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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]

Blitz, I. L. and Cho, K. W (1995). Anterior neurectoderm is progressively induced during gastrulation: the role of the Xenopus homeobox gene orthodenticle. Development 121, 993-1004.[Abstract]

Blumberg, B., Bolado, J., Moreno, T., Kintner, C., Evans, R. and Papalopulu, N (1997). An essential role for retinoid signaling in anteroposterior neural patterning. Development 124, 373-379.[Abstract]

Cho, K. W., Morita, E. A., Wright, C. V. and De Robertis, E. M (1991). Overexpression of a homeodomain protein confers axis-forming activity to uncommitted Xenopus embryonic cells. Cell 65, 55-64.[Medline]

Condie, B. G. and Harland, R. M (1987). Posterior expression of a homeobox gene in early Xenopus embryos. Development 101, 93-105.[Abstract]

Conlon, F. L., Sedgwick, S. G., Weston, K. M. and Smith, J. C (1996). Inhibition of Xbra transcription activation causes defects in mesodermal patterning and reveals autoregulation of Xbra in dorsal mesoderm. Development 122, 2427-2435.[Abstract]

Cornell, R. A. and Kimelman, D (1994). Activin-mediated mesoderm induction requires FGF. Development 120, 453-62.[Abstract]

Cornell, R. A., Musci, T. J. and Kimelman, D (1995). FGF is a prospective competence factor for early activin-type signals in Xenopus mesoderm induction. Development 121, 2429-2437.[Abstract]

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

Dale, L., Matthews, G. and Colman, A (1993). Secretion and mesoderm-inducing activity of the TGF-beta-related domain of Xenopus Vg1. EMBO J 12, 4471-4480.[Medline]

Dohrmann, C. E., Kessler, D. S. and Melton, D. A (1996). Induction of axial mesoderm by zDVR-1, the zebrafish orthologue of Xenopus Vg1. Dev. Biol 175, 108-17.[Medline]

Dyson, S. and Gurdon, J. B (1997). Activin signalling has a necessary function in Xenopus early development. Curr. Biol 7, 81-84.[Medline]

Ecochard, V., Cayrol, C., Foulquier, F., Zaraisky, A. and Duprat, A. M (1995). A novel TGF-beta-like gene, fugacin, specifically expressed in the Spemann organizer of Xenopus. Dev. Biol 172, 699-703.[Medline]

Gammill, L. S. and Sive, H. L (1997). Identification of otx2 target genes and restrictions in ectodermal competence during Xenopus cement gland formation. Development 124, 471-481.[Abstract]

Gawantka, V., Delius, H., Hirschfeld, K., Blumenstock, C. and Niehrs, C (1995). Antagonizing the Spemann organizer: role of the homeobox gene Xvent-1. EMBO J 14, 6268-6279.[Medline]

Graff, J. M., Thies, R. S., Song, J. J., Celeste, A. J. and Melton, D. A (1994). Studies with a Xenopus BMP receptor suggest that ventral mesoderm-inducing signals override dorsal signals in vivo. Cell 79, 169-179.[Medline]

Glinka, A., Wu, W., Onichtouk, D., Blumenstock, C. and Niehrs, C (1997). Head induction by simultaneous repression of BMP and Wnt signalling in Xenopus. Nature 389, 517-519.[Medline]

Green, J. B., 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]

Green, J. B., 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]

Hansen, C. S., Marion, C. D., Steele, K., George, S. and Smith, W. C (1997). Direct neural induction and selective inhibition of mesoderm and epidermis inducers by Xnr3. Development 124, 483-92.[Abstract]

Harland, R. and Gerhart, J (1997). Formation and function of Spemann's organizer. Ann. Rev. Cell Dev. Biol 13, 611-667.[Medline]

Harland, R. M (1991). In situ hybridization: an improved whole-mount method for Xenopus embryos. Methods Cell Biol 36, 685-695.[Medline]

Harland, R. M (1994). The transforming growth factor beta family and induction of the vertebrate mesoderm: bone morphogenetic proteins are ventral inducers [comment]. Proc. Natl Acad. Sci. USA 91, 10243-10246.[Free Full Text]

