Some assembly required: constructing the elementary units of store-operated Ca2+ entry.
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[1] N. Demaurex,et al. STIM1 Knockdown Reveals That Store-operated Ca2+ Channels Located Close to Sarco/Endoplasmic Ca2+ ATPases (SERCA) Pumps Silently Refill the Endoplasmic Reticulum* , 2007, Journal of Biological Chemistry.
[2] Richard S Lewis,et al. The molecular choreography of a store-operated calcium channel , 2007, Nature.
[3] O. Mignen,et al. STIM1 regulates Ca2+ entry via arachidonate‐regulated Ca2+‐selective (ARC) channels without store depletion or translocation to the plasma membrane , 2007, The Journal of physiology.
[4] Tao Xu,et al. Aggregation of STIM1 underneath the plasma membrane induces clustering of Orai1. , 2006, Biochemical and biophysical research communications.
[5] M. Ikura,et al. Stored Ca2+ Depletion-induced Oligomerization of Stromal Interaction Molecule 1 (STIM1) via the EF-SAM Region , 2006, Journal of Biological Chemistry.
[6] M. Iino,et al. Coupling of STIM1 to store-operated Ca2+ entry through its constitutive and inducible movement in the endoplasmic reticulum , 2006, Proceedings of the National Academy of Sciences.
[7] J. Soboloff,et al. Calcium signals mediated by STIM and Orai proteins--a new paradigm in inter-organelle communication. , 2006, Biochimica et biophysica acta.
[8] J. Putney,et al. Emerging perspectives in store-operated Ca2+ entry: roles of Orai, Stim and TRP. , 2006, Biochimica et biophysica acta.
[9] J. Billingsley,et al. CRACM1 Multimers Form the Ion-Selective Pore of the CRAC Channel , 2006, Current Biology.
[10] Y. Gwack,et al. Orai1 is an essential pore subunit of the CRAC channel , 2006, Nature.
[11] Shenyuan L. Zhang,et al. Molecular identification of the CRAC channel by altered ion selectivity in a mutant of Orai , 2006, Nature.
[12] JoAnn Buchanan,et al. The elementary unit of store-operated Ca2+ entry: local activation of CRAC channels by STIM1 at ER–plasma membrane junctions , 2006, The Journal of cell biology.
[13] JoAnn Buchanan,et al. Ca2+ store depletion causes STIM1 to accumulate in ER regions closely associated with the plasma membrane , 2006, The Journal of cell biology.
[14] Joseph P. Yuan,et al. STIM1 carboxyl-terminus activates native SOC, Icrac and TRPC1 channels , 2006, Nature Cell Biology.
[15] Richard S Lewis,et al. Regulation of CRAC Channel Activity by Recruitment of Silent Channels to a High Open-probability Gating Mode , 2006, The Journal of general physiology.
[16] Rebecca R. Boyles,et al. Large Store-operated Calcium Selective Currents Due to Co-expression of Orai1 or Orai2 with the Intracellular Calcium Sensor, Stim1* , 2006, Journal of Biological Chemistry.
[17] J. Soboloff,et al. Orai1 and STIM Reconstitute Store-operated Calcium Channel Function* , 2006, Journal of Biological Chemistry.
[18] J. Soboloff,et al. STIM2 Is an Inhibitor of STIM1-Mediated Store-Operated Ca2+ Entry , 2006, Current Biology.
[19] X. Zhang,et al. Genome-wide RNAi screen of Ca(2+) influx identifies genes that regulate Ca(2+) release-activated Ca(2+) channel activity. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[20] M. Nadler,et al. Amplification of CRAC current by STIM1 and CRACM1 (Orai1) , 2006, Nature Cell Biology.
[21] J. Kinet,et al. CRACM1 Is a Plasma Membrane Protein Essential for Store-Operated Ca2+ Entry , 2006, Science.
[22] Bogdan Tanasa,et al. A mutation in Orai1 causes immune deficiency by abrogating CRAC channel function , 2006, Nature.
[23] J. Soboloff,et al. STIM1 has a plasma membrane role in the activation of store-operated Ca(2+) channels. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[24] T. Deerinck,et al. STIM1 is a Ca2+ sensor that activates CRAC channels and migrates from the Ca2+ store to the plasma membrane , 2005, Nature.
