spacer gif spacer gif spacer gif spacer gif spacer gif
 QUICK SEARCH:   [advanced]


spacer gif
     Home     Help     Feedback     Subscriptions     Archive     Search     Table of Contents    


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Li, W.
Right arrow Articles by Perrimon, N.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Li, W.
Right arrow Articles by Perrimon, N.
Aitken, A (1995). 14-3-3 proteins on the MAP. Trends Biochem. Sci 20, 95-97.[Medline]

Ambrosio, L., Mahowald, A. P. and Perrimon, N (1989). Requirement of the Drosophilaraf homologue for torso function. Nature 342, 288-291.[Medline]

Avruch, J., Zhang, X. and Kyriakis, J. M (1994). Raf meets Ras: completing the framework of a signal transduction pathway. Trends Biochem. Sci 19, 279-283.[Medline]

Baek, K.-H., Fabian, J. R., Sprenger, F., Morrison, D. K. and Ambrosio, L (1996). The activity of D-raf in Torso signal transduction is altered by serine substitution, N-terminal deletion, and membrane targeting. Dev. Biol 175, 191-204.[Medline]

Block, C., Janknecht, R., Hermann, C., Nassar, N. and Wittinghofer, A (1996). A quantitative structure-activity analysis correlating Ras/Raf interaction in vitro to Raf activation in vivo. Nat. Struct. Biol 3, 244-251.[Medline]

Brand, A. H. and Perrimon, N (1994). Raf acts downstream of the EGF receptor to determine dorsoventral polarity during Drosophila oogenesis. Genes Dev 8, 629-639.[Abstract/Free Full Text]

Casanova, J., Llimargas, M., Greenwood, S. and Struhl, G (1994). An oncogenic form of human raf can specify terminal body pattern in Drosophila. Mech. Dev 48, 59-64.[Medline]

Chang, H. C. and Rubin, G. M (1997). 14-3-3positively regulates Ras-mediated signaling in Drosophila. Genes Dev 11, 1132-1139.[Abstract/Free Full Text]

Chou, T.-B. and Perrimon, N (1992). Use of a yeast site-specific recombinase to produce female germline chimeras in Drosophila. Genetics 131, 643-653.[Abstract]

Chou, T.-B. and Perrimon, N (1996). The autosomal FLP-DFS technique for generating germline mosaics in Drosophila melanogaster. Genetics 144, 1673-1679.[Abstract]

Cutler, R. E. J. and Morrison, D. K (1997). Mammalian Raf-1 is activated by mutations that restore Raf signaling in Drosophila. EMBO J 16, 1953-1960.[Medline]

Daum, G., Eisenmann-Tappe, I., Fries, H., Troppmair, J. and Rapp, U. R (1994). The ins and outs of Raf kinases. Trends Biochem Sci 19, 474-479.[Medline]

Dickson, B., Sprenger, F. and Hafen, E (1992). Prepattern in the developing Drosophila eye revealed by an activated Torso-Sevenless chimeric receptor. Genes Dev 6, 2327-2339.[Abstract/Free Full Text]

Dickson, B., Sprenger, F., Morrison, D. K. and Hafen, E (1992). Raf function downstream of Ras1 in the Sevenless signal transduction pathway. Nature 360, 600-603.[Medline]

Drugan, J. K., Khosravi-Far, R., White, M. A., J., D. C., Sung, Y., Hwang, Y. and Campell, S (1996). Ras interaction with two distinct binding domains in Raf-1 may be required for Ras transformation. J. Biol. Chem 271, 233-237.[Abstract/Free Full Text]

Duffy, J. B. and Perrimon, N (1994). The Torso pathway in Drosophila: lessons on receptor protein tyrosine kinase signaling and pattern formation. Dev. Biol 166, 380-395.[Medline]

Fabian, J. R., Vojtek, A. B., Cooper, J. A. and Morrison, D. K (1994). A single amino acid change in Raf-1 inhibits Ras binding and alters Raf-1 function. Proc. Natl. Acad. Sci. USA 91, 5982-5986.[Abstract/Free Full Text]

Farnsworth, C. L. and Feig, L. A (1991). Dominant inhibitory mutations in the Mg+-binding site of RasHprevents its activation by GTP. Mol. Cell. Biol 11, 4822-4829.[Abstract/Free Full Text]

