spacer gif spacer gif spacer gif spacer gif spacer gif
 QUICK SEARCH:   [advanced]


spacer gif
     Home     Help     Feedback     Subscriptions     Archive     Search     Table of Contents    


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Austin, C. P.
Right arrow Articles by Cepko, C. L.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Austin, C. P.
Right arrow Articles by Cepko, C. L.
Adler, R. and Hatlee, M (1989). Plasticity and differentiation of embryonic retinal cells after terminal mitosis. Science 243, 391-393.[Abstract/Free Full Text]

Altshuler, D. and Cepko, C (1992). A temporally regulated, diffusible activity is required for rod photoreceptor development in vitro. Development 114, 947-957.[Abstract]

Altshuler, D., LoTurco, J. J., Rush, J. and Cepko, C (1993). Taurine promotes the differentiation of a vertebrate retinal cell type in vitro. Development 119, 1317-1328.[Abstract]

Artavanis-Tsakonas, S (1988). The molecular biology of the Notch locus and the fine tuning of differentiation in Drosophila. Trends Genet 4, 95-100.[Medline]

Baker, N. E., Mlodzik, M. and Rubin, G. M (1990). Spacing differentiation in the developing Drosophila eye: a fibrinogen-related lateral inhibitor encoded by scabrous. Science 250, 1370-1377.[Abstract/Free Full Text]

Baker, N. E. and Rubin, G. M (1992). Ellipse mutations in the Drosophila homolgue of the EGF receptor affect pattern formation, cell division, and cell death in eye imaginal discs. Dev. Biol 150, 381-396.[Medline]

Barnstable, C. J (1987). Immunological studies of the diversity and development of the mammalian visual system. Immunol. Rev 100, 47-78.[Medline]

Bierkamp,C. and Campos-Ortega, J. A (1993). A zebrafish homologue of the Drosophila neurogenic gene Notch and its pattern of transcription during early embryogenesis. Mech. Dev 43, 87-100.[Medline]

Bonhoeffer, F. and Gierer, A (1984). How do retinal axons find their targets on the tectum?. Trends Neurosci 7, 378-381.

Cabrera, C. V (1990). Lateral inhibition and cell fate during neurogenesis in Drosophila: the interactions between scute , Notch and Delta. Development 109, 733-742.[Abstract]

Cagan, R (1993). Cell fate specification in the developing Drosophila retina. Development 1993, 19-28.

Cagan, R. L. and Ready, D. F (1989). Notch is required for successive cell decisions in the developing Drosophila retina. Genes Dev 3, 1099-1112.[Abstract/Free Full Text]

Carden, M. J., Trojanowski, J. Q., Schlaepfer, W. W. and Lee, V. M.-Y (1987). Two-stage expression of neurofilament polypeptides during rat neurogenesis with early establishment of adult phosphorylation patterns. J. Neurosci 7, 3489-3504.[Abstract]

Chomczynski, P. and Sacchi, N (1987). Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-choroform extraction. Anal. Biochem 162, 156-159.[Medline]

Coffman, C., Harris, W. and Kintner, C (1990). Xotch , the Xenopus homolog of Drosophila Notch. Science 249, 1438-1441.[Abstract/Free Full Text]

Coffman, C., Skoglund, P., Harris, W. A. and Kintner, C. R (1993). Expression of an extracellular deletion of Xotch diverts cell fate in Xenopus embryos. Cell 73, 659-671.[Medline]

Coulombre, A. J (1955). Correlations of structural and biochemical changes in the developing retina of the chick. Am. J. Anat 96, 153-189.[Medline]

Couso, J. P. and Martinez Arias, A (1994). Notch is required for wingless signaling in the epidermis of Drosophila. Cell 79, 259-272.[Medline]

de Curtis, I and Reichardt, L. F (1993). Function and spatial distribution in developing chick retina of the laminin receptor6 1and its isoforms. Development 118, 377-388.[Abstract]

Doe, C. Q (1992). Molecular markers for identified neuroblasts and ganglion mother cells in the Drosophila central nervous system. Development 116, 855-863.[Abstract]

Dorsky, R. I., Rapaport, D. H. and Harris, W. H (1995). Xotch inhibits cell differentiation in the Xenopus retina. Neuron 14, 487-496.[Medline]

Dutting, D., Gierer, A. and Hansmann, G (1983). Self-renewal of stem cells and differentiation of nerve cells in the developing chick retina. Dev. Brain Res 10, 21-32.

