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Austin, J. and Kimble, J (1989). Transcript analysis of glp-1 and lin-12 , homologous genes required for cell interactions during development of C. elegans. Cell 58, 565-71.[Medline]

Avery, L. and Horvitz, H. R (1987). A cell that dies during wild-type C. elegans development can function as a neuron in a ced-3 mutant. Cell 51, 1071-78.[Medline]

Baumeister, R., Liu, Y. and Ruvkun, G (1996). Lineage-specific regulators couple cell lineage asymmetry to the transcription of the Caenorhabditis elegans POU gene unc-86 during neurogenesis. Genes Dev 10, 1395-410.[Abstract/Free Full Text]

Brenner, S (1974). The genetics of Caenorhabditis elegans. Genetics 77, 71-94.[Abstract/Free Full Text]

Chalfie, M., Yuan, T., Euskirchen, G., Ward, W. W. and Prasher, D. C (1994). Green fluorescent protein as a marker for gene expression. Science 263, 802-5.[Abstract/Free Full Text]

Chan, S. S.-Y., Zheng, H., Su, M.-W., Wilk, R., Killeen, M. T., Hedgecock, E. M. and Culotti, J. G (1996). UNC-40, a C. elegans homolog of DCC (Deleted in Colorectal Cancer), is required in motile cells responding to UNC-6 netrin cues. Cell 87, 187-95.[Medline]

Chisholm, A. D (1991). Control of cell fate in the tail regions of C. elegans by the gene egl-5. Development 111, 921-32.[Abstract/Free Full Text]

Desai, C., Garriga, G., McIntire, S. L. and Horvitz, H. R (1988). A genetic pathway for the development of the Caenorhabditis elegans HSN motor neurons. Nature 336, 638-46.[Medline]

Garriga, G., Desai, C. and Horvitz, H. R (1993). Cell interactions control the direction of outgrowth, branching and fasciculation of the HSN axons of Caenorhabditis elegans. Development 117, 1071-87.[Abstract]

Goodman, C. S. and Shatz, C. J (1993). Developmental mechanisms that generate precise patterns of neuronal connectivity. Cell 72, 77-98.

Hall, A (1994). Small GTP-binding proteins and the regulation of the actin cytoskeleton. Annu. Rev. Cell Biol 10, 31-54.

Hawkins, N. C. and McGhee, J. D (1990). Homeobox containing genes in the nematode Caenorhabditis elegans. Nucleic Acids Res 18, 6101-6.[Abstract/Free Full Text]

Hedgecock, E. M., Culotti, J. G. and Hall, D. H (1990). The unc-5 , unc-6 and unc-40 genes guide circumferential migrations of pioneer axons and mesodermal cells on the epidermis in C. elegans. Neuron 4, 61-85.[Medline]

Hedgecock, E. M., Culotti, J. G., Hall, D. H. and Stern, B. D (1987). Genetics of cell and axon migrations in Caenorhabditis elegans. Development 100, 365-82.[Abstract]

Hedgecock, E. M., Culotti, J. G., Thomson, J. N. and Perkins, L. A (1985). Axonal guidance mutants of Caenorhabditis elegans identified by filling sensory neurons with fluorescein dyes. Dev. Biol 111, 158-70.[Medline]

Hosono, R. Hirahara, K., Kuno, S. and Kurihra, T (1982). Mutants of Caenorhabditis elegans with dumpy and rounded head phenotype. J. Exp. Zool 224, 135-44.

Hotchin, N. A. and Hall, A (1995). The assembly of integrin adhesion complexes requires both extracellular matrix and intracellular rho/rac GTPases. J. Cell Biol 131, 1857-65.[Abstract/Free Full Text]

Hynes, R. O (1992). Integrins: versatility, modulation, and signaling in cell adhesion. Cell 69, 11-25.[Medline]

Johnson, D. I. and Pringle, J. R (1990). Molecular characterization of CDC42 , a Saccharomyces cerevisiae gene involved in the development of cell polarity. J. Cell Biol 111, 143-52.[Abstract/Free Full Text]

Keino-Masu, K., Masu, M., Hinck, L., Leonardo, E. D., Chan, S. S.-Y., Culotti, J. G. and Tessier-Lavigne, M (1996). Deleted in Colorectal Cancer ( DCC ) encodes a netrin receptor. Cell 87, 175-85.[Medline]

Kennedy, T. E., Serafini, T., de la Torre, J. R. and Tessier-Lavigne, M (1994). Netrins are diffusible chemotropic factors for commissural axons in the embryonic spinal cord. Cell 78, 425-35.[Medline]

