Click here to close Hello! We notice that you are using Internet Explorer, which is not supported by Xenbase and may cause the site to display incorrectly. We suggest using a current version of Chrome, FireFox, or Safari.

Summary Anatomy Item Literature (22) Expression Attributions Wiki
XB-ANAT-3885

Papers associated with

Limit to papers also referencing gene:
???pagination.result.count???

???pagination.result.page??? 1

Sort Newest To Oldest Sort Oldest To Newest

Comparison of oocyte mRNA localization patterns in sterlet Acipenser ruthenus and African clawed frog Xenopus laevis., Pocherniaieva K., J Exp Zool B Mol Dev Evol. May 1, 2018; 330 (3): 181-187.


Multiplicity of Buc copies in Atlantic salmon contrasts with loss of the germ cell determinant in primates, rodents and axolotl., Škugor A., BMC Evol Biol. October 26, 2016; 16 (1): 232.                


Hermes (Rbpms) is a Critical Component of RNP Complexes that Sequester Germline RNAs during Oogenesis., Aguero T., J Dev Biol. March 1, 2016; 4 (1):               


Primary oocyte transcriptional activation of aqp1ab by the nuclear progestin receptor determines the pelagic egg phenotype of marine teleosts., Zapater C., Dev Biol. May 15, 2013; 377 (2): 345-62.


Balbiani cytoplasm in oocytes of a primitive fish, the sturgeon Acipenser gueldenstaedtii, and its potential homology to the Balbiani body (mitochondrial cloud) of Xenopus laevis oocytes., Zelazowska M., Cell Tissue Res. July 1, 2007; 329 (1): 137-45.


Possible role of mouse poly(A) polymerase mGLD-2 during oocyte maturation., Nakanishi T., Dev Biol. January 1, 2006; 289 (1): 115-26.


Accessory nuclei revisited: the translocation of snRNPs from the germinal vesicle to the periphery of the future embryo., Biliński SM., Chromosoma. March 1, 2002; 111 (1): 62-8.


Sperm incorporation in Xenopus laevis: characterisation of morphological events and the role of microfilaments., Boyle JA., Zygote. May 1, 2001; 9 (2): 167-81.


Activation of avian embryo formation by unfertilized quail germ discs: comparison with early amphibian development., Callebaut M., Reprod Nutr Dev. January 1, 2000; 40 (6): 597-606.


Exclusively juvenile centrioles in Xenopus laevis oocytes injected with preparations of mature centrioles., Nadezhdina ES., Microsc Res Tech. March 15, 1999; 44 (6): 430-4.


A sponge-like structure involved in the association and transport of maternal products during Drosophila oogenesis., Wilsch-Bräuninger M., J Cell Biol. November 3, 1997; 139 (3): 817-29.                              


The cell nucleus in early bovine and caprine preimplantation embryos: fine structural cytochemistry and immunoelectron microscopy., Kopecny V., Eur J Cell Biol. August 1, 1996; 70 (4): 361-72.


A 69-kD protein that associates reversibly with the Sm core domain of several spliceosomal snRNP species., Hackl W., J Cell Biol. February 1, 1994; 124 (3): 261-72.


Contractile proteins and nonerythroid spectrin in oogenesis of Xenopus laevis., Ryabova LV., Mol Reprod Dev. January 1, 1994; 37 (1): 99-109.


[The participation of polymerized actin in maintaining the spatial organization of the oocyte in the clawed toad and its detection in the deep regions of the ooplasm]., Riabova LV., Ontogenez. January 1, 1993; 24 (2): 55-61.


Intercellular communication between follicular angiotensin receptors and Xenopus laevis oocytes: medication by an inositol 1,4,5-trisphosphate-dependent mechanism., Sandberg K., J Cell Biol. April 1, 1992; 117 (1): 157-67.


[The distribution and relation to the cytoskeleton of specific prosomal proteins in the oogenesis of the clawed toad]., Riabova LV., Ontogenez. January 1, 1992; 23 (4): 390-400.


Autoradiography of progesterone and model compound entry and distribution in Xenopus laevis oocytes., Bronson DD., Prog Histochem Cytochem. January 1, 1991; 22 (4): 1-59.


Developmental expression of regionally specific cell surface antigens in the Xenopus gastrula., Litvin J., Dev Genet. January 1, 1990; 11 (1): 110-22.


Proteins regulating actin assembly in oogenesis and early embryogenesis of Xenopus laevis: gelsolin is the major cytoplasmic actin-binding protein., Ankenbauer T., J Cell Biol. October 1, 1988; 107 (4): 1489-98.                  


Oocyte growth in the sheepshead minnow: uptake of exogenous proteins by vitellogenic oocytes., Selman K., Tissue Cell. January 1, 1982; 14 (3): 555-71.


Oogenesis in Xenopus laevis (Daudin). VI. The route of injected tracer transport in the follicle and developing oocyte., Dumont JN., J Exp Zool. May 1, 1978; 204 (2): 193-217.

???pagination.result.page??? 1