Membrane Transport and Ca2+ Oscillations in Guard Cells
暂无分享,去创建一个
Sergei G. Sokolovski | Michael R. Blatt | M. Blatt | C. García-Mata | S. Sokolovski | Carlos García-Mata
[1] A. Hetherington,et al. Drought-induced guard cell signal transduction involves sphingosine-1-phosphate , 2001, Nature.
[2] Mads Kaern,et al. The engineering of gene regulatory networks. , 2003, Annual review of biomedical engineering.
[3] M. Blatt. Ion channel gating in plants: Physiological implications and integration for stomatal function , 1991, The Journal of Membrane Biology.
[4] M. Ehrenberg,et al. Noise in a minimal regulatory network: plasmid copy number control , 2001, Quarterly Reviews of Biophysics.
[5] M. Blatt,et al. Electrocoupling of ion transporters in plants , 1993, The Journal of Membrane Biology.
[6] A. Hills,et al. Extracellular Ba2+ and voltage interact to gate Ca2+ channels at the plasma membrane of stomatal guard cells , 2001, FEBS letters.
[7] A. Hills,et al. Ca2+ channels at the plasma membrane of stomatal guard cells are activated by hyperpolarization and abscisic acid. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[8] C. García-Mata,et al. Nitric oxide induces stomatal closure and enhances the adaptive plant responses against drought stress. , 2001, Plant physiology.
[9] Rainer Hedrich,et al. Characterization of the plasma-membrane H+-ATPase from Vicia faba guard cells , 1992, Planta.
[10] J. Ward,et al. Calcium-Activated K+ Channels and Calcium-Induced Calcium Release by Slow Vacuolar Ion Channels in Guard Cell Vacuoles Implicated in the Control of Stomatal Closure. , 1994, The Plant cell.
[11] M. Blatt,et al. High-Affinity NO−3-H+ Cotransport in the Fungus Neurospora: Induction and Control by pH and Membrane Voltage , 1997, The Journal of Membrane Biology.
[12] M. Iino,et al. Outward-Rectifying K+ Channels in Stomatal Guard Cell Protoplasts , 1988 .
[13] J. Davies,et al. Hyperpolarization-activated calcium channels at the tip of Arabidopsis root hairs. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[14] S. Thomine,et al. ATP-Dependent Regulation of an Anion Channel at the Plasma Membrane of Protoplasts from Epidermal Cells of Arabidopsis Hypocotyls. , 1995, The Plant cell.
[15] S. Assmann. OPEN STOMATA1 opens the door to ABA signaling in Arabidopsis guard cells. , 2003, Trends in plant science.
[16] H. Shi,et al. The Arabidopsis thaliana salt tolerance gene SOS1 encodes a putative Na+/H+ antiporter. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[17] R Y Tsien,et al. Calcium channels, stores, and oscillations. , 1990, Annual review of cell biology.
[18] J. Stamler,et al. Physiology of nitric oxide in skeletal muscle. , 2001, Physiological reviews.
[19] R. Hedrich,et al. Protons and calcium modulate SV-type channels in the vacuolar-lysosomal compartment — channel interaction with calmodulin inhibitors , 1995, Planta.
[20] T. Kinoshita,et al. Involvement of intracellular Ca2+ in blue light-dependent proton pumping in guard cell protoplasts from Vicia faba , 1999 .
[21] A. Roller,et al. TPK1 Is a Vacuolar Ion Channel Different from the Slow-Vacuolar Cation Channel1 , 2005, Plant Physiology.
[22] Zhenbiao Yang,et al. Analysis of the Small GTPase Gene Superfamily of Arabidopsis1 , 2003, Plant Physiology.
[23] C. Brearley,et al. Metabolism of 3‐ and 4‐phosphorylated phosphatidylinositols in stomatal guard cells of Commelina communis L. , 1995 .
[24] A. Hetherington,et al. Abscisic acid induces oscillations in guard-cell cytosolic free calcium that involve phosphoinositide-specific phospholipase C. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[25] J. Schroeder,et al. Two plasma membrane H(+)-ATPase genes expressed in guard cells of Vicia faba are also expressed throughout the plant. , 1996, Plant & cell physiology.
