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 Chamberlain, L. H.
Right arrow Articles by Gould, G. W.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Chamberlain, L. H.
Right arrow Articles by Gould, G. W.
Benfenati, F., Onorfi, F. and Giovedi, S (1999). Protein-protein interactions and protein modules in the control of neurotransmitter release. Phil. Trans. R. Soc. Lond. B 354, 243-257.[Medline]

Bezprozvanny, I., Scheller, R. H. and Tsien, R. W (1995). Functional impact of syntaxin on gating of N-type and Q-type calcium channels. Nature 378, 623-626.[Medline]

Brown, H., Larsson, O., Branstrom, R., Yang, S.-N., Leibiger, B., Leibiger, I., Fried, G., Moede, T., Deeney, J. T., Brown, G. R., Jacobsson, G., Rhodes, C. J., Braun, J. E. A., Scheller, R. H., Corkey, B. E., Berggren, P.-O. and Meister, B (1998). Cysteine string protein (CSP) is an insulin secretory granule-associated protein regulating-cell exocytosis. EMBO. J 17, 5048-5058.[Medline]

Braun, J. E. A. and Scheller, R. H (1995). Cysteine string protein, a DnaJ family member, is present on diverse secretory vesicles. Neuropharmacology 34, 1361-1369.[Medline]

Braun, J. E. A., Wilbanks, S. M. and Scheller, R. H (1996). The cysteine string secretory vesicle protein activates Hsc70 ATPase. J. Biol. Chem 271, 25989-25993.[Abstract/Free Full Text]

Burgoyne, R. D. and Morgan, A (1995). Ca2+and secretory vesicle dynamics. Trends in Neurosci 18, 191-196.[Medline]

Chamberlain, L. H. and Burgoyne, R. D (1996). Identification of a novel cysteine string protein variant and expression of cysteine string proteins in non-neuronal cells. J. Biol. Chem 271, 7320-7323.[Abstract/Free Full Text]

Chamberlain, L. H. and Burgoyne, R. D (1997). Activation of the ATPase activity of heat-shock proteins Hsc70/Hsp70 by cysteine-string protein. Biochem. J 322, 853-858.

Chamberlain, L. H. and Burgoyne, R. D (1997). The molecular chaperone function of the secretory vesicle cysteine string proteins. J. Biol. Chem 272, 31420-31426.[Abstract/Free Full Text]

Chamberlain, L. H. and Burgoyne, R. D (1998). Cysteine string protein functions directly in regulated exocytosis. Mol. Biol. Cell 9, 2259-2267.[Abstract/Free Full Text]

Chamberlain, L. H. and Burgoyne, R. D (1998). The cysteine-string domain of the secretory vesicle cysteine-string protein is required for membrane targeting. Biochem. J 335, 205-209.

Chamberlain, L. H. and Burgoyne, R. D (2000). Cysteine-string protein: the chaperone at the synapse. J. Neurochem 74, 1781-1789.[Medline]

Chamberlain, L. H., Henry, J. and Burgoyne, R. D (1996). Cysteine string proteins are associated with chromaffin granules. J. Biol. Chem 271, 19514-19517.[Abstract/Free Full Text]

Chamberlain, L. H., Roth, D., Morgan, A. and Burgoyne, R. D (1995). Distinct effects of-SNAP, 14-3-3 proteins, and calmodulin on priming and triggering of regulated exocytosis. J. Cell Biol 130, 1063-1071.[Abstract/Free Full Text]

Cheatham, B., Volchuk, A., Kahn, C. R., Wang, L., Rhodes, C. J. and Klip, A (1996). Insulin-stimulated translocation of GLUT4 glucose transporters requires SNARE-complex proteins. Proc. Natl. Acad. Sci. USA 93, 15169-15173.[Abstract/Free Full Text]

Coppola, T. and Gundersen, C. B (1996). Widespread expression of human cysteine string proteins. FEBS Lett 391, 269-272.[Medline]

Dawson-Scully, K., Bronk, P., Atwood, H. L. and Zinsmaier, K. E (2000). Cysteine-string protein increases the calcium sensitivity of neurotransmitter exocytosis in Drosophila. J. Neurosci 20, 6039-6047.[Abstract/Free Full Text]

Frost, S. C. and Lane, M. D (1988). Evidence for the involvement of vicinal sulphydryl groups in insulin-activated hexose transport in 3T3-L1 adipocytes. J. Biol. Chem 260, 2646-2652.[Abstract/Free Full Text]

Gonzalo, S. and Linder, M. E (1998). SNAP-25 palmitoylation and plasma membrane targeting require a functional secretory pathway. Mol. Biol. Cell 9, 585-597.[Abstract/Free Full Text]

