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 Gershon, A. A.
Right arrow Articles by Zimmerman, K.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Gershon, A. A.
Right arrow Articles by Zimmerman, K.
Social Bookmarking
 Add to CiteULike   Add to Complore   Add to Connotea   Add to Del.icio.us   Add to Digg   Add to Reddit   Add to Technorati   Add to Twitter  
What's this?
Allen, J. D., Lints, T., Jenkins, N. A., Copeland, N. G., Strasser, A., Harvey, R. P. and Adams, J. M (1991). Novel murine homeo box gene on chromosome 1 expressed in specific hematopoietic lineages and during embryogenesis. Genes Dev 5, 509-520.[Abstract/Free Full Text]

Aruga, J., Yokota, N., Hashimoto, M., Furuichi, T., Fukuda, M. and Mikoshiba, K (1994). A novel zinc finger protein, zic, is involved in neurogenesis, especially in the cell lineage of cerebellar granule cells. J. Neurochem 63, 1880-1890.[Medline]

Barad, M., Jack, T., Chadwick, R. and McGinnis, W (1988). A novel, tissue specific, Drosophila homeobox gene. EMBO J 7, 2151-2161.[Medline]

Bellefroid, E. J., Bourguignon, C., Hollemann, T., Ma, Q., Anderson, D. J. and Pieler, T (1996). X-MyT1, a Xenopus C2HC-type zinc finger protein with a regulatory function in neuronal differentiation. Cell 87, 1191-1202.[Medline]

Bellefroid, E. J., Kobbe, A., Gruss, P., Pieler, T., Gurdon, J. B. and Papalopulu, N (1998). Xiro3 encodes a Xenopus homolog of the Drosophilairoquois genes and functions in neural specification. EMBO J 17, 191-203.[Medline]

Bradley, L. C., Snape, A., Bhatt, S. and Wilkinson, D. G (1993). The structure and expression of the Xenopus Krox-20 gene: Conserved and divergent pattern of expression in rhombomeres and neural crest. Mech. Dev 40, 73-84.[Medline]

Brewster, R., Lee, J. and Ruiz i Altaba, A (1998). Gli/Zic factors pattern the neural plate by defining domains of cell differentiation. Nature 393, 579-582.[Medline]

Chitnis, A., Henrique, D., Lewis, J., Ish-Horowicz, D. and Kinter, C (1995). Primary neurogenesis in Xenopus embryos regulated by a homologue of the Drosophila neurogenic gene Delta. Nature 375, 761-766.[Medline]

Chitnis, A. and Kintner, C (1996). Sensitivity of proneural genes to lateral inhibition affects the pattern of primary neurons in Xenopus embryos. Development 122, 2295-2301.[Abstract]

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

Coffman, C. R., 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]

Dubois, L., Bally-Cuif, L., Crozatier, M., Moreau, J., Paquereau, L. and Vincent, A (1998). XCoe2, a transcription factor of the Col/Olf-1/EBF family involved in the specification of primary neurons in Xenopus. Curr. Biol 8, 199-209.[Medline]

Eagleson, G. W. and Harris, W. A (1990). Mapping of the presumptive brain regions in the neural plate of Xenopus laevis. J. Neurobiol 21, 427-440.[Medline]

Espeseth, A., Johnson, E. and Kintner, C (1995). Xenopus F-cadherin , a novel member of the cadherin family of cell adhesion molecules, is expressed at boundaries in the neural tube. Molec. Cell. Neurosci 6, 199-211.[Medline]

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

Fjose, A., Izpisua-Belmonte, J.-C., Fromental-Ramain, C. and Duboule, D (1994). Expression of the zebrafish gene hlx-1 in the prechordal plate and during CNS development. Development 120, 71-81.[Abstract]

Gehring, W. J., Affolter, M. and Burglin, T (1994). Homeodomain Proteins. Annu. Rev. Biochem 63, 487-526.[Medline]

Gomez-Skarmeta, J. L., Glavic, A., Mustienes-Calle, E., Modolell, J. and Mayor, R (1998). Xiro , a Xenopus homolog of the DrosophilaIroquois complex genes, controls development at the neural plate. EMBO J 17, 181-190.[Medline]

Han, K. and Manley, J (1993). Functional domains of the Drosophila Engrailed protein. EMBO J 12, 2723-2733.[Medline]

Harland, R. M (1991). In situ hybridization: An improved whole mount method for Xenopus embryos. Methods Cell Biol 36, 685-695.[Medline]

