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 Google Scholar
Google Scholar
Right arrow Articles by Farah, M. H.
Right arrow Articles by Turner, D. L.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Farah, M. H.
Right arrow Articles by Turner, D. L.
Akazawa, C., Ishibashi, M., Shimizu, C., Nakanishi, S. and Kageyama, R (1995). A mammalian helix-loop-helix factor structurally related to the product of Drosophila proneural gene atonal is a positive transcriptionalregulator expressed in the developing nervous system. J. Biol. Chem 270, 8730-8738.[Abstract/Free Full Text]

Bain, G., Kitchens, D., Yao, M., Huettner, J. E. and Gottlieb, D. I (1995). Embryonic stem cells express neuronal properties in vitro. Dev. Biol 168, 342-357.[Medline]

Bartholoma, A. and Nave, K. A (1994). NEX-1: a novel brain-specific helix-loop-helix protein with autoregulation and sustained expression in mature cortical neurons. Mech. Dev 48, 217-228.[Medline]

Begley, C. G., Lipkowitz, S., Gobel, V., Mahon, K. A., Bertness, V., Green, A. R., Gough, N. M. and Kirsch, I. R (1992). Molecular characterization of NSCL, a gene encoding a helix-loop-helix protein expressed in the developing nervous system. Proc. Natl. Acad. Sci. USA 89, 38-42.[Abstract/Free Full Text]

Ben-Arie, N., Bellen, H. J., Armstrong, D. L., McCall, A. E., Gordadze, P. R., Guo, Q., Matzuk, M. M. and Zoghbi, H. Y (1997). Math1 is essential for genesis of cerebellar granule neurons. Nature 390, 169-172.[Medline]

Blader, P., Fischer, N., Gradwohl, G., Guillemont, F. and Strahle, U (1997). The activity of neurogenin1 is controlled by local cues in the zebrafish embryo. Development 124, 4557-4569.[Abstract]

Boudjelal, M., Taneja, R., Matsubara, S., Bouillet, P., Dolle, P. and Chambon, P (1997). Overexpression of Stra13, a novel retinoic acid-inducible gene of the basic helix-loop-helix family, inhibits mesodermal and promotes neuronal differentiation of P19 cells. Genes Dev 11, 2052-2065.[Abstract/Free Full Text]

Cau, E., Gradwohl, G., Fode, C. and Guillemot, F (1997). Mash1 activates a cascade of bHLH regulators in olfactory neuron progenitors. Development 124, 1611-1621.[Abstract]

Chen, C. and Okayama, H (1987). High-efficiency transformation of mammalian cells by plasmid DNA. Mol. Cell Biol 7, 2745-2752.[Abstract/Free Full Text]

Cserjesi, P., Brown, D., Lyons, G. E. and Olson, E. N (1995). Expression of the novel basic helix-loop-helix gene eHAND in neural crest derivatives and extraembryonic membranes during mouse development. Dev. Biol 170, 664-678.[Medline]

Davis, R. L., Cheng, P. F., Lassar, A. B. and Weintraub, H (1990). The MyoD DNA binding domain contains a recognition code for muscle-specific gene activation. Cell 60, 733-746.[Medline]

Easter, S. S., Jr., Ross, L. S. and Frankfurter, A (1993). Initial tract formation in the mouse brain. J. Neurosci 13, 285-299.[Abstract]

Fode, C., Gradwohl, G., Morin, X., Dierich, A., LeMeur, M., Goridis, C. and Guillemot, F (1998). The bHLH protein NEUROGENIN 2 is a determination factor for epibranchial placode-derived sensory neurons. Neuron 20, 483-494.[Medline]

Furukawa, T., Morrow, E. M. and Cepko, C. L (1997). Crx, a novel otx-like homeobox gene, shows photoreceptor-specific expression and regulates photoreceptor differentiation. Cell 91, 531-541.[Medline]

Guillemot, F., Lo, L. C., Johnson, J. E., Auerbach, A., Anderson, D. J. and Joyner, A. L (1993). Mammalian achaete-scute homolog 1 is required for the early development of olfactory and autonomic neurons. Cell 75, 463-476.[Medline]

Halevy, O., Novitch, B. G., Spicer, D. B., Skapek, S. X., Rhee, J., Hannon, G. J., Beach, D. and Lassar, A. B (1995). Correlation of terminal cell cycle arrest of skeletal muscle with induction of p21 by MyoD. Science 267, 1018-1021.[Abstract/Free Full Text]

