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Nakao, A., Afrakhte, M., Morn, A., Nakayama, T., Christian, J. L., Heuchel, R., Itoh, S., Kawabata, M., Heldin, N.-E., Heldin, C.-H., & Dijke, P. ten. (1997). Identification of Smad7, a TGFβ-inducible antagonist of TGF-β signalling. Nature, 389(6651), 631–635.

Authors 11
  1. Atsuhito Nakao (first)
  2. Mozhgan Afrakhte (additional)
  3. Anita Morn (additional)
  4. Takuya Nakayama (additional)
  5. Jan L. Christian (additional)
  6. Rainer Heuchel (additional)
  7. Susumu Itoh (additional)
  8. Masahiro Kawabata (additional)
  9. Nils-Erik Heldin (additional)
  10. Carl-Henrik Heldin (additional)
  11. Peter ten Dijke (additional)
References 29 Referenced 1,539
  1. Massagué, J., Hata, A. & Liu, F. TGF-β signalling through the Smad pathway. Trends Cell Biol. 7, 187–192 (1997). (10.1016/S0962-8924(97)01036-2) / Trends Cell Biol. by J Massagué (1997)
  2. Eppert, K. et al. MADR2 maps to 18q21 and encodes a TGFβ-regulated MAD-related protein that is functionally mutated in colorectal carcinoma. Cell 86, 543–552 (1996). (10.1016/S0092-8674(00)80128-2) / Cell by K Eppert (1996)
  3. Zhang, Y., Feng, X.-H., Wu, R.-Y. & Derynck, R. Receptor-associated Mad homologues synergize as effectors of the TGF-β response. Nature 383, 168–172 (1996). (10.1038/383168a0) / Nature by Y Zhang (1996)
  4. Macías-Silva, M. et al. MADR2 is a substrate of the TGFβ receptor and its phosphorylation is required for nuclear accumulation and signalling. Cell 87, 1215–1224 (1996). (10.1016/S0092-8674(00)81817-6) / Cell by M Macías-Silva (1996)
  5. Nakao, A. et al. TGF-β receptor mediated signalling through Smad2, Smad3 and Smad4. EMBO J. 16, 5353–5362 (1997). (10.1093/emboj/16.17.5353) / EMBO J. by A Nakao (1997)
  6. Lagna, G., Hata, A., Hemmati-Brivanlou, A. & Massagué, J. Partnership between DPC4 and SMAD proteins in TGF-β signalling pathways. Nature 383, 832–836 (1996). (10.1038/383832a0) / Nature by G Lagna (1996)
  7. Zhang, Y., Musci, T. & Derynck, R. The tumor suppressor Smad4/DPC4 as a central mediator of Smad function. Curr. Biol. 7, 270–276 (1997). (10.1016/S0960-9822(06)00123-0) / Curr. Biol. by Y Zhang (1997)
  8. Wu, R.-Y., Zhang, Y., Feng, X.-H. & Derynck, R. Heteromeric and homomeric interactions correlate with signalling activity and functional cooperativity of Smad3 and Smad4/DPC4. Mol. Cell. Biol. 17, 2521–2528 (1997). (10.1128/MCB.17.5.2521) / Mol. Cell. Biol. by R-Y Wu (1997)
  9. Shi, Y., Hata, A., Lo, R. S., Massagué, J. & Pavletich, N. P. Astructural basis for mutational inactivation of the tumour suppressor Smad4. Nature 388, 87–93 (1997). (10.1038/40431) / Nature by Y Shi (1997)
  10. Kretzschmar, M., Liu, F., Hata, A., Doody, J. & Massagué, J. The TGF-β family mediator Smad1 is phosphorylated directly and activated functionally by the BMP receptor kinase. Genes Dev. 11, 984–995 (1997). (10.1101/gad.11.8.984) / Genes Dev. by M Kretzschmar (1997)
  11. Chen, X., Rubock, M. J. & Whitman, M. Atranscriptional partner for MAD proteins in TGF-β signalling. Nature 383, 691–696 (1996). (10.1038/383691a0) / Nature by X Chen (1996)
  12. Kim, J., Johnson, K., Chen, H. J., Carrol, S. & Laughon, A. Drosophila Mad binds to DNA and directly mediates activation of vestigial by Decapentaplegic. Nature 388, 304–308 (1997). (10.1038/40906) / Nature by J Kim (1997)
  13. Imamura, T. et al. Smad6 inhibits signalling by the TGF-β superfamily. Nature 389, 622–626 (1997). (10.1038/39355) / Nature by T Imamura (1997)
  14. Hemmati-Brivanlou, A. & Melton, D. Atruncated activin receptor inhibits mesoderm induction and formation of axial structures in Xenopus embryos. Nature 359, 609–614 (1992). (10.1038/359609a0) / Nature by A Hemmati-Brivanlou (1992)
  15. Chang, C., Wilson, P. A., Mathews, L. S. & Hemmati-Brivanlou, A. A. Xenopus type I activin receptor mediates mesodermal but not neural specification during embryogenesis. Development 124, 827–837 (1997). (10.1242/dev.124.4.827) / Development by C Chang (1997)