Lander, A. D (1989). Understanding the molecules of neural cell contacts: emerging patterns of structure and function. Trends Neurosci 12, 189-95.[Medline]

Lauffenburger, D. A. and Horwitz, A. F (1996). Cell migration: a physically integrated molecular process. Cell 84, 359-69.[Medline]

Leung-Hagesteijn, C., Spence, A. M., Stern, B. D., Zhou, Y., Su, M.-W., Hedgecock, E. M. and Culotti, J. G (1992). UNC-5, a transmembrane protein with immunoglobulin and thrombospondin type 1 domains, guides cell and pioneer axon migrations in C. elegans. Cell 71, 289-99.[Medline]

Luo, Y. and Raper, J. A (1994). Inhibitory factors controlling growth cone motility and guidance. Curr. Opin. Neurobiol 4, 648-54.[Medline]

Manser, J. and Wood, W. B (1990). Mutations affecting embryonic cell migrations in Caenorhabditis elegans. Dev. Genet 11, 49-64.[Medline]

McIntire, S. L., Garriga, G., White, J., Jacobson, D. and Horvitz, H. R (1992). Genes necessary for directed axonal elongation or fasciculation in C. elegans. Neuron 8, 307-22.[Medline]

Mitchison, T. J. and Cramer, L. P (1996). Actin-based cell motility and cell locomotion. Cell 84, 371-9.[Medline]

Nelson, F. K. and Riddle, D. L (1984). Functional study of the Caenorhabditis elegans secretory-excretory system using laser microsurgery. J. Exp. Zool 231, 45-56.[Medline]

Nobes, C. D. and Hall, A (1995). Rho, rac, and cdc42 GTPases regulate the assembly of multimolecular focal complexes associated with actin stress fibers, lamellipodia, and filopodia. Cell 81, 53-62.[Medline]

Ridley, A. J. and Hall, A (1992). The small GTP-binding protein rho regulates the assembly of focal adhesions and actin stress fibers in response to growth factors. Cell 70, 389-99.[Medline]

Ridley, A. J., Paterson, H. F., Johnston, C. L., Diekmann, D. and Hall, A (1992). The small GTP-binding protein rac regulates growth factor-induced membrane ruffling. Cell 70, 401-10.[Medline]

Run, J.-Q., Steven, R., Hung, M.-S., Van Weeghel, R., Culotti, J. G. and Way, J. C (1996). Suppressors of the unc-73 gene of Caenorhabditis elegans. Genetics 143, 225-36.[Abstract]

Serafini, T., Kennedy, T. E., Galko, M. J., Mirzayan, C., Jessell, T. M. andTessier-Lavigne, M (1994). The netrins define a family of axon outgrowth-promoting proteins homologous to C. elegans UNC-6. Cell 78, 409-24.[Medline]

Sulston, J. E. and Horvitz, H. R (1977). Post-embryonic cell lineages of the nematode, Caenorhabditis elegans. Dev. Biol 56, 110-56.[Medline]

Sulston, J. E., Schierenberg, E., White, J. G. and Thomson, J. N (1983). The embryonic cell lineage of the nematode Caenorhabditis elegans. Dev. Biol 100, 64-119.[Medline]

Svendsen, P. C. and McGhee, J. D (1995). The C. elegans neuronally expressed homeobox gene ceh-10 is closely related to genes expressed in the vertebrate eye. Development 121, 1253-62.[Abstract]

Tessier-Lavigne, M (1994). Axon guidance by diffusible repellants and attractants. Curr. Opin. Genet. Dev 4, 596-601.[Medline]

Thomas, J. H., Stern, M. J. and Horvitz, H. R (1990). Cell interactions coordinate the development of the C. elegans egg-laying system. Cell 62, 1041-52.[Medline]

Wang, B. B., Muller, I. M., Austin, J., Robinson, N. T., Chisholm, A. andKenyon, C (1993). A homeotic gene cluster patterns the anteroposterior body axis of C. elegans. Cell 74, 29-42.[Medline]

White, J. G., Southgate, E., Thomson, J. N. and Brenner, S (1986). The structure of the nervous system of Caenorhabditis elegans. Phil. Trans. R. Soc. Lond. B 314, 1-340.

Wightman, B., Clark, S. G., Taskar, A. M., Forrester, W. C., Maricq, A. V., Bargmann, C. I. and Garriga, G (1996). The C. elegans gene vab-8 guides posteriorly directed axon outgrowth and cell migration. Development 122, 671-82.[Abstract]




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