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Abrams, J. M., White, K., Fessler, L. I. and Steller, H (1993). Programmed cell death during Drosophila embryogenesis. Development 117, 29-43.[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]

Artavanis-Tsakonas, S., Delidakis, C. and Fehon, R. G (1991). The Notch locus and the cell biology of neuroblast segregation. Ann. Rev. Cell Biol 7, 427-452.

Artavanis-Tsakonas, S. and Simpson, P (1991). Choosing a cell fate: a view from the Notch locus. Trends Genet 7, 403-408.[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]

Bang, A. G. and Posakony, J. W (1992). The Drosophila gene Hairless encodes a novel basic protein that controls alternative cell fates in adult sensory organ development. Genes Dev 6, 1752-1769.[Abstract/Free Full Text]

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]

Busseau, I., Diederich, R. J., Xu, T. and Artavanis-Tsakonas, S (1994). A member of the Notch group of interacting loci, deltex encodes a cytoplasmis basic protein. Genetics 136, 585-596.[Abstract]

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]

Campos-Ortega, J. A (1994). Cellular interactions in the developing nervous system of Drosophila. Cell 77, 969-975.[Medline]

Campuzano, S. and Modolell, J (1992). Patterning of the Drosophila nervous system: the achaete-scute gene complex. Trends Genet 8, 202-208.[Medline]

Corbin, V., Michelson, A. M., Abmayr, S. M., Neel, V., Alcamo, E., Maniatis, T. and Young, M. W (1991). A role for the Drosophila neurogenic genes in mesoderm differentiation. Cell 67, 311-323.[Medline]

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

de la Concha, A., Dietrich, U., Weigel, D. and Campos-Ortega, J. A (1988). Functional interactions of neurogenic genes of D. melanogaster. Genetics 118, 499-508.[Abstract/Free Full Text]

Delidakis, C. and Artavanis-Tsakonas, S (1992). The Enhancer of split [E(spl)] locus of Drosophila encodes seven independent helix-loop-helix proteins. Proc. Natl. Acad. Sci. USA 89, 8731-8735.[Abstract/Free Full Text]

Diederich, R. J., Matsuno, K., Hing, H. and Artavanis-Tsakonas, S (1994). Cytosolic interaction bewteen deltex and Notch ankyrin repeats implicates deltex in the Notch signaling pathway. Development 120, 473-481.[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]

Fehon, R. G., Johansen, K., Rebay, I. and Artavanis-Tsakonas, S (1991). Complex cellular and subcellular regulation of Notch expression during embryonic and imaginal development of Drosophila: Implications for Notch function. J. Cell Biol 113, 657-669.[Abstract/Free Full Text]

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]

Fleming, R. J., Scottgale, T. N., Diederich, R. J. and Artavanis-Tsakonas, S (1990). The gene Serrate encodes a putative EGF-like transmembrane protein essential for proper ectodermal development in Drosophila melanogaster. Genes Dev 4, 2188-2201.[Abstract/Free Full Text]

Fortini, M. E., Rebay, I., Caron, L. A. and Artavanis-Tsakonas, S (1993). An activated Notch receptor blocks cell-fate commitment in the developing Drosophila eye. Nature 365, 555-557.[Medline]

Fortini, M. E. and Artavanis-Tsakonas, S (1993). Notch : Neurogenesis is only part of the picture. Cell 75, 1245-1247.[Medline]

Fortini, M. E. and Artavanis-Tsakonas, S (1994). The Suppressor of Hairless protein participates in Notch receptor signaling. Cell 79, 273-282.[Medline]

Garc\222a-Bellido, A. and Santamaria, P (1978). Developmental analysis of the achaete-scute system of Drosophila melanogaster. Genetics 88, 469-486.[Abstract/Free Full Text]

Garc\222a-Bellido. A (1979). Genetic analysis of the achaete-scute system of Drosophila melanogaster. Genetics 91, 491-520.[Abstract/Free Full Text]

Ghysen, A. and Dambly-Chaudiere, C (1989). Genesis of the Drosophila peripheral nervous system. Trends Genet 5, 251-255.[Medline]

Hartley, D. A., Xu, T. and Artavanis-Tsakonas, S (1987). The embryonic expression of the Notch locus of Drosophila melanogaster and the implications of point mutations in the extracellular EGF-like domain of the predicted protein. EMBO J 6, 3407-3417.[Medline]

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

Heitzler, P. and Simpson, P (1993). Altered epidermal growth factor-like sequences provide evidence for a role of Notch as a receptor in cell fate decisions. Development 117, 1113-1123.[Abstract]

Jan, L. Y. and Jan, Y. N (1990). Genes required for specifying cell fates in the Drosophila embryonic nervous system. Trends Neurosci 13, 493-498.[Medline]

Jan, L. Y. and Jan, Y. N (1993). HLH proteins, fly neurogenesis and vertebrate myogenesis. Cell 75, 827-830.[Medline]

Jimenez, F. and Campos-Ortega, J. A (1979). A region of the Drosophila genome necessary for CNS development. Nature 282, 310-312.[Medline]

