Antagonism of Nodal signaling by BMP/Smad5 prevents ectopic primitive streak formation in the mouse amnion
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D. Huylebroeck | C. Verfaillie | A. Camus | L. Umans | A. Zwijsen | S. M. C. de Sousa Lopes | Mariya P. Dobreva | F. Cornelis | Paulo N. G. Pereira | Elke Maas | I. Moya | S. D. S. de Sousa Lopes
[1] C. Mummery,et al. Stalk cell phenotype depends on integration of Notch and Smad1/5 signaling cascades. , 2012, Developmental cell.
[2] E. Lacy,et al. Anterior visceral endoderm directs ventral morphogenesis and placement of head and heart via BMP2 expression. , 2011, Developmental cell.
[3] D. Huylebroeck,et al. Amnion formation in the mouse embryo: the single amniochorionic fold model , 2011, BMC Developmental Biology.
[4] Milena B. Furtado,et al. Loss of Cited2 causes congenital heart disease by perturbing left-right patterning of the body axis. , 2011, Human molecular genetics.
[5] John E. Reid,et al. Nodal cis-regulatory elements reveal epiblast and primitive endoderm heterogeneity in the peri-implantation mouse embryo. , 2011, Developmental biology.
[6] F. Nevens,et al. Human Embryonic and Rat Adult Stem Cells with Primitive Endoderm-Like Phenotype Can Be Fated to Definitive Endoderm, and Finally Hepatocyte-Like Cells , 2010, PloS one.
[7] M. Kuehn,et al. Nodal Signaling Recruits the Histone Demethylase Jmjd3 to Counteract Polycomb-Mediated Repression at Target Genes , 2010, Science Signaling.
[8] Teng Fei,et al. Regulation of embryonic stem cell self-renewal and differentiation by TGF-β family signaling , 2010, Science China Life Sciences.
[9] T. Magnuson,et al. Nodal Signaling Regulates the Bone Morphogenic Protein Pluripotency Pathway in Mouse Embryonic Stem Cells* , 2010, The Journal of Biological Chemistry.
[10] J. Deprest,et al. On the origin of amniotic stem cells: of mice and men. , 2010, The International journal of developmental biology.
[11] H. Hamada,et al. Removal of maternal retinoic acid by embryonic CYP26 is required for correct Nodal expression during early embryonic patterning. , 2009, Genes & development.
[12] Kwang Youl Lee,et al. PKA-Mediated stabilization of FoxH1 negatively regulates ERα activity , 2009, Molecules and cells.
[13] A. Ishimura,et al. Man1, an inner nuclear membrane protein, regulates left–right axis formation by controlling nodal signaling in a node‐independent manner , 2008, Developmental dynamics : an official publication of the American Association of Anatomists.
[14] Milena B. Furtado,et al. BMP/SMAD1 signaling sets a threshold for the left/right pathway in lateral plate mesoderm and limits availability of SMAD4. , 2008, Genes & development.
[15] E. Willems,et al. Patterning of mouse embryonic stem cell-derived pan-mesoderm by Activin A/Nodal and Bmp4 signaling requires Fibroblast Growth Factor activity. , 2008, Differentiation; research in biological diversity.
[16] Ryan M. Anderson,et al. BMP antagonism is required in both the node and lateral plate mesoderm for mammalian left-right axis establishment , 2008, Development.
[17] U. Hofmann,et al. Pivotal roles for eomesodermin during axis formation, epithelium-to-mesenchyme transition and endoderm specification in the mouse , 2008, Development.
[18] F. Rentzsch,et al. Zebrafish Bmp4 regulates left-right asymmetry at two distinct developmental time points. , 2007, Developmental biology.
[19] D. Loebel,et al. Gene function in mouse embryogenesis: get set for gastrulation , 2007, Nature Reviews Genetics.
[20] M. Shen. Nodal signaling: developmental roles and regulation , 2007, Development.
[21] E. Bosman,et al. Smad5 determines murine amnion fate through the control of bone morphogenetic protein expression and signalling levels , 2006, Development.
[22] D. Constam,et al. The nodal precursor acting via activin receptors induces mesoderm by maintaining a source of its convertases and BMP4. , 2006, Developmental cell.
