naked cuticle encodes an inducible antagonist of Wnt signalling (original) (raw)

References

  1. Perrimon, N. & McMahon, A. P. Negative feedback mechanisms and their roles during pattern formation Cell 97, 13–16 (1999).
    Article CAS PubMed Google Scholar
  2. Cadigan, K. M. & Nusse, R. Wnt signaling: a common theme in animal development Genes Dev. 11, 3286– 3305 (1997).
    Article CAS PubMed Google Scholar
  3. DiNardo, S., Heemskerk, J., Dougan, S. & O'Farrell, P. H. The making of a maggot: patterning the Drosophila embryonic epidermis Curr. Opin. Genet. Dev. 4, 529–534 (1994).
    Article CAS PubMed PubMed Central Google Scholar
  4. Bejsovec, A. & Martinez Arias, A. Roles of wingless in patterning the larval epidermis of Drosophila Development 113, 471–485 ( 1991).
    CAS PubMed Google Scholar
  5. Sanson, B., Alexandre, C., Fascetti, N. & Vincent, J. P. Engrailed and hedgehog make the range of Wingless asymmetric in Drosophila embryos Cell 98, 207– 216 (1999).
    Article CAS PubMed Google Scholar
  6. Jürgens, G., Wieschaus, E., Nüsslein-Volhard, C. & Kluding, H. Mutations affecting the pattern of the larval cuticle in Drosophila melanogaster . II. Zygotic loci on the third chromosome Wilhelm Roux Arch. Dev. Biol. 193, 283–295 (1984).
    Article Google Scholar
  7. Noordermeer, J., Johnston, P., Rijsewijk, F., Nusse, R. & Lawrence, P. A. The consequences of ubiquitous expression of the wingless gene in the Drosophila embryo Development 116, 711–719 (1992).
    CAS PubMed Google Scholar
  8. Siegfried, E., Chou, T. B. & Perrimon, N. wingless signaling acts through zeste-white 3, the Drosophila homolog of glycogen synthase kinase-3, to regulate engrailed and establish cell fate Cell 71, 1167–1179 (1992).
    Article CAS PubMed Google Scholar
  9. Hamada, F. et al. Negative regulation of Wingless signaling by D-axin, a Drosophila homolog of axin Science 283, 1739– 1742 (1999).
    Article CAS ADS PubMed Google Scholar
  10. McCartney, B. M. et al. Drosophila APC2 is a cytoskeletally-associated protein that regulates wingless signaling in the embryonic epidermis J. Cell Biol. 146, 1303–1318 (1999).
    Article CAS PubMed PubMed Central Google Scholar
  11. Bejsovec, A. & Wieschaus, E. Segment polarity gene interactions modulate epidermal patterning in Drosophila embryos Development 119, 501–517 ( 1993).
    CAS PubMed Google Scholar
  12. Dougan, S. & DiNardo, S. Drosophila wingless generates cell type diversity among engrailed expressing cells Nature 360, 347–350 ( 1992).
    Article CAS ADS PubMed Google Scholar
  13. Pazdera, T. M., Janardhan, P. & Minden, J. S. Patterned epidermal cell death in wild-type and segment polarity mutant Drosophila embryos Development 125, 3427–3436 (1998).
    CAS PubMed Google Scholar
  14. Moline, M. M., Southern, C. & Bejsovec, A. Directionality of Wingless protein transport influences epidermal patterning in the Drosophila embryo Development 126, 4375–4384 ( 1999).
    CAS PubMed Google Scholar
  15. Pai, L. M., Orsulic, S., Bejsovec, A. & Peifer, M. Negative regulation of Armadillo, a Wingless effector in Drosophila Development 124, 2255–2266 ( 1997).
    CAS PubMed Google Scholar
  16. Steitz, M. C., Wickenheisser, J. K. & Siegfried, E. Overexpression of zeste white 3 blocks wingless signaling in the Drosophila embryonic midgut Dev. Biol. 197, 218–233 ( 1998).
    Article CAS PubMed Google Scholar
  17. Brand, A. H. & Perrimon, N. Targeted gene expression as a means of altering cell fates and generating dominant phenotypes Development 118, 401–415 ( 1993).
    CAS PubMed Google Scholar
  18. Baker, N. E. Transcription of the segment-polarity gene wingless in the imaginal discs of Drosophila, and the phenotype of a pupal-lethal wingless mutation Development 102, 489–497 (1988).
    CAS PubMed Google Scholar
  19. Couso, J. P., Bate, M. & Martinez-Arias, A. A _wingless_-dependent polar coordinate system in Drosophila imaginal discs Science 259, 484–489 (1993).
    Article CAS ADS PubMed Google Scholar
  20. Shirras, A. D. & Couso, J. P. Cell fates in the adult abdomen of Drosophila are determined by wingless during pupal development Dev. Biol. 175, 24–36 (1996).
    Article CAS PubMed Google Scholar
  21. Ma, C. & Moses, K. Wingless and patched are negative regulators of the morphogenetic furrow and can affect tissue polarity in the developing Drosophila compound eye Development 121, 2279–2289 ( 1995).
    CAS PubMed Google Scholar
  22. Couso, J. P., Bishop, S. A. & Martinez Arias, A. The wingless signalling pathway and the patterning of the wing margin in Drosophila Development 120, 621–636 (1994).
    CAS PubMed Google Scholar
  23. Brook, W. J. & Cohen, S. M. Antagonistic interactions between wingless and decapentaplegic responsible for dorsal-ventral pattern in the Drosophila leg Science 273, 1373–1377 (1996).
    Article CAS ADS PubMed Google Scholar
  24. Moon, R. T., Brown, J. D., Yang-Snyder, J. A. & Miller, J. R. Structurally related receptors and antagonists compete for secreted Wnt ligands Cell 88, 725–728 (1997).
    Article CAS PubMed Google Scholar
  25. Deardorff, M. A., Tan, C., Conrad, L. J. & Klein, P. S. Frizzled-8 is expressed in the Spemann organizer and plays a role in early morphogenesis Development 125, 2687– 2700 (1998).
    CAS PubMed Google Scholar
  26. Itoh, K. & Sokol, S. Y. Axis determination by inhibition of Wnt signaling in Xenopus Genes Dev. 13, 2328–2336 (1999).
    Article CAS PubMed PubMed Central Google Scholar
  27. Sokol, S. Y. Analysis of Dishevelled signalling pathways during Xenopus development Curr. Biol. 6, 1456–1467 (1996).
    Article CAS PubMed Google Scholar
  28. Hoppler, S., Brown, J. D. & Moon, R. T. Expression of a dominant-negative Wnt blocks induction of MyoD in Xenopus embryos Genes Dev. 10, 2805–2817 (1996).
    Article CAS PubMed Google Scholar
  29. Glinka, A., Wu, W., Onichtchouk, D., Blumenstock, C. & Niehrs, C. Head induction by simultaneous repression of Bmp and Wnt signalling in Xenopus Nature 389, 517–519 (1997).
    Article CAS ADS PubMed Google Scholar
  30. Flaherty, K. M., Zozulya, S., Stryer, L. & McKay, D. B. Three-dimensional structure of recoverin, a calcium sensor in vision Cell 75, 709–716 (1993).
    Article CAS PubMed Google Scholar

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