Dynamics of the COPII coat with GTP and stable analogues (original) (raw)
References
Schekman, R. & Orci, L. Coat proteins and vesicle budding. Science271, 1526–1533 (1996). ArticleCAS Google Scholar
Rothman, J. E. & Wieland, F. T. Protein sorting by transport vesicles. Science272, 227–234 (1996). ArticleCAS Google Scholar
Barlowe, C. et al. COPII: a membrane coat formed by Sec proteins that drive vesicle budding from the endoplasmic reticulum. Cell77, 895–907 (1994). ArticleCAS Google Scholar
Matsuoka, K. et al. COPII-coated vesicle formation reconstituted with purified coat proteins and chemically defined liposomes. Cell93, 263–275 (1998). ArticleCAS Google Scholar
Barlowe, C. & Schekman, R. SEC12 encodes a guanine-nucleotide-exchange factor essential for transport vesicle budding from the ER. Nature365, 347–349 (1993). ArticleCAS Google Scholar
Yoshihisa, T., Barlowe, C. & Schekman, R. Requirement for a GTPase-activating protein in vesicle budding from the endoplasmic reticulum. Science259, 1466–1468 (1993). ArticleCAS Google Scholar
van Holde, K. E. Physical Biochemistry 2nd edn (Prentice-Hall, Englewood Cliffs, NJ, 1985). Google Scholar
Faurobert, E., Otto-Bruc, A., Chardin, P. & Chabre, M. Tryptophan W207 in transducin T alpha is the fluorescence sensor of the G protein activation switch and is involved in the effector binding. EMBO J.12, 4191–4198 (1993). ArticleCAS Google Scholar
Kahn, R. A. & Gilman, A. G. The protein cofactor necessary for ADP-ribosylation of Gs by cholera toxin is itself a GTP binding protein. J. Biol. Chem.261, 7906–7711 (1986). CASPubMed Google Scholar
Chabre, M. Aluminofluoride and beryllofluoride complexes: a new phosphate analogs in enzymology. Trends Biochem. Sci.15, 6–10 (1990). ArticleCAS Google Scholar
Scheffzek, K., Ahmadian, M. R. & Wittinghofer, A. GTPase-activating proteins: helping hands to complement an active site. Trends Biochem. Sci.23, 257–262 (1998). ArticleCAS Google Scholar
Aridor, M. et al. The Sar1 GTPase coordinates biosynthetic cargo selection with endoplasmic reticulum export site assembly. J. Cell Biol.152, 213–230 (2001). ArticleCAS Google Scholar
Springer, S., Spang, A. & Schekman, R. A primer on vesicle budding. Cell97, 145–148 (1999). ArticleCAS Google Scholar
Springer, S. & Schekman, R. Nucleation of COPII vesicular coat complex by endoplasmic reticulum to Golgi vesicle SNAREs. Science281, 698–700 (1998). ArticleCAS Google Scholar
Bremser, M. et al. Coupling of coat assembly and vesicle budding to packaging of putative cargo receptors. Cell96, 495–506 (1999). ArticleCAS Google Scholar
Serafini, T. et al. ADP-ribosylation factor is a subunit of the coat of Golgi-derived COP-coated vesicles: a novel role for a GTP-binding protein. Cell67, 239–253 (1991). ArticleCAS Google Scholar
Finazzi, D., Cassel, D., Donaldson, J. G. & Klausner, R. D. Aluminum fluoride acts on the reversibility of ARF1-dependent coat protein binding to Golgi membranes. J. Biol. Chem.269, 13325–13330 (1994). CASPubMed Google Scholar
Happe, S., Cairns, M., Roth, R., Heuser, J. & Weidman, P. Coatomer vesicles are not required for inhibition of Golgi transport by G-protein activators. Traffic1, 342–353 (2000). ArticleCAS Google Scholar
Cukierman, E., Huber, I., Rotman, M. & Cassel, D. The ARF1 GTPase-activating protein: zinc finger motif and Golgi complex localization. Science270, 1999–2002 (1995). ArticleCAS Google Scholar
Goldberg, J. Structural and functional analysis of the ARF1-ARFGAP complex reveals a role for coatomer in GTP hydrolysis. Cell96, 893–902 (1999). ArticleCAS Google Scholar
Szafer, E. et al. Role of coatomer and phospholipids in GTPase-activating protein-dependent hydrolysis of GTP by ADP-ribosylation factor-1. J. Biol. Chem.275, 23615–23619 (2000). ArticleCAS Google Scholar
Aridor, M., Weissman, J., Bannykh, S., Nuoffer, C. & Balch, W. E. Cargo selection by the COPII budding machinery during export from the ER. J. Cell Biol.141, 61–70 (1998). ArticleCAS Google Scholar
Matsuoka, K., Morimitsu, Y., Uchida, K. & Schekman R. Coat assembly directs v-SNARE concentration into synthetic COPII vesicles. Mol. Cell.2, 703–708 (1998). ArticleCAS Google Scholar
Goldberg, J. Decoding of sorting signals by coatomer through a GTPase switch in the COPI coat complex. Cell100, 671–679 (2000). ArticleCAS Google Scholar
Malsam, J., Gommel, D., Wieland, F. T. & Nickel, W. A role for ADP ribosylation factor in the control of cargo uptake during COPI-coated vesicle biogenesis. FEBS Lett.462, 267–272 (1999). ArticleCAS Google Scholar
Lanoix, J. et al. GTP hydrolysis by arf-1 mediates sorting and concentration of Golgi resident enzymes into functional COP I vesicles. EMBO J.18, 4935–4948 (1999). ArticleCAS Google Scholar
Pepperkok, R., Whitney, J. A., Gomez, M. & Kreis, T. E. COPI vesicles accumulating in the presence of a GTP restricted arf1 mutant are depleted of anterograde and retrograde cargo. J. Cell Sci.113, 135–144 (2000). CASPubMed Google Scholar
Salama, N. R., Chuang, J. S. & Schekman, R. W. Sec31 encodes an essential component of the COPII coat required for transport vesicle budding from the endoplasmic reticulum. Mol. Biol. Cell8, 205–217 (1997). ArticleCAS Google Scholar
Antonny, B., Béraud-Dufour, S., Chardin, P. & Chabre, M. N-terminal hydrophobic residues of the G-protein ADP-ribosylation factor-1 insert into membrane phospholipids upon GDP to GTP exchange. Biochemistry36, 4675–4684 (1997). ArticleCAS Google Scholar
Barlowe, C., d'Enfert, C. & Schekman, R. Purification and characterization of SAR1p, a small GTP-binding protein required for transport vesicle formation from the endoplasmic reticulum. J. Biol. Chem.268, 873–879 (1993). CASPubMed Google Scholar