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Casarosa, S., Fode, C. and Guillemot, F (1999). Mash1 regulates neurogenesis in the ventral telencephalon. Development 126, 525-534.[Abstract]

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]

Cochard, P., Goldstein, M. and Black, I. B (1978). Ontogenetic appearance and disappearance of tyrosine hydroxylase and catecholamines in the rat embryo. Proc. Natl. Acad. Sci. USA 75, 2986-2990.[Abstract/Free Full Text]

Cochard, P., Goldstein, M. and Black, I. B (1979). Initial development of the noradrenergic phenotype in autonomic neuroblasts of the rat embryo in vivo. Dev. Biol 71, 100-114.[Medline]

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]

Duff, R. S., Langtimm, C. J., Richardson, M. K. and Sieber-Blum, M (1991). In vitro clonal analysis of progenitor cell patterns in dorsal root and sympathetic ganglia of the quail. Dev. Biol 147, 451-459.[Medline]

Duprez, D., Bella, E. J. D., Richardson, M. K., Archer, C. W., Wolpert, L., Brickell, P. M. and Francis-West, P. H (1996). Overexpression of BMP-2 and BMP-4 alters the size and shape of developing skeletal elements in the chick limb. Mech. Dev 57, 145-157.[Medline]

Ernsberger, U., Patzke, H., Tissier-Seta, J. P., Reh, T., Goridis, C. and Rohrer, H (1995). The expression of tyrosine hydroxylase and the transcription factors cPhox-2 and Cash1: Evidence for distinct inductive steps in the differentiation of chick sympathetic precursor cells. Mech. Dev 52, 125-136.[Medline]

Ernsberger, U., Patzke, H. and Rohrer, H (1997). The developmental expression of choline acetyltransferase (ChAT) and the neuropeptide VIP in chick sympathetic neurons: evidence for different regulatory events in cholinergic differentiation. Mech. Dev 68, 115-126.[Medline]

Ernsberger, U., Reissmann, E., Mason, I. and Rohrer, H (2000). The expression of dopamine b-hydroxylase, tyrosine hydroxylase, and Phox2 transcription factors in sympathetic neurons: evidence for common regulation during noradrenergic induction and diverging regulation later in development. Mech. Dev 92, 169-177.[Medline]

Falck, B., Hilarp, N. A., Theme, G. and Torp, A (1962). Fluorescence of catecholamines and related compounds with formaldehyde. J. Histochem. Cytochem 10, 348-354.[Abstract]

Francis, N. J. and Landis, S. C (1999). Cellular and molecular determinants of sympathetic neuron development. Annu. Rev. Neurosci 22, 541-566.[Medline]

Groves, A. K., George, K. M., Tissier-Seta, J.-P., Engel, J. D., Brunet, J.-F. and Anderson, D. J (1995). Differential regulation of transcription factor gene expression and phenotypic markers in developing sympathetic neurons. Development 121, 887-901.[Abstract]

Guillemot, F. and Joyner, A. L (1993). Dynamic expression of the murine Achaete-Scute homologue Mash1 in the developing nervous system. Mech. Dev 42, 171-185.[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]

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

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]

Howard, M., Foster, D. N. and Cserjesi, P (1999). Expression of Hand gene products may be sufficient for the differentiation of avian neural crest-derived cells into catecholaminergic neurons in culture. Dev. Biol 215, 62-77.[Medline]

Howard, M. J. and Bronner-Fraser, M (1985). The influence of neural tube-derived factors on differentiation of neural crest cells in vitro I Histochemical study on the appearance of adrenergic cells. J. Neurosci 5, 3302-3309.[Abstract]

Howard, M. J. and Gershon, M. D (1993). Role of growth factors in catecholaminergic expression by neural crest cells:in vitro effects of transforming growth factor beta. Dev. Dyn 196, 1-10.[Medline]

Jasoni, C. L., Walker, M. B., Morris, M. D. and Reh, T. A (1994). A chicken achaete-scute homolog (CASH1) is expressed in a temporally and spatially discrete manner in the developing nervous system. Development 120, 769-783.[Abstract]

