Na+ tolerance and Na+ transport in higher plants.
暂无分享,去创建一个
[1] J. Schroeder,et al. GUARD CELL SIGNAL TRANSDUCTION. , 2003, Annual review of plant physiology and plant molecular biology.
[2] R. Leigh,et al. Potassium activities in cell compartments of salt-grown barley leaves. , 2003, Journal of experimental botany.
[3] T. G. Owens,et al. Trehalose accumulation in rice plants confers high tolerance levels to different abiotic stresses , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[4] P. White,et al. The Voltage-Independent Cation Channel in the Plasma Membrane of Wheat Roots Is Permeable to Divalent Cations and May Be Involved in Cytosolic Ca2+ Homeostasis1 , 2002, Plant Physiology.
[5] W. Roos,et al. Elicitor-activated phospholipase A(2) generates lysophosphatidylcholines that mobilize the vacuolar H(+) pool for pH signaling via the activation of Na(+)-dependent proton fluxes. , 2002, The Plant cell.
[6] Jian-Kang Zhu,et al. Reconstitution in yeast of the Arabidopsis SOS signaling pathway for Na+ homeostasis , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[7] J. Forment,et al. Expression of Arabidopsis SR-like splicing proteins confers salt tolerance to yeast and transgenic plants. , 2002, The Plant journal : for cell and molecular biology.
[8] S. Yokoi,et al. Differential Expression and Function of Arabidopsis Thaliana Antiporters in the Salt Stress Response , 2002 .
[9] Q. Qiu,et al. Regulation of SOS1, a plasma membrane Na+/H+ exchanger in Arabidopsis thaliana, by SOS2 and SOS3 , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[10] Jian-Kang Zhu,et al. Cell Signaling during Cold, Drought, and Salt Stress Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.000596. , 2002, The Plant Cell Online.
[11] A. Rodríguez-Navarro,et al. Potassium- or sodium-efflux ATPase, a key enzyme in the evolution of fungi. , 2002, Microbiology.
[12] Hur-Song Chang,et al. Expression Profile Matrix of Arabidopsis Transcription Factor Genes Suggests Their Putative Functions in Response to Environmental Stresses , 2002, The Plant Cell Online.
[13] R. Munns. Comparative physiology of salt and water stress. , 2002, Plant, cell & environment.
[14] Jian-Kang Zhu,et al. The Putative Plasma Membrane Na+/H+ Antiporter SOS1 Controls Long-Distance Na+ Transport in Plants Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.010371. , 2002, The Plant Cell Online.
[15] M. Tester,et al. Sodium Fluxes through Nonselective Cation Channels in the Plasma Membrane of Protoplasts from Arabidopsis Roots1 , 2002, Plant Physiology.
[16] Q. Leng,et al. Electrophysiological Analysis of Cloned Cyclic Nucleotide-Gated Ion Channels1 , 2002, Plant Physiology.
[17] F. J. Quintero,et al. The Arabidopsis Na+/H+Exchanger AtNHX1 Catalyzes Low Affinity Na+ and K+ Transport in Reconstituted Liposomes* , 2002, The Journal of Biological Chemistry.
[18] G. Cramer,et al. Abscisic acid is correlated with the leaf growth inhibition of four genotypes of maize differing in their response to salinity. , 2002, Functional plant biology : FPB.
[19] R. Munns,et al. Factors affecting CO2 assimilation, leaf injury and growth in salt-stressed durum wheat. , 2002, Functional plant biology : FPB.
[20] F. Maathuis,et al. Sodium uptake in Arabidopsis roots is regulated by cyclic nucleotides. , 2001, Plant physiology.
[21] S. Yokoi,et al. AtHKT1 is a salt tolerance determinant that controls Na+ entry into plant roots , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[22] E. Blumwald,et al. Engineering salt-tolerant Brassica plants: Characterization of yield and seed oil quality in transgenic plants with increased vacuolar sodium accumulation , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[23] S. Lutts,et al. Characterization of rice (Oryza sativa L.) F3 populations selected for salt resistance. I. Physiological behaviour during vegetative growth , 2001, Euphytica.
[24] S. Lutts,et al. Discrimination between the ionic and osmotic components of salt stress in relation to free polyamine level in rice (Oryza sativa) , 2001 .
[25] G. Fink,et al. Drought- and salt-tolerant plants result from overexpression of the AVP1 H+-pump , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[26] J. Pritchard,et al. Direct measurement of sodium and potassium in the transpiration stream of salt-excluding and non-excluding varieties of wheat. , 2001, Journal of experimental botany.
[27] A. Rodríguez-Navarro,et al. Plant cells express several stress calcium ATPases but apparently no sodium ATPase , 2001, Plant and Soil.
[28] R. Serrano,et al. Expressing the yeast HAL1 gene in tomato increases fruit yield and enhances K+/Na+ selectivity under salt stress , 2001 .
