Surface dynamics in living acinar cells imaged by atomic force microscopy: identification of plasma membrane structures involved in exocytosis.
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B. Jena | J. Geibel | H. Oberleithner | S. Schneider | K. Sritharan | S W Schneider | K C Sritharan | J P Geibel | H Oberleithner | B P Jena
[1] Thomas C. Südhof,et al. The synaptic vesicle cycle: a cascade of proteinprotein interactions , 1995, Nature.
[2] W. Almers,et al. Currents through the fusion pore that forms during exocytosis of a secretory vesicle , 1987, Nature.
[3] S. Schmid,et al. Coated vesicles: a diversity of form and function , 1995, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[4] R. Bolender. STEREOLOGICAL ANALYSIS OF THE GUINEA PIG PANCREAS , 1974, The Journal of cell biology.
[5] J. M. Fernández,et al. Release of secretory products during transient vesicle fusion , 1993, Nature.
[6] A. Amsterdam,et al. Studies on Dispersed Pancreatic Exocrine Cells I. Dissociation Technique and Morphologic Characteristics of Separated Cells , 1974 .
[7] W. Almers,et al. Structure and function of fusion pores in exocytosis and ectoplasmic membrane fusion. , 1995, Current opinion in cell biology.
[8] A. Cleves,et al. SAC1p is an integral membrane protein that influences the cellular requirement for phospholipid transfer protein function and inositol in yeast , 1993, The Journal of cell biology.
[9] E. Neher,et al. Capacitance measurements reveal stepwise fusion events in degranulating mast cells , 1984, Nature.
[10] J. Rothman,et al. Mechanisms of intracellular protein transport , 1994, Nature.
[11] W. Almers,et al. Transmitter release from synapses: Does a preassembled fusion pore initiate exocytosis? , 1990, Neuron.
[12] D. Aunis,et al. Exocytosis in chromaffin cells. Possible involvement of the heterotrimeric GTP-binding protein G(o). , 1993, The Journal of biological chemistry.
[13] B. Wolf,et al. The Heterotrimeric G-protein Gi Is Localized to the Insulin Secretory Granules of β-Cells and Is Involved in Insulin Exocytosis (*) , 1995, The Journal of Biological Chemistry.
[14] Dieter G. Weiss,et al. Actin-dependent organelle movement in squid axoplasm , 1992, Nature.
[15] J. R. Monck,et al. The exocytotic fusion pore interface: a model of the site of neurotransmitter release. , 1995, Molecular membrane biology.
[16] J. Hoh,et al. Slow cellular dynamics in MDCK and R5 cells monitored by time-lapse atomic force microscopy. , 1994, Biophysical journal.
[17] M. Radmacher,et al. Granula motion and membrane spreading during activation of human platelets imaged by atomic force microscopy. , 1994, Biophysical journal.
[18] H. Hansma,et al. Biomolecular imaging with the atomic force microscope. , 1994, Annual review of biophysics and biomolecular structure.
[19] C. Stock,et al. Microfilamentous system and secretion of enzyme in the exocrine pancreas. Effect of cytochalasin B , 1975, The Journal of cell biology.
[20] M. Grattarola,et al. Scanning force microscopy on live cultured cells: Imaging and force‐versus‐distance investigations , 1994, Journal of microscopy.
[21] J. Heuser,et al. Arrest of membrane fusion events in mast cells by quick-freezing , 1980, The Journal of cell biology.
[22] S. Muallem,et al. Actin filament disassembly is a sufficient final trigger for exocytosis in nonexcitable cells , 1995, The Journal of cell biology.
[23] B. Jena,et al. Redistribution of a rab3-like GTP-binding protein from secretory granules to the Golgi complex in pancreatic acinar cells during regulated exocytosis , 1994, The Journal of cell biology.
[24] J. Zimmerberg,et al. Simultaneous electrical and optical measurements show that membrane fusion precedes secretory granule swelling during exocytosis of beige mouse mast cells. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[25] T. Reese,et al. Structural changes after transmitter release at the frog neuromuscular junction , 1981, The Journal of cell biology.
[26] V. Parpura,et al. Three-dimensional imaging of living neurons and glia with the atomic force microscope. , 1993, Journal of cell science.
[27] P. Haydon,et al. Actin filament dynamics in living glial cells imaged by atomic force microscopy. , 1992, Science.
[28] D. Burgess,et al. Golgi-derived vesicles from developing epithelial cells bind actin filaments and possess myosin-I as a cytoplasmically oriented peripheral membrane protein , 1993, The Journal of cell biology.
[29] P. Bernfeld,et al. [17] Amylases, α and β , 1955 .
[30] T. Stossel,et al. Gelsolin inhibition of fast axonal transport indicates a requirement for actin microfilaments , 1984, Nature.
[31] B. Jena,et al. Protein tyrosine phosphatase stimulates Ca(2+)-dependent amylase secretion from pancreatic acini. , 1991, The Journal of biological chemistry.
[32] Robert H. Chow,et al. Delay in vesicle fusion revealed by electrochemical monitoring of single secretory events in adrenal chromaffin cells , 1992, Nature.
[33] W. Almers,et al. Final steps in exocytosis observed in a cell with giant secretory granules. , 1987, Proceedings of the National Academy of Sciences of the United States of America.