Gould, G. W., Lienhard, G. E., Tanner, L. I. and Gibbs, E. M (1989). Phenylarsine oxide stimulates hexose transport in 3T3-L1 adipocytes by amechanism other than an increase in surface transporters. Arch. Biochem. Biophys 268, 264-275.[Medline]

Graham, M. E. and Burgoyne, R. D (2000). Comparison of cysteine string protein (Csp) and mutant-SNAP overexpression reveals a role for Csp in late steps of membrane fusion in dense-core granule exocytosis in adrenal chromaffin cells. J. Neurosci 20, 1281-1289.[Abstract/Free Full Text]

Gundersen, C. B., Mastrogiacomo, A., Faull, K. and Umbach, J. A (1994). Extensive lipidation of a Torpedo cysteine string protein. J. Biol. Chem 269, 19197-19199.[Abstract/Free Full Text]

Gundersen, C. B. and Umbach, J. A (1992). Suppression cloning of the cDNA for a candidate subunit of a presynaptic calcium channel. Neuron 9, 527-537.[Medline]

Hashiramoto, M. and James, D. E (2000). Characterization of insulin-responsive Glut4 storage vesicles isolated from 3T3-L1 adipocytes. Mol. Cell Biol 20, 416-427.[Abstract/Free Full Text]

Kelley, W. L (1998). The J-domain family and the recruitment of chaperone power. Trends Biochem. Sci 23, 222-227.[Medline]

Kwon, O.-J., Kim, C., Kim, H. and Chin, H (1996). Differential expression of the alternatively spliced variants of the rat cysteine string protein. Mol. Biol. Cell 7, 2599-.

Langer, T., Lu, C., Echols, H., Flanagan, J., Hayer, M. K. and Hartl, F.-U (1992). Successive action of DnaK, DnaJ and GroEL along the pathway of chaperone-mediated protein folding. Nature 356, 683-689.[Medline]

Leveque, C., El Far, O., Martin-Moutot, N., Sato, K., Kato, R., Takahashi, M. and Seagar, M. J (1994). Purification of the N-type calcium channel associated with syntaxin and synaptotagmin. J. Biol. Chem 269, 6306-6312.[Abstract/Free Full Text]

Leveque, C., Pupier, S., Marqueze, B., Geslin, L., Kataoka, M., Takahashi, M., De Waard, M. and Seagar, M (1998). Interaction of cysteine string proteins with the1Asubunit of the P/Q-type calcium channel. J. Biol. Chem 273, 13488-13492.[Abstract/Free Full Text]

Macaulay, S. L., Hewish, D. R., Gough, K. H., Stoichevska, V., MacPherson, S. F., Jagadish, M. and Ward, C. W (1997). Functional studies in 3T3L1 cells support a role for SNARE proteins in insulin stimulation of GLUT4 translocation. Biochem. J 324, 217-224.

Martin, L. B., Shewan, A., Millar, C. A., Gould, G. W. and James, D. E (1998). Vesicle-associated membrane protein 2 plays a specific role in the insulin-dependent trafficking of the facilitative glucose transporter GLUT4 in 3T3-L1 adipocytes. J. Biol. Chem 273, 1444-1452.[Abstract/Free Full Text]

Martin, S., Tellam, J., Livingstone, C., Slot, J. W., Gould, G. W. and James, D. E (1996). The glucose transporter (GLUT-4) and vesicle-associated membrane protein-2 (VAMP-2) are segregated from recycling endosomes in insulin-sensitive cells. J. Cell Biol 134, 625-635.[Abstract/Free Full Text]

Martin-Moutot, N., Charvin, N., Leveque, C., Sato, K., Nishiki, T., Kozaki, S., Takahashi, M. and Seagar, M. J (1996). Interaction of SNARE complexes with P/Q-type calcium channels in rat cerebellar synaptosomes. J. Biol. Chem 271, 6567-6570.[Abstract/Free Full Text]

Mastrogiacomo, A., Evans, C. J. and Gundersen, C. B (1994). Antipeptide antibodies against a Torpedo cysteine-string protein. J. Neurochem 62, 873-880.[Medline]

Mastrogiacomo, A., Kohan, S. A., Whitelegge, J. P. and Gundersen, C. B (1998). Intrinsic membrane association of Drosophila cysteine string proteins. FEBS Lett 436, 85-91.[Medline]

Mastrogiacomo, A., Parsons, S. M., Zampighi, G. A., Jenden, D. J., Umbach, J. A. and Gundersen, C. B (1994). Cysteine string proteins: A potential link between synaptic vesicles and presynaptic Ca2+channels. Science 263, 981-982.[Abstract/Free Full Text]

Min, J., Okada, S., Kanzaki, M., Elmendorf, J. S., Coker, K. J., Ceresa, B. P., Syu, L.-J., Noda, Y., Saltiel, A. R. and Pessin, J. E (1999). Synip: A novel insulin-regulated syntaxin-4 binding protein mediating GLUT4 translocation in adipocytes. Mol. Cell 3, 751-760.

