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Aubin, J., Lemieux, M., Tremblay, M., Berard, J. and Jeannotte, L (1997). Early postnatal lethality in Hoxa-5 mutant mice is attributable to respiratory tract defects. Dev. Biol 192, 432-445.[Medline]

Barlow, L. A. and Northcutt, R. G (1997). Taste buds develop autonomously from endoderm without induction by cephalic neural crest or paraxial mesoderm. Development 124, 949-957.[Abstract]

Baxevanis, A. D. and Landsman, D (1995). The HMG-1 box protein family:classification and functional relationships. Nucleic Acids Res 23, 1604-1613.[Abstract/Free Full Text]

Beh, C. T., Ferrari, D. C., Chung, M. A. and McGhee, J. D (1991). An acid phosphatase as a biochemical marker for intestinal development in the nematode Caenorhabditis elegans. Dev. Biol 147, 133-143.[Medline]

Bienz, M (1997). Endoderm induction in Drosophila : the nuclear targets of the inducing signals. Current Opin. Genetics Dev 7, 683-688.[Medline]

Bowerman, B., Draper, B. W., Mello, C. C. and Priess, J. R (1993). The maternal gene skn-1 encodes a protein that is distributed unequally in early C. elegans embryos. Cell 74, 443-452.[Medline]

Bowerman, B., Eaton, B. A. and Priess, J. R (1992). skn-1 , a maternally expressed gene required to specify the fate of ventral blastomeres in the early C. elegans embryo. Cell 68, 1061-1075.[Medline]

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

Cadigan, K. M. and Nusse, R (1997). Wnt signaling: a common theme in animal development. Genes Dev 11, 3286-3305.[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]

Cowan, A. E. and McIntosh, J. R (1985). Mapping the distribution of differentiation potential for intestine, muscle, and hypodermis during early development in Caenorhabditis elegans. Cell 41, 923-932.[Medline]

Cowing, D. W. and Kenyon, C (1992). Expression of the homeotic gene mab-5 during Caenorhabditis elegans embryogenesis. Development 116, 481-490.[Medline]

Duluc, I., Lorentz, O., Fritsch, C., Leberquier, C., Kedinger, M. and Freund, J. N (1997). Changing intestinal connective tissue interactions alters homeobox gene expression in epithelial cells. J. Cell Sci 110, 1317-1324.[Abstract]

Edgar, L. G (1995). Blastomere culture and analysis. Methods in Cell Biol 48, 303-321.[Medline]

Edgar, L. G. and McGhee, J. D (1986). Embryonic expression of a gut-specific esterase in Caenorhabditis elegans. Dev. Biol 114, 109-118.[Medline]

Edgar, L. G. and McGhee, J. D (1988). DNA synthesis and the control of embryonic gene expression in C. elegans. Cell 53, 589-599.[Medline]

Egan, C. R., Chung, M. A., Allen, F. L., Heschl, M. F., Van Buskirk, C. L. and McGhee, J. D (1995). A gut-to-pharynx/tail switch in embryonic expression of the Caenorhabditis elegansges-1 gene centers on two GATA sequences. Dev. Biol 170, 397-419.[Medline]

Fire, A., Harrison, S. W. and Dixon, D (1990). A modular set of lacZ fusion vectors for studying gene expression in Caenorhabditis elegans. Gene 93, 189-198.[Medline]

Fire, A., Xu, S., Montgomery, M. K., Kostas, S. A., Driver, S. E. and Mello, C. C (1998). Potent and specific genetic interference by double-stranded RNA in Caenorhabditis elegans. Nature 391, 806-811.[Medline]

Fukushige, T., Hawkins, M. G. and McGhee, J. D (1998). The GATA-factor elt-2 is essential for formation of the Caenorhabditis elegans intestine. Dev. Biol 198, 286-302.[Medline]

Fukushige, T., Schroeder, D. F., Allen, F. L., Goszczynski, B. and McGhee, J. D (1996). Modulation of gene expression in the embryonic digestive tract of C. elegans. Dev. Biol 178, 276-288.[Medline]

Goldstein, B (1992). Induction of gut in Caenorhabditis elegans embryos. Nature 357, 255-257.[Medline]

