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Aridor, M., Bannykh, S. I., Rowe, T. and Balch, W. E (1995). Sequential coupling between COPII and COPI vesicle coats in endoplasmic reticulum to Golgi transport. J. Cell Biol 131, 875-893.[Abstract/Free Full Text]

Balch, W. E., McCaffery, J. M., Plunter, H. and Farquhar, M. G (1994). Vesicular stomatitis virus glycoprotein is sorted and concentrated during export from the endoplasmic reticulum. Cell 77, 841-852.[Medline]

Barlowe, C., Orci, L., Yeung, T., Hosobuchi, M., Hamamoto, S., Salama, N., Rexach, M. F., Ravazzola, M., Amherdt, M. and Schekman, R. W (1994). COPII: a membrane coat formed by Sec proteins that drive vesicle budding from the endoplasmic reticulum. Cell 77, 895-907.[Medline]

Beckers, C. J. M., Keller, D. S. and Balch, W. E (1987). Semi-intact cellspermeable to macromolecules: use in reconstitution of protein transport from the endoplasmic reticulum to the Golgi complex. Cell 50, 523-534.[Medline]

Calakos, N. and Scheller, R (1994). Vesicle-associated membrane protein and synaptophysin are associated on the synaptic vesicle. J. Biol. Chem 269, 24534-24537.[Abstract/Free Full Text]

Clary, D. O., Griff, I. C. and Rothman, J. E (1990). SNAPs, a family of NSF attachment proteins involved in intracellular membrane fusion in animals and yeast. Cell 61, 709-721.[Medline]

Davidson, H. W. and Balch, W. E (1993). Differential inhibition of multiple vesicular transport steps between the endoplasmic reticulum and trans Golgi network. J. Biol. Chem 268, 4216-4226.[Abstract/Free Full Text]

Eakle, K. A., Bernstein, M. and Emr, S. D (1988). Characterization of a component of the yeast secretion machinery: identification of the SEC18 gene product. Mol. Cell Biol 8, 4098-4109.[Abstract/Free Full Text]

Edelmann, L., Hanson, P. I., Chapman, E. R. and Jahn, R (1995). Synaptobrevin binding to synaptophysin: a potential mechanism for controlling the exocytotic fusion machine. EMBO J 14, 224-231.[Medline]

Ferro-Novick, S. and Jahn, R (1994). Vesicle fusion from yeast to man. Nature 370, 191-193.[Medline]

Graham, T. R. and Emr, S. D (1991). Compartmental organization of Golgi-specific protein modification and vacuolar protein sorting events defined in a yeast sec18 (NSF) mutant. J. Cell Biol 114, 207-218.[Abstract/Free Full Text]

Griff, I. C., Schekman, R., Rothman, J. E. and Kaiser, C. A (1992). The yeast SEC17 gene product is functionally equivalent to mammalian-SNAP protein. J. Biol. Chem 267, 12106-12115.[Abstract/Free Full Text]

Ikonen, E., Tagaya, M., Ullrich, O., Montecucco, C. and Simons, K (1995). Different requirements for NSF, SNAP and Rab proteins in apical and basolateral transport in MDCK cells. Cell 81, 571-580.[Medline]

Lian, J. P., Stone, S., Jiang, Y., Lyons, P. and Ferro-Novick, S (1994). Ypt1p implicated in v-SNARE activation. Nature 372, 698-701.[Medline]

Lowe, S. L., Wong, S. H. and Hong, W (1996). The mammalian ARF-like protein 1 (AR1) is associated with the Golgi complex. J. Cell Sci 109, 209-220.[Abstract]

Lupashin, V. V., Hamamoto, S. and Schekman, R. W (1996). Biochemical requirements for the targeting and fusion of ER-derived transport vesicles with purified yeast Golgi membranes. J. Cell Biol 132, 277-289.[Abstract/Free Full Text]

Mayer, A., Wickner, W. and Haas, A (1996). Sec18p (NSF)-driven release of Sec17p (-SNAP) can precede docking and fusion of yeast vacuoles. Cell 85, 83-94.[Medline]

Novick, P. and Brennwald, P (1993). Friends and family: the role of the Rab GTPases in vesicular traffic. Cell 75, 597-601.[Medline]

Nuoffer, C. and Balch, W. E (1994). GTPases: Multifunctional molecular switches regulating vesicular traffic. Annu. Rev. Biochem 63, 949-990.[Medline]

Nuoffer, C., Davidson, H. W., Matteson, J., Meinkoth, J. and Balch, W. E (1994). A GDP-bound form of Rab1 inhibits protein export from the endoplasmic reticulum and transport between Golgi compartments. J. Cell Biol 125, 225-237.[Abstract/Free Full Text]

Peter, F., Nuoffer, C., Pind, S. N. and Balch, W. E (1994). Guanine nucleotide dissociation inhibitor is essential for Rab1 function in budding from the endoplasmic reticulum and transport through the Golgi stack. J. Cell Biol 126, 1393-1406.[Abstract/Free Full Text]

Peter, F., Plutner, H., Zhu, H. Kreis, T. E. and Balch, W. E (1994). -COP is essential for transport of protein from the endoplasmic reticulum to the Golgi in vitro. J. Cell Biol 122, 1155-1167.[Abstract/Free Full Text]

