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R. A. Randall, M. Howell, C. S. Page, A. Daly, P. A. Bates, and C. S. Hill
Recognition of Phosphorylated-Smad2-Containing Complexes by a Novel Smad Interaction Motif
Mol. Cell. Biol., February 1, 2004; 24(3): 1106 - 1121.
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BloodHome page
M. Schmerer and T. Evans
Primitive erythropoiesis is regulated by Smad-dependent signaling in postgastrulation mesoderm
Blood, November 1, 2003; 102(9): 3196 - 3205.
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J. Biol. Chem.Home page
S.-X. Ying, Z. J. Hussain, and Y. E. Zhang
Smurf1 Facilitates Myogenic Differentiation and Antagonizes the Bone Morphogenetic Protein-2-induced Osteoblast Conversion by Targeting Smad5 for Degradation
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J. Cell Biol.Home page
P. Rajan, D. M. Panchision, L. F. Newell, and R. D.G. McKay
BMPs signal alternately through a SMAD or FRAP-STAT pathway to regulate fate choice in CNS stem cells
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DevelopmentHome page
S. T. Dougan, R. M. Warga, D. A. Kane, A. F. Schier, and W. S. Talbot
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Proc. Natl. Acad. Sci. USAHome page
S. Sidi, C. Goutel, N. Peyrieras, and F. M. Rosa
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DevelopmentHome page
M. Howell, G. J. Inman, and C. S. Hill
A novel Xenopus Smad-interacting forkhead transcription factor (XFast-3) cooperates with XFast-1 in regulating gastrulation movements
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R. K. Moore, F. Otsuka, and S. Shimasaki
Molecular Basis of Bone Morphogenetic Protein-15 Signaling in Granulosa Cells
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Sci SignalHome page
F. M. Rosa
Cripto, a Multifunctional Partner in Signaling: Molecular Forms and Activities
Sci. Signal., November 12, 2002; 2002(158): pe47 - pe47.
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DevelopmentHome page
J. B. Xanthos, M. Kofron, Q. Tao, K. Schaible, C. Wylie, and J. Heasman
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Activation of Bone Morphogenetic Protein/Smad Signaling in Bronchial Epithelial Cells during Airway Inflammation
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G. J. Inman, F. J. Nicolas, J. F. Callahan, J. D. Harling, L. M. Gaster, A. D. Reith, N. J. Laping, and C. S. Hill
SB-431542 Is a Potent and Specific Inhibitor of Transforming Growth Factor-beta Superfamily Type I Activin Receptor-Like Kinase (ALK) Receptors ALK4, ALK5, and ALK7
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Genes Dev.Home page
D. Y.R. Stainier
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Y. Miyanaga, I. Torregroza, and T. Evans
A Maternal Smad Protein Regulates Early Embryonic Apoptosis in Xenopus laevis
Mol. Cell. Biol., March 1, 2002; 22(5): 1317 - 1328.
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DevelopmentHome page
P. M. Eimon and R. M. Harland
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Development, January 7, 2002; 129(13): 3089 - 3103.
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DevelopmentHome page
P.-Y. Bourillot, N. Garrett, and J. B. Gurdon
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Development, January 5, 2002; 129(9): 2167 - 2180.
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Development, January 1, 2002; 129(1): 37 - 52.
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Mol. Cell. Biol.Home page
K. Shimizu, P.-Y. Bourillot, S. J. Nielsen, A. M. Zorn, and J. B. Gurdon
Swift Is a Novel BRCT Domain Coactivator of Smad2 in Transforming Growth Factor {beta} Signaling
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DevelopmentHome page
K. Mintzer, M. Lee, G Runke, J Trout, M Whitman, and M. Mullins
Lost-a-fin encodes a type I BMP receptor, Alk8, acting maternally and zygotically in dorsoventral pattern formation
Development, January 3, 2001; 128(6): 859 - 869.
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J. Xanthos, M Kofron, C Wylie, and J Heasman
Maternal VegT is the initiator of a molecular network specifying endoderm in Xenopus laevis
Development, January 1, 2001; 128(2): 167 - 180.
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Ligand Binding and Functional Properties of Betaglycan, a Co-receptor of the Transforming Growth Factor-beta Superfamily. SPECIALIZED BINDING REGIONS FOR TRANSFORMING GROWTH FACTOR-beta AND INHIBIN A
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L. Ulloa and S. Tabibzadeh
Lefty Inhibits Receptor-regulated Smad Phosphorylation Induced by the Activated Transforming Growth Factor-beta Receptor
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