Farrar, M. A., Alberola-Ila, J. and Perlmutter, R. M (1996). Activation of the Raf-1 kinase cascade by coumermycin-induced dimerization. Nature 383, 178-181.[Medline]

Fields, S. and Song, O (1989). A novel genetic system to detect protein-protein interaction. Nature 340, 245-246.[Medline]

Gorman, C., Skinner, R. H., Skelly, J. V., Neidle, S. and Lowe, P. N (1996). Equilibrium and kinetic measurements reveal rapidly reversible binding of Ras to Raf. J. Biol. Chem 271, 6713-6719.[Abstract/Free Full Text]

Groshans, J., Bergmann, A., Haffter, P. and Nusslein-Volhard, C (1994). Activation of the kinase Pelle by Tube in the dorsalventral signal transduction pathway of Drosophila embryo. Nature 372, 563-566.[Medline]

Gyuris, J., Golemis, E., Chertkov, H. and Brent, R (1993). Cdi1, a human G1 and S phase phosphatase that associates with Cdk2. Cell 75, 791-803.[Medline]

Hallberg, B., Bayter, S. I. and Downward, J (1994). Interaction of Ras and Raf in intact mammalian cells upon extracellular stimulation. J. Biol. Chem 269, 3913-3916.[Abstract/Free Full Text]

Heidecker, G., Huleihel, M., Cleveland, J. L., Kolch, W., Beck, T. W., Lloyd, P., Pawson, T. and Rapp, U. R (1990). Mutational activation of c-raf-1 and definition of the minimal transforming sequence. Mol. Cell. Biol 10, 2503-2512.[Abstract/Free Full Text]

Hou, X. S., Chou, T.-B., Melnick, M. B. and Perrimon, N (1995). The Torso receptor tyrosine kinase can activate Raf in a Ras-independent pathway. Cell 81, 63-71.[Medline]

Hu, C., Kariya, K., Tamada, M., Akasaka, K., Shirouzu, M., Yokoyama, S. and Kataoka, T (1995). Cysteine-rich region of Raf-1 interacts with activator domain of post-translationally modified Ha-Ras. J. Biol. Chem 270, 30274-30277.[Abstract/Free Full Text]

Huang, W., Alessandrini, A., Crews, C. M. and Erikson, R. L (1993). Raf-1 forms a stable complex with Mek1 and activates Mek1 by serine phosphorylation. Proc. Natl. Acad. Sci. USA 90, 10947-10951.[Abstract/Free Full Text]

Kockel, L., Vorbruggen, G., J\212ckle, H., Mlodzik, M. and Bohmann, D (1997). Requirement for Drosophila 14-3-3in Raf-dependent photoreceptor development. Gene Dev 11, 1140-1147.[Abstract/Free Full Text]

Kornfeld, K., Hom, D. B. and Horvitz, H. R (1995). The ksr-1 gene encodes a novel protein kinase involved in Ras-mediated signaling in C. elegans. Cell 83, 903-913.[Medline]

Leevers, S. J., Paterson, H. F. and Marshall, C. J (1994). Requirement for Ras in Raf activation is overcome by targeting Raf to the plasma membrane. Nature 369, 411-414.[Medline]

Li, W., Skoulakis, E. M. C., Davis, R. L. and Perrimon, N (1997). The Drosophila 14-3-3 protein Leonardo enhances Torso signaling through D-Raf in a Ras1-dependent manner. Development 124, 4163-4171.[Abstract]

Lu, X., Melnick, M. B., Hsu, J.-C. and Perrimon, N (1994). Genetic and molecular analyses of mutations involved in Drosophila raf signal transduction. EMBO J 13, 2592-2599.[Medline]

Luo, Z., Tzivion, G., Belshaw, P. J., Vavvas, D., Marshall, M. and Avruch, J (1996). Oligomerization activates c-Raf-1 through a Ras-dependent mechanism. Nature 383, 181-185.[Medline]

Marais, R., Light, Y., Paterson, H. F. and Marshall, C. J (1995). Ras recruits Raf-1 to the plasma membrane for activation by tyrosine phosphorylation. EMBO J 14, 3136-3145.[Medline]