[26] Roger Y. Tsien,et al. A genetically encoded fluorescent reporter reveals oscillatory phosphorylation by protein kinase C , 2003, The Journal of cell biology.
[27] C. García-Mata,et al. Nitric oxide: the versatility of an extensive signal molecule. , 2003, Annual review of plant biology.
[28] C. García-Mata,et al. Nitric Oxide and Abscisic Acid Cross Talk in Guard Cells1 , 2002, Plant Physiology.
[29] Ulrich Zimmermann,et al. Membrane Transport in Plants , 1974, Springer Berlin Heidelberg.
[30] D. Ehrhardt,et al. Pharmacological Analysis of Nod Factor-Induced Calcium Spiking inMedicago truncatula. Evidence for the Requirement of Type IIA Calcium Pumps and Phosphoinositide Signaling1 , 2002, Plant Physiology.
[31] Michael R. Blatt,et al. Mechanisms of fusicoccin action: kinetic modification and inactivation of K+ channels in guard cells , 1989, Planta.
[32] M. Berridge. Neuronal Calcium Signaling , 1998, Neuron.
[33] A. Hetherington,et al. Abscisic acid-induced elevation of guard cell cytosolic Ca2+ precedes stomatal closure , 1990, Nature.
[34] W. J. Lucas,et al. Ultrastructural and histochemical studies on guard cells , 1984, Planta.
[35] M. Blatt. Cellular signaling and volume control in stomatal movements in plants. , 2000, Annual review of cell and developmental biology.
[36] R. Hedrich,et al. Ca2+ and nucleotide dependent regulation of voltage dependent anion channels in the plasma membrane of guard cells. , 1990 .
[37] X. Q. Wang,et al. Regulation of abscisic acid-induced stomatal closure and anion channels by guard cell AAPK kinase. , 2000, Science.
[38] M. Blatt,et al. K+ channels of stomatal guard cells: bimodal control of the K+ inward-rectifier evoked by auxin. , 1994, The Plant journal : for cell and molecular biology.
[39] M. Blatt,et al. Membrane voltage initiates Ca2+ waves and potentiates Ca2+ increases with abscisic acid in stomatal guard cells. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[40] R. Serrano,et al. Immunocytolocalization of plasma-membrane H+-ATPase in maize coleoptiles and enclosed leaves , 1991, Planta.
[41] T. Oku,et al. Properties of Proton Pumping in Response to Blue Light and Fusicoccin in Guard Cell Protoplasts Isolated from Adaxial Epidermis of Vicia Leaves , 1995, Plant physiology.
[42] Zhenbiao Yang. Small GTPases: versatile signaling switches in plants. , 2002, The Plant cell.
[43] M. Blatt,et al. K+-Sensitive Gating of the K+ Outward Rectifier in Vicia Guard Cells , 1997, The Journal of Membrane Biology.
[44] A. Hetherington,et al. Abscisic acid-induced stomatal closure mediated by cyclic ADP-ribose. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[45] Z. Pei,et al. NADPH oxidase AtrbohD and AtrbohF genes function in ROS‐dependent ABA signaling in Arabidopsis , 2003, The EMBO journal.
[46] S. Assmann,et al. A Membrane-delimited Effect of Internal pH on the K+ Outward Rectifier of Vicia Faba Guard Cells , 1996, The Journal of Membrane Biology.
[47] E. Macrobbie,et al. Sodium efflux from perfused giant algal cells , 1987, Planta.
[48] J. Giraudat,et al. Alteration of anion channel kinetics in wild-type and abi1-1 transgenic Nicotiana benthamiana guard cells by abscisic acid. , 1997, The Plant journal : for cell and molecular biology.
[49] B. Mueller‐Roeber,et al. Phospholipase C is required for the control of stomatal aperture by ABA. , 2003, The Plant journal : for cell and molecular biology.
[50] Kazuo Shinozaki,et al. Molecular responses to cold, drought, heat and salt stress in higher plants , 1999 .