[23] E. Bikoff,et al. Dose-dependent Smad1, Smad5 and Smad8 signaling in the early mouse embryo. , 2006, Developmental biology.
[24] Roles and regulation , 2006, Veterinary Record.
[25] D. Constam,et al. Nodal specifies embryonic visceral endoderm and sustains pluripotent cells in the epiblast before overt axial patterning , 2006, Development.
[26] A. Meng,et al. Nodal signals pattern vertebrate embryos , 2006, Cellular and Molecular Life Sciences CMLS.
[27] C. Mummery,et al. Spatio-temporal activation of Smad1 and Smad5 in vivo: monitoring transcriptional activity of Smad proteins , 2004, Journal of Cell Science.
[28] Shuji Takahashi,et al. Xantivin suppresses the activity of EGF-CFC genes to regulate nodal signaling. , 2004, The International journal of developmental biology.
[29] Michael M Shen,et al. Two Modes by which Lefty Proteins Inhibit Nodal Signaling , 2004, Current Biology.
[30] Kate Grieve,et al. Initiation of Gastrulation in the Mouse Embryo Is Preceded by an Apparent Shift in the Orientation of the Anterior-Posterior Axis , 2004, Current Biology.
[31] Alexander F Schier,et al. Lefty Blocks a Subset of TGFβ Signals by Antagonizing EGF-CFC Coreceptors , 2004, PLoS biology.
[32] D. Norris,et al. Cell fate decisions within the mouse organizer are governed by graded Nodal signals. , 2003, Genes & development.
[33] J. Massagué,et al. Mechanisms of TGF-β Signaling from Cell Membrane to the Nucleus , 2003, Cell.
[34] S. Dupont,et al. Mapping Wnt/β-catenin signaling during mouse development and in colorectal tumors , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[35] D. Reinberg,et al. Inhibition of Excess Nodal Signaling During Mouse Gastrulation by the Transcriptional Corepressor DRAP1 , 2002, Science.
[36] R. Behringer,et al. Nodal antagonists in the anterior visceral endoderm prevent the formation of multiple primitive streaks. , 2002, Developmental cell.
[37] J. Brennan,et al. The Foxh1-dependent autoregulatory enhancer controls the level of Nodal signals in the mouse embryo. , 2002, Development.
[38] Toshihiko Ogura,et al. Inhibition of Nodal signalling by Lefty mediated through interaction with common receptors and efficient diffusion , 2002, Genes to cells : devoted to molecular & cellular mechanisms.
[39] C. Deng,et al. Targeted mutagenesis of Smad1 reveals an essential role in chorioallantoic fusion. , 2001, Developmental biology.
[40] E. Robertson,et al. Mouse embryos lacking Smad1 signals display defects in extra-embryonic tissues and germ cell formation. , 2001, Development.
[41] N. Ueno,et al. Suppression of head formation by Xmsx-1 through the inhibition of intracellular nodal signaling. , 2001, Development.
[42] Y. Saijoh,et al. The transcription factor FoxH1 (FAST) mediates Nodal signaling during anterior-posterior patterning and node formation in the mouse. , 2001, Genes & development.
[43] J. Rossant,et al. FoxH1 (Fast) functions to specify the anterior primitive streak in the mouse. , 2001, Genes & development.
[44] C. Disteche,et al. The amnionless gene, essential for mouse gastrulation, encodes a visceral-endoderm–specific protein with an extracellular cysteine-rich domain , 2001, Nature Genetics.
[45] S. Aizawa,et al. Visceral endoderm mediates forebrain development by suppressing posteriorizing signals. , 2000, Developmental biology.
[46] Y. Saijoh,et al. Activin/nodal responsiveness and asymmetric expression of a Xenopus nodal-related gene converge on a FAST-regulated module in intron 1. , 2000, Development.
[47] R. Baron,et al. Mouse smad8 phosphorylation downstream of BMP receptors ALK-2, ALK-3, and ALK-6 induces its association with Smad4 and transcriptional activity. , 2000, Biochemical and biophysical research communications.
[48] H. Vogel,et al. Smad5 is essential for left-right asymmetry in mice. , 2000, Developmental biology.
[49] Ryan M. Anderson,et al. The organizer factors Chordin and Noggin are required for mouse forebrain development , 2000, Nature.
