Search Results |
Family of ribosomal genes of Xenopus laevis., Birnstiel M, Grunstein M, Speirs J, Hennig W., Nature. September 20, 1969; 223 (5212): 1265-7.
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Fine structural changes in the differentiating epidermis of Xenopus laevis embryos., Billett FS, Gould RP., J Anat. April 1, 1971; 108 (Pt 3): 465-80.
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Fine structure of RNA codewords recognized by bacterial, amphibian, and mammalian transfer RNA., Marshall RE, Caskey CT, Nirenberg M., Science. February 17, 1967; 155 (764): 820-6.
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Formation and structure of the fertilization envelope in Xenopus laevis., Grey RD, Wolf DP, Hedrick JL., Dev Biol. January 1, 1974; 36 (1): 44-61.
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Factors promoting the establishment of primary cultures of liver cells fromXenopus larvae., Wahli W, Weber R., Wilehm Roux Arch Dev Biol. December 1, 1977; 182 (4): 347-360.
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Free amino acids in eggs and embryos of Bufo vulgaris, Bufo viridis and their hybrids., Metafora S., Acta Embryol Morphol Exp. October 1, 1967; 9 (3): 280-302.
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Filaments of the vertebrate lens., Maisel H., Experientia. April 15, 1977; 33 (4): 525.
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Freeze-fracture electron microscopy of preexisting and nascent cell membrane in cleaving eggs of Xenopus laevis., Bluemink JG, Tertoolen LG, Ververgaert PH, Verkleij AJ., Biochim Biophys Acta. August 4, 1976; 443 (1): 143-55.
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Factors influencing the differentiation of amphibian embryos implanted into homologous immunologically competent hosts (Xenopus laevis)., Simnett JD., Dev Biol. February 1, 1966; 13 (1): 112-43.
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Fine structure of spermatogenesis in the South African clawed toad Xenopus laevis Daudin., Reed SC, Stanley HP., J Ultrastruct Res. November 1, 1972; 41 (3): 277-95.
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Frog oocytes synthesize and completely process the precursor polypeptide to virion structural proteins after microinjection of avian myeloblastosis virus RNA., Ghysdael J, Hubert E, Trávnícek M, Bolognesi DP, Burny A, Cleuter Y, Huez G, Kettmann R, Marbaix G, Portetelle D, Chantrenne H., Proc Natl Acad Sci U S A. August 1, 1977; 74 (8): 3230-4.
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Fine structure of the male genital tract and kidney in the Anura Xenopus laevis Daudin, Rana temporaria L. and Bufo bufo L. under normal and experimental conditions., Unsicker K., Cell Tissue Res. January 1, 1975; 158 (2): 215-40.
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Functional stabilization of HeLa cells histones messenger RNA''s by 3''-OH polyadenylation [proceedings]., Marbaix G, Huez G, Gallwitz D, Weinberg E, Devos R, Hubert E, Cleuter Y., Arch Int Physiol Biochim. December 1, 1977; 85 (5): 1005-6.
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FURTHER ASPECTS OF LYMPHOSARCOMA IN XENOPUS (THE SOUTH AFRICAN CLAWED TOAD)., BALLS M., Cancer Res. January 1, 1965; 25 7-11.
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Formation and regression of inappropriate nerve sprouts during trochlear nerve regeneration in Xenopus laevis., Fangboner RF, Vanable JW., J Comp Neurol. October 15, 1974; 157 (4): 391-406.
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Frog test (Xenopus laevis) for pregnancy., SANDERS CB., Tex State J Med. October 1, 1946; 42 375.
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Further observations on the visual pigments of the clawed toad, Xenopus laevis., DARTNALL HJ., J Physiol. November 28, 1956; 134 (2): 327-38.
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Free calcium in full grown Xenopus laevis oocyte following treatment with ionophore A 23187 or progesterone., Bellé R, Ozon R, Stinnakre J., Mol Cell Endocrinol. July 1, 1977; 8 (1): 65-72.
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Furrow formation in Xenopus embryos. Involvement of the golgi body as revealed by ultrastructural localization of thiamine pyrophosphatase activity., Sanders EJ, Singal PK., Exp Cell Res. June 1, 1975; 93 (1): 219-24.
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Fine structure of active genes in prokaryotes and eukaryotes., Hamkalo BA, Miller OL., Basic Life Sci. January 1, 1974; 3 1-14.
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Factors determining decussation at the optic chiasma by developing retinotectal fibres in Xenopus., Beazley LD., Exp Brain Res. November 14, 1975; 23 (5): 491-504.
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Freeze-fracture studies of gap junctions in the developing and adult amphibian cardiac muscle., Mazet F., Dev Biol. October 1, 1977; 60 (1): 139-52.
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Fucose incorporation into oocyte-synthesized rat immunoglobulins., Deacon NJ, Ebringer A., FEBS Lett. July 1, 1977; 79 (1): 191-4.
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Further miniaturization and automation of in vitro lymphocyte cultures., Miggiano VC, Meo T, Bergén I, Nabholz M., Tissue Antigens. April 1, 1975; 5 (3): 173-85.
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FUNCTIONAL SEX-REVERSAL IN GENETIC FEMALES OF XENOPUS LAEVIS, INDUCED BY IMPLANTED TESTES., MIKAMO K, WITSCHI E., Genetics. October 1, 1963; 48 1411-21.
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Function, structure, and regulation of eukaryotic nuclear RNA polymerases., Roeder RG, Schwartz LB, Sklar VE., Symp Soc Dev Biol. January 1, 1976; (34): 29-52.
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Factors responsible for the abnormal development of embryos obtained by nuclear transplantation in Xenopus laevis., GURDON JB., J Embryol Exp Morphol. September 1, 1960; 8 327-40.
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Functional synaptic relations during the development of the retino-tectal projection in amphibians., Chung SH, Keating MJ, Bliss TV., Proc R Soc Lond B Biol Sci. November 19, 1974; 187 (1089): 449-59.
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Fine structure of the nucleolus in normal and mutant Xenopus embryos., Hay ED, Gurdon JB., J Cell Sci. June 1, 1967; 2 (2): 151-62.
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Finnish experience of the care and use of the clawed frog (Xenopus laevis Daudin) in the diagnosis of pregnancy., HARJOLA O, TOIVONEN S., Ann Chir Gynaecol Fenn Suppl. January 1, 1949; 38 (3): 68-82.
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Function of electrotonic junctions in embryonic and adult tissues., Bennett MV., Fed Proc. January 1, 1973; 32 (1): 65-75.
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Formation and detection of RNA-DNA hybrid molecules in cytological preparations., Gall JG, Pardue ML., Proc Natl Acad Sci U S A. June 1, 1969; 63 (2): 378-83.
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Fine structural features of hind limb development in Xenopus laevis., Sturdee A, Tarin D., J Anat. April 1, 1972; 111 (Pt 3): 501.
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Fine structure of the paraventricular organ of Xenopus laevis tadpoles., Peute J., Z Zellforsch Mikrosk Anat. January 1, 1969; 97 (4): 564-75.
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Furrow formation on a piece of cortex transplanted to the cleavage plane of the newt egg., Sawai T., J Cell Sci. July 1, 1974; 15 (2): 259-67.
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Further studies on collagen mRNA: partial chemical characterization and polyadenylic acid sequence., Salles JM, Sonohara S, Brentani R., Mol Biol Rep. July 1, 1976; 2 (6): 517-23.
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Functional significance of the variations in the geometrical organization of tight junction networks., Hull BE, Staehelin LA., J Cell Biol. March 1, 1976; 68 (3): 688-704.
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