Eisen, J. S (1992). The role of interactions in determining cell fate of two identified motoneurons in the embryonic zebrafish. Neuron 8, 231-240.[Medline]

Ellisen, L. W., Bird, J., West, D. C., Soreng, A. L., Reynolds, T. C., Smith, S. D. and Sklar, J (1991). TAN-1 , the human homolgue of the Drosophila Notch gene, is broken by chromosomal translocations in T lymphoblastic neoplasms. Cell 66, 649-661.[Medline]

Fehon, R. G., Kooh, P. J., Rebay, I., Regan, C. L., Xu, T., Muskavitch, M. A. T. and Artavanis-Tsakonas, S (1990). Molecular interactions between the protein products of the neurogenic loci Notch and Delta , two EGF-homologous genes in Drosophila. Cell 61, 523-534.[Medline]

Fekete, D. M. and Cepko, C. L (1993). Replication-competent retroviralvectors encoding alkaline phosphatase reveal spatial restriction of viral gene expression/transduction in the chick embryo. Mol. Cell. Biol 13, 2604-2613.[Abstract/Free Full Text]

Fekete, D. M., Perez-Miguelsanz, J., Ryder, E. and Cepko, C. L (1994). Clonal analysis in the chicken retina reveals tangential dispersion of clonally related cells. Dev. Biol 166, 666-682.[Medline]

Ferreiro, B., Kintner, C., Zimmerman, N., Anderson, D. and Harris, W. A (1994). XASH genes promote neurogenesis in Xenopus embryos. Development 120, 3649-3655.[Abstract]

Franco del Amo, F., Smith, D. E., Swiatek, P. J., Gendron-Maguire, M., McMahon, A. P. and Gridley, T (1992). Expression pattern of Motch , a mouse homolog of Drosophila Notch, suggests an important role in early postimplantation mouse development. Development 115, 737-744.[Abstract]

Goriely, A., Dumont, N., Dambly-Chaudiere, C. and Ghysen, A (1991). The determination of sense organs in Drosophila : effect of the neurogenic mutations in the embryo. Development 113, 1395-1404.[Abstract]

Greenwald, I. and Rubin, G. M (1992). Making a difference: the role of cell-cell interactions in establishing separate identities for equivalent cells. Cell 68, 271-281.[Medline]

Guillemot, F. and Joyner, A. L (1993). Dynamic expression of murine Achaete-Scute homologue Mash-1 in the developing nervous system. Mech. Dev 42, 171-185.[Medline]

Hamburger, V. and Hamilton, H. L (1951). A series of normal stages in the development of the chick embryo. J. Morph 88, 49-92.

Harris, W. A. and Hartenstein, V (1991). Neuronal determination without cell division in Xenopus embryos. Neuron 6, 499-515.[Medline]

Heitzler, P. and Simpson, P (1991). The choice of cell fate in the epidermis of Drosophila. Cell 64, 1083-1092.[Medline]

Holt,C. E., Bertsch, T. W., Ellis, H. M. and Harris, W. A (1988). Cellular determination in the Xenopus retina is independent of lineage and birth date. Neuron 1, 15-26.[Medline]

Jarman, A. P., Grell, E. H., Ackerman, L., Jan, L. Y. and Jan, Y. N (1994). atonal is the proneural gene for Drosophila photoreceptors. Nature 369, 398-400.[Medline]

Kelley, M. W., Turner, J. K. and Reh, T. A (1994). Retinoic acid promotes differentiation of photoreceptors in vitro. Development 120, 2091-2102.[Abstract]

Kimble, J (1981). Alterations in cell lineage following laser ablation of cells in the somatic gonad of Caenorhabditis elegans. Dev. Biol 70, 208-221.