[50] Minoru Watanabe,et al. FAST-1 is a key maternal effector of mesoderm inducers in the early Xenopus embryo. , 1999, Development.
[51] W. Talbot,et al. Mouse Lefty2 and zebrafish antivin are feedback inhibitors of nodal signaling during vertebrate gastrulation. , 1999, Molecular cell.
[52] Allan Bradley,et al. Requirement for Wnt3 in vertebrate axis formation , 1999, Nature Genetics.
[53] M. Matzuk,et al. Smad5 knockout mice die at mid-gestation due to multiple embryonic and extraembryonic defects. , 1999, Development.
[54] C. Deng,et al. Angiogenesis defects and mesenchymal apoptosis in mice lacking SMAD5. , 1999, Development.
[55] J. Rossant,et al. Expression of the T-box gene Eomesodermin during early mouse development , 1999, Mechanisms of Development.
[56] B. Hogan,et al. Bmp4 is required for the generation of primordial germ cells in the mouse embryo. , 1999, Genes & development.
[57] Hailan Zhang,et al. An Early Phase of Embryonic Dlx5 Expression Defines the Rostral Boundary of the Neural Plate , 1998, The Journal of Neuroscience.
[58] A. Wynshaw-Boris,et al. Cripto is required for correct orientation of the anterior–posterior axis in the mouse embryo , 1998, Nature.
[59] T. Bouwmeester,et al. Cerberus-like is a secreted factor with neuralizing activity expressed in the anterior primitive endoderm of the mouse gastrula , 1997, Mechanisms of Development.
[60] S. Kuhara,et al. Two closely‐related left‐right asymmetrically expressed genes, lefty‐1 and lefty‐2: their distinct expression domains, chromosomal linkage and direct neuralizing activity in Xenopus embryos , 1997, Genes to cells : devoted to molecular & cellular mechanisms.
[61] P. Dijke,et al. DPC4 (SMAD4) mediates transforming growth factor-β1 (TGF-β1) induced growth inhibition and transcriptional response in breast tumour cells , 1997, Oncogene.
[62] J. Collignon,et al. nodal expression in the primitive endoderm is required for specification of the anterior axis during mouse gastrulation. , 1997, Development.
[63] C. Niehrs,et al. The C-terminal domain of Mad-like signal transducers is sufficient for biological activity in the Xenopus embryo and transcriptional activation , 1997, Mechanisms of Development.
[64] R. Beddington,et al. Anterior primitive endoderm may be responsible for patterning the anterior neural plate in the mouse embryo , 1996, Current Biology.
[65] A. Bradley,et al. Mice deficient for BMP2 are nonviable and have defects in amnion/chorion and cardiac development. , 1996, Development.
[66] B. Hogan,et al. Bone morphogenetic protein-4 is required for mesoderm formation and patterning in the mouse. , 1995, Genes & development.
[67] G. Martin,et al. The mouse Fgf8 gene encodes a family of polypeptides and is expressed in regions that direct outgrowth and patterning in the developing embryo. , 1995, Development.
[68] R. Beddington,et al. Whole-mount in situ hybridization in the mouse embryo: gene expression in three dimensions. , 1993, Trends in genetics : TIG.
[69] Ken W. Y. Cho,et al. Gastrulation in the mouse: The role of the homeobox gene goosecoid , 1992, Cell.
[70] A. Poustka,et al. Cloning of the T gene required in mesoderm formation in the mouse , 1990, Nature.
[71] R. Randall,et al. Transforming Growth Factor (cid:1) Inhibits Bone Morphogenetic Protein-Induced Transcription through Novel Phosphorylated Smad1/5-Smad3 Complexes , 2022 .
[72] J. Massagué,et al. Mechanisms of TGF-beta signaling from cell membrane to the nucleus. , 2003, Cell.
[73] K. Miyazono,et al. Smad6 inhibits signalling by the TGF-beta superfamily. , 1997, Nature.
[74] R. Randall,et al. Transforming Growth Factor (cid:2) -Induced Smad1/5 Phosphorylation in Epithelial Cells Is Mediated by Novel Receptor Complexes and Is Essential for Anchorage-Independent Growth (cid:1) † , 2022 .