Kim, H. S., Seo, H., Yang, C. Y., Brunet, J. F. and Kim, K. S (1998). Noradrenergic-specific transcription of the dopamine b-hydroxylase gene requires synergy of multiple cis -acting elements including at least two Phox2a-binding sites. J. Neurosci 18, 8247-8260.[Abstract/Free Full Text]

Kirby, M. L., Turnage, K. L. and Hayes, B. M (1985). Characterization of conotruncal malformations following ablation of \324cardiac' neural crest. Anat. Rec 213, 87-83.[Medline]

Kuhlbrodt, K., Herbarth, B., Sock, E., Hermans-Borgmeyer, I. and Wegner, M (1998). Sox10, a novel transcriptional modulator in glial cells. J. Neurosci 18, 237-250.[Abstract/Free Full Text]

Lo, L.-C., Johnson, J. E., Wuenschell, C. W., Saito, T. and Anderson, D. J (1991). Mammalian achaete-scute homolog 1 is transiently expressed by spatially restricted subsets of early neuroepithelial and neural crest cells. Genes Dev 5, 1524-1537.[Abstract/Free Full Text]

Lo, L., Guillemot, F., Joyner, A. L. and Anderson, D. J (1994). MASH1: a marker and a mutation for mammalian neural crest development. Perspect. Dev. Neurobiol 2, 191-201.[Medline]

Lo, L. C., 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]

Lo, L. C., Morin, X., Brunet, J. F. and Anderson, D. J (1999). Specification of neurotransmitter identity by Phox2 proteins in neural crest stem cells. Neuron 22, 693-705.[Medline]

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

Ma, Q. F., Sommer, L., Cserjesi, P. and Anderson, D. J (1997). Mash1 and neurogenin1 expression patterns define complementary domains of neuroepithelium in the developing CNS and are correlated with regions expressing notch ligands. J. Neurosci 17, 3644-3652.[Abstract/Free Full Text]

Morin, X., Cremer, H., Hirsch, M. R., Kapur, R. P., Goridis, C. and Brunet, J. F (1997). Defects in sensory and autonomic ganglia and absence of locus coeruleus in mice deficient for the homeobox gene Phox2a. Neuron 18, 411-423.[Medline]

Morrison, S. J., White, P. M., Zock, C. and Anderson, D. J (1999). Prospective identification, isolation by flow cytometry, and in vivo self-renewal of multipotent mammalian neural crest stem cells. Cell 96, 737-749.[Medline]

Pattyn, A., Morin, X., Cremer, H., Goridis, C. and Brunet, J.-F (1999). The homeobox gene Phox2b is essential for the development of all autonomic derivatives of the neural crest. Nature 399, 366-370.[Medline]

Reissmann, E., Ernsberger, U., Francis-West, P. H., Rueger, D., Brickell, P. M. and Rohrer, H (1996). Involvement of bone morphogenetic proteins-4 and-7 in the specification of the adrenergic phenotype in developing sympathetic neurons. Development 122, 2079-2088.[Abstract]

Schneider, C., Wicht, H., Enderich, J., Wegner, M. and Rohrer, H (1999). Bone morphogenetic proteins are required in vivo for the generation of sympathetic neurons. Neuron 24, 861-870.[Medline]

Shah, N. M., Groves, A. K. and Anderson, D. J (1996). Alternative neural crest cell fates are instructively promoted by TGFb superfamily members. Cell 85, 331-343.[Medline]

Srivastava, D., Cserjesi, P. and Olson, E. N (1995). A subclass of bHLH proteins required for cardiac morphogenesis. Science 270, 1995-1999.[Abstract/Free Full Text]

Srivastava, D., Thomas, T., Lin, Q., Kirby, M. L., Brown, D. and Olson, E. N (1997). Regulation of cardiac mesodermal and neural crest development by the bHLH transcription factor, dHAND. Nat. Genet 16, 154-160.[Medline]

Stanke, M., Junghans, D., Geissen, M., Goridis, C., Ernsberger, U. and Rohrer,H (1999). The Phox2 homeodomain proteins are sufficient to promote the development of sympathetic neurons. Development 126, 4087-4094.[Abstract]

Stern, C. D., Artinger, K. B. and Bronner-Fraser, M (1991). Tissue interactions affecting the migration and differentiation of neural crest cells in the chick embryo. Development 113, 207-216.[Abstract]

