A model of calcium waves in pancreatic and parotid acinar cells.
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K. Tsaneva-Atanasova | J. Sneyd | S. V. Straub | D. Yule | J Sneyd | K Tsaneva-Atanasova | D I Yule | D. Giovannucci | J. Bruce | D R Giovannucci | J I E Bruce | S V Straub | Krasimira Tsaneva-Atanasova | Jason I. E. Bruce
[1] J. Sneyd,et al. Agonist-dependent Phosphorylation of the Inositol 1,4,5-Trisphosphate Receptor , 1999, The Journal of general physiology.
[2] M. Leite,et al. Ca2+ waves require sequential activation of inositol trisphosphate receptors and ryanodine receptors in pancreatic acini. , 2002, Gastroenterology.
[3] O. Petersen. Local calcium spiking in pancreatic acinar cells. , 2007, Ciba Foundation symposium.
[4] J. Keizer,et al. A single-pool inositol 1,4,5-trisphosphate-receptor-based model for agonist-stimulated oscillations in Ca2+ concentration. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[5] Michael D. Stern,et al. Local Control Models of Cardiac Excitation–Contraction Coupling , 1999, The Journal of general physiology.
[6] P. Thorn. Spatial domains of Ca2+ signaling in secretory epithelial cells. , 1996, Cell calcium.
[7] O H Petersen,et al. Ca2+ oscillations in pancreatic acinar cells: spatiotemporal relationships and functional implications. , 1993, Cell calcium.
[8] D. Friel,et al. Differential Regulation of ER Ca2+ Uptake and Release Rates Accounts for Multiple Modes of Ca2+-induced Ca2+ Release , 2002, The Journal of general physiology.
[9] M. Fallon,et al. Localization of the type 3 inositol 1,4,5-trisphosphate receptor in the Ca2+ wave trigger zone of pancreatic acinar cells. , 1994, The Journal of biological chemistry.
[10] M. Ashby,et al. Perinuclear, perigranular and sub‐plasmalemmal mitochondria have distinct functions in the regulation of cellular calcium transport , 2001, The EMBO journal.
[11] Colin W. Taylor,et al. Cooperative activation of IP3 receptors by sequential binding of IP3 and Ca2+ safeguards against spontaneous activity , 1997, Current Biology.
[12] G. Salido,et al. Role of mitochondria in Ca2+ oscillations and shape of Ca2+ signals in pancreatic acinar cells , 2002 .
[13] P. Padfield,et al. Mechanism of Ca2+ wave propagation in pancreatic acinar cells. , 1992, The Journal of biological chemistry.
[14] H. Kasai. Pancreatic calcium waves and secretion. , 1995, Ciba Foundation symposium.
[15] Localized Ca2+ uncaging reveals polarized distribution of Ca2+-sensitive Ca2+ release sites , 2002, The Journal of cell biology.
[16] S. M. Goldin,et al. Calcium as a coagonist of inositol 1,4,5-trisphosphate-induced calcium release. , 1991, Science.
[17] K. Fogarty,et al. Mechanisms underlying InsP3‐evoked global Ca2+ signals in mouse pancreatic acinar cells , 2000, The Journal of physiology.
[18] O. Petersen,et al. Active mitochondria surrounding the pancreatic acinar granule region prevent spreading of inositol trisphosphate‐evoked local cytosolic Ca2+ signals , 1999, The EMBO journal.
[19] James P. Keener,et al. Mathematical physiology , 1998 .
[20] M. Berridge,et al. Capacitative calcium entry. , 1995, The Biochemical journal.
[21] E Neher,et al. Usefulness and limitations of linear approximations to the understanding of Ca++ signals. , 1998, Cell calcium.
[22] James Sneyd,et al. A dynamic model of the type-2 inositol trisphosphate receptor , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[23] G. Shull,et al. Functional comparisons between isoforms of the sarcoplasmic or endoplasmic reticulum family of calcium pumps. , 1992, The Journal of biological chemistry.
[24] M. Pinter,et al. Time courses of calcium and calcium-bound buffers following calcium influx in a model cell. , 1993, Biophysical journal.
[25] D. Noble,et al. The slowing of Ca2+ signals by Ca2+ indicators in cardiac muscle , 1991, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[26] M. Sanderson,et al. Mechanisms of calcium oscillations and waves: a quantitative analysis , 1995, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[27] E. Stuenkel,et al. Intercellular calcium waves in rat pancreatic acini: mechanism of transmission. , 1996, The American journal of physiology.
[28] A. Lawrie,et al. Acetylcholine and cholecystokinin induce different patterns of oscillating calcium signals in pancreatic acinar cells. , 1991, Cell calcium.
[29] J. Keizer,et al. Effects of rapid buffers on Ca2+ diffusion and Ca2+ oscillations. , 1994, Biophysical journal.
[30] J. Schrenzel,et al. Highly Supralinear Feedback Inhibition of Ca2+ Uptake by the Ca2+ Load of Intracellular Stores* , 1996, The Journal of Biological Chemistry.