Goldstein, B (1993). Establishment of gut fate in the E lineage of C. elegans : the roles of lineage-dependent mechanisms and cell interactions. Development 118, 1267-1277.[Abstract]

Goldstein, B (1995). An analysis of the response to gut induction in the C. elegans embryo. Development 121, 1227-1236.[Abstract]

Goldstein, B (1995). Cell contacts orient some cell division axes in the Caenorhabditis elegans embryo. J. Cell Biol 129, 1071-1080.[Abstract/Free Full Text]

Gualdi, R., Bossard, P., Zheng, M., Hamada, Y., Coleman, J. R. and Zaret,K. S (1996). Hepatic specification of the gut endoderm in vitro: cell signaling and transcriptional control. Genes Dev 10, 1670-1682.[Abstract/Free Full Text]

Hawkins, M. G. and McGhee, J. D (1995). elt-2 , a second GATA factor from the nematode Caenorhabditis elegans. J. Biol. Chem 270, 14666-14671.[Abstract/Free Full Text]

Heinemeyer, T., Wingender, E., Reuter, I., Hermjakob, H., Kel, A. E., Kel,O. V., Ignatieva, E. V., Ananko, E. A., Podkolodnaya, O. A., Kolpakov, F. A., Podkolodny, N. L. and Kolchanov, N. A (1998). Databases on transcriptional regulation: TRANSFAC, TRRD and COMPEL. Nucleic Acids Res 26, 362-367.[Abstract/Free Full Text]

Horner, M. A., Quintin, S., Domeier, M. E., Kimble, J., Labouesse, M. and Mango, S (1998). pha-4 , an Hnf-3 homolog, specifies pharyngeal organ identity in Caenorhabditis elegans. Genes Dev 12, 1947-1952.[Abstract/Free Full Text]

Kalb, J. M., Lau, K. K., Goszczynski, B., Fukushige, T., Moons, D., Okkema, P. G. and McGhee, J. D (1998). pha-4 is Ce-fkh-1 , a fork head /HNF-3, homolog that functions in organogenesis of the C. elegans pharynx. Development 125, 2171-2180.[Abstract]

Kennedy, B. P., Aamodt, E. J., Allen, F. L., Chung, M. A., Heschl, M. F. and McGhee, J. D (1993). The gut esterase gene ( ges-1 ) from the nematodes Caenorhabditis elegans and Caenorhabditis briggsae. J. Molec. Biol 229, 890-908.[Medline]

Kenyon, C. J., Austin, J., Costa, M., Cowing, D. W., Harris, J. M., Honigberg, L., Hunter, C. P., Maloof, J. N., Muller-Immergluck, M. M., Salser, S. J., Waring, D. A., Wang, B. B. and Wrischnik, L. A (1997). The dance of the Hox genes: patterning the anteroposterior body axis of Caenorhabditis elegans. Cold Spring Harbor Symposia Quantit. Biol 62, 293-305.[Abstract/Free Full Text]

Kim, S. K., Hebrok, M. and Melton, D. A (1997). Notochord to endoderm signaling is required for pancreas development. Development 124, 4243-4252.[Abstract]

Korinek, V., Barker, N., Morin, P. J., van Wichen, D., de Weger, R., Kinzler, K. W., Vogelstein, B. and Clevers, H (1997). Constitutive transcriptional activation by a beta-catenin-Tcf complex in APC-/-colon carcinoma. Science 275, 1784-1787.[Abstract/Free Full Text]

Korinek, V., Barker, N., Willert, K., Molenaar, M., Roose, J., Wagenaar, G., Markman, M., Lamers, W., Destree, O. and Clevers, H (1998). Two members of the Tcf family implicated in Wnt/beta-catenin signaling during embryogenesis in the mouse. Molecular Cell. Biol 18, 1248-1256.[Abstract/Free Full Text]

Krumlauf, R (1994). Hox genes in vertebrate development. Cell 78, 191-201.[Medline]

Laufer, J. S., Bazzicalupo, P. and Wood, W. B (1980). Segregation of developmental potential in early embryos of Caenorhabditis elegans. Cell 19, 569-577.[Medline]

Lin, R., Hill, R. J. and Priess, J. R (1998). POP-1 and anterior-posterior fate decisions in C. elegans embryos. Cell 92, 229-239.[Medline]