Hawley, S. H., Wunnenberg-Stapleton, K., Hashimoto, C., Laurent, M. N., Watabe, T., Blumberg, B. W. and Cho, K. W (1995). Disruption of BMP signals in embryonic Xenopus ectoderm leads to direct neural induction. Genes Dev 9, 2923-35.[Abstract/Free Full Text]

Heasman, J (1997). Patterning the Xenopus blastula. Development 124, 4179-91.[Abstract]

Helde, K. A. and Grunwald, D. J (1993). The DVR-1 (Vg1) transcript of zebrafish is maternally supplied and distributed throughout the embryo. Dev. Biol 159, 418-426.[Medline]

Hemmati-Brivanlou, A., de la Torre, J. R., Holt, C. and Harland, R. M (1991). Cephalic expression and molecular characterization of Xenopus En-2. Development 111, 715-724.[Abstract]

Hemmati-Brivanlou, A. and Melton, D. A (1992). A truncated activin receptor inhibits mesoderm induction and formation of axial structures in Xenopus embryos. Nature 359, 609-614.[Medline]

Hemmati-Brivanlou, A. and Melton, D. A (1994). Inhibition of activin receptor signaling promotes neuralization in Xenopus. Cell 77, 273-281.[Medline]

Henry, G. L., Brivanlou, I. H., Kessler, D. S., Hemmati-Brivanlou, A. and Melton, D. A (1996). TGF-beta signals and a pattern in Xenopus laevis endodermal development. Development 122, 1007-1015.[Abstract]

Horb, M. E. and Thomsen, G. H (1997). A vegetally localized T-box transcription factor in Xenopus eggs specifies mesoderm and endoderm and is essential for embryonic mesoderm formation. Development 124, 1689-1698.[Abstract]

Hudson, C., Clements, D., Friday, R. V., Stott, D. and Woodland, H. R (1997). Xsox17alpha and-beta mediate endoderm formation in Xenopus. Cell 91, 397-405.[Medline]

Isaacs, H. V., Pownall, M. E. and Slack, J. M (1994). eFGF regulates Xbra expression during Xenopus gastrulation. EMBO J 13, 4469-4481.[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]

Jacobs, K. A., Collins-Racie, L. A., Colbert, M., Duckett, M., Golden-Fleet, M., Kelleher, K., Kriz, R., La Vallie, E. R., Merberg, D., Spaulding, V., Stover, J., Williamson, M. J. and McCoy, J. M (1997). A genetic selection for isolating cDNAs encoding secreted proteins. Gene 198, 289-296.[Medline]

Jones, C. M., Kuehn, M. R., Hogan, B. L., Smith, J. C. and Wright, C. V (1995). Nodal-related signals induce axial mesoderm and dorsalize mesoderm during gastrulation. Development 121, 3651-3662.[Abstract]

Jones, E. A. and Woodland, H. R (1989). Spatial aspects of neural induction in Xenopus laevis. Development 107, 785-791.[Abstract/Free Full Text]

Joseph, E. M. and Melton, D. A (1997). Xnr4: a Xenopus nodal-related gene expressed in the Spemann organizer. Dev. Biol 184, 367-372.[Medline]

Joseph, E. M. and Melton, D. A (1998). Mutant Vg1 ligands disrupt endoderm and mesoderm formation in Xenopus embryos. Development 125, 2677-2685.[Abstract]

Kengaku, M. and Okamoto, H (1995). bFGF as a possible morphogen for the anteroposterior axis of the central nervous system in Xenopus. Development 121, 3121-3130.[Abstract]

Kessler, D. S. and Melton, D. A (1995). Induction of dorsal mesoderm by soluble, mature Vg1 protein. Development 121, 2155-2164.[Abstract]

Kimelman, D. and Griffin, K. J (1998). Mesoderm induction: a postmodern view [comment]. Cell 94, 419-421.[Medline]

