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Cellular and molecular profiles of larval and adult Xenopus corneal epithelia resolved at the single-cell level. , Sonam S., Dev Biol. November 29, 2022; 491 13-30.
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ΔN- Tp63 Mediates Wnt/ β-Catenin-Induced Inhibition of Differentiation in Basal Stem Cells of Mucociliary Epithelia. , Haas M., Cell Rep. September 24, 2019; 28 (13): 3338-3352.e6.
Smoothened stimulation by membrane sterols drives Hedgehog pathway activity. , Deshpande I., Nature. July 1, 2019; 571 (7764): 284-288.
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TRRAP is a central regulator of human multiciliated cell formation. , Wang Z., J Cell Biol. June 4, 2018; 217 (6): 1941-1955.
Cadherin-11 promotes neural crest cell spreading by reducing intracellular tension-Mapping adhesion and mechanics in neural crest explants by atomic force microscopy. , Blaue C., Semin Cell Dev Biol. January 1, 2018; 73 95-106.
The lens regenerative competency of limbal vs. central regions of mature Xenopus cornea epithelium. , Hamilton PW., Exp Eye Res. November 1, 2016; 152 94-99.
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An endocannabinoid system is present in the mouse olfactory epithelium but does not modulate olfaction. , Hutch CR., Neuroscience. August 6, 2015; 300 539-53.
Essential roles of epithelial bone morphogenetic protein signaling during prostatic development. , Omori A., Endocrinology. July 1, 2014; 155 (7): 2534-44.
Phylogenic studies on the olfactory system in vertebrates. , Taniguchi K ., J Vet Med Sci. June 1, 2014; 76 (6): 781-8.
Purinergic receptor-induced Ca2+ signaling in the neuroepithelium of the vomeronasal organ of larval Xenopus laevis. , Dittrich K., Purinergic Signal. January 1, 2014; 10 (2): 327-36.
Biomechanics and the thermotolerance of development. , von Dassow M., PLoS One. January 1, 2014; 9 (4): e95670.
The melanocyte photosensory system in the human skin. , Iyengar B., Springerplus. April 12, 2013; 2 (1): 158.
Larval epidermis of the red eye tree frog Agalychnis callidryas (Anura, Hylidae): ultrastructural investigation on the Kugelzellen, specialized forms of the constitutive skein cell line. , Giachi F., Anat Rec (Hoboken). September 1, 2011; 294 (9): 1601-10.
The forkhead protein Foxj1 specifies node-like cilia in Xenopus and zebrafish embryos. , Stubbs JL., Nat Genet. December 1, 2008; 40 (12): 1454-60.
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Amphibian metamorphosis. , Brown DD ., Dev Biol. June 1, 2007; 306 (1): 20-33.
TIS21 (/ BTG2/ PC3) as a link between ageing and cancer: cell cycle regulator and endogenous cell death molecule. , Lim IK., J Cancer Res Clin Oncol. July 1, 2006; 132 (7): 417-26.
Dual degradation signals control Gli protein stability and tumor formation. , Huntzicker EG., Genes Dev. February 1, 2006; 20 (3): 276-81.
Basolateral localization of flounder Na+-dicarboxylate cotransporter (fNaDC-3) in the kidney of Pleuronectes americanus. , Hentschel H., Pflugers Arch. August 1, 2003; 446 (5): 578-84.
Patched1 interacts with cyclin B1 to regulate cell cycle progression. , Barnes EA., EMBO J. May 1, 2001; 20 (9): 2214-23.
Downregulation of Hedgehog signaling is required for organogenesis of the small intestine in Xenopus. , Zhang J., Dev Biol. January 1, 2001; 229 (1): 188-202.
Regulation of gli activity by all-trans retinoic acid in mouse keratinocytes. , Goyette P., Cancer Res. October 1, 2000; 60 (19): 5386-9.
Expression of neural properties in olfactory cytokeratin-positive basal cell line. , Satoh M., Brain Res Dev Brain Res. June 30, 2000; 121 (2): 219-22.
Human developmental disorders and the Sonic hedgehog pathway. , Ming JE., Mol Med Today. August 1, 1998; 4 (8): 343-9.
Activation of the transcription factor Gli1 and the Sonic hedgehog signalling pathway in skin tumours. , Dahmane N., Nature. October 23, 1997; 389 (6653): 876-81.
Evidence for beta 1-integrins on both apical and basal surfaces of Xenopus retinal pigment epithelium. , Chen W., Exp Eye Res. January 1, 1997; 64 (1): 73-84.
Body-specific proliferation of adult precursor cells in Xenopus larval epidermis. , Kinoshita T., Histochemistry. July 1, 1994; 101 (6): 397-404.
Emigration of bilayered epidermal cell sheets from tadpole tails (Xenopus laevis). , Strohmeier R., Cell Tissue Res. December 1, 1991; 266 (3): 615-21.
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Expression sequences and distribution of two primary cell adhesion molecules during embryonic development of Xenopus laevis. , Levi G., J Cell Biol. November 1, 1987; 105 (5): 2359-72.