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Summary Anatomy Item Literature (649) Expression Attributions Wiki
XB-ANAT-299

Papers associated with deep

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[Quantitative limits of the Feulgen reaction: analysis of interference caused by dehistonization and denaturation and renaturation treatments]., Redi CA., Riv Istochim Norm Patol. January 1, 1976; 20 (4): 177-82.


Vital dye mapping of the gastrula and neurula of Xenopus laevis. II. Prospective areas and morphogenetic movements of the deep layer., Keller RE., Dev Biol. July 1, 1976; 51 (1): 118-37.


Observations on the migration and proliferation of gonocytes in Xenopus laevis., Kamimura M., J Embryol Exp Morphol. August 1, 1976; 36 (1): 197-207.


A freeze-fracture and concanavalin A-binding study of the membrane of cleaving Xenopus embryos., Sanders EJ., Differentiation. November 2, 1976; 7 (1): 13-21.


Time-lapse cinemicrographic analysis of superficial cell behavior during and prior to gastrulation in Xenopus laevis., Keller RE., J Morphol. August 1, 1978; 157 (2): 223-247.


Changes in the cell surface coat during the development ofXenopus laevis embryos, detected by lectins., Nosek J., Wilehm Roux Arch Dev Biol. September 1, 1978; 184 (3): 181-193.


An ultrastructural study of the effects of wheat germ agglutinin (WGA) on cell cortex organization during the first cleavage of Xenopus laevis eggs. II. Cortical wound healing., Geuskens M., J Cell Sci. June 1, 1979; 37 59-67.


Cell number in relation to primary pattern formation in the embryo of Xenopus laevis. II. Sequential cell recruitment, and control of the cell cycle, during mesoderm formation., Cooke J., J Embryol Exp Morphol. October 1, 1979; 53 269-89.


Development of the postsynaptic membrane in Xenopus neuromuscular cultures observed by freeze-fracture and thin-section electron microscopy., Peng HB., Dev Biol. August 25, 1980; 196 (1): 11-31.


The migration of presumptive primordial germ cells through the endodermal cell mass in Xenopus laevis: a light and electron microscopic study., Kamimura M., J Embryol Exp Morphol. October 1, 1980; 59 1-17.


The cellular basis of epiboly: an SEM study of deep-cell rearrangement during gastrulation in Xenopus laevis., Keller RE., J Embryol Exp Morphol. December 1, 1980; 60 201-34.


An experimental analysis of the role of bottle cells and the deep marginal zone in gastrulation of Xenopus laevis., Keller RE., J Exp Zool. April 1, 1981; 216 (1): 81-101.


Effects of inducers on inner and outer gastrula ectoderm layers of Xenopus laevis., Asashima M., Differentiation. January 1, 1983; 23 (3): 206-12.


Dual effect of negative staining in thin crystal sheets: demonstration of surface and deep detail., Lange RH., Mikroskopie. December 1, 1983; 40 (11-12): 317-20.


Fibre order in the normal Xenopus optic tract, near the chiasma., Fawcett JW., J Embryol Exp Morphol. October 1, 1984; 83 1-14.


Two subpopulations of differentiated chondrocytes identified with a monoclonal antibody to keratan sulfate., Zanetti M., J Cell Biol. July 1, 1985; 101 (1): 53-9.


The function and mechanism of convergent extension during gastrulation of Xenopus laevis., Keller RE., J Embryol Exp Morphol. November 1, 1985; 89 Suppl 185-209.


Factors guiding regenerating retinotectal fibres in the frog Xenopus laevis., Fawcett JW., J Embryol Exp Morphol. December 1, 1985; 90 233-50.


[Effect of a short-term disturbance of the cell contacts on the mesodermal differentiation of clawed toad embryos]., Georgiev PG., Ontogenez. January 1, 1986; 17 (3): 256-62.


Survey of the vestibulum, and behavior of Xenopus laevis larvae developed during a 7-days space flight., Briegleb W., Adv Space Res. January 1, 1986; 6 (12): 151-6.


Androgen-induced myogenesis and chondrogenesis in the larynx of Xenopus laevis., Sassoon D., Dev Biol. January 1, 1986; 113 (1): 135-40.        


Organisation of lateral line and auditory areas in the midbrain of Xenopus laevis., Lowe DA., J Comp Neurol. March 22, 1986; 245 (4): 498-513.


Cell behaviour during active cell rearrangement: evidence and speculations., Keller R., J Cell Sci Suppl. January 1, 1987; 8 369-93.


Expression of Xenopus N-CAM RNA in ectoderm is an early response to neural induction., Kintner CR., Development. March 1, 1987; 99 (3): 311-25.                  


Fates of the blastomeres of the 32-cell-stage Xenopus embryo., Moody SA., Dev Biol. August 1, 1987; 122 (2): 300-19.      