[29] I. Hwang,et al. Constitutive over-expression of AtGSK1 induces NaCl stress responses in the absence of NaCl stress and results in enhanced NaCl tolerance in Arabidopsis. , 2001, The Plant journal : for cell and molecular biology.
[30] E. Blumwald,et al. Transgenic salt-tolerant tomato plants accumulate salt in foliage but not in fruit , 2001, Nature Biotechnology.
[31] V. Vitart,et al. Evidence for a role in growth and salt resistance of a plasma membrane H+-ATPase in the root endodermis. , 2001, The Plant journal : for cell and molecular biology.
[32] R. J. Davenport,et al. Ammonium toxicity and the real cost of transport. , 2001, Trends in plant science.
[33] A. Stefanović,et al. The wheat cDNA LCT1 generates hypersensitivity to sodium in a salt-sensitive yeast strain. , 2001, Plant physiology.
[34] F. Maathuis,et al. Critical role of divalent cations and Na+ efflux in Arabidopsis thaliana salt tolerance , 2001 .
[35] J. Ben-Asher,et al. Simulation study of nutrient uptake by plants from soilless cultures as affected by salinity buildup and transpiration , 2001, Plant and Soil.
[36] Heather Knight,et al. Abiotic stress signalling pathways: specificity and cross-talk. , 2001, Trends in plant science.
[37] P. Hasegawa,et al. Genes that are uniquely stress regulated in salt overly sensitive (sos) mutants. , 2001, Plant physiology.
[38] T. Flowers,et al. Salinity tolerance in Hordeum vulgare: ion concentrations in root cells of cultivars differing in salt tolerance** , 2001, Plant and Soil.
[39] Hong Wang,et al. Gene Expression Profiles during the Initial Phase of Salt Stress in Rice , 2001, Plant Cell.
[40] M. Tester,et al. Partitioning of nutrient transport processes in roots , 2001 .
[41] D. Galbraith,et al. A genomics approach towards salt stress tolerance , 2001 .
[42] G. Santa-Maria,et al. Potassium/sodium selectivity in wheat and the amphiploid cross wheat X Lophopyrum elongatum. , 2001, Plant science : an international journal of experimental plant biology.
[43] J. Zhu,et al. Plant salt tolerance. , 2001, Trends in plant science.
[44] Piero Carninci,et al. Monitoring the Expression Pattern of 1300 Arabidopsis Genes under Drought and Cold Stresses by Using a Full-Length cDNA Microarray , 2001, Plant Cell.
[45] P. Berthomieu,et al. sas1, an Arabidopsis Mutant Overaccumulating Sodium in the Shoot, Shows Deficiency in the Control of the Root Radial Transport of Sodium , 2001, Plant Cell.
[46] The Arabidopsis Genome Initiative. Analysis of the genome sequence of the flowering plant Arabidopsis thaliana , 2000, Nature.
[47] M. Mansour. Nitrogen Containing Compounds and Adaptation of Plants to Salinity Stress , 2000, Biologia Plantarum.
[48] J. Zhu,et al. Genetic analysis of plant salt tolerance using Arabidopsis. , 2000, Plant physiology.
[49] R. Leigh,et al. Where do all the ions go? The cellular basis of differential ion accumulation in leaf cells. , 2000, Trends in plant science.
[50] R. Munns,et al. Leaf water status controls day-time but not daily rates of leaf expansion in salt-treated barley , 2000 .
[51] Effendy,et al. Characterization of salt-induced changes in gene expression in tomato (Lycopersicon esculentum) roots and the role played by abscisic acid. , 2000, Plant science : an international journal of experimental plant biology.
[52] K. Shinozaki,et al. Arabidopsis basic leucine zipper transcription factors involved in an abscisic acid-dependent signal transduction pathway under drought and high-salinity conditions. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[53] S. Iida,et al. Colour-enhancing protein in blue petals , 2000, Nature.
[54] J. J. Zhu,et al. Solute balance of a maize (Zea mays L.) source leaf as affected by salt treatment with special emphasis on phloem retranslocation and ion leaching. , 2000, Journal of experimental botany.
[55] Jian-Kang Zhu,et al. SOS3 Function in Plant Salt Tolerance Requires N-Myristoylation and Calcium Binding , 2000, Plant Cell.
[56] F. A. Smith,et al. The limits of sodium/calcium interactions in plant growth , 2000 .
[57] H. Gimmler. Primary sodium plasma membrane ATPases in salt-tolerant algae: facts and fictions. , 2000, Journal of experimental botany.
[58] M. Tester,et al. Cell-type-specific calcium responses to drought, salt and cold in the Arabidopsis root. , 2000, The Plant journal : for cell and molecular biology.
[59] 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.
[60] H. Bohnert,et al. PLANT CELLULAR AND MOLECULAR RESPONSES TO HIGH SALINITY. , 2000, Annual review of plant physiology and plant molecular biology.