Lin, R., Thompson, S. and Priess, J. R (1995). pop-1 encodes an HMG box protein required for the specification of a mesoderm precursor in early C. elegans embryos. Cell 83, 599-609.[Medline]

Mango, S. E., Lambie, E. J. and Kimble, J (1994). The pha-4 gene is required to generate the pharyngeal primordium of Caenorhabditis elegans. Development 120, 3019-3031.[Abstract]

Manley, N. R. and Capecchi, M. R (1998). Hox group 3 paralogs regulate the development and migration of the thymus, thyroid, and parathyroid glands. Dev. Biol 195, 1-15.[Medline]

Mello, C. C., Draper, B. W., Krause, M., Weintraub, H. and Priess, J. R (1992). The pie-1 and mex-1 genes and maternal control of blastomere identity in early C. elegans embryos. Cell 70, 163-176.[Medline]

Mello, C. C., Kramer, J. M., Stinchcomb, D. and Ambros, V (1991). Efficient gene transfer in C. elegans : extrachromosomal maintenance and integration of transforming sequences. EMBO J 10, 3959-3970.[Medline]

Mello, C. C., Schubert, C., Draper, B., Zhang, W., Lobel, R. and Priess, J. R (1996). The PIE-1 protein and germline specification in C. elegans embryos. Nature 382, 710-712.[Medline]

Roberts, D. J., Johnson, R. L., Burke, A. C., Nelson, C. E., Morgan, B. A. and Tabin, C (1995). Sonic hedgehog is an endodermal signal inducing Bmp-4 and Hox genes during induction and regionalization of the chick hindgut. Development 121, 3163-3174.[Abstract]

Rocheleau, C. E., Downs, W. D., Lin, R., Wittmann, C., Bei, Y., Cha, Y. H., Ali, M., Priess, J. R. and Mello, C. C (1997). Wnt signaling and an APC-related gene specify endoderm in early C. elegans embryos. Cell 90, 707-716.[Medline]

Schierenberg, E (1987). Reversal of cellular polarity and early cell-cellinteraction in the embryos of Caenorhabditis elegans. Dev. Biol 122, 452-463.[Medline]

Shelton, C. A. and Bowerman, B (1996). Time-dependent responses to glp-1 -mediated inductions in early C. elegans embryos. Development 122, 2043-2050.[Abstract]

Simon, T. C., Roberts, L. J. and Gordon, J. I (1995). A 20-nucleotide element in the intestinal fatty acid binding protein gene modulates its cell lineage-specific, differentiation-dependent, and cephalocaudal patterns of expression in transgenic mice. Proc. Natl Acad. Sci. USA 92, 8685-8689.[Abstract/Free Full Text]

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

Thorpe, C. J., Schlesinger, A., Carter, J. C. and Bowerman, B (1997). Wnt signaling polarizes an early C. elegans blastomere to distinguish endoderm from mesoderm. Cell 90, 695-705.[Medline]

Traber, P. G. and Silberg, D. G (1996). Intestine-specific gene transcription. Ann. Rev. Physiol 58, 275-297.[Medline]

Walters, J. R., Howard, A., Rumble, H. E., Prathalingam, S. R., Shaw-Smith, C. J. and Legon, S (1997). Differences in expression of homeoboxtranscription factors in proximal and distal human small intestine. Gastroenterology 113, 472-477.[Medline]

White, J. and Strome, S (1996). Cleavage plane specification in C. elegans : how to divide the spoils. Cell 84, 195-198.[Medline]

Wittmann, C., Bossinger, O., Goldstein, B., Fleischmann, M., Kohler, R., Brunschwig, K., Tobler, H. and Muller, F (1997). The expression of the C. eleganslabial -like Hox gene ceh-13 during early embryogenesis relies on cell fate and on anteroposterior cell polarity. Development 124, 4193-4200.[Abstract]

Zhu, J., Hill, R. J., Heid, P. J., Fukuyama, M., Sugimoto, A., Priess, J. R. and Rothman, J. H (1997). end-1 encodes an apparent GATA factor that specifies the endoderm precursor in Caenorhabditis elegans embryos. Genes Dev 11, 2883-2896.[Abstract/Free Full Text]




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