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Summary Anatomy Item Literature (8703) Expression Attributions Wiki
XB-ANAT-506

Papers associated with embryonic structure (and ddx4)

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Impaired spermatogenesis and associated endocrine effects of azole fungicides in peripubertal Xenopus tropicalis., Svanholm S., Ecotoxicol Environ Saf. January 15, 2024; 270 115876.                  


Hecate/Grip2a acts to reorganize the cytoskeleton in the symmetry-breaking event of embryonic axis induction., Ge X., PLoS Genet. June 26, 2014; 10 (6): e1004422.                  


Stochastic specification of primordial germ cells from mesoderm precursors in axolotl embryos., Chatfield J., Development. June 1, 2014; 141 (12): 2429-40.              


DEADSouth protein localizes to germ plasm and is required for the development of primordial germ cells in Xenopus laevis., Yamaguchi T., Biol Open. February 15, 2013; 2 (2): 191-9.                    


Microtubule actin crosslinking factor 1 regulates the Balbiani body and animal-vegetal polarity of the zebrafish oocyte., Gupta T., PLoS Genet. August 19, 2010; 6 (8): e1001073.              


Temporal expression and steroidal regulation of piRNA pathway genes (mael, piwi, vasa) during Silurana (Xenopus) tropicalis embryogenesis and early larval development., Zhang D., Comp Biochem Physiol C Toxicol Pharmacol. August 1, 2010; 152 (2): 202-6.


Control over the morphology and segregation of Zebrafish germ cell granules during embryonic development., Strasser MJ., BMC Dev Biol. May 28, 2008; 8 58.              


The Oct4 homologue PouV and Nanog regulate pluripotency in chicken embryonic stem cells., Lavial F., Development. October 1, 2007; 134 (19): 3549-63.      


Ectopic germline cells in embryos of Xenopus laevis., Ikenishi K., Dev Growth Differ. September 1, 2007; 49 (7): 561-70.      


Spatiotemporal localization of germ plasm RNAs during zebrafish oogenesis., Kosaka K., Mech Dev. April 1, 2007; 124 (4): 279-89.


The Xdsg protein in presumptive primordial germ cells (pPGCs) is essential to their differentiation into PGCs in Xenopus., Ikenishi K., Dev Biol. September 15, 2006; 297 (2): 483-92.      


The mode and molecular mechanisms of the migration of presumptive PGC in the endoderm cell mass of Xenopus embryos., Nishiumi F., Dev Growth Differ. January 1, 2005; 47 (1): 37-48.                  


A trial for induction of supernumerary primordial germ cells in Xenopus tadpoles by injecting RNA of Xenopus vasa homologue into germline cells of 32-cell embryos., Ikenishi K., Dev Growth Differ. January 1, 2003; 45 (5-6): 417-26.                  


An evolutionary conserved region in the vasa 3'UTR targets RNA translation to the germ cells in the zebrafish., Knaut H., Curr Biol. March 19, 2002; 12 (6): 454-66.


Spatio-temporal expression of Xenopus vasa homolog, XVLG1, in oocytes and embryos: the presence of XVLG1 RNA in somatic cells as well as germline cells., Ikenishi K., Dev Growth Differ. April 1, 2000; 42 (2): 95-103.          


A mutation in the zebrafish maternal-effect gene nebel affects furrow formation and vasa RNA localization., Pelegri F., Curr Biol. December 1, 1999; 9 (24): 1431-40.


Identification of tissues and patterning events required for distinct steps in early migration of zebrafish primordial germ cells., Weidinger G., Development. December 1, 1999; 126 (23): 5295-307.


Germ plasm in Caenorhabditis elegans, Drosophila and Xenopus., Ikenishi K., Dev Growth Differ. February 1, 1998; 40 (1): 1-10.


Involvement of the protein of Xenopus vasa homolog (Xenopus vasa-like gene 1, XVLG1) in the differentiation of primordial germ cells., Ikenishi K., Dev Growth Differ. October 1, 1997; 39 (5): 625-33.            


Cloning and characterization of the urea transporter UT3: localization in rat kidney and testis., Tsukaguchi H., J Clin Invest. April 1, 1997; 99 (7): 1506-15.


Germ plasm assembly and germ cell migration in Drosophila., Rongo C., Cold Spring Harb Symp Quant Biol. January 1, 1997; 62 1-11.


Molecular cloning of a mercurial-insensitive water channel expressed in selected water-transporting tissues., Hasegawa H., J Biol Chem. February 25, 1994; 269 (8): 5497-500.

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