spacer gif spacer gif spacer gif spacer gif spacer gif
 QUICK SEARCH:   [advanced]


spacer gif
     Home     Help     Feedback     Subscriptions     Archive     Search     Table of Contents    


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Heasman, J.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Heasman, J.
Atack, J. R., Cook, S. M., Watt, A. P., Fletcher, S. R. and Ragan, C. I (1993). In vitro and in vivo inhibition of inositol monophosphatase by the bisphosphonate L-690,330. J. Neurochem 60, 652-658.[Medline]

Ault, K. T., Durmwicz, G., Galione, A., Harger, P. L. and Busa, W. B (1996). Modulation of Xenopus embryo mesoderm-specific gene expression and dorsoanterior patterning by receptors that activate the phosphatidylinositol cycle signal transduction pathway. Development 122, 2033-2041.[Abstract]

Bearer, E (1994). Distribution of Xrel in the early Xenopus embryo: a cytoplasmic and nuclear gradient. Eur. J. Cell Biol 63, 255-268.[Medline]

Behrens, J., von Kries, J. P., Kuhl, M., Bruhn, L., Wedlich, D., Grosschedl, R. and Birchmeier, W (1996). Functional interaction of beta-catenin with the transcription factor LEF-1. Nature 382, 638-642.[Medline]

Bejsovec, A. and Martinez-Arias, A (1991). Roles of wingless in patterning the larval epidermis of Drosophila. Development 113, 471-485.[Abstract]

Bienz, M (1994). Homeotic genes and positional signaling in the Drosophila viscera. Trends Genet 10, 22-36.[Medline]

Bouwmeester, T., Kim, S., Sasai, Y., Robertis, B. L. D. and deRobertisE. M (1996). Cerberus is a head-inducing secreted factor expressed in the anterior endoderm of Spemann's organizer. Nature 382, 595-601.[Medline]

Brannon, M. and KimelmanD (1996). Rapid communication: Activation of siamois by the Wnt pathway. Dev. Biol 180, 344-347.[Medline]

Busa, W. B. and Gimlich, R. L (1989). Lithium-induced teratogenesis in frog embryos prevented by a polyphosphoinositide cycle intermediate or a diacylglycerol analog. Dev. Biol 132, 315-324.[Medline]

Carnac, G., Kodjabachian, L., Gurdon, J. B. and Lemaire, P (1996). The homeobox gene Siamois is a target of the Wnt dorsalisation pathway and triggers organiser activity in the absence of mesoderm. Development 122, 3055-3065.[Abstract]

Chang, C., Wilson, P. A., Mathews, L. S. and Hemmati-Brivanlou, A (1997). A Xenopus type 1 activin receptor mediates the mesodermal but not neural specification during embryogenesis. Development 124, 827-837.[Abstract]

Chen, X., Rubock M. A. and Whitman, M (1996). A transcriptional partner for MAD proteins in TGF-beta signalling. Nature 383, 691-696.[Medline]

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

Cox, R. T., Kirkpatrick,C. and Peifer,M (1996). Armadillo is required for adherens junction assembly, cell polarity, and morphogenesis during Drosophila embryogenesis. J. Cell Biol 134, 133-148.[Abstract/Free Full Text]

Cui, Y., Brown, J. D., Moon, R. T. and Christian, J. L (1995). Xwnt -8b: a maternally expressed Xenopus Wnt gene with a potential role in establishing the dorsoventral axis. Development 121, 2177-2186.[Abstract]

Dagle, J. M., Weeks, D. L. and Walder, J. A (1991). Pathways of degradation and mechanism of action of antisense oligonucleotides in Xenopus laevis embryos. Antisense Res Dev 1, 11-20.[Medline]

Dale, L., Howes,G., Price, B. M. J. and Smith, J. C (1992). Bone morphogenetic protein 4:a ventralizing factor in early Xenopus development. Development 115, 573-585.[Abstract]

Dale, L. and Slack, J. M. W (1987). Regional specification within the mesoderm of early embryos of Xenopus laevis. Development 100, 279-295.[Abstract/Free Full Text]

Dash, P., Lotan, I., Knapp, M., Kandel, E. R. and Goelet,P (1987). Selective elimination of mRNAs in vivo :complimentary oligonucleotides promote RNA degradation by an RNaseH-like activity. Proc. Natl. Acad. Sci. USA 84, 7896-7900.[Abstract/Free Full Text]

Dawid, I. B (1994). Intercellular Signaling and Gene Regulation during Early Embryogenesis of Xenopus laevis . J. Biol. Chem._Fb_269,_Fb_deRobertis, E. M. and Sasai,Y. (1996). A common plan for dorsoventral patterning in Bilateria. Nature 380, 37-40.