Kingsley, D. M (1994). The TGF-beta superfamily: new members, new receptors, and new genetic tests of function in different organisms. Genes Dev 8, 133-146.[Free Full Text]

Kintner, C. R. and Melton, D. A (1987). Expression of Xenopus N-CAM RNA in ectoderm is an early response to neural induction. Development 99, 311-325.[Abstract]

Kolm, P. J., Apekin, V. and Sive, H. L (1997). Xenopus hindbrain patterning requires retinoid signaling. Dev. Biol 192, 1-16.[Medline]

Kolm, P. J. and Sive, H. L (1995). Regulation of the Xenopus labial homeodomain genes, HoxA1 and HoxD1: activation by retinoids and peptide growth factors. Dev. Biol 167, 34-49.[Medline]

Krieg, P. A. and Melton, D. A (1984). Functional messenger RNAs are produced by SP6 in vitro transcription of cloned cDNAs. Nucleic Acids Res 12, 7057-7070.[Abstract/Free Full Text]

Kroll, K. L. and Amaya, E (1996). Transgenic Xenopus embryos from sperm nuclear transplantations reveal FGF signaling requirements during gastrulation. Development 122, 3173-3183.[Abstract]

La Bonne, C. and Whitman, M (1994). Mesoderm induction by activin requires FGF-mediated intracellular signals. Development 120, 463-472.[Abstract]

La Vallie, E. R., Di Blasio, E. A., Kovacic, S., Grant, K. L., Schendel, P. F. and McCoy, J. M (1993). A thioredoxin gene fusion expression system that circumvents inclusion body formation in the E. coli cytoplasm. Biotechnology (NY) 11, 187-193.[Medline]

Lamb, T. and Harland, R (1995). Fibroblast growth factor is a direct neural inducer, which combined with noggin generates anterior-posterior neural pattern. Development 121, 3627-3636.[Abstract]

Lemaire, P., Garrett, N. and Gurdon, J. B (1995). Expression cloning of Siamois, a Xenopus homeobox gene expressed in dorsal-vegetal cells of blastulae and able to induce a complete secondary axis. Cell 81, 85-94.[Medline]

Lu, Z., Di Blasio-Smith, E. A., Grant, K. L., Warne, N. W., La Vallie, E.R., Collins-Racie, L. A., Follettie, M. T., Williamson, M. J. and McCoy, J. M (1996). Histidine patch thioredoxins. Mutant forms of thioredoxin with metal chelating affinity that provide for convenient purifications of thioredoxin fusion proteins. J. Biol. Chem 271, 5059-5065.[Abstract/Free Full Text]

Lustig, K. D., Kroll, K., Sun, E., Ramos, R., Elmendorf, H. and Kirschner, M. W (1996). A Xenopus nodal-related gene that acts in synergy with noggin to induce complete secondary axis and notochord formation. Development 122, 3275-3282.[Abstract]

Lustig, K. D., Kroll, K. L., Sun, E. E. and Kirschner, M. W (1996). Expression cloning of a Xenopus T-related gene (Xombi) involved in mesodermal patterning and blastopore lip formation. Development 122, 4001-4012.[Abstract]

McGrew, L. L., Hoppler, S. and Moon, R. T (1997). Wnt and FGF pathways cooperatively pattern anteroposterior neural ectoderm in Xenopus. Mech. Dev 69, 105-114.[Medline]

Mohun, T. J., Brennan, S., Dathan, N., Fairman, S. and Gurdon, J. B (1984). Cell type-specific activation of actin genes in the early amphibian embryo. Nature 311, 716-721.[Medline]

Northrop, J. L. and Kimelman, D (1994). Dorsal-ventral differences in Xcad-3 expression in response to FGF-mediated induction in Xenopus. Dev. Biol 161, 490-503.[Medline]

Pannese, M., Polo, C., Andreazzoli, M., Vignali, R., Kablar, B., Barsacchi, G. and Boncinelli, E (1995). The Xenopus homologue of Otx2 is a maternal homeobox gene that demarcates and specifies anterior body regions. Development 121, 707-720.[Abstract]