[31] James Sneyd,et al. Cytosolic Ca2+ and Ca2+‐activated Cl− current dynamics: insights from two functionally distinct mouse exocrine cells , 2002, The Journal of physiology.
[32] A Goldbeter,et al. One-pool model for Ca2+ oscillations involving Ca2+ and inositol 1,4,5-trisphosphate as co-agonists for Ca2+ release. , 1993, Cell calcium.
[33] H G Othmer,et al. Simplification and analysis of models of calcium dynamics based on IP3-sensitive calcium channel kinetics. , 1996, Biophysical journal.
[34] S. Muallem,et al. Spacial Compartmentalization of Ca2+ Signaling Complexes in Pancreatic Acini* , 1996, The Journal of Biological Chemistry.
[35] J. Keizer,et al. Validity of the rapid buffering approximation near a point source of calcium ions. , 1996, Biophysical journal.
[36] T. Shuttleworth. What drives calcium entry during [Ca2+]i oscillations?--challenging the capacitative model. , 1999, Cell calcium.
[37] P. Camello,et al. Calcium dependence of calcium extrusion and calcium uptake in mouse pancreatic acinar cells. , 1996, The Journal of physiology.
[38] J. Keizer,et al. Ryanodine receptor adaptation and Ca2+(-)induced Ca2+ release-dependent Ca2+ oscillations. , 1996, Biophysical journal.
[39] E. Neher,et al. Calcium gradients and buffers in bovine chromaffin cells. , 1992, The Journal of physiology.
[40] A. González,et al. Agonist-evoked Mitochondrial Ca2+ Signals in Mouse Pancreatic Acinar Cells* , 2000, The Journal of Biological Chemistry.
[41] S. V. Straub,et al. Calcium wave propagation in pancreatic acinar cells: functional interaction of inositol 1,4,5-trisphosphate receptors, ryanodine receptors, and mitochondria. , 2000 .
[42] James C. Schaff,et al. Numerical Approach to Fast Reactions in Reaction-Diffusion Systems , 2000 .
[43] Y. Miyashita,et al. Subcellular distribution of Ca2+ release channels underlying Ca2+ waves and oscillations in exocrine pancreas , 1993, Cell.
[44] R. Wojcikiewicz,et al. Type I, II, and III inositol 1,4,5-trisphosphate receptors are unequally susceptible to down-regulation and are expressed in markedly different proportions in different cell types , 1995, The Journal of Biological Chemistry.
[45] P P Mitra,et al. Analytical calculation of intracellular calcium wave characteristics. , 1997, Biophysical journal.
[46] J. Dufour,et al. Inositol 1,4,5-Trisphosphate and Calcium Regulate the Calcium Channel Function of the Hepatic Inositol 1,4,5-Trisphosphate Receptor* , 1997, The Journal of Biological Chemistry.
[47] S. Györke,et al. Ryanodine receptor adaptation: control mechanism of Ca(2+)-induced Ca2+ release in heart. , 1993, Science.
[48] J. Keizer,et al. On the roles of Ca2+ diffusion, Ca2+ buffers, and the endoplasmic reticulum in IP3-induced Ca2+ waves. , 1995, Biophysical journal.
[49] J. Dranoff,et al. Expression and subcellular localization of the ryanodine receptor in rat pancreatic acinar cells. , 1999, The Biochemical journal.
[50] O. Petersen,et al. Local and global cytosolic Ca2+ oscillations in exocrine cells evoked by agonists and inositol trisphosphate , 1993, Cell.
[51] Min Goo Lee,et al. Polarized Expression of Ca2+ Channels in Pancreatic and Salivary Gland Cells , 1997, The Journal of Biological Chemistry.
[52] A. Tepikin,et al. Role of mitochondria in Ca2+ homeostasis of mouse pancreatic acinar cells , 2002 .
[53] F. Sala,et al. Calcium diffusion modeling in a spherical neuron. Relevance of buffering properties. , 1990, Biophysical journal.
[54] A. Tepikin,et al. Termination of cytosolic Ca2+ signals: Ca2+ reuptake into intracellular stores is regulated by the free Ca2+ concentration in the store lumen , 1998, The EMBO journal.
[55] A. Lawrie,et al. Two different spatiotemporal patterns for Ca2+ oscillations in pancreatic acinar cells: evidence of a role for protein kinase C in Ins(1,4,5)P3-mediated Ca2+ signalling. , 1993, Cell calcium.
[56] S. Muallem,et al. Activation of the plasma membrane Ca2+ pump during agonist stimulation of pancreatic acini. , 1992, The Journal of biological chemistry.
[57] D. Burdakov,et al. Polarity in intracellular calcium signaling. , 1999, BioEssays : news and reviews in molecular, cellular and developmental biology.
[58] R. Wojcikiewicz,et al. Evidence That Zymogen Granules Are Not a Physiologically Relevant Calcium Pool , 1997, The Journal of Biological Chemistry.
[59] Philip K. Maini,et al. Experimental and Theoretical Advances in Biological Pattern Formation , 1993, NATO ASI Series.
[60] James Sneyd,et al. Traveling Waves in Buffered Systems: Applications to Calcium Waves , 1998, SIAM J. Appl. Math..