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Bastiani, M. J., du Lac, S. and Goodman, C. S (1986). Guidance of neuronal growth cones in the grasshopper embryo. J. Neurosci 6, 3518-3531.[Abstract]

Bhat, K. M (1996). The patched signalling pathway mediates repression of gooseberry allowing neuroblast specification by wingless during Drosophila neurogenesis. Development 122, 2921-2932.[Abstract]

Bhat, K. M. and Schedl, P (1997). Requirement for engrailed and invected genes reveals novel regulatory interactions between engrailed/invected, patched, gooseberry and wingless during Drosophila neurogenesis. Development 124, 1675-1688.[Abstract]

Bossing, T., Udolph, G., Doe, C. Q. and Technau, G. M (1996). The embryonic central nervous system lineages of Drosophila melanogaster I. Neuroblast lineages derived from the ventral half of the neuroectoderm. Dev. Biol 179, 41-64.[Medline]

Brand, A. H (1995). GFP in Drosophila. Trends in Genetics 11, 324-325.[Medline]

Brand, A. H. and Dormand, E. L (1995). The GAL4 system as a tool for unravelling the mysteries of the nervous system. Curr. Opin. Neuro 5, 572-578.[Medline]

Brand, A. H. and Perrimon, N (1993). Targeted gene expression as a means of altering cell fates and generating dominant phenotypes. Development 118, 401-415.[Abstract]

Broadus, J., Skeath, J. B., Spana, E. P., Bossing, T., Technau, G. and Doe, C. Q (1995). New neuroblast markers and the origin of the aCC/pCC neurons in the Drosophila central nervous system. Mech. Dev 53, 393-402.[Medline]

Buenzow, D. E. and Holmgren, R (1995). Expression of the Drosophila gooseberry locus defines a subset of neuroblast lineages in the central nervous system. Dev. Biol 170, 338-349.[Medline]

Butner, K. A. and Kirschner, M. W (1991). Tau protein binds to microtubules through a flexible array of distributed weak sites. J. Cell Biol 115, 717-730.[Abstract/Free Full Text]

Callahan, C. A. and Thomas, J. B (1994). Tau beta-galactosidase, an axon targeted fusion protein. Proc. Nat. Acad. Sci. USA 91, 5972-5976.[Abstract/Free Full Text]

Chu-LaGraff, Q. and Doe, C. Q (1993). Neuroblast specification and formation regulated by wingless in the Drosophila CNS. Science 261, 1594-1597.[Abstract/Free Full Text]

Dittrich, R., Bossing, T., Gould, A. P., Technau, G. M. and Urban, J (1997). The differentiation of the serotonergic neurons in the Drosophila ventral nerve cord depends on the combined function of the zinc finger proteins Eagle and Huckebein. Development 124, 2515-2525.[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]

Doe, C. Q. and Technau, G. M (1993). Identification and cell lineage of individual neural precursors in the Drosophila CNS. Trends in NeuroSci 16, 510-514.[Medline]

Duffy, J. B., Kania, M. A. and Gergen, J. P (1991). Expression and function of the Drosophila gene runt in early stages of neural development. Development 113, 1223-1230.[Abstract]

Duman-Scheel, M., Xuelin, L., Orlov, I., Noll, M. and Patel, N. H (1997). Genetic separation of the neural and cuticular patterning functions of gooseberry. Development 124, 2855-2865.[Abstract]

Golling, G., Li, L. H., Pepling, M., Stebbins, M. and Gergen, J. P (1996). Drosophila homologues of the protooncogene product PEBP2/CBF-beta regulate the DNA-binding properties of runt. Mol. Cell. Biol 16, 932-942.[Abstract]

Heim, R., Cubitt, A. B. and Tsien, R. Y (1995). Improved green fluorescence. Nature 373, 663-664.[Medline]

Heim, R. and Tsien, R. Y (1996). Engineering green fluorescent protein for improved brightness, longer wavelengths and fluorescence resonance energy transfer. Curr. Biol 6, 178-182.[Medline]

Hidalgo, A. and Brand, A. H (1997). Targeted neuronal ablation: the role of pioneer neurons in guidance and fasciculation in the CNS of Drosophila. Development 124, 3253-3262.[Abstract]

Hidalgo, A., Urban, J. and Brand, A. H (1995). Targeted ablation of glia disrupts axon tract formation in the Drosophila CNS. Development 121, 3703-3712.[Abstract]

Higashijima, S., Shishido, E., Matsuzadi, M. and Saigo, K (1996). eagle , a member of the steroid receptor gene superfamily, is expressed in a subset of neuroblasts and regulates the fate of their putative progeny in the Drosophila CNS. Development 122, 527-536.[Abstract]