Marshall, C. J (1994). Map kinase kinase kinase, Map kinase kinase and Map kinase. Curr. Opin. Genet. Dev 4, 82-89.[Medline]

Melnick, M. B., Perkins, L. A., Lee, M., Ambrosio, L. and Perrimon, N (1993). Developmental and molecular characterization of mutations in the Drosophila raf serine-threonine kinase. Development 118, 127-138.[Abstract]

Mineo, C. anderson, R. G. W. and White, M. A (1997). Physical assocation with Ras enhances activation of membrane-bound Raf (RafCAAX). J. Biol. Chem 272, 10345-10348.[Abstract/Free Full Text]

Moodie, S. A., Willumsen, B. M., Weber, M. J. and Wolfman, A (1993). Complexes of Ras-GTP with Raf-1 and mitogen-activated protein kinase kinase. Science 260, 1658-1664.[Abstract/Free Full Text]

Moodie, S. A. and Wolfman, A (1994). The 3Rs of life: Ras, Raf and growth regulation. Trends Genet 10, 44-48.[Medline]

Morrison, D (1994). 14-3-3: modulators or signaling proteins?. Science 266, 56-57.[Free Full Text]

Morrison, D. K. and Cutler, R. E. J (1997). The complexity of Raf-1 regulation. Curr. Opin. Cell Biol 9, 174-179.[Medline]

Mott, H. R., Carpenter, J. W., Zhong, S., Ghosh, S. and Bell, R. M (1996). The solution structure of the Raf-1 cysteine-rich domain: a novel Ras and phospholipid binding site. Proc. Natl. Acad. Sci. USA 93, 8312-8317.[Abstract/Free Full Text]

Nassar, N., Horn, G., Hermann, C., Scherer, A., McCormick, F. and Wittinghofer, A (1995). The 2.2 \201 crystal structure of the Ras-binding domain of the serine/threonine kinase c-Raf1 in complex with Rap1A and a GTP analogue. Nature 375, 554-560.[Medline]

Perrimon, N., Engstrom, L. and Mahowald, A. P (1985). A pupal lethalmutation with apaternally influenced maternal effect on embryonic development in Drosophila melanogaster. Dev. Biol 110, 480-491.[Medline]

Pignoni, F., Baldarelli, R. M., Steingrimsson, E., Diaz, R. J., Patapoutian, A., Merriam, J. R. and Lengyel, J. A (1990). The Drosophila gene tailless is expressed at the embryonic termini and is a member of the steroid receptor superfamily. Cell 62, 151-163.[Medline]

Pignoni, F., Steingrimsson, E. and Lengyel, J. A (1992). bicoid and the terminal system activate tailless expression in the early Drosophila embryo. Development 115, 239-251.[Abstract]

Roy, S., Lane, A., Yan, J., McPherson, R. and Hancock, J. F (1997). Activity of plasma membrane-recruited Raf-1 is regulated by Ras via the Raf zinc finger. J. Biol. Chem 272, 20139-20145.[Abstract/Free Full Text]

Scheffler, J. E., Waugh, D. S., Bekesi, E., Kiefer, S. E., LoSardo, J. E., Neri, A., Prinzo, K. M., Tsao, K., Wegrzynski, b., Emerson, S. D. and Fry, D. C (1994). Characterization of a 78-residue fragment of c-Raf-1 that comprises a minimal binding domain for interaction with Ras-GTP. J. Biol. Chem 269, 22340-22346.[Abstract/Free Full Text]

Sprenger, F. and Nusslein-Volhard, C (1992). Torso receptor activity is regulated by a diffusible ligand produced at the extracellular terminal regions of the Drosophila egg. Cell 71, 987-1001.[Medline]

Sprenger, F., Trosclair, M. M. and Morrison, D. K (1993). Biochemical analysis of torso and D-raf during Drosophila embryogenesis: implications for terminal signal transduction. Molecular and Cellular Biology 13, 1163-1172.[Abstract/Free Full Text]

Stanton, V. P. J., Nichols, D. W., Laudano, A. P. and Cooper, G. M (1989). Definition of the human raf amino-terminal regulatory region by deletion mutagenesis. Mol. Cell. Biol 9, 639-647.[Abstract/Free Full Text]

Stokoe, D., MacDonald, G., Cadwallader, K., Symons, M. and Hancock, J. F (1994). Activation of Raf as a result of recruitment to the plasma membrane. Science 264, 1463-1467.[Abstract/Free Full Text]

Sundaram, M. and Han, M (1995). The C. elegans ksr-1 gene encodes a novel Raf-related kinase involved in Ras-mediated signal transduction. Cell 83, 889-901.[Medline]

Tautz, D. and Pfeifle, C (1989). A non-radioactive in situ hybridization method for the localization of specific RNAs in Drosophila embryos reveals translational control of the segmentation gene hunchback. Chromosome 98, 81-85.