Rehemtulla, A. and Kaufman, R. J (1992). Protein processing within the secretory pathway. Curr. Opin. Biotechnol 3, 560-565.[Medline]

Ruiz i Altaba, A. and Jessell, T. M (1992). Pintallavis, a gene expressed in the organizer and midline cells of frog embryos: involvement in the development of the neural axis. Development 116, 81-93.[Abstract]

Ryan, K., Garrett, N., Mitchell, A. and Gurdon, J. B (1996). Eomesodermin, a key early gene in Xenopus mesoderm differentiation. Cell 87, 989-1000.[Medline]

Saha, M. S. and Grainger, R. M (1992). A labile period in the determination of the anterior-posterior axis during early neural development in Xenopus. Neuron 8, 1003-1014.[Medline]

Sasai, Y., Lu, B., Piccolo, S. and De Robertis, E. M (1996). Endoderm induction by the organizer-secreted factors chordin and noggin in Xenopus animal caps. EMBO J 15, 4547-4555.[Medline]

Schlunegger, M. P., Cerletti, N., Cox, D. A., McMaster, G. K., Schmitz, A. and Grutter, M. G (1992). Crystallization and preliminary X-ray analysisof recombinant human transforming growth factor beta 2. FEBS Lett 303, 91-93.[Medline]

Schulte-Merker, S. and Smith, J. C (1995). Mesoderm formation in response to Brachyury requires FGF signalling. Curr. Biol 5, 62-67.[Medline]

Seleiro, E. A., Connolly, D. J. and Cooke, J (1996). Early developmental expression and experimental axis determination by the chicken Vg1 gene. Curr. Biol 6, 1476-1486.[Medline]

Shah, S. B., Skromne, I., Hume, C. R., Kessler, D. S., Lee, K. J., Stern, C. D. and Dodd, J (1997). Misexpression of chick Vg1 in the marginal zone induces primitive streak formation. Development 124, 5127-5138.[Abstract]

Sharpe, C. R., Fritz, A., De Robertis, E. M. and Gurdon, J. B (1987). A homeobox-containing marker of posterior neural differentiation shows the importance of predetermination in neural induction. Cell 50, 749-758.[Medline]

Sive, H. L. and Cheng, P. F (1991). Retinoic acid perturbs the expression of Xhox.lab genes and alters mesodermal determination in Xenopus laevis. GenesDev 5, 1321-1332.[Abstract/Free Full Text]

Sive, H. L., Hattori, K. and Weintraub, H (1989). Progressive determination during formation of the anteroposterior axis in Xenopus laevis. Cell 58, 171-180.[Medline]

Smith, J. C., Price, B. M., Green, J. B., 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, W. C., McKendry, R., Ribisi, S., Jr. and Harland, R. M (1995). A nodal-related gene defines a physical and functional domain within the Spemann organizer. Cell 82, 37-46.[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]

Song, J. and Slack, J. M (1996). XFGF-9: a new fibroblast growth factor from Xenopus embryos. Dev. Dynam 206, 427-436.[Medline]

Stennard, F., Carnac, G. and Gurdon, J. B (1996). The Xenopus T-box gene, Antipodean, encodes a vegetally localised maternal mRNA and can trigger mesoderm formation. Development 122, 4179-4188.[Abstract]

Suzuki, A., Thies, R. S., Yamaji, N., Song, J. J., Wozney, J. M., Murakami, K. and Ueno, N (1994). A truncated bone morphogenetic protein receptor affects dorsal-ventral patterning in the early Xenopus embryo. Proc. Natl Acad. Sci. USA 91, 10255-10259.[Abstract/Free Full Text]

Taira, M., Jamrich, M., Good, P. J. and Dawid, I. B (1992). The LIM domain-containing homeo box gene Xlim-1 is expressed specifically in the organizer region of Xenopus gastrula embryos. Genes Dev 6, 356-366.[Abstract/Free Full Text]

Thomsen, G., Woolf, T., Whitman, M., Sokol, S., Vaughan, 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]