Kagoshima, H., Shigesada, K., Satake, M., Ito, Y., Miyoshi, H., Ohki, M., Pepling, M. and Gergen, J. P (1993). The Runt domain identifies a new family of heteromeric transcriptional regulators. Trends in Genetics 9, 338-341.[Medline]

Kania, M. A., Bonner, A. S., Duffy, J. B. and Gergen, J. P (1990). The Drosophila segmentation gene runt encodes a novel nuclear regulatory protein that is also expressed in the developing nervous system. Genes Dev 4, 1701-1713.[Abstract/Free Full Text]

Klaes, A., Menne, T., Stollewerk, A., Scholz, H. and Klambt, C (1994). The Ets transcription factors encoded by the Drosophila gene pointed direct glial cell differentiation in the embryonic CNS. Cell 78, 149-160.[Medline]

Lin, D. M., Auld, V. J. and Goodman, C. S (1995). Targeted neuronal cell ablation in the Drosophila embryo: pathfinding by follower growth cones in the absence of pioneers. Neuron 14, 707-715.[Medline]

Mellerick, D. M., Kassis, J. A., Zhang, S. D., Odenwald, W. F (1992). castor encodes a novel zinc finger protein required for the development of a subset of CNS neurons in Drosophila. Neuron 9, 789-803.[Medline]

Miroux, B. and Walker, J. E (1996). Over-production of proteins in Escherichia coli : mutant hosts that allow synthesis of some membrane proteins and globular proteins at high levels. J. Mol. Biol 260, 289-298.[Medline]

Miyoshi, H., Shimizu, K., Kozu, T., Maseki, N., Kaneko, Y. and Ohki, K (1991). t(8;21) breakpoints on chromosome 21 in acute myeloid leukaemia are clustered within a limited region of a single gene, AML1. Proc. Natl. Acad. Sci. USA 88, 10431-10434.[Abstract/Free Full Text]

Mlodzik, M., Baker, N. E. and Rubin, G. M (1990). Isolation and expressionof scabrous , a gene regulating neurogenesis in Drosophila. Genes Dev 4, 1848-1861.[Abstract/Free Full Text]

Nucifora, G., Birn, D. J., Erickson, P., Gao, J., LeBeau, M. M., Drabkin, H. A. and Rowley, J. D (1993). Detection of DNA rearrangements in the AML1 and ETO loci and of an AML1/ETO fusion mRNA in patients with t(8;21) acute myeloid leukaemia. Blood 81, 883-888.[Abstract/Free Full Text]

Patel, N. H., Schafer, B., Goodman, C. S. and Holmgren, R (1989). The role of segment polarity genes during Drosophila neurogenesis. Genes Dev 3, 890-904.[Abstract/Free Full Text]

Prasher, D. C (1995). Using GFP to see the light. Trends in Genet 11, 320-323.[Medline]

Robertson, H. M., Preston, C. R., Phillis, R. W., Johnson-Schlitz, D., Ben, W. K. and Engels, W. R (1988). A stable source of P-element transposase in Drosophila melanogaster. Genetics 118, 461-470.[Abstract/Free Full Text]

Rothberg, J. M., Hartley, D. A., Waither, Z. and Artavanis-Tsakonas, S (1988). slit : an EGF-homologous locus of D. melanogaster involved in the development of the embryonic central nervous system. Cell 55, 1047-1059.[Medline]

Schmidt, H., Rikert, C., Bossing, T., Vef, O., Urban, J. and Technau, G. M (1997). The embryonic central nervous system lineages of Drosophila melanogaster \320 II. neuroblast lineages derived from the dorsal half of the neuroectoderm. Dev. Biol 189, 186-204.[Medline]

Seeger, M., Tear, G., Terres-Marco, D. and Goodman, C. S (1993). Mutations affecting growth cone guidance in Drosophila : genes necessary for guidance toward or away from the midline. Neuron 10, 409-426.[Medline]

Skeath, J. B., Zhang, Y., Holmgren, R., Carroll, S. B. and Doe, C. Q (1995). Specification of neuroblast identity in the Drosophila embryonic central nervous system by gooseberry-distal. Nature 376, 427-430.[Medline]

Van Vactor, D., Sink, H., Fambrough, D., Tsoo, R. and Goodman, C. S (1993). Genes that control neuromuscular specificity in Drosophila. Cell 73, 1137-1153.[Medline]

Zhang, Y., Ungar, A., Fresquez, C. and Holmgren, R (1994). Ectopic expression of either the Drosophilagooseberry-distal or proximal gene causes alterations of cell fate in the epidermis and central nervous system. Development 120, 1151-1161.[Abstract]


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