[61] E. Blumwald,et al. Sodium transport in plant cells. , 2000, Biochimica et biophysica acta.
[62] M. Maeshima. Vacuolar H(+)-pyrophosphatase. , 2000, Biochimica et biophysica acta.
[63] Yuncai Hu,et al. Carbohydrate deposition and partitioning in elongating leaves of wheat under saline soil conditions , 2000 .
[64] J. Schroeder,et al. Enhancement of Na(+) uptake currents, time-dependent inward-rectifying K(+) channel currents, and K(+) channel transcripts by K(+) starvation in wheat root cells. , 2000, Plant physiology.
[65] J. Schroeder,et al. The Arabidopsis HKT1 gene homolog mediates inward Na(+) currents in xenopus laevis oocytes and Na(+) uptake in Saccharomyces cerevisiae. , 2000, Plant physiology.
[66] M. Ishitani,et al. The Arabidopsis SOS2 protein kinase physically interacts with and is activated by the calcium-binding protein SOS3. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[67] G. Tena,et al. Functional analysis of oxidative stress-activated mitogen-activated protein kinase cascade in plants. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[68] M. Tester,et al. A weakly voltage-dependent, nonselective cation channel mediates toxic sodium influx in wheat. , 2000, Plant physiology.
[69] R. Leigh,et al. Differential ion accumulation and ion fluxes in the mesophyll and epidermis of barley. , 2000, Plant physiology.
[70] W. Keller,et al. Genetic engineering of glycinebetaine production toward enhancing stress tolerance in plants: metabolic limitations. , 2000, Plant physiology.
[71] J. Alarcón,et al. Composition of xylem and phloem exudates in relation to the salt-tolerance of domestic and wild tomato species. , 2000 .
[72] U. Zimmermann,et al. Trans‐root potential, xylem pressure, and root cortical membrane potential of ‘low‐salt’ maize plants as influenced by nitrate and ammonium , 1999 .
[73] J.-S. Zhang,et al. Expression of the plasma membrane H+-ATPase gene in response to salt stress in a rice salt-tolerant mutant and its original variety , 1999, Theoretical and Applied Genetics.
[74] K. Shinozaki,et al. A Transmembrane Hybrid-Type Histidine Kinase in Arabidopsis Functions as an Osmosensor , 1999, Plant Cell.
[75] T. Hibino,et al. Overexpression of DnaK from a halotolerant cyanobacterium Aphanothece halophytica acquires resistance to salt stress in transgenic tobacco plants , 1999 .
[76] W. Frommer,et al. Taking Transgenic Plants with a Pinch of Salt , 1999, Science.
[77] W. Snedden,et al. Salt tolerance conferred by overexpression of a vacuolar Na+/H+ antiport in Arabidopsis. , 1999, Science.
[78] F. Maathuis,et al. K + Nutrition and Na + Toxicity: The Basis of Cellular K + /Na + Ratios , 1999 .
[79] M. Nuccio,et al. Betaines and related osmoprotectants. Targets for metabolic engineering of stress resistance , 1999, Plant physiology.
[80] White. The molecular mechanism of sodium influx to root cells. , 1999, Trends in plant science.
[81] K. Marcum. Salinity Tolerance Mechanisms of Grasses in the Subfamily Chloridoideae , 1999 .
[82] Hirokazu Kobayashi,et al. A Recessive Arabidopsis Mutant That Grows Photoautotrophically under Salt Stress Shows Enhanced Active Oxygen Detoxification , 1999, Plant Cell.
[83] M. Pessarakli. Handbook of plant and crop stress , 1999 .
[84] M. Van Montagu,et al. A highly conserved kinase is an essential component for stress tolerance in yeast and plant cells. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[85] T. Flowers,et al. Silicon reduces sodium uptake in rice (Oryza sativa L.) in saline conditions and this is accounted for by a reduction in the transpirational bypass flow , 1999 .
[86] W. Gruissem,et al. Genes for calcineurin B-like proteins in Arabidopsis are differentially regulated by stress signals. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[87] Edward P. Glenn,et al. Salt Tolerance and Crop Potential of Halophytes , 1999 .
[88] P. L. Rodriguez,et al. The Arabidopsis HAL2-like gene family includes a novel sodium-sensitive phosphatase. , 1999, The Plant journal : for cell and molecular biology.
[89] I. Winicov. New Molecular Approaches to Improving Salt Tolerance in Crop Plants , 1998 .
[90] S. Tyerman,et al. Root ion channels and salinity , 1998 .
[91] M. Blom-Zandstra,et al. Sodium fluxes in sweet pepper exposed to varying sodium concentrations , 1998 .
[92] M. Tal,et al. The effect of salt stress on lipid peroxidation and antioxidants in the leaf of the cultivated tomato and its wild salt-tolerant relative Lycopersicon pennellii , 1998 .
