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Albillos, A., Garcia, A. G., Olivera, B. and Gandia, L (1996). Re-evaluation of the P/Q Ca2+channel components of Ba2+currents in bovine chromaffin cells superfused with solutions containing low and high Ba2+concentrations. Pflugers Arch. Eur. J. Physiol 432, 1030-1038.[Medline]

Alonso, M. T., Barrero, M. J., Michelena, P., Carnicero, E., Cuchillo, I., Garcia, A. G., Garcia-Sancho, J., Montero, M. and Alvarez, J (1999). Ca2+-induced Ca2+release in chromaffin cells seen from inside the ER with targeted aequorin. J. Cell Biol 144, 241-254.[Abstract/Free Full Text]

Artalejo, C. R., Adams, M. E. and Fox, A. P (1994). Three types of Ca2+channel trigger secretion with different efficacies in chromaffin cells. Nature 367, 72-76.[Medline]

Barnett, D. W., Liu, J. and Misler, S (1996). Single-cell measurements of quantal secretion induced by alpha-latrotoxin from rat adrenal chromaffin cells: Dependence on extracellular Ca2+. Pflugers Arch. Eur J. Physiol 432, 1039-1046.[Medline]

Bennett, D. L., Bootman, M. D., Berridge, M. J. and Cheek, T. R (1998). Ca2+entry into PC12 cells initiated by ryanodine receptors or inositol 1,4,5-trisphosphate receptors. Biochem. J 329, 349-357.

Bittner, M. A. and Holz, R. W (1992). Kinetic analysis of secretion from permeabilized adrenal chromaffin cells reveals distinct components. J. Biol. Chem 267, 16219-16225.[Abstract/Free Full Text]

Bittner, M. A., Krasnoperov, V. G., Stuenkel, E. L., Petrenko, A. G. and Holz, R. W (1998). A Ca2+-independent receptor for alpha-Latrotoxin, CIRL, mediates effects on secretion via multiple mechanisms. J. Neurosci 18, 2914-2922.[Abstract/Free Full Text]

Burgoyne, R. D., Morgan, A. and Roth, D (1994). Characterization of proteins that regulate calcium-dependent exocytosis in adrenal chromaffin cells. Ann. NY Acad. Sci 710, 333-346.[Medline]

Ceccarelli, B. and Hurlbut, W. P (1980). Vesicle hypothesis of the release of quanta of acetylcholine. Physiol. Rev 60, 396-441.[Free Full Text]

Colasante, C., Meunier, F. A., Kreger, A. S. and Molgo, J (1996). Selective depletion of clear synaptic vesicles and enhanced quantal transmitter release at frog motor nerve endings produced by trachynilysin, a protein toxin isolated from stonefish (Synanceia trachynis ) venom. Eur. J. Neurosci 8, 2149-2156.[Medline]

Davletov, B. A., Shamotienko, O. G., Lelianova, V. G., Grishin, E. V. and Ushkaryov, Y. A (1996). Isolation and biochemical characterization of a Ca2+-independent alpha-latrotoxin-binding protein. J. Biol. Chem 271, 23239-23245.[Abstract/Free Full Text]

Davletov, B. A., Meunier, F. A., Ashton, A. C., Matsushita, H., Hirst, W. D., Lelianova, V. G., Wilkin, G. P., Dolly, J. O. and Ushkaryov, Y. A (1998). Vesicle exocytosis stimulated by alpha-latrotoxin is mediated by latrophilin and requires both external and stored Ca2+. EMBO J 17, 3909-3920.[Medline]

Depotter, W. P., Partoens, P. and Strecker, S (1997). Noradrenaline storing vesicles in sympathetic neurons and their putative role in neurotransmitter release: An historical overview of controversial issues. Neurochem. Res 22, 911-919.[Medline]

Fonteriz, R. I., Garcia-Sancho, J., Gandia, L., Lopez, M. G. and Garcia, A. G (1992). Permeation and inactivation by calcium and manganese ofbovine adrenal chromaffin cell calcium channels. Am. J. Physiol 263, 818-824.