Thomsen, G. H. and Melton, D. A (1993). Processed Vg1 protein is an axial mesoderm inducer in Xenopus. Cell 74, 433-441.[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]

von Heijne, G (1986). A new method for predicting signal sequence cleavage sites. Nucleic Acids Res 14, 4683-4690.[Abstract/Free Full Text]

Weeks, D. L. and Melton, D. A (1987). A maternal mRNA localized to the vegetal hemisphere in Xenopus eggs codes for a growth factor related to TGF-beta. Cell 51, 861-867.[Medline]

Zhang, J., Houston, D. W., King, M. L., Payne, C., Wylie, C. and Heasman, J (1998). The role of maternal VegT in establishing the primary germ layers in Xenopus embryos. Cell 94, 515-524.[Medline]

Zhang, J. and King, M. L (1996). Xenopus VegT RNA is localized to the vegetal cortex during oogenesis and encodes a novel T-box transcription factor involved in mesodermal patterning. Development 122, 4119-4129.[Abstract]

Zoltewicz, J. S. and Gerhart, J. C (1997). The Spemann organizer of Xenopus is patterned along its anteroposterior axis at the earliest gastrula stage. Dev. Biol 192, 482-491.[Medline]


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Development, January 12, 2000; 127(24): 5319 - 5329.
[Abstract] [PDF]


Home page
DevelopmentHome page
H Weber, C. Symes, M. Walmsley, A. Rodaway, and R. Patient
A role for GATA5 in Xenopus endoderm specification
Development, January 10, 2000; 127(20): 4345 - 4360.
[Abstract] [PDF]


Home page
DevelopmentHome page
S Faure, M. Lee, T Keller, P ten Dijke, and M Whitman
Endogenous patterns of TGFbeta superfamily signaling during early Xenopus development
Development, January 7, 2000; 127(13): 2917 - 2931.
[Abstract] [PDF]


Home page
DevelopmentHome page
K. Tremblay, P. Hoodless, E. Bikoff, and E. Robertson
Formation of the definitive endoderm in mouse is a Smad2-dependent process
Development, January 7, 2000; 127(14): 3079 - 3090.
[Abstract] [PDF]


Home page
DevelopmentHome page
W Lerchner, B. Latinkic, J. Remacle, D Huylebroeck, and J. Smith
Region-specific activation of the Xenopus brachyury promoter involves active repression in ectoderm and endoderm: a study using transgenic frog embryos
Development, January 6, 2000; 127(12): 2729 - 2739.
[Abstract] [PDF]


Home page
DevelopmentHome page
A. Cheng, B Thisse, C Thisse, and C. Wright
The lefty-related factor Xatv acts as a feedback inhibitor of nodal signaling in mesoderm induction and L-R axis development in xenopus
Development, January 3, 2000; 127(5): 1049 - 1061.
[Abstract] [PDF]


Home page
DevelopmentHome page
E Agius, M Oelgeschlager, O Wessely, C Kemp, and E. De Robertis
Endodermal Nodal-related signals and mesoderm induction in Xenopus
Development, January 3, 2000; 127(6): 1173 - 1183.
[Abstract] [PDF]


Home page
DevelopmentHome page
M Kofron, T Demel, J Xanthos, J Lohr, B Sun, H Sive, S Osada, C Wright, C Wylie, and J Heasman
Mesoderm induction in Xenopus is a zygotic event regulated by maternal VegT via TGFbeta growth factors
Development, January 12, 1999; 126(24): 5759 - 5770.
[Abstract] [PDF]


Home page
DevelopmentHome page
D Clements, R. Friday, and H. Woodland
Mode of action of VegT in mesoderm and endoderm formation
Development, January 11, 1999; 126(21): 4903 - 4911.
[Abstract] [PDF]


Home page
DevelopmentHome page
E. Casey, M Tada, L Fairclough, C. Wylie, J Heasman, and J. Smith
Bix4 is activated directly by VegT and mediates endoderm formation in Xenopus development
Development, January 10, 1999; 126(19): 4193 - 4200.
[Abstract] [PDF]


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