[93] J. Ward,et al. The plant cDNA LCT1 mediates the uptake of calcium and cadmium in yeast. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[94] P. Hasegawa,et al. Stress signaling through Ca2+/calmodulin-dependent protein phosphatase calcineurin mediates salt adaptation in plants. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[95] K. Shinozaki,et al. Two Transcription Factors, DREB1 and DREB2, with an EREBP/AP2 DNA Binding Domain Separate Two Cellular Signal Transduction Pathways in Drought- and Low-Temperature-Responsive Gene Expression, Respectively, in Arabidopsis , 1998, Plant Cell.
[96] Jian-Kang Zhu,et al. Genetic Analysis of Salt Tolerance in Arabidopsis: Evidence for a Critical Role of Potassium Nutrition , 1998, Plant Cell.
[97] Jiping Liu,et al. A calcium sensor homolog required for plant salt tolerance. , 1998, Science.
[98] D. Sanders,et al. Guard cell cation channels are involved in Na+–induced stomatal closure in a halophyte , 1998 .
[99] J. Giraudat,et al. ABSCISIC ACID SIGNAL TRANSDUCTION. , 1998, Annual review of plant physiology and plant molecular biology.
[100] Yoshiyuki Tanaka,et al. Na+/H+ Antiporter in Tonoplast Vesicles from Rice Roots , 1998 .
[101] Jiping Liu,et al. An Arabidopsis mutant that requires increased calcium for potassium nutrition and salt tolerance. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[102] A. Trewavas,et al. Calcium signalling in Arabidopsis thaliana responding to drought and salinity. , 1997, The Plant journal : for cell and molecular biology.
[103] D. Sanders,et al. HOW CAN STOMATA CONTRIBUTE TO SALT TOLERANCE , 1997 .
[104] R. Kumar,et al. Molecular and functional characterization of a novel low-affinity cation transporter (LCT1) in higher plants. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[105] T. Close,et al. Dehydrins: genes, proteins, and associations with phenotypic traits , 1997 .
[106] T. Flowers,et al. Sodium and potassium transport to the xylem are inherited independently in rice, and the mechanism of sodium: potassium selectivity differs between rice and wheat , 1997 .
[107] P. M. Neumann. Salinity resistance and plant growth revisited , 1997 .
[108] A. Trewavas,et al. Signal Perception and Transduction: The Origin of the Phenotype. , 1997, The Plant cell.
[109] M. Tester,et al. A patch clamp study of Na+ transport in maize roots. , 1997, Journal of experimental botany.
[110] R. Leigh,et al. Pathways for the permeation of Na+ and Cl- into protoplasts derived from the cortex of wheat roots. , 1997, Journal of experimental botany.
[111] Jian-Kang Zhu,et al. Reduced Na+ Uptake in the NaCl-Hypersensitive sos1 Mutant of Arabidopsis thaliana , 1997, Plant physiology.
[112] E. Blumwald,et al. Na+/H+ antiport activity in tonoplast vesicles isolated from sunflower roots induced by NaCl stress , 1997 .
[113] R. Davenport,et al. Sodium-calcium interactions in two wheat species differing in salinity tolerance , 1997 .
[114] M. Tester,et al. Compatible solutes and salt tolerance: Misuse of transgenic tobacco , 1996 .
[115] P. Hasegawa,et al. NaCl-Induced Alterations in Both Cell Structure and Tissue-Specific Plasma Membrane H+ -ATPase Gene Expression , 1996, Plant physiology.
[116] P. White. The Permeation of Ammonium through a Voltage-independent K+ Channel in the Plasma Membrane of Rye Roots , 1996, The Journal of Membrane Biology.
[117] J. Ingram,et al. THE MOLECULAR BASIS OF DEHYDRATION TOLERANCE IN PLANTS. , 1996, Annual review of plant physiology and plant molecular biology.
[118] J. Dvorak,et al. Mapping of the K+/Na+ discrimination locus Kna1 in wheat , 1996, Theoretical and Applied Genetics.
[119] T. Flowers,et al. The involvement of the transpirational bypass flow in sodium uptake by high‐ and low‐sodium‐transporting lines of rice developed through intravarietal selection , 1996 .
[120] D. Lacan,et al. Na+-K+ Exchange at the Xylem/Symplast Boundary (Its Significance in the Salt Sensitivity of Soybean) , 1996, Plant physiology.
[121] T. Ho,et al. Expression of a Late Embryogenesis Abundant Protein Gene, HVA1, from Barley Confers Tolerance to Water Deficit and Salt Stress in Transgenic Rice , 1996, Plant physiology.
[122] J. Schroeder,et al. Sodium-Driven Potassium Uptake by the Plant Potassium Transporter HKT1 and Mutations Conferring Salt Tolerance , 1995, Science.