Diaz-Benjumea, F. J. and Cohen,S. M (1994). Wingless acts through the shaggy/zeste-white 3 kinase to direct dorsal-ventral axis formation in the Drosophila leg. Development 120, 1661-1670.[Abstract]

DiNardo, S., Sher, E., Heemskerk-Jongens, J., Kassis J. A. and O'Farrell, P. H (1988). Two-tiered regulation of statially patterned engrailed gene expression during Drosophila embryogenesis. Nature 332, 604-609.[Medline]

Dominguez, I., Itoh K. and Sokol,S. Y (1995). Role of glycogen synthase kinase 3beta as a negative regulator of dorsoventral axis formation in early Xenopus embryos. Proc. Natl Acad. Sci. USA 92, 8498-8502.[Abstract/Free Full Text]

Dosch, R., Gawantka, V., Delius, H., Blumenstock, C. and Niehrs, C (1997). Bmp-4 acts as a morphogen in dorsoventral patterning in Xenopus. Development 124, 2325-2334.[Abstract]

Elinson, R. P. and Pasceri, P (1989). Two UV sensitive targets in dorso-anterior specification of frog embryos. Development 106, 511-518.[Abstract]

Fagotto, F., Funayama, N., Gluck, U. and Gumbiner, B (1996). Binding to cadherins antagonizes the signalling activity ofcatenin during axis formation in Xenopus. J. Cell Biol 132, 1105-1114.[Abstract/Free Full Text]

Fagotto, F., Guger, K. and Gumbiner, B. M (1997). Induction of the primary dorsalizing center in Xenopus by the Wnt/GSK/beta-catenin signaling pathway, but not by Vg1, Activin or Noggin. Development 124, 453-460.[Abstract]

Fainsod, A., Steinbeisser, H. and deRobertis,E. M (1994). On the function of BMP-4 in patterning the marginal zone of the Xenopus embryo. EMBO J 13, 5015-5025.[Medline]

Fan, M. J. and Sokol, S. Y (1997). A role for siamois in Spemann organizer formation. Development 124, 2581-2589.[Abstract]

Ferguson, E. L. and Anderson,K. V (1992). Decapentaplegic acts as a morphogen to organize dorsal-ventral pattern in the Drosophila embryo. Cell 71, 451-461.[Medline]

Ferguson, E. L. and Anderson,K. V (1992). Localized enhancement and repression of the activity of the TGF-beta family member, decapentaplegic, is necessary for dorsal-ventral pattern formation in the Drosophila embryo. Development 114, 583-597.[Abstract]

Forristal, C., Pondell, M., Chen L. and King, M. L (1995). Patterns of localisation and cytoskeletal association of two vegetally localised RNAs, Vg1 and Xcat-2. Development 121, 201-208.[Abstract]

Fujisue, M., Kobayakawa, Y. and Yamana,K (1993). Occurence of dorsal axis-inducing activity around the vegetal pole of an uncleaved Xenopus egg and displacement to the equatorial region by cortical rotation. Development 118, 163-170.[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]

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 embryonic dorsal development. Development 107, 37-51.

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

Gimlich, R. L. and Gerhart,J. C (1984). Early cellular interactions promote embryonic axis formation in Xenopus laevis. Dev. Biol 104, 117-130.[Medline]

Godsave, S. F. and Slack,J. M. W (1991). Single cell analysis of mesoderm induction in the Xenopus embryo. Development 111, 523-530.[Abstract]

Graff, J. M., Bansal, A. and Melton,D. A (1996). Xenopus Mad proteins transduce distinct subsets of signals for the TGF-beta superfamily. Cell 85, 479-487.[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]

Grant, P. and Wacaster,J. F (1972). The amphibian grey crescent \320 A site of developmental information?. Dev. Biol 28, 454-471.[Medline]

Gurdon, J. B., Mohun, T. J., Fairman, S. and Brennan,S (1985). All components required for the eventual activation of muscle-specific actin genes are localized in the subequatorial region of the uncleaved amphibian egg. Proc. Natl. Acad. Sci. USA 82, 139-143.[Abstract/Free Full Text]

Hawley, S. H. B., Wunnenberg-Stapleton, K. C., Hashimoto, C., Laurent, M. N., Watabe, T., Blumberg, B. W. and Cho,K. W. Y (1995). Disruption of BMP signals in embryonic Xenopus ectoderm leads to direct neural induction. Genes Dev 9, 2923-2935.[Abstract/Free Full Text]

Hayashi, S., Rubinfeld, B., Souza, B., Polakis, P., Wieschaus, E. and Levine, A. J (1997). A Drosophila homolog of the tumor supressor gene adenomatous polyposis coli down-regulates beta-catenin, but its zygotic expression is not essential for the regulation of Armadillo. Proc. Natl. Acad. Sci. USA 94, 242-247.[Abstract/Free Full Text]

He, X., Saint-Jeannet, J.-P., Woodgett, J. R., Varmus, H. E. and Dawid, I. B (1995). Glycogen synthase kinase-3 and dorsoventral patterning in Xenopus embryos. Nature 374, 617-622.[Medline]

