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Acampora, D., Mazan, S., Lallemand, Y., Avantaggiato, V., Maury, M., Simeone, A. and Brulet, P (1995). Forebrain and midbrain regions are deleted in Otx2mutants due to a defective anterior neuroectoderm specification during gastrulation. Development 121, 3279-3290.[Abstract]

Adelmann (1936). The Problem of Cyclopia, Pt. I. Quar. Rev. Biol 11, 161-182.

Adelmann, H. B (1929). Experimental studies on the development of the eye. II. The eye-forming potencies of the median portions of the urodelean neural plate ( Triton taeniatus and Amblystoma punctatum ). J. Exp. Zool 54, 219-317.

Altmann, C. R., Chow, R. L., Lang, R. A. and Hemmati-Brivanlou, A (1997). Lens induction by Pax-6 in Xenopus laevis. Dev. Biol 185, 119-123.[Medline]

Andreazzoli, M., Gestri, G., Angeloni, D., Menna, E. and Barsacchi, G (1999). Role of xrx1 in Xenopus eye and anterior brain development. Development 126, 2451-2460.[Abstract]

Callaerts, P., Halder, G. and Gehring, W. J (1997). PAX-6 in development and evolution. Annu. Rev. Neurosci 20, 483-532.[Medline]

Casarosa, S., Andreazzoli, M., Simeone, A. and Barsacchi, G (1997). Xrx1, a novel Xenopus homeobox gene expressed during eye and pineal gland development. Mech. Dev 61, 187-198.[Medline]

Chen, R., Amoui, M., Zhang, Z. and Mardon, G (1997). Dachshund and eyes absent proteins form a complex and function synergistically to induce ectopic eye development in Drosophila. Cell 91, 893-903.[Medline]

Cuny, R. and Malacinski, G. M (1986). Axolotl retina and lens development: mutual tissue stimulation and autonomous failure in the eyeless mutant retina. J. Embryol. Exp. Morph 96, 151-170.[Medline]

Czerny, T., Halder, G., Kloter, U., Souabni, A., Gehring, W. J. and Busslinger, M (1999). twin of eyeless, a second Pax-6 gene of Drosophila, acts upstream of eyeless in the control of eye development. Mol Cell 3, 297-307.

Ekker, S. C., Ungar, A. R., Greenstein, P., von Kessler, D. P., Porter, J. A., Moon, R. T. and Beachy, P. A (1995). Patterning activities of vertebrate hedgehog proteins in the developing eye and brain. Curr. Biol 5, 944-955.[Medline]

Fujiwara, M., Uchida, T., Osumi-Yamashita, N. and Eto, K (1994). Uchida rat (rSey): a new mutant rat with craniofacial abnormalities resembling those of the mouse Sey mutant. Differentiation 57, 31-38.[Medline]

Glaser, T., Lane, J. and Housman, D (1990). A mouse model of the aniridia-Wilms tumor deletion syndrome. Science 250, 823-827.[Abstract/Free Full Text]

Glaser, T., Walton, D. S. and Maas, R. L (1992). Genomic structure, evolutionary conservation and aniridia mutations in the human PAX6 gene. Nat. Genet 2, 232-239.[Medline]

Halder, G., Callaerts, P., Flister, S., Walldorf, U., Kloter, U. and Gehring, W. J (1998). Eyeless initiates the expression of both sine oculis and eyes absent during Drosophila compound eye development. Development 125, 2181-2191.[Abstract]

Halder, G., Callaerts, P. and Gehring, W. J (1995). Induction of ectopic eyes by targeted expression of the eyeless gene in Drosophila. Science 267, 1788-1792.[Abstract/Free Full Text]

Hemmati-Brivanlou, A., de la Torre, J. R., Holt, C. and Harland, R. M (1991). Cephalic expression and molecular characterization of Xenopus En-2. Development 111, 715-724.[Abstract]

Hemmati-Brivanlou, A., Kelly, O. G. and Melton, D. A (1994). Follistatin, an antagonist of activin, is expressed in the Spemann organizer and displays direct neuralizing activity. Cell 77, 283-295.[Medline]

Hemmati-Brivanlou, A. and Melton, D. A (1994). Inhibition of activin receptor signaling promotes neuralization in Xenopus. Cell 77, 273-281.[Medline]

Hicks, D. and Molday, R. S (1985). Differential immunogolddextranlabelling of bovine and frog rod and cone cells using monoclonal antibodies against bovine rhodopsin. Exp. Eye Res 42, 55-71.

Hill, R. E., Favor, J., Hogan, B. L., Ton, C. C., Saunders, G. F., Hanson, I. M., Prosser, J., Jordan, T., Hastie, N. D. and van Heyningen, V (1991). Mouse small eye results from mutations in a paired-like homeobox-containing gene. Nature 354, 522-525.[Medline]

Hirsch, N. and Harris, W. A (1997). Xenopus Pax-6 and retinal development. J. Neurobiol 32, 45-61.[Medline]

Hogan, B. L., Horsburgh, G., Cohen, J., Hetherington, C. M., Fisher, G. and Lyon, M. F (1986). Small eyes (Sey): a homozygous lethal mutation on chromosome 2 which affects the differentiation of both lens and nasal placodes in the mouse. J. Embryol. Exp. Morphol 97, 95-110.[Medline]

Jacobson, A. G (1958). The roles of neural and nonneural tissues in lens induction. J. Exp. Zool 139, 525-557.