[123] D. Reinhardt,et al. Salinity accelerates endodermal development and induces an exodermis in cotton seedling roots , 1995 .
[124] S. Schubert,et al. Salt tolerance of maize (Zea mays L.): the role of sodium exclusion , 1995 .
[125] J. Dvorak,et al. Differential Solute Regulation in Leaf Blades of Various Ages in Salt-Sensitive Wheat and a Salt-Tolerant Wheat x Lophopyrum elongatum (Host) A. Love Amphiploid , 1995, Plant physiology.
[126] D. Parker,et al. GEOCHEM‐PC—A Chemical Speciation Program for IBM and Compatible Personal Computers , 1995 .
[127] M. Shannon,et al. Salt-induced Na+/H+ antiport in root plasma membrane of a glycophytic and halophytic species of tomato * , 1995 .
[128] R. Paul,et al. Bicellular Trichomes of Johnsongrass (Sorghum halepense) Leaves: Morphology, Histochemistry, and Function , 1995, Weed Science.
[129] S. Assmann,et al. Characterization of the Red Beet Plasma Membrane H+-ATPase Reconstituted in a Planar Bilayer System , 1995, Plant physiology.
[130] P. White,et al. Potassium currents across the plasma membrane of protoplasts derived from rye roots: a patch-clamp study , 1995 .
[131] K. Shinozaki,et al. A gene encoding a phosphatidylinositol-specific phospholipase C is induced by dehydration and salt stress in Arabidopsis thaliana. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[132] R. Finkelstein,et al. Arabidopsis mutants with reduced response to NaCl and osmotic stress , 1995 .
[133] O. Dym,et al. Structural Features That Stabilize Halophilic Malate Dehydrogenase from an Archaebacterium , 1995, Science.
[134] D. Rhodes,et al. Salt Tolerance of Glycinebetaine-Deficient and -Containing Maize Lines , 1995, Plant physiology.
[135] D. Sanders,et al. Osmotic stress enhances the competence of Beta vulgaris vacuoles to respond to inositol 1,4,5‐trisphosphate , 1994 .
[136] L. Wegner,et al. Ion Channels in the Xylem Parenchyma of Barley Roots (A Procedure to Isolate Protoplasts from This Tissue and a Patch-Clamp Exploration of Salt Passageways into Xylem Vessels , 1994, Plant physiology.
[137] G. Cramer,et al. Is the salt tolerance of maize related to sodium exclusion? I. Preliminary screening of seven cultivars , 1993 .
[138] G. Cramer,et al. Supplemental calcium does not improve growth of salt-stressed Brassicas , 1993, Plant and Soil.
[139] S. Breckle,et al. Sodium relations in Chenopodiaceae: a comparative approach , 1993 .
[140] P. Young,et al. Mutants of Arabidopsis thaliana Capable of Germination under Saline Conditions , 1993, Plant physiology.
[141] H. Bohnert,et al. Distinct Cellular and Organismic Responses to Salt Stress , 1992 .
[142] C. N. Law,et al. Association between genes controlling flowering time and shoot sodium accumulation in the Triticeae , 1992, Plant and Soil.
[143] R. Richards. Increasing salinity tolerance of grain crops: Is it worthwhile? , 1992, Plant and Soil.
[144] T. J. Flowers,et al. Protein synthesis in halophytes: The influence of potassium, sodium and magnesium in vitro , 1992, Plant and Soil.
[145] A. Bennett,et al. Higher plant Ca(2+)-ATPase: primary structure and regulation of mRNA abundance by salt. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[146] N. Matsushita,et al. Function of the shoot base of salt-tolerant reed (Phragmites communis Trinius) plants for Na^+ exclusion from the shoots , 1992 .
[147] F. Maathuis,et al. Sodium Chloride Compartmentation in Leaf Vacuoles of the Halophyte Suaeda maritima (L.) Dum. and its Relation to Tonoplast Permeability , 1992 .
[148] R. Munns,et al. The expression of salt tolerance from Triticum tauschii in hexaploid wheat , 1992, Theoretical and Applied Genetics.
[149] Z. Rengel,et al. The role of calcium in salt toxicity , 1992 .
[150] E. Nevo,et al. Variation for 22Na Uptake in Wild Emmer Wheat, Triticum dicoccoides in Israel: Salt Tolerance Resources for Wheat Improvement , 1992 .
[151] N. Matsushita,et al. Characterization of Na+ exclusion mechanisms of salt‐tolerant reed plants in comparison with salt‐sensitive rice plants , 1991 .
[152] R. Munns,et al. The Role of the Stem in the Partitioning of Na+ and K+ in Salt-Treated Barley , 1991 .
[153] F. Maathuis,et al. Na+/H+ antiport activity in tonoplast vesicles from roots of the salt‐tolerant Plantago maritima and the salt‐sensitive Plantago media , 1991 .