He, X., Saint-Jeannet, J. P., Wang, Y., Nathans, J., Dawid, I. and Varmus, H (1997). A member of the Frizzled protein family mediating axis induction by Wnt-5A. Science 275, 1652-1654.[Abstract/Free Full Text]

Heasman, J., Crawford, A., Goldstone, K., Garner-Hamrick, P. Gumbiner, B., McCrea, P., Kintner, C., Noro, C. Y. and WylieC (1994). Overexpression of cadherins and underexpression ofcatenin inhibit dorsal mesoderm induction in early Xenopus embryos. Cell 79, 791-803.[Medline]

Heasman, J., Ginsberg, D., Geiger, B. Goldstone, K., Pratt, T., Yoshida-Noro, C. and C. Wylie (1994). A functional test for maternally inherited cadherin in Xenopus shows its importance in cell adhesion at the blastula stage. Development 120, 49-57.[Abstract]

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

Hemmati-Brivanlou, A. and Thomsen,G. H (1995). Ventral mesodermal patterning in Xenopus embryos: expression patterns and activities of BMP-2 and BMP-4. Dev. Genetics 17, 78-89.[Medline]

Holowacz, T. and Elinson, R. P (1995). Properties of the dorsal activity found in the vegetal cortical cytoplasm of Xenopus eggs. Development 121, 2789-2798.[Abstract]

Holwill, S., Heasman, J., Crawley, C. and Wylie,C. C (1987). Axis and germ line deficiencies caused by u. v irradiation of Xenopus oocytes cultured in vitro. Development 100, 735-743.[Abstract/Free Full Text]

Hoppler, S. and Bienz, M (1995). Two different thresholds of wingless signaling with distinct developmental consequences in the Drosophila midgut. EMBO J 14, 5016-5026.[Medline]

Hoschuetzky, H., Aberle, H. H. and Kemler,R (1994). catenin mediates the interaction of the cadherin-catenin complex with epidermal growth factor receptor. J. Cell Biol 127, 1375-1380.[Abstract/Free Full Text]

Houliston, E (1994). Microtubule translocation and polymerisation during cortical rotation in Xenopus eggs. Development 120, 1213-1220.[Abstract]

Hyatt, B. A., Lohr, J. L. and Yost,J (1996). Initiation of vertebrate left-right axis formation by maternal Vg1. Nature 384, 62-65.[Medline]

Jones, C. M., Lyons, K. M. Lapan, P. M., Wright, C. V. E. and Hogan,B. M. L (1992). DVR-4 (bone morphogenetic protein 4) as a posterior ventralizing factor in Xenopus mesoderm induction. Development 115, 639-647.[Abstract]

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]

Kanai, Y., Ochiai, T., Shibata, T., Oyama, S. Ushijima, S., Akimoto S. and Hirohashi,S (1995). c-erbB-2 gene product associates with catenins in human cancer cells. Biochem. Biophys. Res. Comm 208, 1067-1072.[Medline]

Kao, K. R., Masui, Y. and Elinson,R. P (1986). Lithium induced respecification of pattern in Xenopus laevis embryos. Nature 322, 371-373.

Kessler, D. S. and Melton,D. A (1994). Vertebrate embryonic induction: mesodermal and neural patterning. Science 266, 596-604.[Abstract/Free Full Text]

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

Klein, P. S. and Melton, D. A (1996). A molecular mechanism for the effect of lithium on development. Proc. Natl. Acad. Sci. USA 93, 8455-8459.[Abstract/Free Full Text]

Kofron, M., Spagnuolo, A., Klymkowsky, M., Wylie, C. and Heasman,J (1997). The roles of maternal alpha-catenin and plakoglobin in the early Xenopus embryo. Development 124, 1553-1560.[Abstract]

Korinek, V., Barker, N., Morin, P. J., Wichen, D. v., Weger, R. d., Kinzler, K. W., Vogelstein, B. and Clevers,H (1997). Constitutive transcriptional activation by a beta-catenin-Tcf complex in APC/ colon carcinoma. Science 275, 1784-1787.[Abstract/Free Full Text]

Koster, M., Plessow, S., Clement, J. H., Lorenz, A., Tiedemann H. and Knochel,W (1991). Bone Morphogenic Protein 4 (BMP4), a member of the TGF-beta family, in early embryos of Xenopus laevis : an analysis of mesoderm inducing activity. Mech. Dev 33, 191-200.[Medline]

Ku, M. and Melton, D. A (1993). Xwnt-11 , a maternally expressed Xenopus Wnt gene. Development 119, 1161-1173.[Abstract]

Ladher, R., Mohun, T., Smith J. C. and Snape,A (1996). Xom :, a Xenopus homeobox gene that mediates the early effects of BMP-4. Development 122, 2385-2394.[Abstract]