  16. Smith, J. C., Price, B. M. J., Green, J. B., Weigel, D. & Herrman, B. G. Expression of a Xenopus homolog of Brachury (T) is an immediate-early response to mesoderm induction. Cell 67, 79–87 (1991). (10.1016/0092-8674(91)90573-H) / Cell by JC Smith (1991)
  17. Kessler, D. S. & Melton, D. A. Vertebrate embryonic induction: mesodermal and neural patterning. Science 266, 596–604 (1994). (10.1126/science.7939714) / Science by DS Kessler (1994)
  18. Hayashi, H. et al. The MAD-related protein Smad7 associates with the TGFβ receptor and functions as an antagonist of TGFβ signaling. Cell 89, 1165–1173 (1997). (10.1016/S0092-8674(00)80303-7) / Cell by H Hayashi (1997)
  19. Zimmerman, L. B., De Jesus-Escobar, J. M. & Harland, R. M. The Spemann organizer signal noggin binds and inactivates bone morphogenetic progein-4. Cell 86, 599–606 (1996). (10.1016/S0092-8674(00)80133-6) / Cell by LB Zimmerman (1996)
  20. Piccolo, S., Sasai, Y., Lu, B. & De Robertis, E. M. Dorsoventral patterning in Xenopus: inhibition of ventral signals by direct binding of chordin to BMP-4. Cell 86, 589–598 (1996). (10.1016/S0092-8674(00)80132-4) / Cell by S Piccolo (1996)
  21. Wang, T. et al. The immunophilin FKBP12 functions as a common inhibitor of the TGFβ family type I receptors. Cell 86, 435–444 (1996). (10.1016/S0092-8674(00)80116-6) / Cell by T Wang (1996)
  22. Chen, Y.-G., Liu, F. & Massagué, J. Mechanism of TGFβ receptor inhibition by FKBP12. EMBO J. 16, 3866–3876 (1997). (10.1093/emboj/16.13.3866) / EMBO J. by Y-G Chen (1997)
  23. Luo, K. & Lodish, H. F. Positive and negative regulation of type II TGF-β recptor signal transuction by autophosphorylation on multiple serines. EMBO J. 16, 1970–1981 (1997). (10.1093/emboj/16.8.1970) / EMBO J. by K Luo (1997)
  24. Afrakhte, M., Nister, M., Ostman, A., Westermark, B. & Paulsson, Y. Production of cell-associated PDGF-AA by a human sarcoma cell line: evidence for a latent autocrine effect. Int. J. Cancer 68, 802–809 (1996). (10.1002/(SICI)1097-0215(19961211)68:6<802::AID-IJC19>3.0.CO;2-1) / Int. J. Cancer by M Afrakhte (1996)
  25. Datto, M. B., Yu, Y. & Wang, X. F. Functional analysis of the transforming growth factor β responsive elements in the WAF/Cip/p21 promoter. J. Biol. Chem. 270, 28623–28628 (1995). (10.1074/jbc.270.48.28623) / J. Biol. Chem. by MB Datto (1995)
  26. Moon, R. T. & Christian, J. L. Microinjection and expression of synthetic mRNAs in Xenopus embryos. Technique 1, 76–89 (1989). / Technique by RT Moon (1989)
  27. Dale, L., Matthews, G. & Colman, A. Secretion and mesoderm-inducing activity of the TGF-β related domain of Xenopus Vg1. EMBO J. 12, 4471–4480 (1993). (10.1002/j.1460-2075.1993.tb06136.x) / EMBO J. by L Dale (1993)
  28. Cui, Y., Tian, Q. & Christian, J. L. Synergistic effects of Vg1 and Wnt signals in the specification of dorsal mesoderm and endoderm. Dev. Biol. 180, 22–34 (1996). (10.1006/dbio.1996.0281) / Dev. Biol. by Y Cui (1996)
  29. Turner, D. & Weintraub, H. Expression of acheate-schute homolog 3 in Xenopus embryos converts ectodermal cells to a neural fate. Genes Dev. 8, 1434–1447 (1994). (10.1101/gad.8.12.1434) / Genes Dev. by D Turner (1994)
Dates
Type When
Created 23 years ago (July 26, 2002, 4:37 a.m.)
Deposited 2 years, 3 months ago (May 17, 2023, 8:14 p.m.)
Indexed 2 days, 3 hours ago (Aug. 23, 2025, 12:58 a.m.)
Issued 27 years, 10 months ago (Oct. 1, 1997)
Published 27 years, 10 months ago (Oct. 1, 1997)
Published Print 27 years, 10 months ago (Oct. 1, 1997)
Funders 0

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@article{Nakao_1997, title={Identification of Smad7, a TGFβ-inducible antagonist of TGF-β signalling}, volume={389}, ISSN={1476-4687}, url={http://dx.doi.org/10.1038/39369}, DOI={10.1038/39369}, number={6651}, journal={Nature}, publisher={Springer Science and Business Media LLC}, author={Nakao, Atsuhito and Afrakhte, Mozhgan and Morn, Anita and Nakayama, Takuya and Christian, Jan L. and Heuchel, Rainer and Itoh, Susumu and Kawabata, Masahiro and Heldin, Nils-Erik and Heldin, Carl-Henrik and Dijke, Peter ten}, year={1997}, month=oct, pages={631–635} }