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Summary Anatomy Item Literature (6290) Expression Attributions Wiki
XB-ANAT-475

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Syndecan-4 regulates non-canonical Wnt signalling and is essential for convergent and extension movements in Xenopus embryos., Muñoz R., Nat Cell Biol. May 1, 2006; 8 (5): 492-500.


XNF-ATc3 affects neural convergent extension., Borchers A., Development. May 1, 2006; 133 (9): 1745-55.          


Early, H+-V-ATPase-dependent proton flux is necessary for consistent left-right patterning of non-mammalian vertebrates., Adams DS., Development. May 1, 2006; 133 (9): 1657-71.              


FGF8 spliceforms mediate early mesoderm and posterior neural tissue formation in Xenopus., Fletcher RB., Development. May 1, 2006; 133 (9): 1703-14.            


Tes regulates neural crest migration and axial elongation in Xenopus., Dingwell KS., Dev Biol. May 1, 2006; 293 (1): 252-67.                          


Probing the kinetics of membrane-mediated helix folding., Tucker MJ., J Phys Chem B. April 20, 2006; 110 (15): 8105-9.


The RNA-binding protein, Vg1RBP, is required for pancreatic fate specification., Spagnoli FM., Dev Biol. April 15, 2006; 292 (2): 442-56.                      


Conserved regulatory elements establish the dynamic expression of Rpx/HesxI in early vertebrate development., Chou SJ., Dev Biol. April 15, 2006; 292 (2): 533-45.  


Zebrafish Staufen1 and Staufen2 are required for the survival and migration of primordial germ cells., Ramasamy S., Dev Biol. April 15, 2006; 292 (2): 393-406.


Xenopus embryos lacking specific isoforms of the corepressor SMRT develop abnormal heads., Malartre M., Dev Biol. April 15, 2006; 292 (2): 333-43.                    


A novel Cripto-related protein reveals an essential role for EGF-CFCs in Nodal signalling in Xenopus embryos., Dorey K., Dev Biol. April 15, 2006; 292 (2): 303-16.  


Mxi1 is essential for neurogenesis in Xenopus and acts by bridging the pan-neural and proneural genes., Klisch TJ., Dev Biol. April 15, 2006; 292 (2): 470-85.                


Ectodermally derived steel/stem cell factor functions non-cell autonomously during primitive erythropoiesis in Xenopus., Goldman DC., Blood. April 15, 2006; 107 (8): 3114-21.


PR130 is a modulator of the Wnt-signaling cascade that counters repression of the antagonist Naked cuticle., Creyghton MP., Proc Natl Acad Sci U S A. April 4, 2006; 103 (14): 5397-402.        


Predicted disease susceptibility in a Panamanian amphibian assemblage based on skin peptide defenses., Woodhams DC., J Wildl Dis. April 1, 2006; 42 (2): 207-18.


Transgenic analysis of the medaka mesp-b enhancer in somitogenesis., Terasaki H., Dev Growth Differ. April 1, 2006; 48 (3): 153-68.


Left-right lineage analysis of the embryonic Xenopus heart reveals a novel framework linking congenital cardiac defects and laterality disease., Ramsdell AF., Development. April 1, 2006; 133 (7): 1399-410.                    


Studies of pigment transfer between Xenopus laevis melanophores and fibroblasts in vitro and in vivo., Aspengren S., Pigment Cell Res. April 1, 2006; 19 (2): 136-45.


Migrating anterior mesoderm cells and intercalating trunk mesoderm cells have distinct responses to Rho and Rac during Xenopus gastrulation., Ren R., Dev Dyn. April 1, 2006; 235 (4): 1090-9.


Expression of Xenopus laevis Lhx2 during eye development and evidence for divergent expression among vertebrates., Viczian AS., Dev Dyn. April 1, 2006; 235 (4): 1133-41.                  


Analysis of scleraxis and dermo-1 genes in a regenerating limb of Xenopus laevis., Satoh A., Dev Dyn. April 1, 2006; 235 (4): 1065-73.      


Neuronal leucine-rich repeat 6 (XlNLRR-6) is required for late lens and retina development in Xenopus laevis., Wolfe AD., Dev Dyn. April 1, 2006; 235 (4): 1027-41.          


Cloning and developmental expression of WSTF during Xenopus laevis embryogenesis., Cus R., Gene Expr Patterns. April 1, 2006; 6 (4): 340-6.    


Expression of p27BBP/eIF6 is highly modulated during Xenopus laevis embryogenesis., Vaccaro MC., Mol Reprod Dev. April 1, 2006; 73 (4): 482-90.