Larabell, C. A., Torres, M., Rowning, B. A., Yost, C., Miller, J., Wu, R. M., Kimelman, D. and Moon, R. T (1997). Establishment of the dorso-ventral axis in Xenopus embryos is presaged by early asymmetries in beta-catenin that are modulated by the Wnt signaling pathway. J. Cell Biol 136, 1123-1136.[Abstract/Free Full Text]

Leguelle, R. Paris, J., Couturier, A., Roghi, C. and Philippe, M (1991). Cloning by differential screening of a Xenopus cDNA that encodes a kinesin-related protein. Mol. Cell Biol 11, 3395-3398.[Abstract/Free Full Text]

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]

Lemaire, P. and Gurdon, J. B (1994). A role for cytoplasmic determinants in mesoderm patterning: cell-autonomous activation of the goosecoid and Xwnt-8 genes along the dorsoventral axis of early Xenopus embryos. Development 120, 1191-1199.[Abstract]

Lemaire, P. and Kodjabachian, L (1996). The vertebrate organizer: structure and molecules. Trends Genet 12, 525-531.[Medline]

Liu, F., Ventura, F., Doody J. and Massague,J (1995). Human type II receptor for bone morphogenic proteins (BMPs): extension of the two-kinase receptor model to the BMPs. Mol. Cell. Biol 15, 3479-3486.[Abstract]

Lustig, K., 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]

Maeno, M., Ong, R. C., Suzuki, A., Ueno, N. and Kung,H (1994). A truncated bone morphogenic protein-4 receptor alters the fate of ventral mesoderm to dorsal mesoderm: the roles of animal pole tissue in the development of ventral mesoderm. Proc. Natl. Acad. Sci. USA 91, 10260-10264.[Abstract/Free Full Text]

Malacinski, G. M., Allis, C. D. and Chung,H. M (1974). Correction of developmental abnormalities resulting from localized ultra-violet irradiation of an amphibian egg. J. Exp. Zool 189, 249-254.[Medline]

Martinez-Arias, A., Baker, N. and Ingham, P. W (1988). Role of segment polarity genes in the definition and maintenance of cell states in the Drosophila embryo. Development 103, 153-170.

Massague, J (1996). TGFsignalling: receptors, transducers and Mad proteins. Cell 85, 947-950.[Medline]

Mead, P., Brivanlou, I., Kelley, C. and Zon, L (1996). BMP-4-responsive regulation of dorsal-ventral patterning by the homebox protein Mix. 1. Nature 382, 357-360.[Medline]

Molenaar, M., van der Wetering, M., Oosterwegel, M., Perterson-Maduro, J., Godsave, S., Korinek, V., Roose, J., Destree, O. and Clevers, H (1996). XTcf-3 transcription factor mediates-catenin-induced axis formation in Xenopus embryos. Cell 86, 391-399.[Medline]

Morata, G. and Lawrence,P. A (1977). The development of wingless , a homeotic mutation of Drosophila. Dev. Biol 56, 227-240.[Medline]

Munemitsu, S., Souza, B., Muller, O., Albert, I., Rubenfeld, B. and Polakis, P (1994). The APC gene product associates with microtubules in vivo and promotes their assembly in vitro. Cancer Res 54, 3676-3681.[Abstract/Free Full Text]

Nakamura, O.,Takasaki, H. and Mizohata,T (1970). Differentiation during cleavage in Xenopus laevis : Acquisition of self-differentiation capacity of the dorsal marginal zone. Proc. Japan Acad 46, 694-699.

Nishimatsu, S., Suzuki, A., Shoda, A., Murakami, K. and Ueno N (1992). Genes for bone morphogenetic proteins are differentially transcribed in early amphibian embryos. Biochem. Biophys. Res. Comm 186, 1487-1495.[Medline]

Nusse, R (1997). A versatile transcriptional effector of wingless signaling. Cell 89, 321-323.[Medline]

Onichtchouk, D., Gawantka, V., Dosch, R., Delius, H., Hirschfeld, K., Blumenstock, C. and Niehrs,C (1996). The Xvent-2 homeobox gene is part of the Bmp-4 signaling pathway controlling dorsoventral patterning of Xenopus mesoderm. Development 122, 3045-3053.[Abstract]

Ozawa, M., Baribault, H. and Kemler, R (1989). The cytoplasmic domain of the cell adhesion molecule uvomorulin associates with three independent proteins structurally related in different species. EMBO J 8, 1711-1717.[Medline]

Pai, L. M., Orsulic S., Bejsovec, A. and Peifer, M (1997). Negative regulation of armadillo, a wingless effector in Drosophila. Development 124, 2255-2266.[Abstract]

Papalopulu, N. and Kintner, C (1996). A Xenopus gene, Xbr-1 defines a novel class of homeobox genes and is expressed in the dorsal ciliary margin of the eye. Dev. Biol 174, 104-114.[Medline]

Papkoff, J., Rubinfeld, B., Schryver, B. and Polakis,P (1996). Wnt-1 regulates free pools of catenins and stabilizes APC-catenin complexes. Mol. Cell Biol 16, 2128-2134.[Abstract]