Therrien, M., Chang, H. C., Solomon, N. M., Karim, F. D., Wassarman, D. A. and Rubin, G. M (1995). KSR, a novel protein kinase required for RAS signal transduction. Cell 83, 879-888.[Medline]

Therrien, M., Michaud, N. R., Rubin, G. M. and Morrison, D. K (1996). KSR modulates signal propagation within the MAPK cascade. Genes Dev 10, 2684-2695.[Abstract/Free Full Text]

van der Meer, J (1977). Optical clean and permanent whole mount preparation for phase-contrast microscopy of cuticular structures of insect larvae. Dros. Inf. Serv 52, 160-.

Vojtek, A. B., Hollenberg, S. M. and Cooper, J. A (1993). Mammalian Ras interacts directly with the serine/threonine kinase Raf. Cell 74, 205-214.[Medline]

Xing, H., Kornfeld, K. and Muslin, A. J (1997). The protein kinase KSR interacts with 14-3-3 protein and Raf. Curr. Biol 7, 294-300.[Medline]

Yu, W., Fantl, W. J., Harrowe, G. and Williams, L. T (1997). Regulation of the MAP kinase pathway by mammalian Ksr through direct interaction with MEK and ERK. Curr. Biol 8, 56-64.

Zhang, Y., Yao, B., Delikat, S., Bayoumy, S., Lin, X.-H., Basu, S., McGinley, M., Chan-Hui, P.-Y., Lichenstein, H. and Kolesnick, R (1997). Kinase Suppressor of Ras is ceramide-activated protein kinase. Cell 89, 63-72.[Medline]




This article has been cited by other articles:


Home page
Molecular Cancer TherapeuticsHome page
G. Ambrosini, H. S. Cheema, S. Seelman, A. Teed, E. B. Sambol, S. Singer, and G. K. Schwartz
Sorafenib inhibits growth and mitogen-activated protein kinase signaling in malignant peripheral nerve sheath cells
Mol. Cancer Ther., April 1, 2008; 7(4): 890 - 896.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. Gallio, C. Englund, P. Kylsten, and C. Samakovlis
Rhomboid 3 orchestrates Slit-independent repulsion of tracheal branches at the CNS midline
Development, August 1, 2004; 131(15): 3605 - 3614.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
W. X. Li, H. Agaisse, B. Mathey-Prevot, and N. Perrimon
Differential requirement for STAT by gain-of-function and wild-type receptor tyrosine kinase Torso in Drosophila
Development, March 11, 2003; 129(18): 4241 - 4248.
[Abstract] [Full Text] [PDF]


Home page
Nucleic Acids ResHome page
E.-J. Kwon, E.-J. Oh, Y.-S. Kim, F. Hirose, K. Ohno, Y. Nishida, A. Matsukage, M. Yamaguchi, and M.-A. Yoo
E2F-dependent transcription of the raf proto-oncogene during Drosophila development
Nucleic Acids Res., April 15, 2001; 29(8): 1808 - 1814.
[Abstract] [Full Text] [PDF]


Home page
GeneticsHome page
W. Li, E. Noll, and N. Perrimon
Identification of Autosomal Regions Involved in Drosophila Raf Function
Genetics, October 1, 2000; 156(2): 763 - 774.
[Abstract] [Full Text]


Home page
BloodHome page
A. Rebollo and C. Martinez-A
Ras Proteins: Recent Advances and New Functions
Blood, November 1, 1999; 94(9): 2971 - 2980.
[Full Text] [PDF]


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Li, W.
Right arrow Articles by Perrimon, N.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Li, W.
Right arrow Articles by Perrimon, N.