Hartenstein, V (1989). Early neurogenesis in Xenopus : The spatio-temporal pattern of proliferation and cell lineages in the embryonic spinal cord. Neuron 3, 399-411.[Medline]

Hartenstein, V (1993). Early pattern of neuronal differentiation in the Xenopus embryonic brainstem and spinal cord. J. Comp. Neurol 328, 213-231.[Medline]

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

Hemmati-Brivanlou, A., Frank, D., Bolce, M., Brown, B., Sive, H. and Harland, R (1990). Localization of specific mRNAs in Xenopus embryos by whole-mount in situ hybridization. Development 110, 325-330.[Abstract/Free Full Text]

Hollenberg, S. M., Weinberger, C., Ong, E. S., Cerelli, G., Oro, A., Lebo, R., E.B., T., Ronsenfeld, M. G. and Evan, R. M (1985). Primary structure and expression of a functional human glucocorticoid receptor cDNA. Nature 318, 635-641.[Medline]

Johnson, J., Zhang, W., Rudnick, A., Rutter, W. and German, M (1997). Transcriptional synergy between LIM-homeodomain proteins and basic helix-loop-helix proteins: the LIM2 domain determines specificity. Mol. Cell. Biol 17, 3488-3496.[Abstract]

Kanekar, S., Perron, M., Dorsky, R., Harris, W., Jan, L., Jan, Y., Vetter, M (1997). Xath5 participates in a network of bHLH genes in the developing Xenopus retina. Neuron 19, 981-994.[Medline]

Kintner, C. R. and Melton, D. A (1987). Expression of Xenopus N-CAM RNA in ectoderm is an early response to neural induction. Development 99, 311-325.[Abstract]

Kolm, P. J. and Sive, H. L (1995). Efficient hormone-inducible protein function in Xenopus laevis. Dev. Biol 171, 267-272.[Medline]

Krieg, P. A., Sakaguchi, D. S. and Kintner, C (1989). Primary structure and developmental expression of large cytoplasmic domain form of Xenopus laevis neural cell adhesion molecule (N-CAM). Nucleic Acids Res 17, 10321-10335.[Abstract/Free Full Text]

Lee, J., Hollenberg, S. M., Snider, L., Turner, D. L., Lipnick, N. and Weintraub, H (1995). Conversion of Xenopus ectoderm into neurons by NeuroD, a basic helix-loop-helix protein. Science 268, 836-844.[Abstract/Free Full Text]

Lee, J., Platt, K. A., Censullo, P. and Ruiz i Altaba, A (1997). Gli1 is a target of Sonic hedgehog that induces ventral neural tube development. Development 124, 2537-2552.[Abstract]

Lu, S., Bogarad, L. D., Murtha, M. T. and Ruddle, F. H (1992). Expression pattern of a murine homeobox gene, Dbx , displays extreme spatial restriction in embryonic forebrain and spinal cord. Proc. Natl. Acad. Sci. USA 89, 8053-8057.[Abstract/Free Full Text]

Ma, Q., Kintner, C. and Anderson, D. J (1996). Identification of neurogenin , a vertebrate neuronal determination gene. Cell 87, 43-52.[Medline]

Marine, J. C., Bellefroid, E. J., Pendeville, H., Martial, J. A. and Pieler, T (1997). A role for Xenopus Gli-type zinc finger proteins in the early embryonic patterning of mesoderm and neuroectoderm. Mech. Dev 63, 211-225.[Medline]

Matise, M., Lustig.M., Sakurai, T., Grumet, M. and Joyner, A (1999). Ventral midline cells are required for the local control of commissural axon guidance in the mouse spinal cord. Development 126, 3649-3659.[Abstract]

Mizuseki, K., Kishi, M., Matsui, M., Nakanishi, S. and Sasai, Y (1998). Xenopus Zic-related-1 and Sox-2, two factors induced by chordin, have distinct activities in the initiation of neural induction. Development 125, 579-587.[Abstract]

Mizuseki, K., Kishi, M., Shiota, K., Nakanish, S. and Sasai, Y (1998). SoxD: an essential mediator of induction of anterior neural tissues in Xenopus embryos. Neuron 21, 77-85.[Medline]

Oschwald, R., Richter, K. and Grunz, H (1991). Localization of nervous system-specific class II beta-tubulin gene in Xenopus laevis embryos by whole-mount in situ hybridization. Int. J. Dev. Biol 35, 399-405.[Medline]