Peifer, M (1993). The product of the Drosophila segment polarity gene armadillo is part of a multi-protein complex resembling the vertebrate adherens junction. J. Cell Sci 105, 993-1000.[Abstract]

Peifer, M., McCrea, P., Green, K. J., Wieschaus, E. and Gumbiner,B (1992). The vertebrate adhesive junction proteins-catenin and plakoglobin and the Drosophila segment polarity gene armadillo form a multigene family with similar properties. J. Cell Biol 118, 681-692.[Abstract/Free Full Text]

Phillips, R. G. and Whittle,J. R. S (1993). Wingless expression mediates determination of peripheral nervous system elements in late stages of Drosophila wing disc development. Development 118, 427-438.[Abstract]

Piccolo, S., Sasai, Y., Lu, B. and deRobertis,E. M (1996). Dorsoventral patterning in Xenopus : Inhibition of ventral signals by direct binding of chordin to BMP-4. Cell 86, 589-598.[Medline]

Pierce, S. B. and Kimelman, D (1996). Overexpression of Xgsk-3 disrupts anterior ectodermal patterning in Xenopus. Dev. Biol 175, 256-264.[Medline]

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

Robbie, E., Peterson, M., Amaya, E. and Musci,T (1995). Temporal regulation of the Xenopus FGF receptor in development: a translation inhibitory element in the 3' untranslated region. Development 121, 1775-1785.[Abstract]

Rubinfeld, B., Albert, I., Porfiri, E., Fiol, C., Munemitsu, S. and Polakis,P (1996). Binding of GSK3to the APC- catenin complex and regulation of complex assembly. Science 272, 1023-1026.[Abstract]

Rusch, J. and Levine,M (1996). Threshold responses to the dorsal regulatory gradient and the subdivision of primary tissue territories in the Drosophila embryo. Curr. Opin. Genet. Dev 6, 416-423.[Medline]

Sakai, M (1996). The vegetal determinants required for the Spemann organizer move equatorially during the first cell cycle. Development 122, 2207-2214.[Abstract]

Sasai, Y., Lu, B., Steinbeisser, H., Geissert, D., Gont L. K. and deRobertis,E. M (1994). Xenopus chordin: A novel dorsalizing factor activated by Organizer-specific homeobox genes. Cell 79, 779-790.[Medline]

Schmidt, J. E., von Dassow, G. and Kimelman,D (1996). Regulation of dorso-ventral patterning: the ventralizing affects of the novel Xenopus homeobox gene, Vox. Development 122, 1711-1721.[Abstract]

Schneider, S., Steinbeisser, H., Warga, R. M. and Hausen,P (1996). Beta-catenin translocation into nuclei demarcates the dorsalizing centers of frog and fish embryos. Mech. Dev 56, 191-198.

Schulte-Merker, S., Smith, J. C. and Dale,L (1994). Effects of truncated activin and FGF receptors and of follistatin on the inducing activities of BVg1 and activin: does activin play a role in mesoderm induction?. EMBO J 13, 3533-3541.[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., Dale, L. and Smith, J. C (1984). Analysis of embryonic induction by using cell lineage markers. Phil. Trans. R. Soc. Lond. B 307, 331-336.[Medline]

Smith, J (1989). Mesoderm induction and mesoderm-inducing factors in early amphibian development. Development 105, 665-677.[Free Full Text]

Smith, J. C., Dale, L. and Slack, J. M. W (1985). Cell lineage labels and region-specific markers in the analysis of inductive interactions. J. Embryol. Exp. Morphol 89, 317-331.

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., Price, B. M. J., Nimmen, K. V. and Huylebroeck,D (1990). Identification of a potent Xenopus mesoderm-inducing factor as a homologue of activin A. Nature 345, 729-731.[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, K. J., Levy, D. B., Maupin, P., Pollard, T. D., Vogelstein, B. and Kinzler,K. W (1994). Wild-type but not mutant APC associates with the microtubule cytoskeleton. Cancer Res 54, 3672-3675.[Abstract/Free Full Text]

Smith, W. C. and Harland,R. M (1991). Injected Xwnt-8 RNA acts early in Xenopus embryos to promote formation of a vegetal dorsalizing centre. 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 organiser in Xenopus embryos. Cell 70, 828-840.