Minami, Y., Hohfeld, J., Ohtsuka, K. and Hartl, F.-U (1996). Regulation of the heat-shock protein 70 reaction cycle by the mammalian DnaJ homologue, Hsp40. J. Biol. Chem 271, 19617-19624.[Abstract/Free Full Text]

Morales, M., Ferrus, A. and Martinez-Pardon, M (1999). Presynaptic calcium channel currents in normal and csp mutant Drosophila peptidergic terminals. Eur. J. Neurosci 11, 1818-1826.[Medline]

Nie, Z., Ranjan, R., Wenniger, J. J., Hong, S. N., Bronk, P. and Zinsmaier, K. E (1999). Overexpression of cysteine-string proteins in Drosophila reveals interactions with syntaxin. J. Neurosci 19, 10270-10279.[Abstract/Free Full Text]

Olson, A. L., Knight, J. B. and Pessin, J. E (1997). Syntaxin 4, VAMP2, and/or VAMP3/Cellubrevin are functional target membrane and vesicleSNAP receptors for insulin-stimulated GLUT4 translocation in adipocytes. Mol. Cell Biol 17, 2425-2435.[Abstract]

Piper, R. C., Hess, L. J. and James, D. E (1991). Differential sorting of two glucose transporters expressed in insulin-sensitive cells. Am. J. Physiol 260, 570-.

Pupier, S., Leveque, C., Marqueze, B., Kataoka, M., Takahashi, M. and Seagar, M. J (1997). Cysteine string proteins are associated with secretory granules of the rat neurohypophysis. J. Neurosci 17, 2722-2727.[Abstract/Free Full Text]

Rea, S., Martin, L. B., McIntosh, S., Macaulay, S. L., Ramsdale, T., Baldini, G. and James, D. E (1998). Syndet, an adipocyte target SNARE involved in the insulin-induced translocation of GLUT4 to the cell surface. J. Biol. Chem 273, 18784-18792.[Abstract/Free Full Text]

Satoh, S., Nishimura, H., Clark, A. E., Kozka, I. J., Quon, M. J., Cushman, S. W. and Holman, G. D (1993). Use of the bismannose photolabel to elucidate insulin regulated GLUT4 subcellular trafficking in rat adipose cells: Evidence that exocytosis is a critical site of hormone action. J. Biol. Chem 268, 17820-17829.[Abstract/Free Full Text]

Sheng, Z.-H., Rettig, J., Takahashi, M. and Catterall, W. A (1994). Identification of a syntaxin-binding site on N-type calcium channels. Neuron 13, 1303-1313.[Medline]

Sollner, 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, 318-323.[Medline]

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

Tellam, J. T., Macaulay, S. L., McIntosh, S., Hewish, D. R., Ward, C. W. and James, D. E (1997). Characterisation of Munc-18c and Syntaxin-4 in 3T3-L1 adipocytes. J. Biol. Chem 272, 6179-6186.[Abstract/Free Full Text]

Thurmond, D. C., Ceresa, B. P., Okada, S., Elmendorf, J. S., Coker, K. and Pessin, J. E (1998). Regulation of insulin-stimulated GLUT4 translocation by Munc18c in 3T3L1 adipocytes. J. Biol. Chem 273, 33876-33883.[Abstract/Free Full Text]

Umbach, J. A., Saitoe, M., Kidokoro, Y. and Gundersen, C. B (1998). Attenuated influx of calcium ions at nerve endings of csp and shibire mutant Drosophila. J. Neurosci 18, 3521-3529.[Abstract/Free Full Text]

Umbach, J. A., Zinsmaier, K. E., Eberle, K. K., Buchner, E., Benzer, S. and Gundersen, C. B (1994). Presynaptic dysfunction in Drosophila csp mutants. Neuron 13, 899-907.[Medline]

Van de Goor, J. and Kelly, R. B (1996). Association of Drosophila cysteine string proteins with membranes. FEBS Lett 380, 251-256.[Medline]

Van de Goor, J., Ramaswami, M. and Kelly, R. B (1995). Redistribution of synaptic vesicles and their proteins in temperature-sensitive shibirets1 mutant Drosophila. Proc. Natl. Acad. Sci. USA 92, 5739-5743.[Abstract/Free Full Text]

Vogel, K., Cabaniols, J.-P. and Roche, P. A (2000). Targeting of SNAP-25 to membranes is mediated by its association with the target SNARE syntaxin. J. Biol. Chem 275, 2959-2965.[Abstract/Free Full Text]