[154] P. M. Neumann,et al. Sodium does not compete with calcium in saturating plasma membrane sites regulating na influx in salinized maize roots. , 1991, Plant physiology.
[155] T. Flowers,et al. Ion accumulation in the cell walls of rice plants growing under saline conditions: evidence for the Oertli hypothesis , 1991 .
[156] H. Marschner,et al. Is sodium proton antiport ubiquitous in plant cells , 1990 .
[157] A. Galston,et al. Polyamines in plant physiology. , 1990, Plant physiology.
[158] J. Gorham. Salt Tolerance in the Triticeae: Ion Discrimination in Rye and Triticale , 1990 .
[159] A. Läuchli,et al. Sodium exclusion mechanisms at the root surface of two maize cultivars , 1990, Plant and Soil.
[160] T. Flowers,et al. Salt tolerance in the halophytic wild rice, Porteresia coarctata Tateoka , 1990 .
[161] L. Watson,et al. Variation in Salt Secretory Activity of Microhairs in Grasses , 1989 .
[162] H. Marschner. Mineral Nutrition of Higher Plants , 1988 .
[163] H. Koyro,et al. Ion Concentrations in the Cytoplasm and Vacuoles of Rhizodermis Cells from NaCl treated Sorghum, Spartina and Puccinellia Plants , 1988 .
[164] J. Cheeseman,et al. Mechanisms of salinity tolerance in plants. , 1988, Plant physiology.
[165] R. Munns. Effect of high external NaCl concentration on ion transport within the shoot of Lupinus albus. II. Ions in phloem sap , 1988 .
[166] P. A. Rea,et al. Tonoplast energization: Two H+ pumps, one membrane , 1987 .
[167] T. Flowers,et al. The Contribution of an Apoplastic Pathway to Sodium Uptake by Rice Roots in Saline Conditions , 1987 .
[168] T. Flowers,et al. QUNTITATIVE ION DISTRIBUTION WITHIN ROOT CELLS OF SALT-SENSITIVE AND SALT-TOLERANT MAIZE VARIETIES. , 1987, The New phytologist.
[169] A. Läuchli,et al. The Role of the Mesocotyl in Sodium Exclusion from the Shoot of Zea mays L. (cv. Pioneer 3906) , 1987 .
[170] D. Clarkson,et al. Proton Fluxes and the Activity of a Stelar Proton Pump in Onion Roots , 1986 .
[171] A. Läuchli,et al. Ion Activities in Solution in Relation to Na+ −Ca2+Interactions at the Plasmalemma , 1986 .
[172] J. Cheeseman,et al. Short term 22Na+ and 42K+ uptake in intact, mid‐vegetative plants , 1985 .
[173] A. Läuchli,et al. Displacement of Ca2+ by Na+ from the Plasmalemma of Root Cells A Primary Response to Salt Stress? , 1985 .
[174] D. Harvey. The effects of salinity on ion concentrations within the root cells of Zea mays L. , 1985, Planta.
[175] R. Munns. Na+, K+ and Cl− in Xylem Sap Flowing to Shoots of NaCl-Treated Barley , 1985 .
[176] J. B. Hanson,et al. Controls on na influx in corn roots. , 1985, Plant physiology.
[177] T. Flowers,et al. SALT TOLERANCE IN SUAEDA MARITIMA (L.)DUM. FINE STRUCTURE AND ION CONCENTRATIONS IN THE APICAL REGION OF ROOTS , 1985 .
[178] J. Speirs,et al. Salt-tolerance in plants. II: In vitro translation of m-RNAs from salt-tolerant and salt-sensitive plants on wheat germ ribosomes. Responses to ions and compatible organic solutes , 1984 .
[179] J. Cheeseman,et al. Uptake and distribution of sodium and potassium by corn seedlings : I. Role of the mesocotyl in ;sodium exclusion'. , 1983, Plant physiology.
[180] D. Kramer. The possible role of transfer cells in the adaptation of plants to salinity , 1983 .
[181] J. Cheeseman. Pump-leak sodium fluxes in low salt corn roots , 1982, The Journal of Membrane Biology.
[182] J. Rozema,et al. SODIUM CONCENTRATION IN XYLEM SAP IN RELATION TO ION EXCLUSION, ACCUMULATION AND SECRETION IN HALOPHYTES , 1981 .
[183] R. Stelzer. Ion Localization in the Leaves of Puccinellia peisonis , 1981 .
[184] L. Neirinckx,et al. The Effect of Calcium on the Uptake and Distribution of Sodium in Excised Barley Roots , 1979 .
[185] D. Bowling,et al. Sodium fluxes in roots of Eleocharis uniglumis, a brackish water species , 1979 .
[186] J. Pate,et al. Modeling the transport and utilization of carbon and nitrogen in a nodulated legume. , 1979, Plant physiology.