Kuffler, S. W (1953). Discharge patterns and functional organization of mammalian retina. J. Neurophysiol 16, 37-68.[Free Full Text]

Lardelli, M., Dahlstrand, J. and Lendahl, U (1994). The novel Notch homologue Notch3 lacks specific epidermal growth factor repeats and is expressed in proliferating neuroepithelium. Mech. Dev 46, 123-136.[Medline]

Lawrence, P. A. and Green, S. M (1979). Cell lineage in the developing retina of Drosophila. Dev. Biol 71, 142-152.[Medline]

Lemmon, V. and McLoon, S. C (1986). The appearance of an L1-like molecule in the chick primary visual pathway. J. Neurosci 6, 2987-2994.[Abstract]

Lieber, T., Kidd, S., Alcamo, E., Corbin, V. and Young, M. W (1993). Antineurogenic phenotypes induced by truncated Notch proteins indicate a role in signal transduction and may point to a novel function for Notch in nuclei. Genes Dev 7, 1949-1965.[Abstract/Free Full Text]

Lindsell, C. E., Shawber, C. J., Boulter, J. and Weinmaster, G (1995). Jagged: A mammalian ligand that activates Notch1. Cell 80, 909-917.[Medline]

Matsunami, N., Hamaguchi, Y., Yamamoto, Y., Kuze, K., Kangawa, K., Matsuo, H., Kawaichi, M. and Honjo,T (1989). A protein binding to the Jrecombination sequence of immunoglobulin genes contains a sequence related to the integrase motif. Nature 342, 934-937.[Medline]

McLoon, S. C. and Barnes, R. B (1989). Early differentiation of retinal ganglion cells: an axonal protein expressed by premigratory and migrating retinal ganglion cells. J. Neurosci 9, 1424-1432.[Abstract]

Muskavich, M. A (1994). Delta-Notch signaling and Drosophila cell fate choice. Dev. Biol 166, 415-430.[Medline]

Prada, C., Puga, J., Perez-Mendez, L., Lopez, R. and Ramirez, G (1991). Spatial and temporal patterns of neurogenesis in the chick retina. Eur. J. Neurosci 3, 559-569.[Medline]

Ready, D. F., Hanson, T. E. and Benzer, S (1976). Development of the Drosophila retina, a neurocrystalline lattice. Dev. Biol 53, 217-240.[Medline]

Rebay, I., Fleming, R. J., Fehon, R. G., Cherbas, L., Cherbas, P. andArtavanis-Tsakonas, S (1991). Specific EGF-repeats of Notch mediate interactions with Delta and Serrate: implications for Notch as a multifunctional receptor. Cell 67, 687-699.[Medline]

Rebay, I., Fehon, R. G. and Artavanis-Tsakonas, S (1993). Specific truncations of Drosophila Notch define dominant activated and dominant negative forms of the receptor. Cell 74, 319-329.[Medline]

Reh, T. A. and Kljavin, I. J (1989). Age of differentiation determines rat retinal germinal cell phenotype: Induction of differentiation by dissociation. J. Neurosci 9, 4179-4189.[Abstract]

Riddle, R. D., Johnson, R. L., Laufer, E. and Tabin, C (1993). Sonic hedgehog mediates the polarizing activity of the ZPA. Cell 75, 1401-1416.[Medline]

Rogers, S., Wells, R. and Rechsteiner, M (1986). Amino acid sequences common to rapidly degraded proteins: The PEST hypothesis. Science 234, 364-368.[Abstract/Free Full Text]

Sasai, Y., Kageyama, R., Tagawa, Y., Shigemoto, R. and Kadanishi, S (1992). Two mammalian helix-loop-helix factors structurally related to Drosophila hairy and Enhancer of split. Genes Dev 6, 2620-2634.[Abstract/Free Full Text]

Seydoux, G. and Greenwald, I (1989). Cell autonomy of lin-12 function in a cell fate decision in C. elegans. Cell 57, 1237-1245.[Medline]

Shankland, M. and Weisblat, D. A (1984). Stepwise commitment of blast cell fates during the positional specification of the O and P cell lines in the leech embryo. Dev. Biol 106, 326-342.[Medline]

Simpson, P. and Carteret, C (1990). Proneural clusters: equivalence groups in the epithelium of Drosophila. Development 110, 927-932.[Abstract/Free Full Text]

Skeath, J. B. and Carroll, S. B (1991). Regulation of achaete-scute gene expression and sensory organ pattern formation in the Drosophila wing. Genes Dev 5, 984-995.[Abstract/Free Full Text]

Skeath, J. B. and Carroll, S. B (1992). Regulation of proneural gene expression and cell fate during neuroblast segregation in the Drosophila embryo. Development 114, 939-946.[Abstract]