Pind, S. N., Nuoffer, C., McCaffery, J. M. Plutner, H., Davidson, H. W., Farquhar, M. G. and Balch, W. E (1994). Rab1 and Ca2+ are required forthe fusion of carrier vesicles mediating endoplasmic reticulum to Golgi transport. J. Cell Biol 125, 239-252.[Abstract/Free Full Text]

Plutner, H., Cox, A. D., Pind, S., Khosravi-Far, R., Bourne, J. R., Schwaninger, R., Der, C. J. and Balch, W. E (1991). Rab1b regulates vesicular transport between the endoplasmic reticulum and successive Golgi compartments. J. Cell Biol 115, 31-43.[Abstract/Free Full Text]

Plutner, H., Davidson, H. W., Saraste, J. and Balch, W. E (1992). Morphological analysis of protein transport from the ER to the Golgi membrane in digitonin-permeabilized cells: role of the p58 containing compartment. J. Cell Biol 119, 1097-1116.[Abstract/Free Full Text]

Pryer, N. K., Wuestehube, L. J. and Schekman, R (1992). Vesicle-mediated protein sorting. Annu. Rev. Biochem 61, 471-516.[Medline]

Rexach, M. F. and Schekman, R. W (1991). Distinct biochemical requirements for budding, targeting, and fusion of ER-derived transport vesicles. J. Cell Biol 114, 219-229.[Abstract/Free Full Text]

Rothman, J. E (1994). Mechanism of intracellular protein transport. Nature 372, 55-63.[Medline]

Rothman, J. E. and Warren, G (1994). Implications of the SNARE hypothesis for intracellular membrane topology and dynamics. Curr. Biol 4, 220-233.[Medline]

Rothman, J. E. and Wieland, F. T (1996). Protein sorting by transport vesicles. Science 272, 227-234.[Abstract]

Salama, N. R., Yeung, T. and Schekman, R. W (1993). The Sec13p complex and reconstitution of vesicle budding from the ER with purified cytosolic proteins. EMBO J 12, 4073-4082.[Medline]

Scales, S. J., Pepperkok, R. and Kreis, T. E (1997). Visualization of ER-to-Golgi transport in living cells reveals a sequential mode of action for COPII and COPI. Cell 90, 1137-1148.[Medline]

Scheller, R. H (1995). Membrane trafficking in the presynaptic nerve terminal. Neuron 14, 893-897.[Medline]

Schekman, R. and Orci, L (1996). Coat proteins and vesicle budding. Science 271, 1526-1532.[Abstract]

Schwaninger, R., Beckers, C. J. M. and Balch, W. E (1991). Sequential transport of protein between the endoplasmic reticulum and succesive Golgi compartments in semi-intact cells. J. Biol. Chem 266, 13055-13063.[Abstract/Free Full Text]

Shaywitz, D. A., Orci, L., Ravazzola, M., Swaroop, A. and Kaiser, C. A (1995). Human SEC13Rp functions in yeast and is localized on transport vesicles budding from the endoplasmic reticulum. J. Cell Biol 128, 769-777.[Abstract/Free Full Text]

Simons, K. and Zerial, M (1993). Rab proteins and the road maps for intracellular transport. Neuron 11, 789-799.[Medline]

S\232gaard, M., Tani, K., Ye, R. B., Geromanos, S., Tempst, P., Kirchhausen, T., Rothman, J. E. and S\232llner, T (1994). A rab protein is required for the assembly of SNARE complexes in the docking of transport vesicles. Cell 78, 937-948.[Medline]

S\232llner, T., Whiteheart, S. W., Brunner, M., Erdjument-Bromage, H., Geromanos, S., Tempst, P. and Rothman, J. E (1993). SNAP receptors implicated in vesicle targeting and fusion. Nature 362, 318-324.[Medline]

Steel, G. J., Tagaya, M. and Woodman, P. G (1996). Association of the fusion protein NSF with clathrin-coated vesicle membrane. EMBO J 15, 745-752.[Medline]

Subramaniam, V. N., Peter, F., Philip, R., Wong, S. H. and Hong W (1996). GS28, a 28-kilodalton Golgi SNARE that participates in ER-Golgi transport. Science 272, 1161-1163.[Abstract]

Sudhof, T. C (1995). The synaptic vesicle cycle: a cascade of protein-protein interactions. Nature 375, 645-653.[Medline]

Tang, B. L., Peter, F., Krijnse-Locker, J., Low, S. H., Griffiths, G. and Hong, W (1997). The mammalian homolog of yeast Sec13p is enriched in the intermediate compartment and is essential for protein transport from the endoplasmic reticulum to the Golgi apparatus. Mol. Cell. Biol 17, 256-266.[Abstract]

Weber, T., Zemelman, B. V., McNew, J. A., Westermann, B., Gmachl, M., Parlati, F., S\232llner, T. H. and Rothman, J. E (1998). SNAREpins: minimal machinery for membrane fusion. Cell 92, 759-772.[Medline]

Whiteheart, S. W., Griff, I. C., Brunner, M., Clary, D. O, Mayer, T., Buhrow, S. A. and Rothman, J. E (1993). SNAP family of NSF attachment proteins includes a brain-specific isoform. Nature 362, 353-355.[Medline]

Wilson, D. W., Wilcox C. A., Flynn, G. C., Chen, E., Kuang, W. J., Henzel, W. J., Block, M. R., Ullrich, A. and Rothman, J. E (1989). A fusion protein required for vesicle-mediated transport in both mammalian cells and yeast. Nature 339, 355-359.[Medline]




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