Swanson, D. J., Zellmer, E. and Lewis, E. J (1997). The homeodomain protein arix interacts synergistically with cyclic AMP to regulate expression of neurotransmitter biosynthetic genes. J. Biol. Chem 272, 27382-27392.[Abstract/Free Full Text]

Teillet, M.-A. and Le Douarin, N. M (1983). Consequences of neural tube and notochord excision on the development of the peripheral nervous system in the chick embryo. Dev. Biol 98, 192-211.[Medline]

Teitelman, G., Baker, H., Joh, T. H. and Reis, D. J (1979). Appearance of catecholamine-synthesizing enzymes during development of rat sympathetic nervous system: possible role of tissue environment. Proc. Natl. Acad. Sci. USA 76, 509-513.[Abstract/Free Full Text]

Tiveron, M. C., Hirsch, M. R. and Brunet, J. F (1996). The expression pattern of the transcription factor Phox2 delineates synaptic pathways of the autonomic nervous system. J. Neurosci 16, 7649-7660.[Abstract/Free Full Text]

Valarche, I., Tissier-Seta, J.-P., Hirsch, M.-R., Martinez, S., Goridis, C. and Brunet, J.-F (1993). The mouse homeodomain protein Phox2 regulates Ncam promoter activity in concert with Cux/CDP and is a putative determinant of neurotransmitter phenotype. Development 119, 881-896.[Abstract/Free Full Text]

Varley, J. E., Wehby, R. G., Rueger, D. C. and Maxwell, G. D (1995). Number of adrenergic and islet-1 immunoreactive cells is increased in avian trunk neural crest cultures in the presence of human recombinant osteogenic protein-1. Dev. Dyn 203, 434-447.[Medline]

Varley, J. E. and Maxwell, G. D (1996). BMP2 and BMP4, but not BMP-6, increase the number of adrenergic cells which develop in quail trunk neural crest cultures. Exp. Neurol 140, 84-94.[Medline]

Xue, Z. G., Smith, J. and LeDouarin, N. M (1985). Differentiation of catecholaminergic cells in cultures of embryonic avian sensory ganglia. Proc. Natl. Acad. Sci. USA 82, 8800-8804.[Abstract/Free Full Text]

Yamagishi, H., Garg, V., Matsuoka, R., Thomas, T. and Srivastava, D (1999). A molecular pathway revealing a genetic basis for human cardiac and craniofacial defects. Science 283, 1158-1161.[Abstract/Free Full Text]

Yang, C., Kim, H.-S., Seo, H., Kim, C.-H., Brunet, J.-F. and Kim, K-S (1998). Paired -like homeodomain proteins, Phox2a and Phox2b, are responsible for noradrenergic cell-specific transcription of the dopamine-hydroxylase gene. J. Neurochem 71, 1813-1826.[Medline]

Zacchei, A. M (1961). Lo sviluppo embrionale della quaffia giaponese (Coturnix coturnix japonica). Arc. Ital. Anat. Embriol 66, 36-72.

Zellmer, E., Zhang, Z., Greco, D., Rhodes, J., Cassel, S. and Lewis, E. J (1995). A homeodomain protein selectively expressed in noradrenergic tissue regulates transcription of neurotransmitter biosynthetic genes. J. Neurosci 15, 8109-8120.[Abstract]

Ziller, C., Fauquet, M., Kalcheim, C., Smith, J. and Le Douarin, N. M (1987). Cell lineages in peripheral nervous system ontogeny: medium-induced modulation of neuronal phenotypic expression in neural crest cell cultures. Dev. Biol 120, 101-111.[Medline]

Zimmerman, L. B., De Jes\234s-Escobar, J. M. and Harland, R. M (1996). The Spemann organizer signal noggin binds and inactivates bone morphogenetic protein 4. Cell 86, 599-606.[Medline]

Zopf, D., Hermans-Borgmeyer, I., Gundelfinger, E. D. and Betz, H (1987). Identification of gene products in the developing chick visual system: characterization of a middle-molecular-weight neurofilament cDNA. Genes Dev 1, 699-108.[Abstract/Free Full Text]


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