Sperry, R. W (1963). Chemoaffinity in the orderly growth of nerve fiber patterns and connections. Proc. Natl. Acad. Sci. USA 50, 703-710.[Free Full Text]

Stoker, A. W. and Bissell, M. J (1987). Quantitative immunocytochemical assay for infectious avian retroviruses. J. Gen. Virol 68, 2481-2485.[Abstract/Free Full Text]

Struhl, G., Fitzgerald, K. and Greenwald, I (1993). Intrinsic activitiy of the lin-12 and Notch intracellular domains in vivo. Cell 74, 331-345.[Medline]

Swiatek, P. J., Lindsell, C. E., Franco del Amo, F., Weinmaster, G. and Gridley, T (1994). Notch1 is essential for postimplantation development in mice. Genes Dev 8, 707-719.[Abstract/Free Full Text]

Taghert, P. H., Doe, C. Q. and Goodman, C. S (1984). Cell determination and regulation during development of neuroblasts and neurones in grasshopper embryo. Nature 307, 163-165.[Medline]

Turner D. L. and Cepko C. L (1987). A common progenitor for neurons and glia persists in rat retina late in development. Nature 328, 131-136.[Medline]

Turner D. L., Snyder E. Y. and Cepko C. L (1990). Lineage-independent determination of cell type in the embryonic mouse retina. Neuron 4, 833-845.[Medline]

Turner, D. L. and Weintraub, H (1994). Expression of achaete-scute homologue 3 in Xenopus embryos converts ectodermal cells to a neural fate. Genes Dev 8, 1434-1446.[Abstract/Free Full Text]

Watanabe, T. and Raff, M. C (1990). Rod photoreceptor development in vitro: intrinsic properties of proliferating neuroepithelial cells change as development proceeds in the rat retina. Neuron 4, 461-467.[Medline]

Weinmaster, G., Roberts, V. and Lemke, G (1991). A homolog of Drosophila Notch expressed during mammalian development. Development 113, 199-205.[Abstract]

Weinmaster, G., Roberts, V. and Lemke, G (1992). Notch2 : a second mammalian Notch gene. Development 116, 931-941.[Abstract]

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

Wigglesworth, V. B (1940). Local and general factors in the development of \324pattern' in Rhodnius prolixus (Hemiptera). J. Exp. Biol 17, 180-200.[Abstract]

Wilkinson, H. A., Fitzgerald, K. and Greenwald, I (1994). Reciprocal changes in expression of the receptor lin-12 and its ligand lag-2 prior to commitment in a C. elegans cell fate decision. Cell 79, 1187-1198.[Medline]

Woolf, T. M., Melton, D. A. and Jennings, C. G. B (1992). Specificity of antisense oligonucleotides in vivo. Proc. Natl. Acad. Sci USA 89, 7305-7309.[Abstract/Free Full Text]

Yamada, T., Pfaff, S. L., Edlund, T. and Jessell, T. M (1993). Control of cell pattern in the neural tube: Motor neuron induction by diffusible factors from notochord and floor plate. Cell 73, 673-686.[Medline]




This article has been cited by other articles:


Home page
J. Neurosci.Home page
E. Chatzopoulou, A. Miguez, M. Savvaki, G. Levasseur, A. Muzerelle, M.-P. Muriel, O. Goureau, K. Watanabe, L. Goutebroze, P. Gaspar, et al.
Structural Requirement of TAG-1 for Retinal Ganglion Cell Axons and Myelin in the Mouse Optic Nerve
J. Neurosci., July 23, 2008; 28(30): 7624 - 7636.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
X. Mu, X. Fu, P. D. Beremand, T. L. Thomas, and W. H. Klein
Gene-regulation logic in retinal ganglion cell development: Isl1 defines a critical branch distinct from but overlapping with Pou4f2
PNAS, May 13, 2008; 105(19): 6942 - 6947.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
A. V. Das, J. James, S. Bhattacharya, A. N. Imbalzano, M. L. Antony, G. Hegde, X. Zhao, K. Mallya, F. Ahmad, E. Knudsen, et al.
SWI/SNF Chromatin Remodeling ATPase Brm Regulates the Differentiation of Early Retinal Stem Cells/Progenitors by Influencing Brn3b Expression and Notch Signaling
J. Biol. Chem., November 30, 2007; 282(48): 35187 - 35201.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
S. Bhattacharya, A. Das, K. Mallya, and I. Ahmad
Maintenance of retinal stem cells by Abcg2 is regulated by notch signaling
J. Cell Sci., August 1, 2007; 120(15): 2652 - 2662.
[Abstract] [Full Text] [PDF]


