Aspenstrom P (1997) A Cdc42 target protein with homology to the non-kinase domain of FER has a potential role in regulating the actin cytoskeleton. Curr Biol 7:479–487
Article
Google Scholar
Bryant NJ, Govers R, James DE (2002) Regulated transport of the glucose transporter GLUT4. Nat Rev Mol Cell Biol 3:267–277
Article
Google Scholar
Chang L, Adams RD, Saltiel AR (2002) The TC10-interacting protein CIP4/2 is required for insulin-stimulated Glut4 translocation in 3T3L1 adipocytes. Proc Natl Acad Sci USA 99:12835–12840
Article
ADS
Google Scholar
Chang L, Chiang SH, Saltiel AR (2004) Insulin signaling and the regulation of glucose transport. Mol Med 10:65–71
Google Scholar
Czech MP, Buxton JM (1993) Insulin action on the internalization of the GLUT4 glucose transporter in isolated rat adipocytes. J Biol Chem 268:9187–9190
Google Scholar
Delaglio F, Grzesiek S, Vuister G, Zhu W, Pfeifer J, Bax A (1995) NMRPipe: a multidimensional spectral processing system based on UNIX pipes. J Biomol NMR 6:277–293
Article
Google Scholar
Feltham JI, Dotsch V, Raza S, Manor D, Cerione RA, Suteliffe MJ, Wagner G, Oswald RE (1997) Definition of the switch surface in the solution structure of Cdc42Hs. Biochemistry 36:8755–8766
Article
Google Scholar
Herrmann T, Guntert P, Wuthrich K (2002) Protein NMR structure determination with automated NOE assignment using the new software CANDID and the torsion angle dynamics algorithm DYANA. J Mol Biol 319:209–227
Article
Google Scholar
Holm L, Sander C (1995) Dali: a network tool for protein structure comparison. Trends Biochem Sci 20:478–480
Article
Google Scholar
Itoh T, Erdmann KS, Roux A, Habermann B, Werner H, De Camilli P (2005) Dynamin and the actin cytoskeleton cooperatively regulate plasma membrane invagination by BAR and F-BAR proteins. Dev Cell 9:791–804
Article
Google Scholar
Jhun BH, Rampal AL, Liu H, Lachaal M, Jung CY (1992) Effects of insulin on steady state kinetics of GLUT4 subcellular distribution in rat adipocytes. Evidence of constitutive GLUT4 recycling. J Biol Chem 267:17710–17715
Google Scholar
Kneller DG, Goddard TD (1997) SPARKY 3.105 edit. University of California, San Francisco
Google Scholar
Kobashigawa Y, Kumeta H, Ogura K, Inagaki F (2009) Attachment of an NMR-invisible solubility enhancement tag using a sortase-mediated protein ligation method. J Biomol NMR 43:145–150. doi:10.1007/s10858-008-9296-5
Article
Google Scholar
Lodhi IJ, Chiang SH, Chang L, Vollenweider D, Watson RT, Inoue M, Pessin JE, Saltiel AR (2007) Gapex-5, a Rab31 guanine nucleotide exchange factor that regulates Glut4 trafficking in adipocytes. Cell Metab 5:59–72
Article
Google Scholar
Maesaki R, Ihara K, Shimizu T, Kuroda S, Kaibuchi K, Hakoshima T (1999) The structural basis of Rho effector recognition revealed by the crystal structure of human RhoA complexed with the effector domain of PKN/PRK1. Mol Cell 4:793–803
Article
Google Scholar
Modha R, Campbell LJ, Nietlispach D, Buhecha HR, Owen D, Mott HR (2008) The Rac1 polybasic region is required for interaction with its effector PRK1. J Biol Chem 283:1492–1500
Article
Google Scholar
Tian L, Nelson DL, Stewart DM (2000) Cdc42-interacting protein 4 mediates binding of the Wiskott-Aldrich syndrome protein to microtubules. J Biol Chem 275:7854–7861
Article
Google Scholar
Watson RT, Kanzaki M, Pessin JE (2004) Regulated membrane trafficking of the insulin-responsive glucose transporter 4 in adipocytes. Endocr Rev 25:177–204
Article
Google Scholar
Yang J, Holman GD (1993) Comparison of GLUT4 and GLUT1 subcellular trafficking in basal and insulin-stimulated 3T3–L1 cells. J Biol Chem 268:4600–4603
Google Scholar