[187] A. Läuchli,et al. Salz- und Überflutungstoleranz von Puccinellia peisonis: II. Strukturelle differenzierung der wurzel in beziehung zur funktion , 1977 .
[188] A. Läuchli,et al. Transfer Cells in Roots of Phaseolus coccineus: Ultrastructure and Possible Function in Exclusion of Sodium from the Shoot , 1977 .
[189] A. Läuchli,et al. Salz- und überflutungstoleranz von Puccinellia peisonis , 1977 .
[190] A. Yeo,et al. Ion Distribution in Salt-stressed Mature Zea mays Roots in Relation to Ultrastructure and Retention of Sodium , 1977 .
[191] M. G. Pitman,et al. Ultrastructure of xylem parenchyma cells of barley roots in relation to ion transport to the xylem , 1974, Planta.
[192] D. Clarkson,et al. The absorption and translocation of sodium by maize seedlings , 1969, Planta.
[193] F. Wooding. Absorptive cells in protoxylem: Association between mitochondria and the plasmalemma , 1969, Planta.
[194] P. A. Thompson. Salt Tolerance in Plants , 1965, Nature.
[195] G. Cramer,et al. Displacement of Ca 2 ' by Na + from the Plasmalemma of Root Cells ' A PRIMARY RESPONSE TO SALT STRESS ? , 2005 .
[196] A. Läuchli,et al. Ion measurements by X-ray microanalysis in unfixed, frozen, hydrated plant cells of species differing in salt tolerance , 2004, Planta.
[197] W. Stelter,et al. Mesurement of longitudinal ion profiles in single roots of Hordeum and Atriplex by use of flameless atomic absorption spectroscopy , 2004, Planta.
[198] D. Galbraith,et al. Monitoring large-scale changes in transcript abundance in drought- and salt-stressed barley , 2004, Plant Molecular Biology.
[199] Jian-Kang Zhu,et al. Salt and drought stress signal transduction in plants. , 2002, Annual review of plant biology.
[200] V. S. Reddy,et al. Transgenic tobacco expressing Entamoeba histolytica calcium binding protein exhibits enhanced growth and tolerance to salt stress , 2002 .
[201] Karl H. Mühling,et al. Effect of salt stress on growth and cation compartmentation in leaves of two plant species differing in salt tolerance , 2002 .
[202] G. Cramer. Sodium-Calcium Interactions Under Salinity Stress , 2002 .
[203] P. Essah. Sodium Transport in Arabidopsis thaliana , 2002 .
[204] J. Frank,et al. Preparation of functional ribosomal complexes and effect of buffer conditions on tRNA positions observed by cryoelectron microscopy. , 2000, Methods in enzymology.
[205] R. Munns,et al. Genetic variation for improving the salt tolerance of durum wheat , 2000 .
[206] J. Micol,et al. Genetic analysis of salt-tolerant mutants in Arabidopsis thaliana. , 2000, Genetics.
[207] M. Ishitani,et al. The Arabidopsis SOS 2 protein kinase physically interacts with and is activated by the calcium-binding protein SOS 3 , 2000 .
[208] F. Nagy,et al. Plant responses to genotoxic stress are linked to an ABA/salinity signaling pathway , 1999 .
[209] H. Mooney,et al. Carbon dioxide and environmental stress , 1999 .
[210] Nelson,et al. Myo-inositol-dependent sodium uptake in ice plant , 1999, Plant physiology.
[211] A. Rus,et al. Short-term salt tolerance mechanisms in differentially salt tolerant tomato species , 1999 .
[212] A. D. Boer,et al. Potassium Translocation into the Root Xylem , 1999 .
[213] R. Munns,et al. Interactions between Rising CO2, Soil Salinity, and Plant Growth , 1999 .
[214] K. Yamaguchi-Shinozaki,et al. Improving plant drought, salt, and freezing tolerance by gene transfer of a single stress-inducible transcription factor. , 1999, Nature biotechnology.
[215] S. Roberts,et al. Regulation of K+ Channels in Maize Roots by Water Stress and Abscisic Acid , 1998 .
[216] Anna Amtmann,et al. Mechanisms of Na+ Uptake by Plant Cells , 1998 .
[217] Raman Kumar,et al. Molecular and functional characterization of a novel low-affinity cation transporter ( LCT 1 ) in higher plants , 1997 .
[218] S. Goldberg,et al. Chemical equilibrium and reaction models , 1995 .
[219] S. Beer,et al. Effects of NaCl on the carboxylating activity of Rubisco from Tamarix jordanis in the presence and absence of proline‐related compatible solutes , 1994 .
[220] G. Cramer,et al. Salt tolerance is not associated with the sodium accumulation of two maize hybrids , 1994 .
[221] S. Quarrie,et al. Improving salt tolerance in hexaploid wheat , 1993 .
