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 Sumanas, S.
Right arrow Articles by Ekker, S. C.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Sumanas, S.
Right arrow Articles by Ekker, S. C.
Bhanot, P., Brink, M., Samos, C. H., Hseih, J.-C., Wang, Y., Macke, J. P., Nathans, J. and Nusse, R (1996). A new member of the frizzled family from Drosophila functions as a Wingless receptor. Nature 382, 225-230.[Medline]

Bhat, K. M (1998). frizzled and frizzled 2 play a partially redundant role in wingless signaling and have similar requirements to wingless in neurogenesis. Cell 95, 1027-1036.[Medline]

Brannon, M., Gomperts, M., Sumoy, L., Moon, R. T. and Kimelman, D (1997). A beta-catenin/XTcf-3 complex binds to the siamois promoter to regulate dorsal axis specification in Xenopus. Genes Dev 11, 2359-2370.[Abstract/Free Full Text]

Cho, K. W., 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]

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 mesodermal patterning during embryogenesis. Development 111, 1045-1055.[Abstract/Free Full Text]

Christian, J. L. and Moon, R. T (1993). Interactions between Xwnt-8 and Spemann organizer signaling pathways generate dorsoventral pattern in the embryonic mesoderm of Xenopus. Genes Dev 7, 13-28.[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]

Darras, S., Marikawa, Y., Elinson, R. P. and Lemaire, P (1997). Animal and vegetal pole cells of early Xenopus embryos respond differently to maternal dorsal determinants: implications for the patterning of the organiser. Development 124, 4275-4286.[Abstract]

Deardorff, M. A., Tan, C., Conrad, L. J. and Klein, P. S (1998). Frizzled-8 is expressed in the Spemann organizer and plays a role in early morphogenesis. Development 125, 2687-2700.[Abstract]

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

Du, S. J., Purcell, S. M., Christian, J. L., McGrew, L. L. and Moon, R. T (1995). Identification of distinct classes and functional domains of Wnts through expression of wild-type and chimeric proteins in Xenopus embryos. Molec. Cell. Biol 15, 2625-2634.[Abstract]

Fan, M. J., Gruning, W., Walz, G. and Sokol, S. Y (1998). Wnt signaling andtranscriptional control of Siamois in Xenopus embryos. Proc. Natl Acad. Sci. USA 95, 5626-5631.[Abstract/Free Full Text]

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

Gurdon, J. B., Fairman, S., Mohun, T. J. and Brennan, S (1985). Activation of muscle-specific actin genes in Xenopus development by an induction between animal and vegetal cells of a blastula. Cell 41, 913-922.[Medline]

Harris, J., Honigberg, L., Robinson, N. and Kenyon, C (1996). Neuronal cell migration in C. elegans : regulation of Hox gene expression and cell position. Development 122, 3117-3131.[Abstract]

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]

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]

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

Herman, M. A. and Horvitz, H. R (1994). The Caenorhabitis elegans gene lin-44 controls the polarity of asymmetric cell divisions. Development 120, 1035-1047.[Abstract]

Hoppler, S., Brown, J. D. and Moon, R. T (1996). Expression of a dominant-negative Wnt blocks induction of MyoD in Xenopus embryos. Genes Dev 10, 2805-2817.[Abstract/Free Full Text]

Hopwood, N. D., Pluck, A. and Gurdon, J. B (1989). MyoD expression in the forming somites is an early response to mesoderm induction in Xenopus embryos. EMBO J 8, 3409-3417.[Medline]

Itoh, K., Tang, T. L., Neel, B. G. and Sokol, S. Y (1995). Specific modulation of ectodermal cell fates in Xenopus embryos by glycogen synthase kinase. Development 121, 3979-3988.[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]

Kennerdell, J. R. and Carthew, R. W (1998). Use of dsRNA-mediated genetic interference to demonstrate that frizzled and frizzled 2 act in the wingless pathway. Cell 95, 1017-1026.[Medline]

Kelly, G.M., Eib, D.W., and Moon, R.T (1991). Histological preparation of Xenopus laevis oocytes and embryos. In. Methods In Cell Biology 36, 389-417.[Medline]

Krasnow, R. E., Wong, L. L. and Adler P. N (1995). dishevelled is a component of the frizzled signaling pathway in Drosophila. Development 121, 4095-4102.[Abstract]

Krasnow R. E. and Adler P. N (1994). A single frizzled protein has a dual function in tissue polarity. Development 120, 1883-1893.[Abstract]

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

Larabell, C. A., Torres, M., Rowning, B. A., Yost, C., Miller, J. R., Wu, M., Kimelman, D. and Moon, R. T (1997). Establishment of the dorsoventral 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]

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]