[51] E. Macrobbie. ABA‐induced ion efflux in stomatal guard cells: multiple actions of ABA inside and outside the cell , 1995 .
[52] E. Neher. Vesicle Pools and Ca2+ Microdomains: New Tools for Understanding Their Roles in Neurotransmitter Release , 1998, Neuron.
[53] M. Fricker,et al. Visualisation and measurement of the calcium message in guard cells. , 1991, Symposia of the Society for Experimental Biology.
[54] R. Hedrich,et al. Identification and biochemical characterization of the plasma-membrane H+-ATPase in guard cells of Vicia faba L. , 1993, Planta.
[55] F. Woodward,et al. The role of stomata in sensing and driving environmental change , 2003, Nature.
[56] F. Lemtiri-Chlieh,et al. Role of calcium in the modulation of Vicia guard cell potassium channels by abscisic acid: A patch-clamp study , 2004, The Journal of Membrane Biology.
[57] E. Macrobbie. Ion Fluxes in ‘Isolated’ Guard Cells of Commelina communis L. , 1981 .
[58] Colin Brownlee,et al. Spatiotemporal patterning of reactive oxygen production and Ca(2+) wave propagation in fucus rhizoid cells. , 2002, The Plant cell.
[59] E. Komor,et al. A possible mechanistic role of the membrane potential in proton—sugar cotransport of Chlorella , 1978, FEBS letters.
[60] M. Blatt,et al. NO3− transport across the plasma membrane of Arabidopsis thaliana root hairs: Kinetic control by pH and membrane voltage , 1995, The Journal of Membrane Biology.
[61] R. Betts,et al. Detection of a direct carbon dioxide effect in continental river runoff records , 2006, Nature.
[62] C. Gehring,et al. Changes in cytosolic pH and calcium of guard cells precede stomatal movements. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[63] E. Grill,et al. A defined range of guard cell calcium oscillation parameters encodes stomatal movements , 2001, Nature.
[64] Alan M. Jones,et al. G Protein Regulation of Ion Channels and Abscisic Acid Signaling in Arabidopsis Guard Cells , 2001, Science.
[65] J. Hancock,et al. A Role for ETR1 in Hydrogen Peroxide Signaling in Stomatal Guard Cells1 , 2005, Plant Physiology.
[66] J. Hancock,et al. Nitric oxide is a novel component of abscisic acid signaling in stomatal guard cells. , 2002, Plant physiology.
[67] Michael R. Blatt,et al. Parallel control of the inward-rectifier K+ channel by cytosolic free Ca2+ and pH inVicia guard cells , 1997, Planta.
[68] Michael R. Blatt,et al. Potassium-dependent, bipolar gating of K+ channels in guard cells , 1988, The Journal of Membrane Biology.
[69] Julian I. Schroeder,et al. Guard cell abscisic acid signalling and engineering drought hardiness in plants , 2001, Nature.
[70] D. Bouchez,et al. Identification and Disruption of a Plant Shaker-like Outward Channel Involved in K+ Release into the Xylem Sap , 1998, Cell.
[71] L. Vidali,et al. Polarized cell growth in higher plants. , 2001, Annual review of cell and developmental biology.
[72] B. Mueller‐Roeber,et al. Voltage-gated ion channels , 2005 .
[73] K. Dietz,et al. Fast-activating cation channel in barley mesophyll vacuoles. Inhibition by calcium , 1997 .
[74] E. Macrobbie. Vesicle trafficking: a role in trans-tonoplast ion movements? , 1999 .
[75] S. Wright. An increase in the “inhibitor-β” content of detached wheat leaves following a period of wilting , 1969, Planta.
[76] R. Hiron,et al. (+)-Abscisic Acid, the Growth Inhibitor induced in Detached Wheat Leaves by a Period of Wilting , 1969, Nature.
[77] P. Swain,et al. Stochastic Gene Expression in a Single Cell , 2002, Science.
[78] T. Holdaway-Clarke,et al. Control of pollen tube growth: role of ion gradients and fluxes. , 2003, The New phytologist.
[79] C. Slayman,et al. Depolarization of the plasma membrane of Neurospora during active transport of glucose: evidence for a proton-dependent cotransport system. , 1974, Proceedings of the National Academy of Sciences of the United States of America.
