenopus embryo. Dev. Biol 122, 300-319.[Medline]

Nakamura, O. and Kishiyama, K (1971). Prospective fates of blastomeres at the 32-cell stage of Xenopus laevis embryos. Proc. Japan Acad 47, 407-412.

Nieuwkoop, P. D (1973). The \322organization center\323 of the amphibian embryo: its spatial organization and morphogenic action. Adv. Morphogen 10, 1-39.[Medline]

Paterno, G. D., Gillespie, L. L., Dixon, M. S., Slack, J. M. W., and Heath, J. K (1989). Mesoderm-inducing properties of INT-2 and kFGF, two oncogene-encoded growth factors related to FGF. Development 106, 79-83.[Abstract]

Phillips, C. R (1985). Spatial changes in poly(A) concentrations during early embryogenesis in Xenopus laevis : analysis by in situ hybridization. Dev. Biol 109, 299-310.[Medline]

Rebagliatti, M. R., Weeks, D. L., Harvey R. P., and Melton, D. A (1985). Identification and cloning of localized maternal RNA's from Xenopus eggs. Cell 42, 769-777.[Medline]

Ressom, R. E. and Dixon, K. E (1988). Relocation and reorganization of germ plasm in Xenopus embryos after fertilization. Development 103, 507-518.[Abstract]

Rosa, F., Roberts, A. B., Danielpour, D., Dart, L. L., Sporn, M. B., and Dawid, I. B (1988). Mesoderm induction in amphibians: the role of TGF-2-like factors. Science 329, 783-785.

Scharf, S. R. and Gerhart, J. C (1980). Determination of the dorsal-ventral axis in eggs of Xenopus laevis: complete rescue of uv-impaired eggs by oblique orientation before first cleavage. Dev. Biol 79, 181-198.[Medline]

Slack, J. M. W., Darlington, B. G., Heath, J. K., and Godsave, S. F (1987). Mesoderm induction in early Xenopus embryos by heparin-binding growth factors. Nature 326, 197-200.[Medline]

Smith, R. C. and Knowland, J (1984). Protein synthesis in dorsal and ventral regions of Xenopus laevis embryos in relation to dorsal and ventral differentiation. Dev. Biol 103, 355-368.[Medline]

Smith, W. C. and Harland, R. M (1991). Injected Xwnt-8 RNA induces a complete body axis in Xenopus embryos. Cell 67, 753-765.[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]

Sokol, S. and Melton, D.A (1991). Preexistent pattern in Xenopus animal pole cells revealed by induction with activin. Nature 351, 409-411.[Medline]

Takasaki, H. and Konishi, H (1989). Dorsal blastomeres in the equatorial region of the 32-cell Xenopus embryo autonomously produce progeny committed to the organizer. Dev. Growth Differ 31, 147-156.

Thomsen, G., Woolf, T., Whitman, M., Sokol, S., Vaugh, J., Vale, W., and Melton, D. A (1990). Activins are expressed early in Xenopus embryogenesis and can induce axial mesoderm and anterior structures. Cell 63, 485-493.[Medline]

Vincent, J.-P., Oster, G. F., and Gerhart, J. C (1986). Kinematics of grey crescent formation in Xenopus eggs: The displacement of subcortical cytoplasm relative to the egg surface. Dev. Biol 113, 484-500.[Medline]

Vincent, J.-P. and Gerhart, J. C (1987). Subcortical rotation in Xenopus eggs: an early step in embryonic axis specification. Dev. Biol 123, 526-539.[Medline]

Wakahara, M (1986). Modification of dorsal-ventral polarity in Xenopus laevis embryos following withdrawal of egg contents before first cleavage. Dev. Growth Differ 28, 543-554.




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This Article
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