Leyns, L., Bouwmeester, T., Kim, S.-H., Piccolo, S. and De Robertis, E. M (1997). Frzb-1 is a secreted antagonist of Wnt signaling expressed in the Spemann organizer. Cell 88, 747-756.[Medline]

Liu, P., Wakamiya, M., Albrecht, U., Behringer, R. R. and Bradley, A (1999). Requirement for Wnt3 in vertebrate axis formation. Nature Genetics 22, 361-365.[Medline]

McKendry, R., Hsu, S. C., Harland, R. M. and Grosschedl, R (1997). LEF-1/TCF proteins mediate wnt-inducible transcription from the Xenopus nodal-related 3 promoter. Dev. Biol 192, 420-431.[Medline]

Miller, J. R., Rowning, B. A., Larabell, C. A., Yang-Snyder, J. A., Bates, R. L. and Moon, R. T (1999). Establishment of the dorsal-ventral axis in Xenopus embryos coincides with the dorsal enrichment of dihevelled that is dependent on cortical rotation. J. Cell Biol 146, 427-437.[Abstract/Free Full Text]

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

Moon, R. T., Brown, J. D. and Torres, M (1997). WNTs modulate cell fate and behavior during vertebrate development. Trends Genet 13, 157-162.[Medline]

Moon, R. T., Campbell, R. M., Christian, J. L., McGrew, L. L., Shih, J. and Fraser, S (1993). Xwnt-5A: a maternal Wnt that affects morphogenetic movements after overexpression in embryos of Xenopuslaevis. Development 119, 97-111.[Abstract]

Muller, H., Samanta, R. and Wieschaus, E (1999). Wingless signaling in the Drosophila embryo: zygotic requirements and the role of the frizzled genes. Development 126, 577-586.[Abstract]

Nasevicius, A., Hyatt, T., Kim, H., Guttman, J., Walsh, E., Sumanas, S., Wang, Y. and Ekker, S. C (1998). Evidence for a frizzled-mediated wnt pathway required for zebrafish dorsal mesoderm formation. Development 125, 4283-4292.[Abstract]

Pierce, S. B. and Kimelman, D (1995). Regulation of Spemann organizer formation by the intracellular kinase Xgsk-3. Development 121, 755-765.[Abstract]

Pillemer, G., Yelin, R., Epstein, M., Gont, L., Frumkin, Y., Yisraeli, J. K., Steinbeisser, H. and Fainsod, A (1998). The Xcad-2 gene can provide a ventral signal independent of BMP-4. Mech. Dev 74, 133-143.[Medline]

Rocheleau, C. E., Downs, W. D., Lin, R., Wittmann, C., Bei, Y., Cha, Y.-H., Ali, M., Priess, J. R. and Mello, C. C (1997). Wnt signaling and an APC-related gene specify endoderm in early C. elegans embryos. Cell 90, 707-716.[Medline]

Sawa, H., Lobel, L. and Horvitz, H. R (1996). The Caenorhabditis elegans gene lin-17, which is required for certain asymmetric cell divisions, encodes a putative seven-transmembrane protein similar to the Drosophila frizzled protein. Genes Dev 10, 2189-2197.[Abstract/Free Full Text]

Scharf, S. R. and Gerhart, J. C (1983). Axis determination in eggs of Xenopus laevis: a critical period before first cleavage, identified by the common effects of cold, pressure and ultraviolet irradiation. Dev. Biol 99, 75-87.[Medline]

Schlesinger, A., Shelton, C. A., Maloof, J. N., Meneghini, M. and Bowerman, B (1999). Wnt pathway components orient a mitotic spindle in the early Caenorhabditis elegans embryo without requiring gene transcription in the responding cell. Genes Dev 13, 2028-38.[Abstract/Free Full Text]

Shi, D.-L., Goisset, C. and Boucaut, J.-C (1998). Expression of Xfz3, a Xenopus frizzled family member, is restricted to the early nervous system. Mechan. Dev 70, 35-47.[Medline]

Slusarski, D. C., Corces, V. G. and Moon, R. T (1997). Interaction of Wnt and a Frizzled homologue triggers G-protein-linked phosphatidylinositol signalling. Nature 390, 410-413.[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. Y (1996). Analysis of Dishevelled signaling pathways during Xenopus development. Current Biol 6, 1456-1467.[Medline]

Thorpe, C. J., Schlesinger, A., Clayton Carter, J. and Bowerman, B (1997). Wnt signaling polarizes an early C. elegans bBlastomere to distinguish endoderm from mesoderm. Cell 90, 695-705.[Medline]

Wang, S., Krinks, M., Lin, K., Luyten, F. P. and Moos Jr., M (1997). Frzb, a secreted protein expressed in the Spemann organizer, binds and inhibits Wnt-8. Cell 88, 757-766.[Medline]