[80] Z. Pei,et al. A novel chloride channel in Vicia faba guard cell vacuoles activated by the serine/threonine kinase, CDPK. , 1996, The EMBO journal.
[81] A. Hetherington,et al. The vacuolar Ca2+-activated channel TPC1 regulates germination and stomatal movement , 2005, Nature.
[82] A. Hills,et al. Protein phosphorylation is a prerequisite for intracellular Ca2+ release and ion channel control by nitric oxide and abscisic acid in guard cells. , 2005, The Plant journal : for cell and molecular biology.
[83] A. Grabov,et al. A steep dependence of inward-rectifying potassium channels on cytosolic free calcium concentration increase evoked by hyperpolarization in guard cells , 1999, Plant physiology.
[84] Michael R Blatt,et al. Protein phosphorylation activates the guard cell Ca2+ channel and is a prerequisite for gating by abscisic acid. , 2002, The Plant journal : for cell and molecular biology.
[85] Michael R. Blatt,et al. Electrical characteristics of stomatal guard cells: The contribution of ATP-dependent, “Electrogenic” transport revealed by current-voltage and difference-current-voltage analysis , 1987, The Journal of Membrane Biology.
[86] M. Tester,et al. Hyperpolarisation-activated calcium currents found only in cells from the elongation zone of Arabidopsis thaliana roots. , 2000, The Plant journal : for cell and molecular biology.
[87] K. Raschke,et al. A slow anion channel in guard cells, activating at large hyperpolarization, may be principal for stomatal closing , 1992, FEBS letters.
[88] U. Hansen,et al. Repetitive Ca2+ spikes in a unicellular green alga , 1997, FEBS letters.
[89] A. Webb,et al. Carbon dioxide induces increases in guard cell cytosolic free calcium , 1996 .
[90] M. Blatt,et al. K+ channels of stomatal guard cells: Abscisic-acid-evoked control of the outward rectifier mediated by cytoplasmic pH , 1993, Planta.
[91] S. Assmann,et al. Abscisic Acid-Induced Phosphoinositide Turnover in Guard Cell Protoplasts of Vicia faba , 1996, Plant physiology.
[92] Alain Vavasseur,et al. Arabidopsis OST1 Protein Kinase Mediates the Regulation of Stomatal Aperture by Abscisic Acid and Acts Upstream of Reactive Oxygen Species Production Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.007906. , 2002, The Plant Cell Online.
[93] M. Blatt,et al. K+ channels of stomatal guard cells. Characteristics of the inward rectifier and its control by pH , 1992, The Journal of general physiology.
[94] M. Roelfsema,et al. Ion channels in guard cells of Arabidopsis thaliana (L.) Heynh. , 1996, Planta.
[95] R. Hedrich,et al. Interconversion of fast and slow gating modes of GCAC1, a Guard Cell Anion Channel , 1994, Planta.
[96] Ingo Dreyer,et al. The Arabidopsis outward K+ channel GORK is involved in regulation of stomatal movements and plant transpiration , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[97] A. Hetherington,et al. Visualizing Changes in Cytosolic-Free Ca2+ during the Response of Stomatal Guard Cells to Abscisic Acid. , 1992, The Plant cell.
[98] P. De Koninck,et al. Sensitivity of CaM kinase II to the frequency of Ca2+ oscillations. , 1998, Science.
[99] J. Taylor,et al. Stimulus-Induced Oscillations in Guard Cell Cytosolic Free Calcium. , 1995, The Plant cell.
[100] J. Chin,et al. Modular approaches to expanding the functions of living matter , 2006, Nature chemical biology.
[101] M. Blatt,et al. A role for the vacuole in auxin-mediated control of cytosolic pH by Vicia mesophyll and guard cells , 2002 .
[102] Z. Pei,et al. Differential abscisic acid regulation of guard cell slow anion channels in Arabidopsis wild-type and abi1 and abi2 mutants. , 1997, The Plant cell.