Hirsch, M. R., Tiveron, M. C., Guillemot, F., Brunet, J. F. and Goridis, C (1998). Control of noradrenergic differentiation and phox2a expression by MASH1 in the central and peripheral nervous system. Development 125, 599-608.[Abstract]

Hollenberg, S. M., Sternglanz, R., Cheng, P. F. and Weintraub, H (1995). Identification of a new family of tissue-specific basic helix-loop-helix proteins with a two-hybrid system. Mol. Cell Biol 15, 3813-3822.[Abstract]

Itoh, F., Nakane, T. and Chiba, S (1997). Gene expression of MASH-1, MATH-1, neuroD and NSCL-2, basic helix-loop-helix proteins, during neural differentiation in P19 embryonal carcinoma cells. Tohoku J. Exp. Med 182, 327-336.[Medline]

Johnson, J. E., Birren, S. J. and Anderson, D. J (1990). Two rat homologues of Drosophila achaete-scute specifically expressed in neuronal precursors. Nature 346, 858-861.[Medline]

Johnson, J. E., Zimmerman, K., Saito, T. and Anderson, D. J (1992). Induction and repression of mammalian achaete-scute homologue (MASH) gene expression during neuronal differentiation of P19 embryonal carcinoma cells. Development 114, 75-87.[Abstract]

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

Lee, J. E., 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]

Lo, L., Tiveron, M. C. and Anderson, D. J (1998). MASH1 activates expression of the paired homeodomain transcription factor Phox2a, and couples pan-neuronal and subtype-specific components of autonomic neuronal identity. Development 125, 609-620.[Abstract]

Ma, Q., Chen, Z., del Barco Barrantes, I., de la Pompa, J. L. and Anderson, D. J (1998). neurogenin1 is essential for the determination of neuronal precursors for proximal cranial sensory ganglia. Neuron 20, 469-482.[Medline]

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

McBurney, M. W (1993). P19 embryonal carcinoma cells. Int. J. Dev. Biol 37, 135-140.[Medline]

McBurney, M. W., Reuhl, K. R., Ally, A. I., Nasipuri, S., Bell, J. C. and Craig, J (1988). Differentiation and maturation of embryonal carcinoma-derived neurons in cell culture. J. Neurosci 8, 1063-1073.[Abstract]

McCormick, M. B., Tamimi, R. M., Snider, L., Asakura, A., Bergstrom, D. and Tapscott, S. J (1996). neuroD2 and neuroD3: Distinct Expression Patterns and Transcriptional Activation Potentials within the neuroD Gene Family. Molec. Cell. Biol 16, 5792-5800.[Abstract]

Miyata, T., Maeda, T. and Lee, J. E (1999). NeuroD is required for differentiation of the granule cells in the cerebellum and hippocampus. Genes Dev 13, 1647-1652.[Abstract/Free Full Text]

Molkentin, J. D. and Olson, E. N (1996). Defining the regulatory networks for muscle development. Curr. Opin. Genet. Dev 6, 445-453.[Medline]

Morrow, E. M., Furukawa, T., Lee, J. E. and Cepko, C. L (1999). NeuroD regulates multiple functions in the developing neural retina in rodent. Development 126, 23-36.[Abstract]

Murre, C., McCaw, P. S., Vaessin, H., Caudy, M., Jan, L. Y., Jan, Y. N., Cabrera, C. V., Buskin, J. N., Hauschka, S. D., Lassar, A. B (1989). Interactions between heterologous helix-loop-helix proteins generate complexes that bind specifically to a common DNA sequence. Cell 58, 537-544.[Medline]

Mutoh, H., Naya, F. J., Tsai, M. J. and Leiter, A. B (1998). The basic helix-loop-helix protein BETA2 interacts with p300 to coordinate differentiation of secretin-expressing enteroendocrine cells. Genes Dev 12, 820-830.[Abstract/Free Full Text]

Otten, A. D., Firpo, E. J., Gerber, A. N., Brody, L. L., Roberts, J. M. and Tapscott, S. J (1997). Inactivation of MyoD-mediated expression of p21 in tumor cell lines. Cell Growth Differ 8, 1151-1160.[Abstract]