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

Snape, A., Wylie, C. C., Smith J. C. and Heasman,J (1987). Changes in the states of commitment of single animal pole blastomeres of Xenopus. Dev. Biol 119, 503-510.[Medline]

Sokol, S. Y (1996). Analysis of Dishevelled signaling pathways during Xenopus development. Curr. Biol 6, 1456-1467.[Medline]

Sokol, S. Y., Klingensmith, J., Perrimon N. and Itoh,K (1995). Dorsalizing and neuralizing properties of Xdsh , a maternally expressed Xenopus homologue of dishevelled. Development 121, 1637-1647.[Abstract]

Stambolic, V., Reul, L. and Woodgett,J. R (1996). Lithium inhibits glycogen synthase kinase-3 activity and mimics wingless signalling in intact cells. Curr. Biol 6, 1664-1668.[Medline]

Steinbeisser, H., Fainsod, A. C., Niehrs, C., Sasai Y. and deRobertis,E. M (1995). The role of gsc and BMP-4 in dorsal-ventral patterning of the marginal zone in Xenopus : a loss-of-function study using antisense RNA. EMBO J 14, 5230-5243.[Medline]

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

Suzuki, A.,Thier, R. S., Yamaji, N., Song, J. M., 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]

Tao, Y., Edwards, R. A., Tubb, B., Wang, S., Bryan, J. and McCrea,P (1996). catenin associates with the actin-bundling protein fascin in a non-cadherin complex. J. Cell Biol 134, 1271-1281.[Abstract/Free Full Text]

tenDijke, P., Yamashita, H. Ichijo, Franzen, H. P., Laiho,M., Miyazono, K. and Helden,C. H (1994). Characterization of type I receptors for transforming growth factor-and activin. Science 264, 101-104.[Abstract/Free Full Text]

tenDijke, P., Yamashita, H., Sampath, T. K., Reddi, A. H., Estevez, M., Riddle, D. L., Ichijo, H., Helden, C. H. and Miyazono K (1994). Identification of type I receptors for osteogenic protein-1 and bone morphogenic protein-4. J. Biol. Chem 269, 16985-16988.[Abstract/Free Full Text]

Thomsen, G. H. and Melton,D. A (1993). Processed Vg1 Protein Is an Axial Mesoderm Inducer in Xenopus. Cell 74, 433-441.[Medline]

Tidman-Ault, C., Dirksen, M. L. and Jamrich,M (1996). A novel homeobox gene PV. 1 mediates induction of ventral mesoderm in Xenopus embryos. Proc Natl. Acad. Sci. USA 93, 6415-6420.[Abstract/Free Full Text]

van derWetering, M., Cavallo, R., Dooijes, D., van Beest, M., van Es, J., Loureiro,J., Ypma, A., Hursh, D., Jones, T., Bejsovec, A., Peifer, M., Mortin, M., & Clevers, H (1997). Armadillo coactivates transcription driven by the product of the Drosophila segment polarity gene dTCF. Cell 88, 789-799.[Medline]

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

Vincent, J. P., Scharf, S. R. and Gerhart,J. C (1987). Subcortical rotation in Xenopus eggs: A preliminary study of its mechanochemical basis. Cell Motil. Cytoskel 8, 143-154.[Medline]

Vize, P. D (1996). DNA sequences mediating the transcriptional response of the Mix. 2 homeobox gene to mesoderm induction. Dev. Biol 177, 226-231.[Medline]

Vleminckx, K., Wong, E., Guger, K., Rubinfeld, B., Polakis, P. and Gumbiner, B. M (1997). Adenomatous Polyposis Coli tumor suppressor protein has signaling activity in Xenopus laevis embryos resulting in the induction of an ectopic dorsoanterior axis. J. Cell Biol 136, 411-420.[Abstract/Free Full Text]

Vodicka, M. A. and Gerhart,J. C (1995). Blastomere derivation and domains of gene expression in the Spemann Organizer of Xenopus laevis. Development 121, 3505-3518.[Abstract]

Watabe, T., Kim, S., Candia, A., Rothbacher, U., Hashimoto, C., Inoue, K. and Cho,K. W. Y (1995). Molecular mechanisms of Spemann's organizer formation: conserved growth factor synergy between Xenopus and mouse. Genes Dev 9, 3038-3050.[Abstract/Free Full Text]

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

Wharton, K. A., Ray, R. P. and Gelbart, W. M (1993). An activity gradient of decapentaplegic is necessary for the specification of dorsal pattern elements in the Drosophila embryo. Development 117, 807-822.[Abstract]

Wylie, C., Kofron, M. Payne, C., Anderson, R. M. Hosobuchi, M., Joseph, E. and Heasman, J (1996). Maternal beta-catenin establishes a \324dorsal signal' in early Xenopus embryos. Development 122, 2987-2996.[Abstract]

Wylie, C. C., Snape, A., Heasman, J. and Smith, J. C (1987). Vegetal pole cells and their commitment to form endoderm in Xenopus. Dev. Biol 119, 496-502.[Medline]

Yamashita, H., tenDijke, P., Huylebroeck, D., Sampath, T. K., Andries, M., Smith, J. C., Helden, C. H. and Miyazono,K (1995). Osteogenic protein-1 binds to activin type II receptors and induces certain activin-like effects. J. Cell Biol 130, 217-226.[Abstract/Free Full Text]

