Nuclear beta-catenin is required to specify vegetal cell fates in the sea urchin embryo.
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D. McClay | J. Miller | M. Ferkowicz | C Y Logan | J R Miller | M J Ferkowicz | D R McClay | C. Logan | Jeffrey R. Miller | J. Miller
[1] J. Darnell,et al. Sequential expression of HNF-3β and HNF-3α by embryonic organizing centers: the dorsal lip/node, notochord and floor plate , 1993, Mechanisms of Development.
[2] F. Wilt,et al. The influence of cell interactions and tissue mass on differentiation of sea urchin mesomeres. , 1990, Development.
[3] E. Davidson,et al. Later embryogenesis: regulatory circuitry in morphogenetic fields. , 1993, Development.
[4] R. Angerer,et al. Characterization of a SpAN promoter sufficient to mediate correct spatial regulation along the animal-vegetal axis of the sea urchin embryo. , 1996, Developmental biology.
[5] W. Klein,et al. β-Catenin is essential for patterning the maternally specified animal-vegetal axis in the sea urchin embryo , 1998 .
[6] L. Larue,et al. Lack of beta-catenin affects mouse development at gastrulation. , 1995, Development.
[7] D. McClay,et al. The allocation of early blastomeres to the ectoderm and endoderm is variable in the sea urchin embryo. , 1997, Development.
[8] C. Larabell,et al. Establishment of the Dorso-ventral Axis in Xenopus Embryos Is Presaged by Early Asymmetries in β-Catenin That Are Modulated by the Wnt Signaling Pathway , 1997, The Journal of cell biology.
[9] E. Davidson,et al. A complete second gut induced by transplanted micromeres in the sea urchin embryo. , 1993, Science.
[10] D. McClay,et al. Characterization of the role of cadherin in regulating cell adhesion during sea urchin development. , 1997, Developmental biology.
[11] D. McClay. Embryo dissociation, cell isolation, and cell reassociation. , 1986, Methods in cell biology.
[12] R. Moon,et al. Induction of a secondary embryonic axis in zebrafish occurs following the overexpression of β-catenin , 1995, Mechanisms of Development.
[13] S. Yagi,et al. Localization of cytoplasmic determinants responsible for primary mesenchyme formation and gastrulation in the unfertilized egg of the sea urchin Hemicentrotus pulcherrimus , 1985 .
[14] R. Moon,et al. A beta-catenin/XTcf-3 complex binds to the siamois promoter to regulate dorsal axis specification in Xenopus. , 1997, Genes & development.
[15] SVEN HORSTADIUS,et al. THE MECHANICS OF SEA URCHIN DEVELOPMENT, STUDIED BY OPERATIVE METHODS , 1939 .
[16] D. McClay,et al. Identification and localization of a sea urchin Notch homologue: insights into vegetal plate regionalization and Notch receptor regulation. , 1997, Development.
[17] R. Nusse,et al. β-catenin: a key mediator of Wnt signaling , 1998 .
[18] T. Lepage,et al. GSK3beta/shaggy mediates patterning along the animal-vegetal axis of the sea urchin embryo. , 1998, Development.
[19] Konrad Basler,et al. pangolinencodes a Lef-1 homologue that acts downstream of Armadillo to transduce the Wingless signal in Drosophila , 1997, Nature.
[20] N. Satoh,et al. A sea urchin homologue of the chordate Brachyury (T) gene is expressed in the secondary mesenchyme founder cells. , 1995, Development.
[21] G. Schatten,et al. Molecular characterization and expression patterns of a B-type nuclear lamin during sea urchin embryogenesis. , 1995, Developmental biology.
[22] G. Wray,et al. Archenteron precursor cells can organize secondary axial structures in the sea urchin embryo. , 1997, Development.
[23] R. Summers,et al. Altering cell fates in sea urchin embryos by overexpressing SpOtx, an orthodenticle-related protein. , 1996, Development.
[24] M. Peifer. Cell adhesion and signal transduction: the Armadillo connection. , 1995, Trends in cell biology.
[25] C. Kintner. Regulation of embryonic cell adhesion by the cadherin cytoplasmic domain , 1992, Cell.
[26] P. Lemaire,et al. The vertebrate organizer: structure and molecules. , 1996, Trends in genetics : TIG.
[27] R. Angerer,et al. Multiple positive cis elements regulate the asymmetric expression of the SpHE gene along the sea urchin embryo animal-vegetal axis. , 1997, Developmental biology.
[28] R. Angerer,et al. Characterization of the SpHE promoter that is spatially regulated along the animal-vegetal axis of the sea urchin embryo. , 1995, Developmental biology.
[29] D. McClay,et al. Regulative capacity of the archenteron during gastrulation in the sea urchin. , 1996, Development.
[30] B. Livingston,et al. Range and stability of cell fate determination in isolated sea urchin blastomeres. , 1990, Development.
[31] James R. Woodgett,et al. Lithium inhibits glycogen synthase kinase-3 activity and mimics Wingless signalling in intact cells , 1996, Current Biology.
[32] D. McClay,et al. Changes in the pattern of adherens junction-associated beta-catenin accompany morphogenesis in the sea urchin embryo. , 1997, Developmental biology.
[33] D. McClay,et al. Skeletal pattern is specified autonomously by the primary mesenchyme cells in sea urchin embryos. , 1994, Developmental biology.
[34] M. Peifer,et al. Armadillo and dTCF: a marriage made in the nucleus. , 1997, Current opinion in genetics & development.