Home page
Endocr. Rev.Home page
V. Bolos, J. Grego-Bessa, and J. L. de la Pompa
Notch Signaling in Development and Cancer
Endocr. Rev., May 1, 2007; 28(3): 339 - 363.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Respir. Cell Mol. Bio.Home page
B. M. Levesque, S. Zhou, L. Shan, P. Johnston, Y. Kong, S. Degan, and M. E. Sunday
NPAS1 Regulates Branching Morphogenesis in Embryonic Lung
Am. J. Respir. Cell Mol. Biol., April 1, 2007; 36(4): 427 - 434.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Lung Cell. Mol. Physiol.Home page
L. Shan, J. C. Aster, J. Sklar, and M. E. Sunday
Notch-1 regulates pulmonary neuroendocrine cell differentiation in cell lines and in transgenic mice
Am J Physiol Lung Cell Mol Physiol, February 1, 2007; 292(2): L500 - L509.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
A. P. Jadhav, S.-H. Cho, and C. L. Cepko
Notch activity permits retinal cells to progress through multiple progenitor states and acquire a stem cell property
PNAS, December 12, 2006; 103(50): 18998 - 19003.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. Solter, M. Locker, S. Boy, V. Taelman, E. J. Bellefroid, M. Perron, and T. Pieler
Characterization and function of the bHLH-O protein XHes2: insight into the mechanisms controlling retinal cell fate decision
Development, October 15, 2006; 133(20): 4097 - 4108.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
S.-H. Cho and C. L. Cepko
Wnt2b/{beta}-catenin-mediated canonical Wnt signaling determines the peripheral fates of the chick eye
Development, August 15, 2006; 133(16): 3167 - 3177.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
L. Gao and R. H. Miller
Specification of optic nerve oligodendrocyte precursors by retinal ganglion cell axons.
J. Neurosci., July 19, 2006; 26(29): 7619 - 7628.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
T. Hashimoto, X.-M. Zhang, B. Y.-k. Chen, and X.-J. Yang
VEGF activates divergent intracellular signaling components to regulate retinal progenitor cell proliferation and neuronal differentiation
Development, June 1, 2006; 133(11): 2201 - 2210.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
O. V. Taranova, S. T. Magness, B. M. Fagan, Y. Wu, N. Surzenko, S. R. Hutton, and L. H. Pevny
SOX2 is a dose-dependent regulator of retinal neural progenitor competence.
Genes & Dev., May 1, 2006; 20(9): 1187 - 1202.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
O. Yaron, C. Farhy, T. Marquardt, M. Applebury, and R. Ashery-Padan
Notch1 functions to suppress cone-photoreceptor fate specification in the developing mouse retina
Development, April 1, 2006; 133(7): 1367 - 1378.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
A. P. Jadhav, H. A. Mason, and C. L. Cepko
Notch 1 inhibits photoreceptor production in the developing mammalian retina
Development, March 1, 2006; 133(5): 913 - 923.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
Y. Wang, G. D. Dakubo, S. Thurig, C. J. Mazerolle, and V. A. Wallace
Retinal ganglion cell-derived sonic hedgehog locally controls proliferation and the timing of RGC development in the embryonic mouse retina
Development, November 15, 2005; 132(22): 5103 - 5113.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
F. Kubo, M. Takeichi, and S. Nakagawa
Wnt2b inhibits differentiation of retinal progenitor cells in the absence of Notch activity by downregulating the expression of proneural genes
Development, June 15, 2005; 132(12): 2759 - 2770.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
K. J. Liu and R. M. Harland
Inhibition of neurogenesis by SRp38, a neuroD-regulated RNA-binding protein
Development, April 1, 2005; 132(7): 1511 - 1523.
[Abstract] [Full Text] [PDF]