Yang-Snyder, J., Miller, J. R., Brown, J. D., Lai C.-J. and Moon,R. T (1996). A frizzled homolog functions in a vertebrate Wnt signaling pathway. Curr. Biol 6, 1302-1306.[Medline]

Yu, X., Hoppler, S., Eresh, S. and Bienz, M (1996). Decapentaplegic , a target gene of the wingless signaling pathway in the Drosophila midgut. Development 122, 849-858.[Abstract]

Yuge, M., Kobayakawa, Y., Fujisue, M. and Yamana,K (1990). A cytoplasmic determinant for dorsal axis formation in an early embryo of Xenopus laevis. Development 110, 1051-1056.[Abstract/Free Full Text]

Zeng, L., Fagotto, F., Zhang, T., Hsu, W., Vasicek, T. J., Perry 111, W. L., Lee, J. J., Tilghman, S. M., Gumbiner, B. M. and Constantini, F (1997). The mouse fused locus encodes Axin, an inhibitor of the Wnt signalling pathway that regulates embryonic axis formation. Cell 90, 181-192.[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 mesoderm patterning. Development 122, 4119-4129.[Abstract]

Zimmerman, L. B., Jesus-Escobar, J. M. D. and HarlandR. M (1996). The Spemann Organizer signal noggin binds and inactivates bone morphogenic protein 4. Cell 86, 599-606.[Medline]




This article has been cited by other articles:


Home page
DevelopmentHome page
C. Collart, K. Verschueren, A. Rana, J. C. Smith, and D. Huylebroeck
The novel Smad-interacting protein Smicl regulates Chordin expression in the Xenopus embryo
Development, October 15, 2005; 132(20): 4575 - 4586.
[Abstract] [Full Text] [PDF]


Home page
Genome ResHome page
E. Chiao, J. Leonard, K. Dickinson, and J. C. Baker
High-throughput functional screen of mouse gastrula cDNA libraries reveals new components of endoderm and mesoderm specification
Genome Res., January 1, 2005; 15(1): 44 - 53.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
F. C. Wardle and J. C. Smith
Refinement of gene expression patterns in the early Xenopus embryo
Development, October 1, 2004; 131(19): 4687 - 4696.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
H.-T. Tseng, R. Shah, and M. Jamrich
Function and regulation of FoxF1 during Xenopus gut development
Development, August 1, 2004; 131(15): 3637 - 3647.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
D. Sinner, S. Rankin, M. Lee, and A. M. Zorn
Sox17 and {beta}-catenin cooperate to regulate the transcription of endodermal genes
Development, July 1, 2004; 131(13): 3069 - 3080.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
K. Katsumoto, T. Arikawa, J.-y. Doi, H. Fujii, S.-i. Nishimatsu, and M. Sakai
Cytoplasmic and molecular reconstruction of Xenopus embryos: synergy of dorsalizing and endo-mesodermalizing determinants drives early axial patterning
Development, March 1, 2004; 131(5): 1135 - 1144.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
J. Yang, J. Wu, C. Tan, and P. S. Klein
PP2A:B56{epsilon} is required for Wnt/{beta}-catenin signaling during embryonic development
Development, December 1, 2003; 130(23): 5569 - 5578.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
D. W. Houston and C. Wylie
The Xenopus LIM-homeodomain protein Xlim5 regulates the differential adhesion properties of early ectoderm cells
Development, June 15, 2003; 130(12): 2695 - 2704.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
S. T. Dougan, R. M. Warga, D. A. Kane, A. F. Schier, and W. S. Talbot
The role of the zebrafish nodal-related genes squint and cyclops in patterning of mesendoderm
Development, May 1, 2003; 130(9): 1837 - 1851.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
E. Bell, I. Munoz-Sanjuan, C. R. Altmann, A. Vonica, and A. H. Brivanlou
Cell fate specification and competence by Coco, a maternal BMP, TGF{beta} and Wnt inhibitor
Development, April 1, 2003; 130(7): 1381 - 1389.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
S. Sidi, C. Goutel, N. Peyrieras, and F. M. Rosa
Maternal induction of ventral fate by zebrafish radar
PNAS, March 18, 2003; 100(6): 3315 - 3320.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
J. Yang, C. Tan, R. S. Darken, P. A. Wilson, and P. S. Klein
{beta}-Catenin/Tcf-regulated transcription prior to the midblastula transition
Development, March 14, 2003; 129(24): 5743 - 5752.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
R. J. White, B. I. Sun, H. L. Sive, and J. C. Smith
Direct and indirect regulation of derriere, a Xenopus mesoderm-inducing factor, by VegT
Development, March 12, 2003; 129(20): 4867 - 4876.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. Polli and E. Amaya
A study of mesoderm patterning through the analysis of the regulation of Xmyf-5 expression
Development, March 8, 2003; 129(12): 2917 - 2927.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. E. Fisher, H. V. Isaacs, and M. E. Pownall
eFGF is required for activation of XmyoD expression in the myogenic cell lineage of Xenopus laevis
Development, March 5, 2003; 129(6): 1307 - 1315.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
B. Ciruna, G. Weidinger, H. Knaut, B. Thisse, C. Thisse, E. Raz, and A. F. Schier
Production of maternal-zygotic mutant zebrafish by germ-line replacement
PNAS, November 12, 2002; 99(23): 14919 - 14924.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
K. H. Falchuk, J. M. Contin, T. S. Dziedzic, Z. Feng, T. C. French, G. J. Heffron, and M. Montorzi
A role for biliverdin IXalpha in dorsal axis development of Xenopus laevis embryos
PNAS, January 8, 2002; 99(1): 251 - 256.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
A. Schohl and F. Fagotto
{beta}-catenin, MAPK and Smad signaling during early Xenopus development
Development, January 1, 2002; 129(1): 37 - 52.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
I. Skromne and C. D. Stern
Interactions between Wnt and Vg1 signalling pathways initiate primitive streak formation in the chick embryo
Development, August 1, 2001; 128(15): 2915 - 2927.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
T. S. Yamamoto, C. Takagi, A. C. Hyodo, and N. Ueno
Suppression of head formation by Xmsx-1 through the inhibition of intracellular nodal signaling
Development, July 15, 2001; 128(14): 2769 - 2779.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
S. Mohanty, S. Lee, N. Yadava, M. J. Dealy, R. S. Johnson, and R. A. Firtel
Regulated protein degradation controls PKA function and cell-type differentiation in Dictyostelium
Genes & Dev., June 1, 2001; 15(11): 1435 - 1448.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
O. Wessely and E. M. De Robertis
The Xenopus homologue of Bicaudal-C is a localized maternal mRNA that can induce endoderm formation
Development, May 15, 2000; 127(10): 2053 - 2062.
[Abstract] [PDF]