[103] Michael R. Blatt,et al. Mechanisms of fusicoccin action: evidence for concerted modulations of secondary K+ transport in a higher plant cell , 1989, Planta.
[104] R Y Tsien,et al. Alteration of stimulus-specific guard cell calcium oscillations and stomatal closing in Arabidopsis det3 mutant. , 2000, Science.
[105] R. Hedrich,et al. ABA depolarizes guard cells in intact plants, through a transient activation of R- and S-type anion channels. , 2004, The Plant journal : for cell and molecular biology.
[106] Toshinori Kinoshita,et al. Blue light activates the plasma membrane H+‐ATPase by phosphorylation of the C‐terminus in stomatal guard cells , 1999, The EMBO journal.
[107] U. Hansen,et al. A steep Ca2+-dependence of a K+ channel in a unicellular green alga , 1998 .
[108] Christopher C. Goodnow,et al. Differential activation of transcription factors induced by Ca2+ response amplitude and duration , 1997, Nature.
[109] J. Schroeder. K+ transport properties of K+ channels in the plasma membrane of Vicia faba guard cells , 1988, The Journal of general physiology.
[110] D. Grierson,et al. Molecular Biology of Plant Development , 1982 .
[111] A. Hills,et al. Nitric oxide regulates K+ and Cl- channels in guard cells through a subset of abscisic acid-evoked signaling pathways , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[112] M. Fricker,et al. Two Transduction Pathways Mediate Rapid Effects of Abscisic Acid in Commelina Guard Cells. , 1994, The Plant cell.
[113] J. Giraudat,et al. Sensitivity to abscisic acid of guard-cell K+ channels is suppressed by abi1-1, a mutant Arabidopsis gene encoding a putative protein phosphatase. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[114] Guillaume Pilot,et al. Guard Cell Inward K+ Channel Activity inArabidopsis Involves Expression of the Twin Channel Subunits KAT1 and KAT2* , 2001, The Journal of Biological Chemistry.
[115] Two types of anion channel currents in guard cells with distinct voltage regulation. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[116] H. Sentenac,et al. Molecular mechanisms and regulation of K+ transport in higher plants. , 2003, Annual review of plant biology.
[117] B. Mueller‐Roeber,et al. External K+ modulates the activity of the Arabidopsis potassium channel SKOR via an unusual mechanism. , 2006, The Plant journal : for cell and molecular biology.
[118] A. Trewavas,et al. Elevation of cytoplasmic calcium by caged calcium or caged inositol trisphosphate initiates stomatal closure , 1990, Nature.
[119] D. Ehrhardt,et al. Calcium Spiking in Plant Root Hairs Responding to Rhizobium Nodulation Signals , 1996, Cell.
[120] S. Spiegel,et al. Arabidopsis Sphingosine Kinase and the Effects of Phytosphingosine-1-Phosphate on Stomatal Aperture1[w] , 2005, Plant Physiology.
[121] M. Blatt,et al. Membrane transport in stomatal guard cells: The importance of voltage control , 1992, The Journal of Membrane Biology.
[122] C. Brearley,et al. Inositol hexakisphosphate is a physiological signal regulating the K+-inward rectifying conductance in guard cells. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[123] J. Sedbrook,et al. Expression of an Arabidopsis Potassium Channel Gene in Guard Cells , 1995, Plant physiology.
[124] E. Macrobbie. Effects of Light/Dark on Anion Fluxes in Isolated Guard Cells of Commelina communis L. , 1984 .
[125] M. Blatt,et al. Reversible inactivation of K+ channels of Vcia stomatal guard cells following the photolysis of caged inositol 1,4,5-trisphosphate , 1990, Nature.
[126] J. Schroeder,et al. GUARD CELL SIGNAL TRANSDUCTION. , 2003, Annual review of plant physiology and plant molecular biology.
[127] B. Wodala,et al. KAT1 inactivates at sub-millimolar concentrations of external potassium. , 2005, Journal of experimental botany.
[128] A. Hetherington,et al. Guard Cell Signaling , 2001, Cell.
[129] Keli Xu,et al. Calcium oscillations increase the efficiency and specificity of gene expression , 1998, Nature.