[35] D. McClay,et al. A hyaline layer protein that becomes localized to the oral ectoderm and foregut of sea urchin embryos. , 1990, Developmental biology.
[36] B. Livingston,et al. Lithium evokes expression of vegetal-specific molecules in the animal blastomeres of sea urchin embryos. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[37] Carmen R. Domingo,et al. Pintallavis, a gene expressed in the organizer and midline cells of frog embryos: involvement in the development of the neural axis. , 1992 .
[38] Sven Hörstadius,et al. Experimental embryology of echinoderms , 1973 .
[39] R. Moon,et al. The axis-inducing activity, stability, and subcellular distribution of beta-catenin is regulated in Xenopus embryos by glycogen synthase kinase 3. , 1996, Genes & development.
[40] R. Moon,et al. Analysis of the Signaling Activities of Localization Mutants of β-Catenin during Axis Specification in Xenopus , 1997, The Journal of cell biology.
[41] B. Gumbiner,et al. Binding to cadherins antagonizes the signaling activity of beta-catenin during axis formation in Xenopus , 1996, The Journal of cell biology.
[42] Hans Clevers,et al. Armadillo Coactivates Transcription Driven by the Product of the Drosophila Segment Polarity Gene dTCF , 1997, Cell.
[43] D. McClay,et al. Sequential expression of germ-layer specific molecules in the sea urchin embryo. , 1985, Developmental biology.
[44] Hans Clevers,et al. XTcf-3 Transcription Factor Mediates β-Catenin-Induced Axis Formation in Xenopus Embryos , 1996, Cell.
[45] K. Okazaki. Spicule Formation by Isolated Micromeres of the Sea Urchin Embryo , 1975 .
[46] F. Wilt. Determination and morphogenesis in the sea urchin embryo. , 1987, Development.
[47] R. Britten,et al. Macromere cell fates during sea urchin development. , 1991, Development.
[48] J. Heasman. Patterning the Xenopus blastula. , 1997, Development.
[49] R. Moon,et al. Signal transduction through beta-catenin and specification of cell fate during embryogenesis. , 1996, Genes & development.
[50] S. Orsulic,et al. An in vivo structure-function study of armadillo, the beta-catenin homologue, reveals both separate and overlapping regions of the protein required for cell adhesion and for wingless signaling , 1996, The Journal of cell biology.
[51] P. McCrea,et al. Overexpression of cadherins and underexpression of β-catenin inhibit dorsal mesoderm induction in early Xenopus embryos , 1994, Cell.
[52] R. Raff,et al. Early inductive interactions are involved in restricting cell fates of mesomeres in sea urchin embryos. , 1989, Developmental biology.
[53] R. Moon,et al. WNTs modulate cell fate and behavior during vertebrate development. , 1997, Trends in genetics : TIG.
[54] E. Davidson,et al. How embryos work: a comparative view of diverse modes of cell fate specification. , 1990, Development.
[55] C. Ghiglione,et al. Early gene expression along the animal-vegetal axis in sea urchin embryoids and grafted embryos. , 1996, Development.
[56] J. Klingensmith,et al. Signaling by wingless in Drosophila. , 1994, Developmental biology.
[57] P. S. Klein,et al. Activation of the Wnt signaling pathway: a molecular mechanism for lithium action. , 1997, Developmental biology.
[58] E. Davidson,et al. Micromeres are required for normal vegetal plate specification in sea urchin embryos. , 1995, Development.
[59] C. Ettensohn. Cell interactions and mesodermal cell fates in the sea urchin embryo. , 1992, Development (Cambridge, England). Supplement.
[60] S. Ruffins,et al. A fate map of the vegetal plate of the sea urchin (Lytechinus variegatus) mesenchyme blastula. , 1996, Development.
[61] F. Wilt,et al. Interactions of different vegetal cells with mesomeres during early stages of sea urchin development. , 1991, Development.
[62] E. Davidson,et al. Spatial expression of a forkhead homologue in the sea urchin embryo , 1996, Mechanisms of Development.
[63] E. Davidson. Lineage-specific gene expression and the regulative capacities of the sea urchin embryo: a proposed mechanism. , 1989, Development.
[64] R. McIsaac,et al. Altered cell fate in LiCl-treated sea urchin embryos. , 1991, Developmental Biology.
[65] E. Davidson,et al. Late Specification of Veg1Lineages to Endodermal Fate in the Sea Urchin Embryo , 1998 .
[66] K. Okazaki,et al. SPICULE FORMATION IN VITRO BY THE DESCENDANTS OF PRECOCIOUS MICROMERE FORMED AT THE 8‐CELL STAGE OF SEA URCHIN EMBRYO * , 1980, Development, growth & differentiation.
[67] P. McCrea,et al. Embryonic axis induction by the armadillo repeat domain of beta- catenin: evidence for intracellular signaling , 1995, The Journal of cell biology.
[68] E. Davidson,et al. LiCl perturbs ectodermal veg1 lineage allocations in Strongylocentrotus purpuratus embryos. , 1997, Developmental biology.
[69] E. Davidson,et al. Cell type specification during sea urchin development. , 1991, Trends in genetics : TIG.
[70] T. Lepage,et al. Cell‐autonomous expression and position‐dependent repression by Li+ of two zygotic genes during sea urchin early development. , 1993, The EMBO journal.
[71] J. Smith,et al. Expression of a xenopus homolog of Brachyury (T) is an immediate-early response to mesoderm induction , 1991, Cell.
[72] D. Melton,et al. A molecular mechanism for the effect of lithium on development. , 1996, Proceedings of the National Academy of Sciences of the United States of America.