Home page
J. Cell Biol.Home page
G. H. Farr , III, D. M. Ferkey, C. Yost, S. B. Pierce, C. Weaver, and D. Kimelman
Interaction among GSK-3, GBP, Axin, and APC in Xenopus Axis Specification
J. Cell Biol., February 21, 2000; 148(4): 691 - 702.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Biol.Home page
J. Huelsken, R. Vogel, V. Brinkmann, B. Erdmann, C. Birchmeier, and W. Birchmeier
Requirement for {beta}-Catenin in Anterior-Posterior Axis Formation in Mice
J. Cell Biol., February 7, 2000; 148(3): 567 - 578.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
I. Stancheva and R. R. Meehan
Transient depletion of xDnmt1 leads to premature gene activation in Xenopus embryos
Genes & Dev., February 1, 2000; 14(3): 313 - 327.
[Abstract] [Full Text]


Home page
DevelopmentHome page
S Takahashi, C Yokota, K Takano, K Tanegashima, Y Onuma, J Goto, and M Asashima
Two novel nodal-related genes initiate early inductive events in Xenopus Nieuwkoop center
Development, January 12, 2000; 127(24): 5319 - 5329.
[Abstract] [PDF]


Home page
DevelopmentHome page
G. Kim, A Yamada, and H Nishida
An FGF signal from endoderm and localized factors in the posterior-vegetal egg cytoplasm pattern the mesodermal tissues in the ascidian embryo
Development, January 7, 2000; 127(13): 2853 - 2862.
[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
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
O Cleaver, D. Seufert, and P. Krieg
Endoderm patterning by the notochord: development of the hypochord in Xenopus
Development, January 2, 2000; 127(4): 869 - 879.
[Abstract] [PDF]


Home page
J. Neurosci.Home page
Y. Kato, Y. Shi, and X. He
Neuralization of the Xenopus Embryo by Inhibition of p300/ CREB-Binding Protein Function
J. Neurosci., November 1, 1999; 19(21): 9364 - 9373.
[Abstract] [Full Text] [PDF]


Home page
Mol. Cell. Biol.Home page
C. M. Hedgepeth, M. A. Deardorff, K. Rankin, and P. S. Klein
Regulation of Glycogen Synthase Kinase 3beta and Downstream Wnt Signaling by Axin
Mol. Cell. Biol., October 1, 1999; 19(10): 7147 - 7157.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
C. Liu, Y. Kato, Z. Zhang, V. M. Do, B. A. Yankner, and X. He
beta -Trcp couples beta -catenin phosphorylation-degradation and regulates Xenopus axis formation
PNAS, May 25, 1999; 96(11): 6273 - 6278.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
N. Masuyama, H. Hanafusa, M. Kusakabe, H. Shibuya, and E. Nishida
Identification of Two Smad4 Proteins in Xenopus. THEIR COMMON AND DISTINCT PROPERTIES
J. Biol. Chem., April 23, 1999; 274(17): 12163 - 12170.
[Abstract] [Full Text] [PDF]


Home page
Mol. Cell. Biol.Home page
M. B. Dat