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Arioan, R. V. and Sternberg, P. W (1991). Multiple functions of let-23 , a Caenorhabditis elegans receptor tyrosine kinase gene required for vulval induction. Genetics 128, 251-267.[Abstract]

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, 1071-1078.[Medline]

Barstead, R. J. and Waterston, R. H (1989). The basal component of the nematode dense-body is vinculin. J. Biol. Chem 264, 10177-10185.[Abstract/Free Full Text]

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

Chalfie, M., Tu, Y., Euskirchen, G., Ward, W. W. and Prasher, D. C (1994). Green fluorescent protein as a marker for gene expression. Science 263, 802-805.[Abstract/Free Full Text]

Clark, S. G., Lu, X. and Horvitz, H. R (1994). The Caenorhabditis elegans locus lin-15 , a negative regulator of a tyrosine kinase signaling pathway, encodes two different proteins. Genetics 137, 987-997.[Abstract]

Egan, S. E. and Weinberg, R. A (1993). The pathway to signal achievement. Nature 365, 781-783.[Medline]

Eisenmann, D. M. and Kim, S. K (1994). Signal transduction and cell fate specification during Caenorhabditis elegans vulval development. Curr. Opin. Genet. Dev 4, 508-516.[Medline]

Ferguson, E. L. and Horvitz, H. R (1985). Identification and genetic characterization of 22 genes that affect the vulval cell lineages of the nematode Caenorhabditis elegans. Genetics 110, 17-72.[Abstract/Free Full Text]

Ferguson, E. L. and Horvitz, H. R (1989). The multivulva phenotype ofcertain Caenorhabditis elegans mutants results from defects in two functionally redundant pathways. Genetics 123, 109-121.[Abstract/Free Full Text]

Ferguson, E. L., Sternberg, P. W., and Horvitz, H. R (1987). A genetic pathway for the specification of the vulval cell lineages of Caenorhabditis elegans. Nature 326, 259-267.[Medline]

Fields, C (1990). Information content of Caenorhabditis elegans splice site sequences varies with intron length. Nucl. Acids Res 18, 1509-1512.[Abstract/Free Full Text]

Goldfarb, D. S (1989). Nuclear transport. Curr. Opin. Cell Biol 1, 441-446.[Medline]

Greenwald, I. S. and Horvitz, H. R (1980). unc-93(e1500) : a behavioral mutant of Caenorhabditis elegans that defines a gene with a wild-type null phenotype. Genetics 96, 147-164.[Abstract/Free Full Text]

Hedgecock, E. M. and Herman, R. K (1995). The ncl-1 gene and genetic mosaics of Caenorhabditis elegans. Genetics 141, 989-1006.[Abstract]

Heim, R., Prasher, D. C. and Tsien, R. Y (1994). Wavelength mutations and posttranslational autoxidation of green fluorescent protein. Proc. Natl. Acad. Sci. USA 91, 12501-12504.[Abstract/Free Full Text]

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

Herman, R. K (1984). Analysis of genetic mosaics of the nematode C. elegans. Genetics 108, 165-180.[Abstract/Free Full Text]

Herman, R. K. and Hedgecock, E. M (1990). Limitation of the size of the vulval primordium of Caenorhabditis elegans by lin-15 expression in the surrounding hypodermis. Nature 348, 169-171.[Medline]

Horvitz, H. R. and Sternberg, P. W (1991). Multiple intercellular signalling systems control the development of the Caenorhabditis elegans vulva. Nature 351, 535-541.[Medline]

Horvitz, H. R. and Sulston, J. E (1980). Isolation and genetic characterization of cell-lineage mutants of the nematode Caenorhabditis elegans. Genetics 96, 435-454.[Abstract/Free Full Text]

Hoskins, R., Hajnal, A. F., Harp, S. A. and Kim, S. K (1996). The C. elegans vulval induction gene lin-2 encodes a member of the MAGUK family of cell junction proteins. Development 122, 97-111.[Abstract]

Huang, L. S., Tzou, P. and Sternberg, P. W (1994). The Caenorhabditis eleganslin-15 locus encodes two negative regulators of vulval development. Mol. Biol. Cell 5, 395-412.[Abstract]

Huang, X-Y. and Hirsh, D (1989). A second trans -spliced RNA leader sequence in the nematode Caenorhabditis elegans. Proc. Natl. Acad. Sci. USA 86, 8640-8644.[Abstract/Free Full Text]

Kimble, J (1981). Alterations in cell lineage following laser ablation of cells in the somatic gonad of Caenorhabditis elegans. Dev. Biol 87, 286-300.[Medline]