Effect of osmotic stress on expression of a putative facilitative urea transporter in the kidney and urinary bladder of the marine toad, Bufo marinus., Konno N., J Exp Biol. April 1, 2006; 209 (Pt 7): 1207-16.


Apical-basal polarity, Wnt signaling and vertebrate organogenesis., Karner C., Semin Cell Dev Biol. April 1, 2006; 17 (2): 214-22.      


Wnt/beta-catenin signaling and body plan formation in mouse embryos., Marikawa Y., Semin Cell Dev Biol. April 1, 2006; 17 (2): 175-84.


Interaction between X-Delta-2 and Hox genes regulates segmentation and patterning of the anteroposterior axis., Peres JN., Mech Dev. April 1, 2006; 123 (4): 321-33.                          


Emilin1 links TGF-beta maturation to blood pressure homeostasis., Zacchigna L., Cell. March 10, 2006; 124 (5): 929-42.    


RE-1 silencer of transcription/neural restrictive silencer factor modulates ectodermal patterning during Xenopus development., Olguín P., J Neurosci. March 8, 2006; 26 (10): 2820-9.                    


Dorso/ventral genes are asymmetrically expressed and involved in germ-layer demarcation during cnidarian gastrulation., Matus DQ., Curr Biol. March 7, 2006; 16 (5): 499-505.


Xenopus Dead end mRNA is a localized maternal determinant that serves a conserved function in germ cell development., Horvay K., Dev Biol. March 1, 2006; 291 (1): 1-11.                          


Bves, a member of the Popeye domain-containing gene family., Osler ME., Dev Dyn. March 1, 2006; 235 (3): 586-93.  


A requirement for NF-protocadherin and TAF1/Set in cell adhesion and neural tube formation., Rashid D., Dev Biol. March 1, 2006; 291 (1): 170-81.                    


Retinoic acid signaling is essential for formation of the heart tube in Xenopus., Collop AH., Dev Biol. March 1, 2006; 291 (1): 96-109.                  


Role of X-Delta-2 in the early neural development of Xenopus laevis., Peres JN., Dev Dyn. March 1, 2006; 235 (3): 802-10.                                              


Comparative genomic and expression analysis of the conserved NTPDase gene family in Xenopus., Massé K., Genomics. March 1, 2006; 87 (3): 366-81.  


CyNodal, the Japanese newt nodal-related gene, is expressed in the left side of the lateral plate mesoderm and diencephalon., Ito Y., Gene Expr Patterns. March 1, 2006; 6 (3): 294-8.


Nodal signals pattern vertebrate embryos., Tian T., Cell Mol Life Sci. March 1, 2006; 63 (6): 672-85.


Dystroglycan is required for proper retinal layering., Lunardi A., Dev Biol. February 15, 2006; 290 (2): 411-20.            


Cooperative non-cell and cell autonomous regulation of Nodal gene expression and signaling by Lefty/Antivin and Brachyury in Xenopus., Cha YR., Dev Biol. February 15, 2006; 290 (2): 246-64.                        


FGF8, Wnt8 and Myf5 are target genes of Tbx6 during anteroposterior specification in Xenopus embryo., Li HY., Dev Biol. February 15, 2006; 290 (2): 470-81.                    


Xenopus apyrase (xapy), a secreted nucleotidase that is expressed during early development., Devader C., Gene. February 15, 2006; 367 135-41.                          


Alpha-RgIA: a novel conotoxin that specifically and potently blocks the alpha9alpha10 nAChR., Ellison M., Biochemistry. February 7, 2006; 45 (5): 1511-7.


Maternal determinants of embryonic cell fate., Heasman J., Semin Cell Dev Biol. February 1, 2006; 17 (1): 93-8.


XHas2 activity is required during somitogenesis and precursor cell migration in Xenopus development., Ori M., Development. February 1, 2006; 133 (4): 631-40.                        


Regulation of somitogenesis by Ena/VASP proteins and FAK during Xenopus development., Kragtorp KA., Development. February 1, 2006; 133 (4): 685-95.                  


Direct observation of a preinactivated, open state in BK channels with beta2 subunits., Benzinger GR., J Gen Physiol. February 1, 2006; 127 (2): 119-31.                


Functional analysis of chick ONT1 reveals distinguishable activities among olfactomedin-related signaling factors., Sakuragi M., Mech Dev. February 1, 2006; 123 (2): 114-23.


Ras-dva, a member of novel family of small GTPases, is required for the anterior ectoderm patterning in the Xenopus laevis embryo., Tereshina MB., Development. February 1, 2006; 133 (3): 485-94.  

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