[25] S. Feske,et al. A severe defect in CRAC Ca2+ channel activation and altered K+ channel gating in T cells from immunodeficient patients , 2005, The Journal of experimental medicine.
[26] L. Lagnado,et al. Expansion of calcium microdomains regulates fast exocytosis at a ribbon synapse. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[27] Tobias Meyer,et al. STIM Is a Ca2+ Sensor Essential for Ca2+-Store-Depletion-Triggered Ca2+ Influx , 2005, Current Biology.
[28] P. Csutora,et al. CIF and other mysteries of the store-operated Ca2+-entry pathway. , 2005, Trends in biochemical sciences.
[29] F. Protasi,et al. The Assembly of Calcium Release Units in Cardiac Muscle , 2005, Annals of the New York Academy of Sciences.
[30] S. Wagner,et al. STIM1, an essential and conserved component of store-operated Ca2+ channel function , 2005, The Journal of cell biology.
[31] V. Golovina. Visualization of localized store‐operated calcium entry in mouse astrocytes. Close proximity to the endoplasmic reticulum , 2005, The Journal of physiology.
[32] A. Fomina,et al. Intracellular Ca2+ Release Triggers Translocation of Membrane Marker FM1–43 from the Extracellular Leaflet of Plasma Membrane into Endoplasmic Reticulum in T Lymphocytes* , 2005, Journal of Biological Chemistry.
[33] J. Putney,et al. Store-operated calcium channels. , 2005, Physiological reviews.
[34] T. Smani,et al. A novel mechanism for the store-operated calcium influx pathway , 2004, Nature Cell Biology.
[35] R. Burgoyne,et al. Activation of the store‐operated calcium current ICRAC can be dissociated from regulated exocytosis in rat basophilic leukaemia (RBL‐1) cells , 2003, The Journal of physiology.
[36] N. Demaurex,et al. Measurements of the free luminal ER Ca(2+) concentration with targeted "cameleon" fluorescent proteins. , 2003, Cell calcium.
[37] W. Almers,et al. Imaging Calcium Entry Sites and Ribbon Structures in Two Presynaptic Cells , 2003, The Journal of Neuroscience.
[38] Richard S Lewis,et al. Potentiation and inhibition of Ca2+ release‐activated Ca2+ channels by 2‐aminoethyldiphenyl borate (2‐APB) occurs independently of IP3 receptors , 2001, The Journal of physiology.
[39] S. Kohlwein,et al. A subfraction of the yeast endoplasmic reticulum associates with the plasma membrane and has a high capacity to synthesize lipids. , 2001, European journal of biochemistry.
[40] Anjana Rao,et al. Gene regulation mediated by calcium signals in T lymphocytes , 2001, Nature Immunology.
[41] A. Parekh,et al. An examination of the secretion‐like coupling model for the activation of the Ca2+ release‐activated Ca2+ current ICRAC in RBL‐1 cells , 2001, The Journal of physiology.
[42] Philip Smith,et al. STIM1: a novel phosphoprotein located at the cell surface. , 2000, Biochimica et biophysica acta.
[43] M. Iino,et al. Junctophilins: a novel family of junctional membrane complex proteins. , 2000, Molecular cell.
[44] K. Mikoshiba,et al. Requirement of the inositol trisphosphate receptor for activation of store-operated Ca2+ channels. , 2000, Science.
[45] R. Tsien,et al. Activation of Store-Operated Ca2+ Current in Xenopus Oocytes Requires SNAP-25 but Not a Diffusible Messenger , 1999, Cell.
[46] R. Patterson,et al. Store-Operated Ca2+ Entry Evidence for a Secretion-like Coupling Model , 1999, Cell.
[47] Kenzo Hirose,et al. Encoding of Ca2+ signals by differential expression of IP3 receptor subtypes , 1999, The EMBO journal.
[48] L. Blatter,et al. Focal agonist stimulation results in spatially restricted Ca2+ release and capacitative Ca2+ entry in bovine vascular endothelial cells , 1999, The Journal of physiology.
[49] E. Lakatta,et al. Direct measurement of SR release flux by tracking ‘Ca2+ spikes’ in rat cardiac myocytes , 1998, The Journal of physiology.