Pierani, A., Brenner-Morton, S., Chiang, C. and Jessell, T (1999). A sonic hedgehog-independent, retinoid-activated pathway of neurogenesis in the ventral spinal cord. Cell 97, 903-915.[Medline]

Rangini, Z., Ben-Yehuda, A., Shapira, E., Gruenbaum, Y. and Fainsod, A (1991). CHox E , a chicken homeogene of the H2.O type exhibits dorso-ventral restriction in the proliferating region of the spinal cord. Mech. Dev 35, 13-24.[Medline]

Richter, K., Grunz, H. and Dawid, I (1988). Gene expression in the embryonic nervous system of Xenopus laevis. Proc. Natl. Acad. Sci. USA 85, 8086-8090.[Abstract/Free Full Text]

Rupp, R. A., Snider, L. and Weintraub, H (1994). Xenopus embryos regulate the nuclear localization of XMyoD. Genes Dev 8, 1311-1323.[Abstract/Free Full Text]

Sadowski, I., Ma, J., Treizenberg, S. and Ptashne, M (1988). GAL4-VP16 is an unusually potent transcriptional activator. Nature 335, 563-564.[Medline]

Shoji, H., Ito, T., Wakamatsu, Y., Hayasaka, N., Ohsaki, K., Oyanagi, M., Kominami, R., Kondoh, H. and Takahashi, N (1996). Regionalized expression of the Dbx family homeobox genes in the embryonic CNS of the mouse. Mech. Dev 56, 25-39.[Medline]

Smith, S. and Jaynes, J (1996). A conserved region of engrailed, shared among all en-, gsc-, Nk1-, Nk2-and msh-class homeoproteins, mediates active transcriptional repression in vivo. Development 122, 3141-3150.[Abstract]

Treizenberg, S., Kingsbury, R. and McKnight, S (1988). Functional dissection of VP16, the trans-activator of herpes simplex virus immediate early gene expression. Genes Dev 2, 718-729.[Abstract/Free Full Text]

Turner, D. L. and Weintraub, H (1994). Expression of achaete-scute homolog 3 in Xenopus embryos converts ectodermal cells to a neural fate. Genes Dev 8, 1434-1447.[Abstract/Free Full Text]

Vize, P., Hemmati-Brivanlou, A., Harland, R. and Melton, D (1991). Assays for gene function in developing Xenopus embryos. Meth. Cell Biol 36, 685-695.

Wettstein, D. A., Turner, D.L. and Kintner, C (1997). The Xenopus homolog of Drosophila Suppressor of Hairless mediates Notch signaling during primary neurogenesis. Development 124, 693-702.[Abstract]

Wilson, D. and Desplan, C (1995). Cooperating to be different. Curr. Biol 5, 32-34.[Medline]

Zimmerman, K., Shih, J., Bars, J., Collazo, A. and Anderson, D. J (1993). XASH-3 , a novel Xenopus achaete-scute homolog, provides an early marker of planar neural induction and position along the mediolateral axis of the neural plate. Development 119, 221-232.[Abstract]


Add to CiteULike CiteULike   Add to Complore Complore   Add to Connotea Connotea   Add to Del.icio.us Del.icio.us   Add to Digg Digg   Add to Reddit Reddit   Add to Technorati Technorati   Add to Twitter Twitter    What's this?


This article has been cited by other articles:


Home page
DevelopmentHome page
R. B. Fletcher, J. C. Baker, and R. M. Harland
FGF8 spliceforms mediate early mesoderm and posterior neural tissue formation in Xenopus
Development, May 1, 2006; 133(9): 1703 - 1714.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
V. Nguyen, A. L. Chokas, B. Stecca, and A. R. i Altaba
Cooperative requirement of the Gli proteins in neurogenesis
Development, July 15, 2005; 132(14): 3267 - 3279.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
V. Dubreuil, M.-R. Hirsch, C. Jouve, J.-F. Brunet, and C. Goridis
The role of Phox2b in synchronizing pan-neuronal and type-specific aspects of neurogenesis
Development, March 13, 2003; 129(22): 5241 - 5253.
[Abstract] [Full Text] [PDF]


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 Gershon, A. A.
Right arrow Articles by Zimmerman, K.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Gershon, A. A.
Right arrow Articles by Zimmerman, K.
Social Bookmarking
 Add to CiteULike   Add to Complore   Add to Connotea   Add to Del.icio.us   Add to Digg   Add to Reddit   Add to Technorati   Add to Twitter  
What's this?