Volchuk, A., Sargeant, R., Sumitani, S., Liu, Z., He, L. and Klip, A (1996). Cellubrevin is a resident protein of insulin-sensitive GLUT4 glucose transporter vesicles in 3T3-L1 adipocytes. J. Biol. Chem 270, 8233-8240.[Abstract/Free Full Text]

Volchuk, A., Wang, Q., Ewart, H. S., Liu, Z., He, L., Bennett, M. K. and Klip, A (1995). Syntaxin 4 in 3T3-L1 adipocytes: regulation by insulin and participation in insulin-dependent glucose transport. Mol. Biol. Cell 7, 1075-1082.[Abstract]

Wiser, O., Bennett, M. K. and Atlas, D (1996). Functional interaction of syntaxin and SNAP-25 with voltage-sensitive L-and N-type Ca2+channels. EMBO J 15, 4100-4110.[Medline]

Wu, M. N., Fergestad, T., Lloyd, T. E., He, Y., Broadie, K. and Bellen, H. J (1999). Syntaxin 1A interacts with multiple exocytotic proteins to regulate neurotransmitter release in vivo. Neuron 23, 593-605.[Medline]

Xu, T., Ashery, U., Burgoyne, R. D. and Neher, E (1999). Early requirement for-SNAP and NSF in the secretory cascade in chromaffin cells. EMBO J 18, 3293-3304.[Medline]

Yang, J., Clark, A. E., Harrison, R., Kozka, I. J. and Holman, G. D (1992). Trafficking of glucose transporters in 3T3-L1 cells. Biochem. J 281, 809-814.

Zhang, H., Kelley, W. L., Chamberlain, L. H., Burgoyne, R. D., Wollheim, C. B. and Lang, J (1998). Cysteine-string proteins regulate exocytosis of insulin independent from transmembrane ion fluxes. FEBS Lett 437, 267-272.[Medline]

Zhang, H., Kelley, W. L., Chamberlain, L. H., Burgoyne, R. D., Wollheim, C. B. and Lang, J (1999). Mutational analysis of cysteine-string protein function in insulin exocytosis. J. Cell Sci 112, 1345-1351.[Abstract]

Zinsmaier, K. E., Eberle, K. K., Buchner, E., Walter, N. and Benzer, S (1994). Paralysis and early death in cysteine string protein mutants in Drosophila. Science 263, 977-980.[Abstract/Free Full Text]




This article has been cited by other articles:


Home page
J. Biol. Chem.Home page
J. Greaves, C. Salaun, Y. Fukata, M. Fukata, and L. H. Chamberlain
Palmitoylation and Membrane Interactions of the Neuroprotective Chaperone Cysteine-string Protein
J. Biol. Chem., September 5, 2008; 283(36): 25014 - 25026.
[Abstract] [Full Text] [PDF]


Home page
Mol. Biol. CellHome page
J. Greaves and L. H. Chamberlain
Dual Role of the Cysteine-String Domain in Membrane Binding and Palmitoylation-dependent Sorting of the Molecular Chaperone Cysteine-String Protein
Mol. Biol. Cell, November 1, 2006; 17(11): 4748 - 4759.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
G. J. O. Evans, J. W. Barclay, G. R. Prescott, S.-R. Jo, R. D. Burgoyne, M. J. Birnbaum, and A. Morgan
Protein Kinase B/Akt Is a Novel Cysteine String Protein Kinase That Regulates Exocytosis Release Kinetics and Quantal Size
J. Biol. Chem., January 20, 2006; 281(3): 1564 - 1572.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
C. Salaun, G. W. Gould, and L. H. Chamberlain
The SNARE Proteins SNAP-25 and SNAP-23 Display Different Affinities for Lipid Rafts in PC12 Cells: REGULATION BY DISTINCT CYSTEINE-RICH DOMAINS
J. Biol. Chem., January 14, 2005; 280(2): 1236 - 1240.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
L. H. Chamberlain and G. W. Gould
The Vesicle- and Target-SNARE Proteins That Mediate Glut4 Vesicle Fusion Are Localized in Detergent-insoluble Lipid Rafts Present on Distinct Intracellular Membranes
J. Biol. Chem., December 13, 2002; 277(51): 49750 - 49754.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
G. J. O. Evans, M. C. Wilkinson, M. E. Graham, K. M. Turner, L. H. Chamberlain, R. D. Burgoyne, and A. Morgan
Phosphorylation of Cysteine String Protein by Protein Kinase A. IMPLICATIONS FOR THE MODULATION OF EXOCYTOSIS
J. Biol. Chem., December 14, 2001; 276(51): 47877 - 47885.
[Abstract] [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 Chamberlain, L. H.
Right arrow Articles by Gould, G. W.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Chamberlain, L. H.
Right arrow Articles by Gould, G. W.