Kimble, J. and Hirsh, D (1979). The postembryonic cell lineages of the hermaphrodite and male gonads in Caenorhabditis elegans. Dev. Biol 70, 396-417.[Medline]

Kimble, J. E. and White, J. G (1981). On the control of germ cell development in Caenorhabditis elegans. Dev. Biol 81, 208-219.[Medline]

Krause, M. and Hirsh, D (1987). A trans -spliced leader sequence in actin mRNA in C. elegans. Cell 49, 753-761.[Medline]

Lu, X. and Horvitz, H. R (1998). lin-35 and lin-53 , two genes that antagonize a C. elegans Ras pathway, encode proteins similar to Rb and its binding protein RbAp48. Cell 95, 981-991.[Medline]

Mello, C. and Fire, A (1995). DNA transformation. In Caenorhabditis elegans: Modern Biological Analysis of an Organism. Methods Cell Biol 48, 451-482.[Medline]

Meneely, P. M. and Herman, R. K (1979). Lethals, steriles and deficiencies in a region of the X chromosome of Caenorhabditis elegans. Genetics 92, 99-115.[Abstract/Free Full Text]

Pawson, T. and Bernstein, A (1990). Receptor tyrosine kinases: genetic evidence for their role in Drosophila and mouse development. Trends Genet 6, 350-356.[Medline]

Perrimon, N (1994). Signalling pathways initiated by receptor protein tyrosine kinases in Drosophila. Curr. Opin. Cell Biol 6, 260-266.[Medline]

Qian, Y.-W., Wang, Y.-C. J., Hollingsworth Jr., R. E., Jones, D., Ling, N. and Lee, E. Y.-H. P (1993). A retinoblastoma-binding protein related to a negative regulator of Ras in yeast. Nature 364, 648-652.[Medline]

Rosenberg, U. B., Schr\232der, C., Priess, A., Kienlin, A., Cote, S., Riede, I. and J\212ckle, H (1986). Structural homology of the product of the DrosophilaKruppel gene with Xenopus transcription factor IIIA. Nature 319, 336-339.

Simske, J. S., Kaech, S. M., Harp, S. A. and Kim, S. K (1996). LET-23 receptor localization by the cell junction protein LIN-7 during C. elegans vulval induction. Cell 85, 195-204.[Medline]

Sternberg, P. W. and Horvitz, H. R (1986). Pattern formation during vulval development in C. elegans. Cell 44, 761-772.[Medline]

Sternberg, P. W. and Horvitz, H. R (1989). The combined action of two intercellular signalling pathways specifies three cell fates during vulval induction in C. elegans. Cell 58, 679-693.[Medline]

Sulston, J. E. and Horvitz, H. R (1977). Postembryonic cell lineages of the nematode Caenorhabditis elegans. Dev. Biol 56, 110-156.[Medline]

Sulston, J. E. and Horvitz, H. R (1981). Abnormal cell lineages in mutants of the nematode Caenorhabditis elegans. Dev. Biol 82, 41-55.[Medline]

Sulston, J. E. and White, J. G (1980). Regulation and cell autonomy during postembryonic development of Caenorhabditis elegans. Dev. Biol 78, 577-597.[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]

Sundaram, M. and Han, M (1996). Control and integration of cell signaling pathways during C. elegans vulval development. BioEssays 18, 473-480.[Medline]

Taya, Y (1997). RB kinases and RB-binding proteins: new points of view. Trends Biochem. Sci 22, 14-17.[Medline]

Tautz, D., Lehmann, R., Schnurch, H., Schuh, R., Seifert, E., Kienlin, A., Jones, K. and J\212ckle, H (1987). Finger protein of novel structure encoded by hunchback , a second member of the gap class of Drosophila segmentation genes. Nature 327, 383-389.

Thomas, J. H., Stern, M. J. and Horvitz, H. R (1990). Cell interactions coordinate the development of the Caenorhabditis elegans egg-laying system. Cell 62, 1041-1052.[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.

Wilson, R., Ainscough, R., Anderson, K., Baynes, C., Berks, M., Bonfield, J., Burton, J., Connell, M., Copsey, T., Cooper, J. and others (1994). 2.2 Mb of contiguous nucleotide sequence from chromosome III of C. elegans. Nature 368, 32-38.[Medline]

Yandell, M. D., Edgar, L. G. and Wood, W. B (1994). Trimethylpsoralen induces small deletion mutations in Caenorhabditis elegans. Proc. Natl. Acad. Sci. USA 91, 1381-1385.[Abstract/Free Full Text]

Yuan, J. and Horvitz, H. R (1990). The Caenorhabditis elegans genes ced-3 and ced-4 act cell autonomously to cause programmed cell death. Dev. Biol 138, 33-41.[Medline]




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