Jordan, T., Hanson, I., Zaletayev, D., Hodgson, S., Prosser, J., Seawright, A., Hastie, N. and van Heyningen, V (1992). The human PAX6 gene is mutated in two patients with aniridia. Nat. Genet 1, 328-332.[Medline]

Keller, R. E (1976). Vital dye mapping of the gastrula and neurula of Xenopus laevis. II. Prospective areas and morphogenetic movements of the deep layer. Dev. Biol 51, 118-137.[Medline]

Lamb, T. M. and Harland, R. M (1995). Fibroblast growth factor is a direct neural inducer, which combined with noggin generates anterior-posterior neural pattern. Development 121, 3627-3636.[Abstract]

Li, H., Tierney, C., Wen, L., Wu, J. Y. and Rao, Y (1997). A single morphogenetic field gives rise to two retina primordia under the influence of the prechordal plate. Development 124, 603-615.[Abstract]

Loosli, F., Koster, R. W., Carl, M., Krone, A. and Wittbrodt, J (1998). Six3, a medaka homologue of the Drosophila homeobox gene sine oculis is expressed in the anterior embryonic shield and the developing eye. Mech. Dev 74, 159-164.[Medline]

Loosli, F., Winkler, S. and Wittbrodt, J (1999). Six3 overexpression initiates the formation of ectopic retina. Genes Dev 13, 649-654.[Abstract/Free Full Text]

Macdonald, R., Barth, K. A., Xu, Q., Holder, N., Mikkola, I. and Wilson, S. W (1995). Midline signalling is required for Pax gene regulation and patterning of the eyes. Development 121, 3267-3278.[Abstract]

Mangold, O (1928). Das determinationsproblem. I. Das nervensystem und die sinnesorgane der seitenlinie unter spezieller Beruchschtigung der amphibien. Ergebn. Biol 3, 152-227.

Mathers, P. H., Grinberg, A., Mahon, K. A. and Jamrich, M (1997). The Rx homeobox gene is essential for vertebrate eye development. Nature 387, 603-607.[Medline]

Matsuo, I., Kuratani, S., Kimura, C., Takeda, N. and Aizawa, S (1995). Mouse Otx2 functions in the formation and patterning of rostral head. Genes Dev 9, 2646-2658.[Abstract/Free Full Text]

Oliver, G., Loosli, F., Koester, R., Wittbrodt, J. and Gruss, P (1996). Ectopic lens induction in fish in response to the murine homeobox gene Six3. Mech. Dev 60, 233-239.[Medline]

Oliver, G., Mailhos, A., Wehr, R., Copeland, N. G., Jenkins, N. A. and Gruss, P (1995). Six3, a murine homologue of the sine oculis gene,demarcates the most anterior border of the developing neural plate and is expressed during eye development. Development 121, 4045-4055.[Abstract]

Pannese, M., Polo, C., Andreazzoli, M., Vignali, R., Kablar, B., Barsacchi, G. and Boncinelli, E (1995). The Xenopus homologue of Otx2 is a maternal homeobox gene that demarcates and specifies anterior body regions. Development 121, 707-720.[Abstract]

Piatigorsky, J., Nickerson, J. M., King, C. R., Inana, G., Hejtmancik, J. F., Hawkins, J. W., Borras, T., Shinohara, T., Wistow, G. and Norman, B (1984). Crystallin genes: templates for lens transparency. Ciba Found. Symp 106, 191-207.[Medline]

Pignoni, F., Hu, B., Zavitz, K. H., Xiao, J., Garrity, P. A. and Zipursky, S. L (1997). The eye-specification proteins So and Eya form a complex and regulate multiple steps in Drosophila eye development. Cell 91, 881-891.[Medline]

Quinn, J. C., West, J. D. and Hill, R. E (1996). Multiple functions for Pax6 in mouse eye and nasal development. Genes Dev 10, 435-446.[Abstract/Free Full Text]

Quiring, R., Walldorf, U., Kloter, U. and Gehring, W. J (1994). Homology of the eyeless gene of Drosophila to the Small eye gene in mice and Aniridia in humans. Science 265, 785-789.[Abstract/Free Full Text]

Sakaguchi, D. S., Janick, L. M. and Reh, T. A (1997). Basic fibroblast growth factor (FGF-2) induced transdifferentiation of retinal pigment epithelium: generation of retinal neurons and glia. Dev. Dyn 209, 387-398.[Medline]