Home page
IOVSHome page
W. Halfter, M. Willem, and U. Mayer
Basement Membrane-Dependent Survival of Retinal Ganglion Cells
Invest. Ophthalmol. Vis. Sci., March 1, 2005; 46(3): 1000 - 1009.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
N. Daudet and J. Lewis
Two contrasting roles for Notch activity in chick inner ear development: specification of prosensory patches and lateral inhibition of hair-cell differentiation
Development, February 1, 2005; 132(3): 541 - 551.
[Abstract] [Full Text] [PDF]


Home page
IOVSHome page
W. Xie, R.-T. Yan, W. Ma, and S.-Z. Wang
Enhanced Retinal Ganglion Cell Differentiation by ath5 and NSCL1 Coexpression
Invest. Ophthalmol. Vis. Sci., September 1, 2004; 45(9): 2922 - 2928.
[Abstract] [Full Text] [PDF]


Home page
IOVSHome page
S. S.-M. Zhang, J. Wei, H. Qin, L. Zhang, B. Xie, P. Hui, A. Deisseroth, C. J. Barnstable, and X.-Y. Fu
STAT3-Mediated Signaling in the Determination of Rod Photoreceptor Cell Fate in Mouse Retina
Invest. Ophthalmol. Vis. Sci., July 1, 2004; 45(7): 2407 - 2412.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Lung Cell. Mol. Physiol.Home page
Y. Kong, J. Glickman, M. Subramaniam, A. Shahsafaei, K. P. Allamneni, J. C. Aster, J. Sklar, and M. E. Sunday
Functional diversity of notch family genes in fetal lung development
Am J Physiol Lung Cell Mol Physiol, May 1, 2004; 286(5): L1075 - L1083.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
X. Mu, P. D. Beremand, S. Zhao, R. Pershad, H. Sun, A. Scarpa, S. Liang, T. L. Thomas, and W. H. Klein
Discrete gene sets depend on POU domain transcription factor Brn3b/Brn-3.2/POU4f2 for their expression in the mouse embryonic retina
Development, March 15, 2004; 131(6): 1197 - 1210.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
J. James, A. V. Das, S. Bhattacharya, D. M. Chacko, X. Zhao, and I. Ahmad
In Vitro Generation of Early-Born Neurons from Late Retinal Progenitors
J. Neurosci., September 10, 2003; 23(23): 8193 - 8203.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
P. Esteve, F. Trousse, J. Rodriguez, and P. Bovolenta
SFRP1 modulates retina cell differentiation through a {beta}-catenin-independent mechanism
J. Cell Sci., June 15, 2003; 116(12): 2471 - 2481.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
B. J. Frankfort and G. Mardon
R8 development in the Drosophila eye: a paradigm for neural selection and differentiation
Development, March 5, 2003; 129(6): 1295 - 1306.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
S. Lutolf, F. Radtke, M. Aguet, U. Suter, and V. Taylor
Notch1 is required for neuronal and glial differentiation in the cerebellum
Development, March 3, 2003; 129(2): 373 - 385.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
A. Chojnacki, T. Shimazaki, C. Gregg, G. Weinmaster, and S. Weiss
Glycoprotein 130 Signaling Regulates Notch1 Expression and Activation in the Self-Renewal of Mammalian Forebrain Neural Stem Cells
J. Neurosci., March 1, 2003; 23(5): 1730 - 1741.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
F. Kubo, M. Takeichi, and S. Nakagawa
Wnt2b controls retinal cell differentiation at the ciliary marginal zone
Development, February 1, 2003; 130(3): 587 - 598.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
S. J. Eglen and D. J. Willshaw
Influence of cell fate mechanisms upon retinal mosaic formation: a modelling study
Development, January 12, 2002; 129(23): 5399 - 5408.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
R. Adler and T. L. Belecky-Adams
The role of bone morphogenetic proteins in the differentiation of the ventral optic cup
Development, January 7, 2002; 129(13): 3161 - 3171.
[Abstract] [Full Text] [PDF]