Kelley, M. R., Kidd, S., Deutsch, W. A. and Young, M. W (1987). Mutations altering the structure of epidermal growth factor-like coding sequences at the Drosophila Notch locus. Cell 51, 539-548.[Medline]

Kl\212mbt, C., Knust, E., Tietze, K. and Campos-Ortega, J. A (1989). Closely related transcripts encoded by the neurogenic gene complex Enhancer of split of Drosophila melanogaster. EMBO J 8, 203-210.[Medline]

Knust, E., Schrons, H., Grawe, F. and Campos-Ortega, J. A (1992). Seven genes of the Enhancer of split complex of Drosophila melanogaster encode helix-loop-helix proteins. Genetics 132, 505-518.[Abstract]

Kopczynski, C. C., Alton, A. K., Fechtel, K., Kooh, P. J. and Muskavitch, M. A. T (1988). Delta , a Drosophila neurogenic gene, is transcriptionally complex and encodes a protein related to blood coagulation factors and epidermal growth factor of vertebrates. Genes Dev 2, 1723-1735.[Abstract/Free Full Text]

Lewis, E. B. and Bacher, F (1968). Method of feeding ethyl methane sulfonate (EMS) to Drosophila males. Dros. Inf. Serv 43, 193-.

Lieber. T., Wesley, C. S., Alcamo, A., Hassel, B., Krane, J. F., Campos-Ortega, J. A. and Young, M. W (1992). Single amino acid substitutions in EGF-like elements of Notch and Delta modify Drosophila development and affect cell adhesion in vitro. Neuron 9, 847-859.[Medline]

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]

Martin-Bermudo, M. D., Martinez, C., Rodriguez, A. and Jimenez, F (1991). Distribution and function of the lethal of scute gene product during early neurogenesis in Drosophila. Development 113, 445-454.[Abstract]

Ramos, R. G. P., Grimwade, B. G., Wharton, K. A., Scottgale, T. N. and Artavanis-Tsakonas, S (1989). Physical and functional definition of the Drosophila Notch locus by P element transformation. Genetics 123, 337-348.[Abstract/Free Full Text]

Rebay, I., Fleming, R. J., Fehon, R. G., Cherbas, L., Cherbas, P. and Artavanis-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]

Robinow, S. and White, K (1988). The locus elav of Drosophila melanogaster is expressed in neurons at all developmental stages. Dev. Biol 126, 294-303.[Medline]

Romani, S., Campuzano, S., Macagno, E. R. and Modolell, J (1989). Expression of achaete and scute genes in Drosophila imaginal discs and their function in sensory organ development. Genes Dev 3, 997-1007.[Abstract/Free Full Text]

Ruiz-Gomez, M. and Modolell, J (1987). Deletion analysis of the achaete-scute locus of Drosophila melanogaster. Genes Dev 1, 1238-1246.[Abstract/Free Full Text]

Ruohola, H., Bremer, K. A., Baker, D., Swedlow, J. R., Jan, L. Y. and Jan, Y. N (1991). Role of neurogenic genes in establishment of follicle cell fate and oocyte polarity during oogenesis in Drosophila. Cell 66, 433-449.[Medline]

Simpson, P (1990). Lateral inhibition and the development of the sensory bristles of the adult peripheral nervous system of Drosophila. Development 109, 509-519.[Abstract]

Simpson, P (1990). Notch and the choice of cell fate in Drosophila neuroepithelium. Trends Genet 6, 343-345.[Medline]

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]

Skeath, J. B., Panganiban, G., Selegue, J. and Carroll, S. B (1992). Gene regulation in two dimensions: the proneural achaete and scute genes are controlled by combinations of axis-patterning genes through a common intergenic control region. Genes Dev 6, 2606-2619.[Abstract/Free Full Text]

Speicher, S. A., Thomas, U., Hinz, U. and Knust, E (1994). The Serrate locus of Drosophila and its role in morphogenesis of the wing imaginal discs: control of cell proliferation. Development 120, 535-544.[Abstract]

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

Thomas, U., Speicher, S. A. and Knust, E (1991). The Drosophila gene Serrate encodes an EGF-like transmembrane protein with a complex expression pattern in embryos and wing discs. Development 111, 749-762.[Abstract]

V\212ssin, H., Bremer, K. A., Knust, E. and Campos-Ortega, J. A (1987). The neurogenic gene Delta of D. melanogaster is expressed in neurogenic territories and encodes a putative transmembrane protein with EGF-like repeats. EMBO J 6, 3431-3440.[Medline]

Welshons, W. J (1965). Analysis of a gene in Drosophila. Science 150, 1122-1129.[Free Full Text]

Xu, T. and Artavanis-Tsakonas, S (1990). deltex , a locus interacting with the neurogenic genes, Notch , Delta and mastermind in Drosophila melanogaster. Genetics 126, 665-677.[Abstract]

Xu, T., Caron, L. A., Fehon, R. G., and Artavanis-Tsakonas, S (1992). The involvement of the Notch locus in Drosophila oogenesis. Development 115, 913-922.[Abstract]




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This Article
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