Schedl, A., Ross, A., Lee, M., Engelkamp, D., Rashbass, P., van Heyningen, V. and Hastie, N. D (1996). Influence of PAX6 gene dosage on development: overexpression causes severe eye abnormalities. Cell 86, 71-82.[Medline]

Singh, S., Tang, H. K., Lee, J. Y. and Saunders, G. F (1998). Truncation mutations in the transactivation region of PAX6 result in dominant-negative mutants. J. Biol. Chem 273, 21531-21541.[Abstract/Free Full Text]

Smith, W. C. and Harland, R. M (1991). Injected Xwnt-8 RNA acts early in Xenopus embryos to promote formation of a vegetal dorsalizing center. Cell 67, 753-765.[Medline]

St-Onge, L., Sosa-Pineda, B., Chowdhury, K., Mansouri, A. and Gruss, P (1997). Pax6 is required for differentiation of glucagon-producing alpha-cells in mouse pancreas. Nature 387, 406-409.[Medline]

Tang, H. K., Singh, S. and Saunders, G. F (1998). Dissection of the transactivation function of the transcription factor encoded by the eye developmental gene PAX6. J. Biol. Chem 273, 7210-7221.[Abstract/Free Full Text]

Torres, M., Gomez-Pardo, E. and Gruss, P (1996). Pax2 contributes to inner ear patterning and optic nerve trajectory. Development 122, 3381-3391.[Abstract]

Vardimon, L., Fox, L. E., Cohen-Kupiec, R., Degenstein, L. and Moscona, A. A (1991). Expression of v-src in embryonic neural retina alters cell adhesion, inhibits histogenesis, and prevents induction of glutamine synthetase. Mol. Cell Biol 11, 5275-5284.[Abstract/Free Full Text]

Vize, P. D., Melton, D. A., Hemmati-Brivanlou, A. and Harland, R. M (1991). Assays for gene function in developing Xenopus embryos. Methods Cell Biol 36, 367-387.[Medline]

Walther, C. and Gruss, P (1991). Pax-6, a murine paired box gene, is expressed in the developing CNS. Development 113, 1435-1449.[Abstract]

Wetts, R. and Fraser, S. E (1988). Multipotent precursors can give rise to all major cell types of the frog retina. Science 239, 1142-1145.[Abstract/Free Full Text]

Zigler, J. S. and Sidbury, J. B., Jr (1976). A comparative study of beta-crystallin from six mammals. Comp. Biochem. Physiol. [B] 53, 349-355.[Medline]




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[Abstract] [PDF]


Home page
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Development, January 10, 2000; 127(20): 4325 - 4334.
[Abstract] [PDF]


Home page
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A Noveen, A Daniel, and V Hartenstein
Early development of the Drosophila mushroom body: the roles of eyeless and dachshund
Development, January 8, 2000; 127(16): 3475 - 3488.
[Abstract] [PDF]


Home page
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H. Makarenkova, M Ito, V Govindarajan, S. Faber, L Sun, G McMahon, P. Overbeek, and R. Lang
FGF10 is an inducer and Pax6 a competence factor for lacrimal gland development
Development, January 6, 2000; 127(12): 2563 - 2572.
[Abstract] [PDF]


Home page
DevelopmentHome page
S Winkler, F Loosli, T Henrich, Y Wakamatsu, and J Wittbrodt
The conditional medaka mutation eyeless uncouples patterning and morphogenesis of the eye
Development, January 5, 2000; 127(9): 1911 - 1919.
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Genes Dev.Home page
F. Relaix and M. Buckingham
From insect eye to vertebrate muscle: redeployment of a regulatory network
Genes & Dev., December 15, 1999; 13(24): 3171 - 3178.
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J. Biol. Chem.Home page
I. Mikkola, J.-A. Bruun, T. Holm, and T. Johansen
Superactivation of Pax6-mediated Transactivation from Paired Domain-binding Sites by DNA-independent Recruitment of Different Homeodomain Proteins
J. Biol. Chem., February 2, 2001; 276(6): 4109 - 4118.
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J. Biol. Chem.Home page
N. Planque, L. Leconte, F. M. Coquelle, P. Martin, and S. Saule
Specific Pax-6/Microphthalmia Transcription Factor Interactions Involve Their DNA-binding Domains and Inhibit Transcriptional Properties of Both Proteins
J. Biol. Chem., July 27, 2001; 276(31): 29330 - 29337.
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J. Biol. Chem.Home page
N. Planque, L. Leconte, F. M. Coquelle, S. Benkhelifa, P. Martin, M.-P. Felder-Schmittbuhl, and S. Saule
Interaction of Maf Transcription Factors with Pax-6 Results in Synergistic Activation of the Glucagon Promoter
J. Biol. Chem., September 14, 2001; 276(38): 35751 - 35760.
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Proc. Natl. Acad. Sci. USAHome page
Y. Onuma, S. Takahashi, M. Asashima, S. Kurata, and W. J. Gehring
Conservation of Pax 6 function and upstream activation by Notch signaling in eye development of frogs and flies
PNAS, February 19, 2002; 99(4): 2020 - 2025.
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