Home page
Nucleic Acids ResHome page
X. Mu, S. Zhao, R. Pershad, T.-F. Hsieh, A. Scarpa, S. W. Wang, R. A. White, P. D. Beremand, T. L. Thomas, L. Gan, et al.
Gene expression in the developing mouse retina by EST sequencing and microarray analysis
Nucleic Acids Res., December 15, 2001; 29(24): 4983 - 4993.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
C. H. Faux, A. M. Turnley, R. Epa, R. Cappai, and P. F. Bartlett
Interactions between Fibroblast Growth Factors and Notch Regulate Neuronal Differentiation
J. Neurosci., August 1, 2001; 21(15): 5587 - 5596.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
N. L. Brown, S. Patel, J. Brzezinski, and T. Glaser
Math5 is required for retinal ganglion cell and optic nerve formation
Development, July 1, 2001; 128(13): 2497 - 2508.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
W. Liu, Z. Mo, and M. Xiang
The Ath5 proneural genes function upstream of Brn3 POU domain transcription factor genes to promote retinal ganglion cell development
PNAS, February 13, 2001; 98(4): 1649 - 1654.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
N Scheer, A Groth, S Hans, and J. Campos-Ortega
An instructive function for Notch in promoting gliogenesis in the zebrafish retina
Development, January 4, 2001; 128(7): 1099 - 1107.
[Abstract] [PDF]


Home page
DevelopmentHome page
X. Zhang and X. Yang
Regulation of retinal ganglion cell production by Sonic hedgehog
Development, January 3, 2001; 128(6): 943 - 957.
[Abstract] [PDF]


Home page
Genes Dev.Home page
S. W. Wang, B. S. Kim, K. Ding, H. Wang, D. Sun, R. L. Johnson, W. H. Klein, and L. Gan
Requirement for math5 in the development of retinal ganglion cells
Genes & Dev., January 1, 2001; 15(1): 24 - 29.
[Abstract] [Full Text]


Home page
DevelopmentHome page
M Gonzalez-Hoyuela, J. Barbas, and A Rodriguez-Tebar
The autoregulation of retinal ganglion cell number
Development, January 1, 2001; 128(1): 117 - 124.
[Abstract] [PDF]


Home page
DevelopmentHome page
B. A. Link, J. M. Fadool, J. Malicki, and J. E. Dowling
The zebrafish young mutation acts non-cell-autonomously to uncouple differentiation from specification for all retinal cells
Development, May 15, 2000; 127(10): 2177 - 2188.
[Abstract] [PDF]


Home page
J. Neurosci.Home page
B. Pimentel, C. Sanz, I. Varela-Nieto, U. R. Rapp, F. De Pablo, and E. J. de la Rosa
c-Raf Regulates Cell Survival and Retinal Ganglion Cell Morphogenesis during Neurogenesis
J. Neurosci., May 1, 2000; 20(9): 3254 - 3262.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
M. J. Belliveau, T. L. Young, and C. L. Cepko
Late Retinal Progenitor Cells Show Intrinsic Limitations in the Production of Cell Types and the Kinetics of Opsin Synthesis
J. Neurosci., March 15, 2000; 20(6): 2247 - 2254.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
D Schulte and C. Cepko
Two homeobox genes define the domain of EphA3 expression in the developing chick retina
Development, January 12, 2000; 127(23): 5033 - 5045.
[Abstract] [PDF]


Home page
DevelopmentHome page
T. Maynard, Y Wakamatsu, and J. Weston
Cell interactions within nascent neural crest cell populations transiently promote death of neurogenic precursors
Development, January 11, 2000; 127(21): 4561 - 4572.
[Abstract] [PDF]


Home page
DevelopmentHome page
M. Rones, K. McLaughlin, M Raffin, and M Mercola
Serrate and Notch specify cell fates in the heart field by suppressing cardiomyogenesis
Development, January 9, 2000; 127(17): 3865 - 3876.
[Abstract] [PDF]


Home page
DevelopmentHome page
W Liu, S. Khare, X Liang, M. Peters, X Liu, C. Cepko, and M Xiang
All Brn3 genes can promote retinal ganglion cell differentiation in the chick
Development, January 8, 2000; 127(15): 3237 - 3247.
[Abstract] [PDF]


Home page
DevelopmentHome page
A Zine, T. Van De Water, and F de Ribaupierre
Notch signaling regulates the pattern of auditory hair cell differentiation in mammals
Development, January 8, 2000; 127(15): 3373 - 3383.
[Abstract] [PDF]


Home page
DevelopmentHome page
Y Wakamatsu, T. Maynard, and J. Weston
Fate determination of neural crest cells by NOTCH-mediated lateral inhibition and asymmetrical cell division during gangliogenesis
Development, January 7, 2000; 127(13): 2811 - 2821.
[Abstract] [PDF]