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Xenopus Brachyury
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title
Xenopus Brachyury
(English)
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author
James Cuthbert Smith
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stated in
ORCID Public Data File 2021
author name string
J.C. Smith
series ordinal
1
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V. Cunliffe
series ordinal
2
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M-A.J. O'Reilly
series ordinal
3
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S. Schulte-Merker
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4
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M. Umbhauer
series ordinal
5
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publication date
December 1995
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volume
6
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issue
6
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page(s)
405-410
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cites work
The T genes in embryogenesis.
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Cloning of the T gene required in mesoderm formation in the mouse
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Induction of muscle pioneers and floor plate is distinguished by the zebrafish no tail mutation
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Rescue of the tail defect of Brachyury mice
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The Brachyury gene encodes a novel DNA binding protein
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Expression pattern of the mouse T gene and its role in mesoderm formation
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Expression of a xenopus homolog of Brachyury (T) is an immediate-early response to mesoderm induction
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reference URL
https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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The chick Brachyury gene: developmental expression pattern and response to axial induction by localized activin.
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Responses of embryonic Xenopus cells to activin and FGF are separated by multiple dose thresholds and correspond to distinct axes of the mesoderm.
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The formation of the mesoderm in urodelean amphibians : I. Induction by the endoderm
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Inducing factors in Xenopus early embryos
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The frog prince-ss: a molecular formula for dorsoventral patterning in Xenopus.
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Activins are expressed early in Xenopus embryogenesis and can induce axial mesoderm and anterior structures
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Identification of a potent Xenopus mesoderm-inducing factor as a homologue of activin A.
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Activin-like factor from a Xenopus laevis cell line responsible for mesoderm induction
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Mesodermal induction in early amphibian embryos by activin A (erythroid differentiation factor).
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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7 January 2021
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Processed Vg1 protein is an axial mesoderm inducer in Xenopus
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Secretion and mesoderm-inducing activity of the TGF-beta-related domain of Xenopus Vg1.
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A maternal mRNA localized to the vegetal hemisphere in Xenopus eggs codes for a growth factor related to TGF-beta
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Identification and cloning of localized maternal RNAs from Xenopus eggs
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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7 January 2021
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Mesoderm induction in early Xenopus embryos by heparin-binding growth factors.
1 reference
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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7 January 2021
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Synergistic induction of mesoderm by FGF and TGF-beta and the identification of an mRNA coding for FGF in the early Xenopus embryo.
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Studies with a Xenopus BMP receptor suggest that ventral mesoderm-inducing signals override dorsal signals in vivo
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7 January 2021
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Involvement of p21ras in Xenopus mesoderm induction
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7 January 2021
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Involvement of the MAP kinase cascade in Xenopus mesoderm induction.
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7 January 2021
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Mesoderm induction in Xenopus caused by activation of MAP kinase
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7 January 2021
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Fibroblast growth factor, but not activin, is a potent activator of mitogen-activated protein kinase in Xenopus explants
1 reference
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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7 January 2021
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Raf-1 kinase is essential for early Xenopus development and mediates the induction of mesoderm by FGF
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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7 January 2021
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Expression of a dominant negative mutant of the FGF receptor disrupts mesoderm formation in Xenopus embryos
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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7 January 2021
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A truncated activin receptor inhibits mesoderm induction and formation of axial structures in Xenopus embryos
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Mesoderm formation in response to Brachyury requires FGF signalling.
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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7 January 2021
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Ectopic mesoderm formation in Xenopus embryos caused by widespread expression of a Brachyury homologue.
1 reference
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reference URL
https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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7 January 2021
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Conversion of a mesodermalizing molecule, the Xenopus Brachyury gene, into a neuralizing factor
1 reference
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Crossref
reference URL
https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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7 January 2021
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Secreted noggin protein mimics the Spemann organizer in dorsalizing Xenopus mesoderm
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Molecular nature of Spemann's organizer: the role of the Xenopus homeobox gene goosecoid
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eFGF regulates Xbra expression during Xenopus gastrulation.
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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Indirect autoregulation of a homeotic Drosophila gene mediated by extracellular signaling
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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A community effect in animal development
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https://api.crossref.org/works/10.1016%2FS1044-5781%2806%2980004-6
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7 January 2021
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DOI
10.1016/S1044-5781(06)80004-6
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