Foran, P., Lawrence, G. W., Shone, C. C., Foster, K. A. and Dolly, J. O (1996). Botulinum neurotoxin C1 cleaves both syntaxin and SNAP-25 in intact and permeabilized chromaffin cells \320 correlation with its blockade of catecholamine release. Biochemistry 35, 2630-2636.[Medline]

Henkel, A. W. and Betz, W. J (1995). Monitoring of black widow spider venom (BWSV) induced exo-and endocytosis in living frog motor nerve terminals with FM1-43. Neuropharmacology 34, 1397-1406.[Medline]

Knight, D. E., von Grafenstein, H. and Athayde, C. M (1989). Calcium-dependent and calcium-independent exocytosis. Trends Neurosci 12, 451-458.[Medline]

Lang, J., Ushkaryov, Y., Grasso, A. and Wollheim, C. B (1998). Ca2+-independent insulin exocytosis induced by alpha-latrotoxin requires latrophilin, a G protein-coupled receptor. EMBO J 17, 648-657.[Medline]

Lara, B., Lopez, M. G., Villarroya, M., Gandia, L., Cleeman, L., Morad, M. and Garcia, A. G (1997). A caffeine-sensitive Ca2+store modulates K+-evoked secretion in chromaffin cells. Am. J. Physiol 272, 1211-.

Lawrence, G. W., Weller, U. and Dolly, J. O (1994). Botulinum A and the light chain of tetanus toxins inhibit distinct stages of Mg. ATP-dependent catecholamine exocytosis from permeabilised chromaffin cells. Eur. J. Biochem 222, 325-333.[Medline]

Lawrence, G. W., Foran, P. and Dolly, J. O (1996). Distinct exocytotic responses of intact and permeabilised chromaffin cells after cleavage of the 25-kDa synaptosomal-associated protein (SNAP-25) or synaptobrevin by botulinum toxin A or B. Eur. J. Biochem 236, 877-886.[Medline]

Lopez, M. G., Albillos, A., de la Fuente, M. T., Borges, R., Gandia, L., Carbone, E., Garcia, A. G. and Artalejo, A. R (1994). Localized L-type calcium channels control exocytosis in cat chromaffin cells. Pflugers Arch. Eur J. Physiol 427, 348-354.

Matteoli, M., Haimann, C., Torri-Tarelli, F., Polak, J. M., Ceccarelli, B. and De Camilli, P (1988). Differential effect of alpha-latrotoxin on exocytosis from small synaptic vesicles and from large dense-core vesicles containing calcitonin gene-related peptide at the frog neuromuscular junction. Proc. Nat. Acad. Sci. USA 85, 7366-7370.[Abstract/Free Full Text]

Ouanounou, G., Malo, M., Kreger, A. S., Prado de Carvalho, L. and Molgo, J (1999). Changes in ionic permeability induced by trachylilysin in differentiated NG108-15 neuroblastoma cells. Toxicon 37, 1234-.

Petrenko, A. G., Ullrich, B., Missler, M., Krasnoperov, V., Rosahl, T. W. and Sudhof, T. C (1996). Structure and evolution of neurexophilin. J. Neurosci 16, 4360-4369.[Abstract/Free Full Text]

Pruss, R. M. and Stauderman, K. A (1988). Voltage-regulated calcium channels involved in the regulation of enkephalin synthesis are blocked by phorbol ester treatment. J. Biol. Chem 263, 13173-13178.[Abstract/Free Full Text]

Rosenthal, L. and Meldolesi, J (1989). Alpha-latrotoxin and related toxins. Pharmacol. Ther 42, 115-134.[Medline]

Rothman, J. E (1995). Molecular mechanisms of intracellular protein-transport. FASEB J 9, 1458-.

Shone, C. C. and Tranter, H. S (1995). Growth of clostridia and preparation of their neurotoxins. Curr. Top. Microbiol. Immunol 195, 143-160.[Medline]

Taylor, C. W. and Broad, L. M (1998). Pharmacological analysis of intracellular Ca2+signaling: problems and pitfalls. Trends Pharmacol. Sci 19, 370-375.[Medline]

Ushkaryov, Y. A., Petrenko, A. G., Geppert, M. and Sudhof, T. C (1992). Neurexins \320 synaptic cell surface proteins related to the alpha-Latrotoxin receptor and laminin. Science 257, 50-56.[Abstract/Free Full Text]

Van der Kloot, W. and Molgo, J (1994). Quantal acetylcholine release at the vertebrate neuromuscular junction. Physiol. Rev 74, 899-991.[Free Full Text]




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J. Biol. Chem.Home page
G. Ouanounou, M. Malo, J. Stinnakre, A. S. Kreger, and J. Molgo
Trachynilysin, a Neurosecretory Protein Isolated from Stonefish (Synanceia trachynis) Venom, Forms Nonselective Pores in the Membrane of NG108-15 Cells
J. Biol. Chem., October 11, 2002; 277(42): 39119 - 39127.
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This Article
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