The organization of mesodermal pattern in Xenopus laevis: experiments using a Xenopus mesoderm-inducing factor., Cooke J., Development. December 1, 1987; 101 (4): 893-908.            


The response of structure and function of the gravireceptor in a vertebrate to near weightlessness., Neubert J., Acta Astronaut. February 1, 1988; 17 (2): 257-62.


The behaviour and function of bottle cells during gastrulation of Xenopus laevis., Hardin J., Development. May 1, 1988; 103 (1): 211-30.


A transient array of parallel microtubules in frog eggs: potential tracks for a cytoplasmic rotation that specifies the dorso-ventral axis., Elinson RP., Dev Biol. July 1, 1988; 128 (1): 185-97.


The extracellular matrix of Xenopus laevis eggs: a quick-freeze, deep-etch analysis of its modification at fertilization., Larabell CA., J Cell Biol. August 1, 1988; 107 (2): 731-41.


In vitro formation of the "S" layer, a unique component of the fertilization envelope in Xenopus laevis eggs., Larabell CA., Dev Biol. November 1, 1988; 130 (1): 356-64.


Synaptophysin (p38) at the frog neuromuscular junction: its incorporation into the axolemma and recycling after intense quantal secretion., Valtorta F., J Cell Biol. December 1, 1988; 107 (6 Pt 2): 2717-27.                  


The coelomic envelope of Xenopus laevis eggs: a quick-freeze, deep-etch analysis., Larabell CA., Dev Biol. January 1, 1989; 131 (1): 126-35.


Embryonic development of Xenopus studied in a cell culture system with tissue-specific monoclonal antibodies., Mitani S., Development. January 1, 1989; 105 (1): 53-9.        


The relationship between talin and acetylcholine receptor clusters in Xenopus muscle cells., Rochlin MW., J Cell Sci. March 1, 1989; 92 ( Pt 3) 461-72.


Angiogenesis on the optic tectum of albino Xenopus laevis tadpoles., Rovainen CM., Brain Res Dev Brain Res. August 1, 1989; 48 (2): 197-213.


A single-cell analysis of early retinal ganglion cell differentiation in Xenopus: from soma to axon tip., Holt CE., J Neurosci. September 1, 1989; 9 (9): 3123-45.                                


The plasma membrane of Xenopus laevis spermatozoon., Bernardini G., Gamete Res. October 1, 1989; 24 (2): 237-46.


The development of the Xenopus retinofugal pathway: optic fibers join a pre-existing tract., Easter SS., Development. November 1, 1989; 107 (3): 553-73.


Quick-freeze, deep-etch, rotary-shadow views of the extracellular matrix and cortical cytoskeleton of Xenopus laevis eggs., Larabell CA., J Electron Microsc Tech. November 1, 1989; 13 (3): 228-43.


Regeneration of optic fibres through the chiasma in Xenopus laevis tadpoles., Gaze RM., Anat Embryol (Berl). January 1, 1990; 182 (2): 181-94.


The role of the dorsal lip in the induction of heart mesoderm in Xenopus laevis., Sater AK., Development. March 1, 1990; 108 (3): 461-70.


Quick-freeze, deep-etch replication of cells in monolayers., Pumplin DW., J Electron Microsc Tech. April 1, 1990; 14 (4): 342-7.


Development and innervation of the abdominal muscle in embryonic Xenopus laevis., Lynch K., Am J Anat. April 1, 1990; 187 (4): 374-92.


Stepwise transformation of the vitelline envelope of Xenopus eggs at activation: a quick-freeze, deep-etch analysis., Larabell CA., Dev Biol. June 1, 1990; 139 (2): 263-8.


Interaction between injected Ca2+ and intracellular Ca2+ stores in Xenopus oocytes., Dascal N., FEBS Lett. July 2, 1990; 267 (1): 22-4.


Cellular elements of the dermis and collagen remodelling during larval life of anurans., Fox H., Arch Histol Cytol. October 1, 1990; 53 (4): 381-91.


Localization of specific mRNAs in Xenopus embryos by whole-mount in situ hybridization., Hemmati-Brivanlou A., Development. October 1, 1990; 110 (2): 325-30.  


A neuronal nicotinic acetylcholine receptor subunit (alpha 7) is developmentally regulated and forms a homo-oligomeric channel blocked by alpha-BTX., Couturier S., Neuron. December 1, 1990; 5 (6): 847-56.


Homoiogenetic Neural Inducing Activity of the Presumptive Neural Plate of Xenopus Laevis: (Xenopus laevis/neural induction/homoiogenetic induction/heteroplastic transplantation/Xenopus borealis)., Grunz H., Dev Growth Differ. December 1, 1990; 32 (6): 583-589.

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