[222] R. Munns. Physiological processes limiting plant growth in saline soils: some dogmas and hypotheses , 1993 .
[223] D. Siemen,et al. Nonselective Cation Channels , 1993, EXS.
[224] R. Munns,et al. Sodium Accumulation in Leaves of Triticum Species That Differ in Salt Tolerance , 1992 .
[225] M. Ashraf,et al. Growth and ion uptake of four Brassica species as affected by Na/Ca ratio in saline sand culture , 1992 .
[226] L. Paleg,et al. In vitro Thermal and Salt Stability of Pyruvate Kinase Are Increased by Proline Analogues and Trigonelline , 1991 .
[227] D. P. Briskin,et al. Determination of H/ATP Stoichiometry for the Plasma Membrane H-ATPase from Red Beet (Beta vulgaris L.) Storage Tissue. , 1991, Plant physiology.
[228] M. Dracup. Increasing salt tolerance of plants through cell culture requires greater understanding of tolerance mechanisms , 1991 .
[229] F. Maathuis,et al. Patch clamp studies on root cell vacuoles of a salt-tolerant and a salt-sensitive plantago species : regulation of channel activity by salt stress. , 1990, Plant physiology.
[230] F. Himes. Russell's Soil Conditions and Plant Growth, 11th Edition , 1989 .
[231] F. Dupont,et al. Rapid induction of na/h exchange activity in barley root tonoplast. , 1989, Plant physiology.
[232] J. Dvorak,et al. Salt tolerant triticum x lophopyrum derivatives limit the accumulation of sodium and chloride ions under saline stress , 1989 .
[233] A. Wild,et al. Russell's Soil Conditions and Plant Growth , 1988 .
[234] J. Hall,et al. Solute transport in plant cells and tissues. , 1988 .
[235] I. S. Bhandal,et al. Potassium Estimation, Uptake, and Its Role in the Physiology and Metabolism of Flowering Plants , 1988 .
[236] T. J. Flowers. Chloride as a nutrient and as an osmoticum. , 1988 .
[237] M. Ball. Salinity tolerance in the mangroves Aegiceras corniculatum and Avicennia marina. I: Water use in relation to growth, carbon partitioning, and salt balance , 1988 .
[238] M. Canny,et al. Accumulation of potassium by differentiating metaxylem elements of maize roots , 1987 .
[239] T. Flowers,et al. Ion Relations of Plants Under Drought and Salinity , 1986 .
[240] T. Flowers,et al. THE ABSENCE OF AN EFFECT OF THE Na/Ca RATIO ON SODIUM CHLORIDE UPTAKE BY RICE (ORYZA SATIVA L.). , 1985 .
[241] M. Drew,et al. Sodium Exclusion from the Shoots by Roots of Zea mays (cv. LG 11) and its Breakdown with Oxygen Deficiency , 1985 .
[242] E. Winter. Salt Tolerance of Trifolium alexandrinum L. III. Effects of Salt on Ultrastructure of Phloem and Xylem Transfer Cells in Petioles and Leaves , 1982 .
[243] J. McComb,et al. Effect of NaCl on the growth of whole plants and their corresponding callus cultures , 1981 .
[244] D. L. Laidman,et al. Recent advances in the biochemistry of cereals , 1979 .
[245] R. Storey,et al. Salt Stress and Comparative Physiology in the Gramineae. IV. Comparison of Salt Stress in Spartina × townsendii and Three Barley Cultivars , 1978 .
[246] D. L. Carter,et al. Plants in Saline Environments , 1975, Ecological Studies.
[247] A. Poljakoff-mayber. Morphological and Anatomical Changes in Plants as a Response to Salinity Stress , 1975 .
[248] R. Jefferies. V.2 – The Ionic Relations of Seedlings of the Halophyte Triglochin maritima L. , 1973 .
[249] W. Anderson. Ion transport in plants , 1973 .
[250] M. Tal,et al. Salt tolerance in the wild relatives of the cultivated tomato: water balance and abscisic acid in Lycopersicon esculentum and L. peruvianum under low and high salinity , 1973 .
[251] W. Cram,et al. The Action of Abscisic Acid on Ion Uptake and Water Flow in Plant Roots , 1972 .
[252] M. Tal. Salt tolerance in the wild relatives of the cultivated tomato: Responses of Lycopersicon esculentum, L. peruvianum, and L. esculentum Minor to sodium chloride solution , 1971 .
[253] Atkinson,et al. Salt Regulation in the Mangroves Rhizophora Mucronata Lam. And Aegialitis Annulata Rbr , 1967 .
[254] M. Pitman. The Determination of the Salt Relations of the Cytoplasmic Phase in Cells of Beetroot Tissue , 1963 .
[255] H. Greenway. Plant Response to Saline Substrates 1. Growth and Ion Uptake of Several Varieties of Hordeum During and After Sodium Chloride Treatment , 1962 .