Perez, S. E., Rebelo, S. and Anderson, D. J (1999). Early specification of sensory neuron fate revealed by expression and function of neurogenins in the chick embryo. Development 126, 1715-1728.[Abstract]

Peyton, M., Stellrecht, C. M., Naya, F. J., Huang, H. P., Samora, P. J. and Tsai, M. J (1996). BETA3, a novel helix-loop-helix protein, can act as a negative regulator of BETA2 and MyoD-responsive genes. Mol. Cell Biol 16, 626-633.[Abstract]

Polyak, K., Lee, M. H., Erdjument-Bromage, H., Koff, A., Roberts, J. M., Tempst, P. and Massague, J (1994). Cloning of p27Kip1, a cyclin-dependent kinase inhibitor and a potential mediator of extracellular antimitogenic signals. Cell 78, 59-66.[Medline]

Robb, L., Mifsud, L., Hartley, L., Biben, C., Copeland, N. G., Gilbert, D. J., Jenkins, N. A. and Harvey, R. P (1998). epicardin: A novel basic helix-loop-helix transcription factor gene expressed in epicardium, branchial arch myoblasts, and mesenchyme of developing lung, gut, kidney, and gonads. Dev. Dyn 213, 105-113.[Medline]

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]

Rupp, R. A. and Weintraub, H (1991). Ubiquitous MyoD transcription at the midblastula transition precedes induction-dependent MyoD expression in presumptive mesoderm of X. laevis. Cell 65, 927-937.[Medline]

Shimizu, C., Akazawa, C., Nakanishi, S. and Kageyama, R (1995). MATH-2, a mammalian helix-loop-helix factor structurally related to the product of Drosophila proneural gene atonal, is specifically expressed in the nervous system. Eur. J. Biochem 229, 239-248.[Medline]

Sommer, L., Ma, Q. and Anderson, D. J (1996). Neurogenins, a novel family of atonal-related bHLH transcription factors, are putative mammalian neuronal determination genes that reveal progenitor cell hetereogeneity in the developing CNS and PNS. Mol. Cell. Neurosci 8, 221-241.[Medline]

Takebayashi, K., Takahashi, S., Yokota, C., Tsuda, H., Nakanishi, S., Asashima, M. and Kageyama, R (1997). Conversion of ectoderm into a neural fate by ATH-3, a vertebrate basic helix-loop-helix gene homologous to Drosophila proneural gene atonal. EMBO J 16, 384-395.[Medline]

Tanabe, Y., William, C. and Jessell, T. M (1998). Specification of motor neuron identity by the MNR2 homeodomain protein. Cell 95, 67-80.[Medline]

Thomson, J. A., Itskovitz-Eldor, J., Shapiro, S. S., Waknitz, M. A., Swiergiel, J. J., Marshall, V. S. and Jones, J. M (1998). Embryonic stem cell lines derived from human blastocysts. Science 282, 1145-1147.[Abstract/Free Full Text]

Tontonoz, P., Hu, E. and Spiegelman, B. M (1994). Stimulation of adipogenesis in fibroblasts by PPAR gamma 2, a lipid-activated transcription factor. Cell 79, 1147-1156.[Medline]

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]

Wakamatsu, Y. and Weston, J. A (1997). Sequential expression and role of Hu RNA-binding proteins during neurogenesis. Development 124, 3449-3460.[Abstract]

Walker, M. D., Park, C. W., Rosen, A. and Aronheim, A (1990). A cDNA from a mouse pancreatic beta cell encoding a putative transcription factor of the insulin gene. Nucleic Acids Res 18, 1159-1166.[Abstract/Free Full Text]

Weintraub, H., Davis, R., Tapscott, S., Thayer, M., Krause, M., Benezra, R., Blackwell, T. K., Turner, D., Rupp, R., Hollenberg, S (1991). The myoD gene family: nodal point during specification of the muscle cell lineage. Science 251, 761-766.[Abstract/Free Full Text]

Yan, Y., Narayanan, V. and Lagenaur, C (1996). Expression of members of the proteolipid protein gene family in the developing murine central nervous system. J. Comp. Neurol 370, 465-478.[Medline]





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 Google Scholar
Google Scholar
Right arrow Articles by Farah, M. H.
Right arrow Articles by Turner, D. L.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Farah, M. H.
Right arrow Articles by Turner, D. L.