Wang, Y., J.P., M., Abella, B. S., Andreasson, K., Worley, P., Gilbert, D. J., Copeland, N. G., Jenkins, N. A. and Nathans, J (1996). A large family of putative transmembrane receptors homologous to the product of the Drosphila tissue polarity gene frizzled. J. Biol. Chem 7, 1-9.[Free Full Text]

Wesley, C. S (1999). Notch and Wingless regulate expression of cuticle patterning genes. Mol. Cell Biol 19, 5743-5758.[Abstract/Free Full Text]

Wodarz, A. and Nusse, R (1998). Mechanisms of Wnt signaling in development. Annu. Rev. Cell Dev. Biol 14, 59-88.[Medline]

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

Yost, C., Farr, G. H., 3rd, Pierce, S. B., Ferkey, D. M., Chen, M. M. and Kimelman, D (1998). GBP, an inhibitor of GSK-3, is implicated in Xenopus development and oncogenesis. Cell 93, 1031-1041.[Medline]

Zeng, L., Fagotto, F., Zhang, T., Hsu, W., Vasicek, T. J., Perry, 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 signaling pathway that regulates embryonic axis formation. Cell 90, 181-192.[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]




This article has been cited by other articles:


Home page
DevelopmentHome page
F. M. Spagnoli and A. H. Brivanlou
The Gata5 target, TGIF2, defines the pancreatic region by modulating BMP signals within the endoderm
Development, February 1, 2008; 135(3): 451 - 461.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. Kofron, B. Birsoy, D. Houston, Q. Tao, C. Wylie, and J. Heasman
Wnt11/{beta}-catenin signaling in both oocytes and early embryos acts through LRP6-mediated regulation of axin
Development, February 1, 2007; 134(3): 503 - 513.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Biol.Home page
S. Witzel, V. Zimyanin, F. Carreira-Barbosa, M. Tada, and C.-P. Heisenberg
Wnt11 controls cell contact persistence by local accumulation of Frizzled 7 at the plasma membrane
J. Cell Biol., December 4, 2006; 175(5): 791 - 802.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
T. Nagano, S. Takehara, M. Takahashi, S. Aizawa, and A. Yamamoto
Shisa2 promotes the maturation of somitic precursors and transition to the segmental fate in Xenopus embryos
Development, December 1, 2006; 133(23): 4643 - 4654.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Biol.Home page
X. Chen and B. M. Gumbiner
Paraxial protocadherin mediates cell sorting and tissue morphogenesis by regulating C-cadherin adhesion activity
J. Cell Biol., July 17, 2006; 174(2): 301 - 313.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
K. M. Cadigan and Y. I. Liu
Wnt signaling: complexity at the surface
J. Cell Sci., February 1, 2006; 119(3): 395 - 402.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
C. Weaver and D. Kimelman
Move it or lose it: axis specification in Xenopus
Development, August 1, 2004; 131(15): 3491 - 3499.
[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
Genes Dev.Home page
R. Habas, I. B. Dawid, and X. He
Coactivation of Rac and Rho by Wnt/Frizzled signaling is required for vertebrate gastrulation
Genes & Dev., January 15, 2003; 17(2): 295 - 309.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. A. Deardorff, C. Tan, J.-P. Saint-Jeannet, and P. S. Klein
A role for frizzled 3 in neural crest development
Development, October 1, 2001; 128(19): 3655 - 3663.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
C. Tan, M. A. Deardorff, J.-P. Saint-Jeannet, J. Yang, A. Arzoumanian, and P. S. Klein
Kermit, a frizzled interacting protein, regulates frizzled 3 signaling in neural crest development
Development, October 1, 2001; 128(19): 3665 - 3674.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
T Ishikawa, Y Tamai, A. Zorn, H Yoshida, M. Seldin, S Nishikawa, and M. Taketo
Mouse Wnt receptor gene Fzd5 is essential for yolk sac and placental angiogenesis
Development, January 1, 2001; 128(1): 25 - 33.
[Abstract] [PDF]


Home page
J. Cell Sci.Home page
J Zhurinsky, M Shtutman, and A Ben-Ze'ev
Plakoglobin and beta-catenin: protein interactions, regulation and biological roles
J. Cell Sci., January 9, 2000; 113(18): 3127 - 3139.
[Abstract] [PDF]


Home page
DevelopmentHome page
A Djiane, J Riou, M Umbhauer, J Boucaut, and D Shi
Role of frizzled 7 in the regulation of convergent extension movements during gastrulation in Xenopus laevis
Development, January 7, 2000; 127(14): 3091 - 3100.
[Abstract] [PDF]


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 Sumanas, S.
Right arrow Articles by Ekker, S. C.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Sumanas, S.
Right arrow Articles by Ekker, S. C.