[50] D. Clapham,et al. Calcium release and influx colocalize to the endoplasmic reticulum , 1997, Current Biology.
[51] L. Blatter,et al. Capacitative calcium entry is inhibited in vascular endothelial cells by disruption of cytoskeletal microfilaments , 1997, FEBS letters.
[52] A. Tepikin,et al. Ca2+ Flow via Tunnels in Polarized Cells: Recharging of Apical Ca2+ Stores by Focal Ca2+ Entry through Basal Membrane Patch , 1997, Cell.
[53] M. Berridge,et al. Capacitative calcium entry is colocalised with calcium release in Xenopus oocytes: Evidence against a highly diffusible calcium influx factor , 1996, Pflügers Archiv.
[54] M. Berridge,et al. Capacitative calcium entry. , 1995, The Biochemical journal.
[55] J. Putney,et al. The Ca2+-mobilizing Actions of a Jurkat Cell Extract on Mammalian Cells and Xenopus laevis Oocytes (*) , 1995, The Journal of Biological Chemistry.
[56] H. Korn,et al. The calcium current activated by T cell receptor and store depletion in human lymphocytes is absent in a primary immunodeficiency. , 1994, The Journal of biological chemistry.
[57] R. Dolmetsch,et al. Signaling between intracellular Ca2+ stores and depletion-activated Ca2+ channels generates [Ca2+]i oscillations in T lymphocytes , 1994, The Journal of general physiology.
[58] J. Putney,et al. The inositol phosphate-calcium signaling system in nonexcitable cells. , 1993, Endocrine reviews.
[59] Roger Y. Tsien,et al. Emptying of intracellular Ca2+ stores releases a novel small messenger that stimulates Ca2+ influx , 1993, Nature.
[60] Walter Stühmer,et al. Depletion of InsP3 stores activates a Ca2+ and K+ current by means of a phosphatase and a diffusible messenger , 1993, Nature.
[61] R. Lewis,et al. Mitogen-regulated Ca2+ current of T lymphocytes is activated by depletion of intracellular Ca2+ stores. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[62] R. Penner,et al. Depletion of intracellular calcium stores activates a calcium current in mast cells , 1992, Nature.
[63] J. Putney. Capacitative calcium entry revisited. , 1990, Cell calcium.
[64] R. Irvine. ‘Quanta’ Ca2+ release and the control of Ca2+ entry by inositol phosphates ‐ a possible mechanism , 1990, FEBS letters.
[65] K. Beam,et al. Cardiac-type excitation-contraction coupling in dysgenic skeletal muscle injected with cardiac dihydropyridine receptor cDNA , 1990, Nature.
[66] M. Cahalan,et al. Mitogen-induced oscillations of cytosolic Ca2+ and transmembrane Ca2+ current in human leukemic T cells. , 1989, Cell regulation.
[67] G. Matthews,et al. Regulation of calcium influx by second messengers in rat mast cells , 1988, Nature.
[68] P. Negulescu,et al. Release and reloading of intracellular Ca stores after cholinergic stimulation of the parietal cell. , 1988, The American journal of physiology.
[69] G. Sachs,et al. Regulation of free cytosolic Ca2+ in the peptic and parietal cells of the rabbit gastric gland. , 1986, The Journal of biological chemistry.
[70] J. Putney,et al. A model for receptor-regulated calcium entry. , 1986, Cell calcium.
[71] D. Gardiner,et al. Membrane junctions in xenopus eggs: their distribution suggests a role in calcium regulation , 1983, The Journal of cell biology.
[72] J. Putney,et al. Nature of the receptor‐regulated calcium pool in the rat parotid gland. , 1982, The Journal of physiology.
[73] Richard S Lewis,et al. Store-operated calcium channels: properties, functions and the search for a molecular mechanism , 2004 .
[74] S. Grinstein,et al. Activation of Store-operated Calcium Channels ASSESSMENT OF THE ROLE OF SNARE-MEDIATED VESICULAR TRANSPORT* , 2003 .
[75] Richard S Lewis,et al. Calcium signaling mechanisms in T lymphocytes. , 2001, Annual review of immunology.